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About Google Book Search Google’s mission is to organize the world’s information and to make it universally accessible and useful. Google Book Search helps readers discover the world’s books while helping authors and publishers reach new audiences. You can search through the full text of this book on the web at http://books.google.com/ eof RI 115 NT &, — ae Sateen en 73 Ty Ty; 3 mo »\ ym Hy. 7 (Pe Scie — fi 5 yy rH © a hy 10 = oe al * . | =, a, S 4 / = ad mn i ie _ nar wales ce oe 4 o ue “shee peep ge ane. AULA if Pe e a oy oa Hosted by Google NO Hosted by Google we w ~ Fs “” iy & ‘ a % oa ss Hosted by GOORle a ey a Hosted by Google Hosted by Google NEW YORK ACADEMY OF SCIENCES SE SEE SCIENTIFIC SURVEY OF Porto Rico and the Virgin Islands VOLUME I—Part 4 The Physiography of Porto Rico—A. K. Lobeck 4 MO NEW YORK: PUBLISHED BY THE ACADEMY 1922 Hosted by Google THE PHYSIOGRAPHY OF PORTO RICO By Armin K. LoBeck CONTENTS . Page Tntroduction. .. 0... ce ee ce ee cee eee eee eee eee tee eee eee eee 302 Physiographic history... ... 0.2... ccc cece cee ee ete tee ee eee eens 304 The O1d1and...... cece cece cee cee te eee eee eee eee teen eeeees 307 Voleanic tuffs and shaleS........ 0... cc cece cece cece eect ees 307 C3 200 0: a 309 Serpentine... 0.0.0... ce eee eens cee e een e teens 309 Limestone... cee ce eee eee eee eee eee tees ween eee 309 Structure..... ee eee ee ee eee eee ee eee cette teen eee ee ee 310 The first or higher peneplane............. ce eee cece cee ee ween e eee 312 The peneplane........ ccc cece cee cece eee cee tet ee eee eeeeeees BIZ Monadnocks...... ce cece cee eee eee eee eee eee teens weet eee 314 The Tauquillo Mountains........ 2.2... ccc e cee eee eee ences 314 The Cordillera Central... .. 0... cc ccc cece cece teen eee ees 315 The second or lower peneplane...... 2... eee e eee ee ee eect eens 315 Deposition of the Tertiary coastal plain............ cece eee ee eee 320 Uplift and dissection of the Tertiary coastal plain..................2... 327 Character of the uplift..... 00... cece cece cece te eet e teen eens 327 Assumed faulting..... 0.0... cece ce cece cee eee teen tne tees 328 Dissection of the coastal plains......... 0... ee cee teen ees 329 The northern coastal plain........ .. cece eee eee 829 The belted character of the coastal plain.... ........e..0e-200- BBL The inner lowland........... cece eee e cece cece ee eeeereees 331 Lares limestone cueSta........ cece eee eee eee tree ee eee 332 Cibao limestone lowland......... 0. cece cece cette eee e eee 3383 Los Puertos limestone cuesta...... 6... e cee ee eee eee ee eens 333 Quebradillas limestone lowland...............see cece eeeeee 334 Special features... .... cc cece cece cece ee eee eee etree nee e eens 334 Tsolated remnants of the Tertiary...........-.eeesese cece eeees 337 The southern coastal plain...... 6.2... eee ee ce tee tee eee eee eee 337 Eastern portion, Juana Diaz to Yauco.........--..ee eee eee 3387 Western portion, Guanica to Cape Rojo........-....+.eeeee 339 Sink holes and the question of assumed faulting............ 339 Vieques... 6. cece cece eee eee rete ete e tes Teeter ee eee e nee nes 343, Recent slight submergence......--- 6. eee e ee eee e terete tee eee e ee eeee 343 General... ccc cece cece ce cee ee eee eee eee n ae cane eee een eens 843 Bast Coast...... ccc cee ccc eee ete cece ee eee e eee enn ete eenttnes ‘seaee 844 South CoaSt.... 2. cece cece ce eee eee ee ee eee ene Feet tee en ere eee 345 West coast... cc cece cece cece nce ee ee eee eee tenner teens eeee eens 346 North Coast... csc cece cece eee ee ee eee ete center etna tanec reece eens 346 Theoretical considerationS.........0e eee c cece e ee eet etter eeenees 346 (301) 302 SCIENTIFIC SURVEY OF PORTO RICO Page Amount and cause of submergence; glacial control theory....... 346 Submarine profiles east of Porto Rico; origin of Cordilleras reefs 347 Recent ChangeS......... 0. ccc cece ccc e cence ccc eeneneeee cece e eee 348 Alluvial deposits... 0.00... cece ccc cece eee ccc enereeeeencess BAR Wave and wind work........ 0.0... ec c ec cece ee eee cece eeaes 854 Cape San Juan region. ...... 0... cece cee eee cess eeeteceesa f 854 Hast Coast... . 6c cc cece cect cere ete n evens ceece 357 South coast...... 0.0... cece cece eee eet enreceace 858 West COaSt.. 0... cece cece ee ee eee trenneenecvece 360 North Coast..... 26... eee ccc eet eee eceeeeee 360 The San Juan formation............ 0.0.00. cece ccc cece ec eeee 361 SUMMALY... 1. cece cece e eee eee anaes 366 Probable very recent slight emergence......... 0.0.0... ce cee eeeeee 366 Brief notes on adjacent islands............ 0.0... cc cece cece cece eeceeues 3871 Deseched... 0. icc ccc cece cee cee ee ence eee even nent eeteeuee 371 ON 0 0: ec 872 VIEQUES. 6. cece cee cece eee n nec eutteeneeeeence 373 Culebra... . ccc eee cece eee eee teen en enes eee ee eee eee 374 Muertos........... eee ee eee eee tenn ne teen te sien teseveenans 374 Acknowledgments........ 0.0 cc ccc cee cece ct eete ete etnnereeeesenee 375 Bibliography... 0.0... ccc cece eee cece eee eect ence eet eeeeneeeeas 376 INTRODUCTION Porto Rico, the easternmost of the larger Antilles, is a rugged moun- tain mass trending east and west for a distance of over one hundred miles, flanked by uplifted limestone plateaus on its north and south sides. It lies well within the tropics, in the latitude of 18 degrees north, and is subject to the influence of the steady northeast trades. The persistence and regularity of the trade winds can not fail to excite the notice of the northerner who is accustomed to more variable conditions. Their effect upon the island is pronounced and shows itself in the marked contrast in precipitation between the north and south sides. An elevation of about 2000 feet prevails throughout much of Porto Rico, so that the trades are forced to rise and precipitate their moisture over the northern two-thirds of the island (Fig. 1). Out of the brilliant sky dense cloud masses form with great rapidity over the uplands and several downpours may be ex- pected during the day throughout most of the year. But when the winds reach the lower lands of the southern coast they have not only lost a large part of their moisture, but in their downward journey they have been transformed into drying winds, with the result that this whole coastal area is almost barren and parts of it experience months, or even years. without rainfall. Irrigation is there essential for the cultivation of large LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 303 crops, and in the southwestern corner of the island, where there occur the longest periods of drought, considerable areas are densely covered with cactus. Over the rainy windward portion of Porto Rico streams are nu- merous and always flowing. In the dry leeward portion, river courses are intermittent and coalescing alluvial fans fringe the shallow coast for many miles. The trade winds are also responsible for the strong waves of the north coast, which have thrown up beaches and bars and have developed a magnificent stretch of cliffs. This is in marked contrast with the south- ern coast, where there is almost no disturbance to the water and mangrove swamps abound. The shape of Porto Rico in general is that of a rectangle, with a long east-and-west dimension of 110 miles and a north-south width of 35 miles, giving the island an area three-fourths that of the state of Connecticut. SAS RR SORRY BONS RRO ON ORRIN SOIR SRR RLYLO ate etatietatee gece’ SOS: OOS See BORN OS ESOS SD Over Less THAN 110 90-110 70-90 50-70 30-50 30 NW ESS FE) (2) “er Yee Fic. 1—Map showing the average annual rainfall in Porto Rico Gy The population of Porto Rico is approximately half that of Manhattan Island, roughly between 1,200,000 and 1,250,000 people. It is, in fact, one of the most densely inhabited regions of the globe. Although there are some 65 to 70 villages on Porto Rico, the people are predominately rural and are scattered quite uniformly over the entire island, even throughout its most rugged portions. The largest three cities—San Juan, Ponce, and Mayaguez—have populations from 35,000 to 50,000. Many of the smaller villages contain less than 1000 people, but most of them average between 1000 and 2000. The towns are invariably built com- pactly around the public square or plaza which the cathedral fronts on the cast. The only extensive part of the island not settled is the area com- prised in the Luquillo National Forest, which covers the higher portions of the Luquillo Mountains. 304 SCIENTIFIC SURVEY OF PORTO RICO Coffee, tobacco, sugar, and citrus fruits make up almost the entire agri- cultural output of Porto Rico. Coffee-raising is confined to the upland areas, tobacco is the important product of the Caguas and Cayey valleys in the east, sugar is the great crop on the extensive flood plains and coastal regions, and the raising of grape-fruit and oranges has been de- veloped in the hills along the north coast west of San Juan. In spite of its splendid possibilities the island is far from being self-sustaining in the matter of food, and the great mass of the natives depends almost en- tirely upon the rice, beans and salt fish shipped from the states. Compared with the conditions of living within the continental United States, even in the smaller and more remote towns, life in Porto Rico must seem at first to a visitor from the north very difficult, but to be fair one must take into account the vicissitudes through which the country has passed and realize what splendid headway is now being made in the direction of culture. On the other hand, no visitor, even while adjusting himself to the mode of life in Porto Rico, can fail to be charmed by the idyllic beauty of her scenery and the splendor of her setting under the tropic skies. PHYSIOGRAPHIC HISTORY The physiographic history of Porto Rico takes us back to an oldland composed of a complex mass of igneous rocks (Fig. 4). The rock types involve sedimentaries of volcanic origin and intrusive masses ranging in + size from those showing only a few feet of outcrop to the largest one cover- ing almost one-eighth of the island. Under the influence of subaérial cro- sion, this oldland was reduced to a rather perfect peneplane except for two well-defined monadnock groups. The smaller of these groups now com- prises the Luquillo Mountains at the eastern end of the island. The larger one is known as the Cordillera Central and forms the main crest of the mountainous area of Porto Rico. It is probable that Porto Rico is essentially a block or horst bounded by faults, and it is likely that several of the larger elements comprising the oldland mass are due to faulting which antedated the first peneplanation. No direct evidence on this point is available. Uplift of this the first peneplane stimulated a new cycle of erosion. Over most of the island only a mature stage of dissection was reached in this new cycle, but along the north coast an east-west belt about ten miles wide was reduced to base-level, which for convenience may be known as the second or lower peneplane. A corresponding belt on the south side of the island was also worn down far less effectively, probably be- OSS Aug ns CARO! ERO RINCON 7 FIALE: Spe \ Bl vi \YAGUE. ICOMERIO CIORA SX is — COAMO La oY JUERAS {UCOA VIEQUES |. w= TILLAS, ITINERARY ———= CAPE ROJ OST PS »Y MUER TOS |. Fie, 2.—Sketch map of Porto Rico showing regions visited "Btw . . COALS TAIL a PLAN . . a Wd Wj MY, Vy Xi Ws LED x * . . . \N' Ki Ul wy _ & UL Ui Y \ ts x \ a Cli Lae . | Uy; < \\\, \ ay ! nt (o) is x * % x . \ \\ ee Vy, % \\ \ \\ Ty : \ \ \ \ l y . : _ _ m a C € LIRR MM \ Lob x x x * * AK g Litres RU 6 &. eB. x » % % Foo « THLE *. \ «ANY NY BE, x x * % x x ~~» & * AlLLUvig, Wn RP NS. —— PLAINS Fig. 3.—Map of Porto Rico showing the chief physiographic regions Hosted by Google LOBECK, THE PHYSIOGRAPHY OF PORTO RICO * 805 cause of inadequate rainfall. Submergence of much of the oldland mass then permitted the deposition of a coastal plain upon both the WF 7 SECUND OR LOWER PENE PLANE Ve in YING Gi. WPS, —- ‘n AR ANN ARS LOWER PENEPLANE LUQUILLO MTS. Fic. 4.—The main stages in the physiographic development of Porto Rico 1. The initial complex mountain mass of Porto Rico. 2. After the first peneplanation. Showing the monadnock group forming the Luquillo Mountains and the cordillera Central. 3. The peneplane has been uplifted and dissected and a second lower peneplane has been formed along the north side of the island. 4. The whole island has been lowered, its northern and southern flanks have been covered with coastal-plain deposits, and the mass as a whole has again been raised. 5. Dissection of the coastal plain has taken place. Distinct cuestas appear on both the north and south sides of the island. north and south sides of Porto Rico. That on the north side cov- ered most of the lower peneplane at the east end of the island and 306 SCIENTIFIC SURVEY OF PORTO RICO in the western part even extended so far inland as to rest upon the first or higher peneplane; that on the south side was deposited upon a very irregular oldland surface. Dissection of both the coastal plains was then initiated by uplift. The coastal plain on the north side acquired a well defined belted character, exhibiting two pronounced cuestas, each swr- mounted by the so-called haystack hills of the limestone country. These parallel east-west belts of hills alternate with other belts of lower country, which on account of the sharpness of dissection have a plateau-like aspect. The inner cuesta of the north coastal plain in places fronts a broad inner lowland from which the basal deposits of the coastal plain have been re- moved. The outer or northern cuesta usually looks down upon one of the plateau-like belts just mentioned. On the south side of Porto Rico a distinct cuesta was developed, but occasionally it is obscured by the irreg- ular topography of the oldland upon which it rests. After the dissection of the coastal plains the entire coast suffered a slight submergence, the result possibly of the melting of the continental ice sheets at the end of glacial time. The recent changes which have taken place since this submergence involve the deposition of alluvium along stream courses and its dissection to form terraces, the building of extensive alluvial fans on the south coast, the silting up of bays, and the work of the waves and wind, which has been most pronounced on the north side of the island. Finally there is some evidence of a slight emergence at a very recent date. For ease of reference the physiographic history of Porto Rico may he divided into several events or stages which can be tabulated as follows: 1. The oldland, a complex mass of igneous rocks consisting of sedi- mentaries and intrusives subjected to subaérial erosion. 2. The first or higher peneplanation with monadnocks. 3. Uplift, mature dissection, and development of the second or lower peneplane on the north and south sides. 4. Partial submergence and deposition of coastal plains on the north and south coasts, to be known as the Tertiary coastal plains. 5. Uplift, dissection of coastal plains, and continued erosion of the oldland. 6. Slight drowning of entire coastline. 7. Recent changes involving: a. The deposition of alluvium in stream valleys, in drowned bays. and as alluvial fans on the south side of the island. b. Wave and wind work. c. Slight emergence. LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 307 The discussion of these stages will follow the order of succession of events as given above, and in pursuing it the reader will do well to make frequent reference to the accompanying large map. THE OLDLAND The rocks of the oldland comprise what has been termed the Older Series by Dr. Berkey. While over large areas the erosion of the oldland mass has not been appreciably affected by variations in the character or the structure of the rocks, there are districts where quite the reverse is true. A brief consideration of the rock types and the simpler deforma- tions which have taken place in the older series will therefore be of dis- tinct help in appreciating the present topography. VotcANic TuFFS AND SILALES As is to be expected in a region isolated from a continental mass, prac- tically none of the formations have a clastic derivation. Volcanic tuffs represent the most abundant of the rock types and they are usually massive in habit and made up of andesitic fragments. This implies a practical absence of quartz, a condition which is true also of the shales. These two rock types, together with the igneous intrusives of the andesite- diorite family, make up the bulk of the older series, and as they grade into and are frequently indistinguishable from each other it is practica- ble to draw a few generalizations regarding the effect of erosion upon them. Although it is usually true that weathering has gone to considerable depths, 20 to 30 feet being quite common, most streams are cutting into rocky beds. Berkey (1915, p. 34) has remarked upon the striking man- ner in which badly decayed outcrops resist destruction or removal by ordinary weathering and erosion agents. He mentions three factors to account for this stability of the soil mantle: One is the clinging character of some of the vegetation which tends to bind the soil together; another is the small range of temperature variation, which reduces disintegration or disruption tendencies to a minimum; and still an- other is the low content of inert or refractory materials, such as quartz, in the rocks whose destruction has furnished the soils; all of which factors favor the making of a specially tenacious soil. It is probable that the last factor is by far the most important. In general, the hillside slopes throughout the older series are very steep, 30 degrees being exceedingly common and 40 to 45 degrees not rare, but this does not hold true in the granite areas where rolling topography and 308 SCIENTIFIC SURVEY OF PORTO RICO gentle slopes are the rule. In spite of the fact that the tenacious char- acter of the soil, due to its high clay content, enables the vertical cuts o! trails to stand for long periods and prevents the washing of steep hill- sides, it is no uncommon thing to see slumping of the ground even on moderate slopes, and occasionally land slides of really great proportions. A large landslide may be seen a few miles north of Yauco on the trail to Maricao, where the mountain sides for the space of a thousand feet above the valley floor have given way. Another factor which may be of significance in developing steep slopes and the characteristic cuchillo or knife-edge divides on the members of the older series is the torrential character of the rainfall. The average annual rainfall over the upland portion of Porto Rico is between 80 and 90 inches, or more than twice that for the vicinity of New York. But, unlike the precipitation of middle latitudes, where the duration is to be measured in hours, and even days, and the amount in hundredths or tenths of an inch, the average duration of a shower in Porto Rico is ten or twelve minutes, and there are numerous instances of successive showers which totaled 10 inches rainfall in twelve hours, while amounts of 4 to 5 inches in twenty-four hours are of frequent occurrence. A record of 23 inches for twenty-three hours, as an example of an extended period of heavy precipitation, and of 1 inch in nine minutes for a short period may suggest to the reader that important consequences must result from the accumulation and run-off of so great a volume of water in so. brief a period of time. Those portions of Porto Rico which have only moderate rainfall. but apparently the same general rock make-up as that of the mountainous rainy district, exhibit much smoother and more rounded slopes. Another phase of the situation, dependent upon the plasticity of the weathering product derived from the quartz-free volcanics, is the imper- viousness of the soil mantle. This encourages a large and exceedingly rapid run-off, as may be appreciated from the fact that many streams immediately rise 15 to 20 feet after heavy showers. In one case the Plata River, twenty-five minutes after it began to rise, poured over the dam near Comerio in a sheet 15 feet or more in thickness throughout the entire 575 feet length of the dam, the flood continuing all day at 10 feet above the dam. The impervious character of the soil causes not only a rapid run-off, but also an accumulation of water in all the little pockets and irregu- larities of the surface. In consequence the trails over the upland portion of the island, excépt during the comparatively dry months of January and February, are often veritable sloughs of red mud, which is both unctuous and tenacious and exasperatingly slippery. LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 309 GRANITE Next in size to the areas of tuffs, shales, and associated igneous intru- sives making up the bulk of the island are two or three areas underlain by large intrusions of granite. The largest of these covers most of the southeast corner of the island from Caguas to Yabucoa. In general, the granite is less resistant than the volcanic rocks and most of this region has been reduced to a more or less open lowland. At the north the limits of the lowland coincide rather closely with the extent of the granite, but the southern margin is less definite and much of the granite still retains the upland level. Throughout the granite area the hillsides are covered with large weathered blocks and boulders, and the soil is distinctly gran- ular and resembles a fine gravel. There is a marked contrast between the cleaner condition of the native huts and the tidier way of living in this area, where the soil is porous, and the usual filthy condition which prevails over most of the island where mud is such an important factor. A second granite mass, of unknown extent, is found in the region about Utuado, in the west central part of the island, but its effect upon the to- pography is not marked. The granite is massive and jointed, and in a minor way some control is exerted upon stream position. Even a master stream like the Arecibo River follows joint planes for short distances. Pot-holes, a feature observed practically nowhere else in Porto Rico, occur along this river, and their presence is ascribed to the substantial and massive character of the granite. SERPENTINE Besides the granite intrusions there are in the western part of the island one or two masses of serpentine of smaller areal extent. They resist ero- sion more readily than the adjacent rocks and appear as round, full-bodied forms topped by more or less level surfaces. They constitute the so-called mesas near Mayaguez and similar larger masses farther east. The weath- ering of the serpentine has produced a thick, red covering of limonitic soil and has given rise to the smooth-flowing outline of the crest of the mountains which is distinctly characteristic of the region north of San German, where the bulk of the range looks much like the back of a gigantic elephant. LIMESTONE The fourth group of rocks occurring in the older series exerts by far the most effective control over the erosional forms. These are the crys- talline limestones. Almost invariably they stand up as distinct ridges, 310 SCIENTIFIC SURVEY OF PORTO RICO despite their high solubility and the frequent caverns to which this char- acter gives rise. The two most prominent of the limestone belts make up the chain of hills known as the Cerros, running from Cabo Rojo to Yauco, and a parallel chain to the south extending from Boqueron Bay to Guanica. The relation between these two belts is discussed below under “Structure.” Another limestone ridge runs from Juana Diaz eastward to Salinas, the formation being known as the Coama tuff limestone. Other smaller belts occur in the interior, as, for instance, the Aguas Buenas limestone; but they are usually too insignificant in thickness ma- terially to affect the topography, although their ragged white outcrops may be a conspicuous feature of the landscape. STRUCTURE The usual trend of the members of the older series is in a west to east or a northwest-southeast direction (Fig. 3). Over large areas it is next to impossible to determine the strike at all, owing to the massiveness of the formations and their decomposed condition ; and even where the strike is to be recognized the yielding character of the rock, due to the advanced state of decay, makes it a negligible factor in controlling stream position. South of San Juan a definite alignment of features in a northwest- southeast direction reflects a greater degree of structural control than is commonly the case in the voleanie members of the older series. There is a high, continuous ridge which persists from near La Muda southeast- ward to the gap cut by the Rio Grande; and running parallel to the ridge on its south side is a distinct subsequent lowland developed on weaker rock, not occupied throughout its length by any one stream. The road from San Juan to Caguas follows this narrow lowland for several miles east from La Muda. At the west end of the island the east-west trend of the Atalaya Range is in sympathy with the strike of the formations, as may readily be seen at many places on its southern flank. In the region about Coamo Springs there is a well-defined parallelism in the series of ridges developed upon the Coamo limestone and its asso- ciated formations. This limestone, which has already been mentioned. strikes from the northwest to the southeast, has a pronounced dip to the southwest, and gives rise to the most marked feature in this stretch of the southern coast. The main ridge or hogback in its highest part, in the vicinity of Juana Diaz, has an elevation of almost a thousand feet higher than most of the hills of the coast region. Its uneven crest, interrupted by several deep water-gaps, descends more or less regularly until it pitehe= beneath the alluvial plains near Salinas, but large outliers are foun! along the continuation of its strike at Central Aguirre. 311 © e LOBECK, THE PHYSIOGRAPHY OF PORTO RICO [> y Yar a ~~ OZ - {2} aflabho Rojo THE “CeERRos™ = fete Ron, we Bogueron 7 BAY wy" : : on iN i oe 7; i Ze a, i~ : . a g wv So = SSS LEASE SEY VY frees SS Sen ee eee \ TIN FF NWSE IN RTT iy \ \ isc \ _- LT 4 7 2 7 at~ -L a) my WBRZ iy | (TES aS a LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 31? previously suggested, this condition is explained by the’ contrast in pre- cipitation on the north and south coasts. On the north coast the stage of development reached was one of old age, since rejuvenated, whereas on the south side of the island the region in general may be described as still in maturity. Although the general elevation of the region a few miles back from the south coast is much below that of the upland peneplane level, there is still ve reat relief, and the whole belt of country flanking the southern margin of the upland is characteristically rugged. The escarpment mark- the break between the higher and lower levels on the south side of 1 Fig. 8.—The valley and flood plain of the Rio Grande de Loiza near Carolina The tops of the hills represent the surface of the lower peneplane below which the valley has been opened out. Porto Rico is the most extensive physiographic feature on the island and at the same time the most imposing. It would be even more imposing if it were not that the spurs and foothill country cover such a wide belt and have such considerable elevations as partly to detract from the promi- nence of the main crest. In the eastern portion near Guayama the face of the escarpment is exceedingly irregular and is broken by great cirque- like valley heads, whose walls attain a steepness not exceeded elsewhere in Porto Rico. Slopes of 40 degrees are common, and even 50 degrees is frequently noted. In its western half the upland margin has a fairly ‘efinite east-west trend and the foothill country becomes narrower. 318 SCIENTIFIC SURVEY OF PORTO RICO We mav say, then, that it is this foothill country on the south side of Porto Rico which corresponds with the lower peneplane on the north side. On the north side rejuvenation is evidenced by the incision of the streams 200 feet or so below the peneplane level; on the south side the effect of the uplift is not so apparent, because the new cycle was introduced while the work of the earlier cycle was still in its youthful stage, and the result was a continuous down-cutting. Locally, however, there is some sugges- tion of the development of a lowland before the advent of the new cycle. A study of a typical profile across the island and a comparison of the lower peneplane on the north and south coasts both above and below sea- level is helpful to an appreciation of its true character. Such a profile is shown in Fig. 9, which represents an approximately north-south section through San Juan. The essential features to be noted are: a. The higher peneplane forming the great upland portion of Porto Rico, fringed along its southern margin by the chain of monadnocks known as the Cordillera Central. . b. The lower peneplane, well developed on the north side of the island, but represented on the south side by a belt of greater ruggedness. ce. The pronounced break or escarpment dropping down from the upper to the lower peneplane on both the north and south sides of Porto Rico. d. The extension of the lower peneplane as a continental shelf beneath the Atlantic Ocean on the north side of the island and beneath the Carib- bean Sea on the south side. e. Remnants of the Tertiary coastal plain resting upon the lower pene- plane of the north coast in the region of Bayamon. On the south coast alluvial deposits bury some of the irregularities of the lower peneplane. Further west along this same coast similar irregularities are buried under the cover of the Tertiary coastal plain. The progress of erosion during the second cycle is attested not only by the denudation of the north and south coastal areas, but also by basins in the interior of the island, notably two in the eastern part. The larger of these, which for convenience may be known as the Caguas Valley, is drained in its western part by the headwaters of the Rio Grande and in the east by several small streams flowing in the opposite direction. Its reduction to a lower level seems to be due entirely to the weakness of the underlying granite rock. The high remnant of the upper peneplane which forms an imposing barrier on the north side of the entire Caguas lowland has been trenched by a narrow valley which serves as an outlet for the Rio Grande. The southern margin of the lowland is more diffi- cult to define because in many places the higher peneplane is not so well preserved. In general, the smooth and gently rolling surface of the low- North San Juan Bayamon Nargnjito UPPER PENEPLANE Barranquitas, «> ATLANTIC | gay yuan TERT. COASTAL PLAIN HILLS OCEAN HARBOR ALLUVIAL PLAINS (4 LOWER PENEPLANE {i L 4 1 ! nl n 1 1 1 1. 1 4 4 i 1 n 1 1 J 1 1 1 1 MILES 5 10 15 20 Aibonito CORDILLERA CENTRAL South reer son IBBEAN SEA “=z 2000 ALLUVIAL FANS CAR = 1000 ; AcuiRRe HILLS BaRCA, ISLANDS SEA= LEVEL Sa ne 1 ! \ 1 f 1 poo Lt ! 1 —\ _ 25 30 35 40 45 50 Fig. 9.—North-south profile through Porto Rico Tertiar y remnants Lake Tertiary outlier 7) SN fe > om eke — is aS Beg AQ > Guanica &S ( ao . ‘i AN 7 Gate f = i AUS” Pardas .= I o™ eer SSS auco > SSS Hy, Cariasean SEA 7 6 — = Pl > Ss = a —_"' 4 A = Se rf vy Fic. 10.—Diagram of the Guanica district The essential feature to be noted is the relation of the Tertiary coastal plain to the oldland rocks and the fact that the oldland upon which the coastal plain was deposited was a very hilly region. Two coastal-plain cuestas are distinctly shown. he inner lowland has been drowned to form Guanica harbor and the ends of the outer lowland have likewise been submerged, forming Salinas Cove and Pardas Bay. Occasional remnants of the coastal plain are to be found in the oldland region, notably near Guanica Central and south of Yauco. The point A on the diagram marks the position from which Fig. 11 was taken. The point B marks the position of the observer in Fig, 12. Hosted by Google LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 319 and has strong resemblance to the lower peneplane of the north coast, vut the abundance of weathered granite blocks which cover it give it quite a different aspect in detail. In the northwestern part of the Caguas low- land between Caguas and Gurabo the rolling country representing the lower base-level has been opened out by the Rio Grande and its tribu- taries, whose flood plains lie 200 to 300 feet below the surface of the lowland. Some hills of more than ordinary prominence have their bases buried in the alluvium. They trend in a general east-west direction in accordance with what seems to be the structure of the older rocks. The average elevation of the surface of the Caguas lowland is about 550 feet, which is over 1000 feet below the bordering upland. Whether the rather high and more or less open valley in which the town of Aguas Buenas stands is a correlative of this same lowland it is difficult to say, but it seems probable and indeed almost certain that all the basin-like depres- sions and occasional broad valleys, which break up the upland surface and which are quite common in the eastern half of Porto Rico, were formed during the same cycle of erosion marked by the development of the lower peneplane on the north coast. In the region around Cidra the high upland level has not been preserved, neither has a well-defined lower base-level been opened out, except possibly very locally. The second depression, known as the Cayey Valley, is much smaller and stands at a far greater elevation than the Caguas lowland, but no- where shows a well-defined lower peneplane. It is drained by the head- waters of the Plata River, which doubtless have discovered more yielding formations in this part of their course than a few miles downstream, where the valley is narrow and gorge-like. Erosion at the western end of the island during and since the second period of base-leveling seems to have proceeded continuously. The result has been simply the mature dissection of the higher upland. The demar- cation between the different cycles is not expressed by any well-marked lower peneplane such as has been described for the north coast. That some of the valleys are really the time equivalents of the lower peneplane is suggested by the fact that they are filled with deposits of the Tertiary coastal plain where it now laps over the spurs of the higher upland, thus showing that the valleys hold the same position relative to the upland as the more extensive lower peneplane does further to the east. In the case of such a stream as the Culebrinas River, it is not possible to demonstrate exactly how much of the valley was cut before the deposition of the Tertiary coastal plain or how much afterward, for the reason that it is difficult to determine just how much of it was filled with the Tertiary deposits. The river instead of being a subsequent stream developed at 320 SCIENTIFIC SURVEY OF PORTO RICO the base of the Tertiary cuesta, as it appears to be, is in reality a stream which has resumed a former course as the limestone which buried its original valley was worn and dissolved away. Further mention of this will be made under the discussion of post-Tertiary erosion. The distinction between the two periods of base-leveling can hardly be made in the southwest corner of the island, but it is highly probable that erosion during the second cycle opened out two broad valleys, that of the Guanajibo River and the Boqueron-Yauco anticlinal valley, almost to their present extent before the Tertiary period. A point in favor of this interpretation is the fact that the Tertiary in the Yauco-Guanica region filled the end of the broad Boqueron-Yauco anticlinal valley. One large hill of coastal plain deposits and many remnants in the form of basal gravels still remain. On Vieques the work of erosion during the second period of base-level- ing produced the lowland: and the valleys on the east and south coasts, now partly covered with the Tertiary coastal plain deposits. On Culebra the development of the large valleys probably proceeded during this time. These valleys, like the ones on Vieques, have since been drowned. The largest, known as Great Harbor, was formerly a coaling station for the United States Navy. In brief, the second period of base-leveling is represented on the north coast of Porto Rico, east of Morovis, by a well-developed peneplane. On the south side of the island the same time interval is represented in gen- eral by the development of a belt of rugged country; in the interior by the erosion of the Caguas and Cayey valleys; on the west end of the island by the mature dissection of the higher upland, and by two broad valleys in the southwest corner; on Vieques by the formation of broad valleys, since drowned, and of the lowland on the south coast; and on Culebra by the excavation of valleys, later drowned like those of Vieques. DEPOSITION OF THE TERTIARY COASTAL PLAIN The character of the oldland surface upon which the coastal plain was laid down and the nature of the material deposited strongly merit careful consideration if a clear explanation is to be had of the features later to result from the dissection of the coastal plain. It is especially important in this case because Berkey (1915) believes there is a fault between the Tertiary coastal plain and the oldland on the south coast, whereas the present writer has come to the conclusion that all the evidence cited in favor of a fault can better be accounted for on the basis of an alterna- tive interpretation. Three essential facts may be presented in this con- LOBECK, THE PHYSIOGRAPHY OF PORTO RICO B21 nection. First, the Tertiary coastal plain on both the north and south sides of Porto Rico as well as on Vieques was deposited in many places upon a diversified oldland surface, and this fact, it is believed, explains the apparent faulting in several localities. Second, the basal beds of the coastal plain, where deposited upon an irregular oldland, frequently con- tain many boulders and gravel beds of the older rocks. Recognition of the origin of these gravels makes possible a better understanding of the former extent of the coastal plain. Third, in a few localities where the Tertiary coastal plain rests upon a comparatively smooth oldland the NogTH INNER LOWLAND fen Fig, 11.—The inner lowland at Guanica Showing the inface of the Tertiary coastal-plain cuesta where it is being stripped from the hills of the irregular oldiand surface. See Fig. 10. hasal beds are represented by a red clay which appears to have been de- rived from the oldland. he significance of these facts may now be considered. No part of Porto Rico shows more clearly the relation between the coastal plain and the oldland than the region about Guanica on the south coast. The general relation between the Tertiary and the older series in the Yauco-Guanica region may be understood by referring to a diagram (Fig. 10) and photographs (Figs. 11 and 12). Examination of this dia- - % Force Fic. 21.—Road cut at K9 H9 on the Ponce-Pefiuelas road, showing relation of Tertiary to older series The Tertiary was deposited against an oldland hill at the right. The apparent faulting is due to collapse of sink holes, thus deforming the “arag.” strata and giving the effect of along the contact because here under- ground drainage is likely to be concen- trated. As collapse took place the Ter- tiary beds were dragged down, simulat- ing in every way true faulting. The extent of the slipping at this particular point is extremely local, not more than a few feet. The whole phenomenon, without the presence of the oldland hill, is duplicated a few feet to the south, as shown in the diagram. Throughout this section, as elsewhere, layers of older series gravels alternate with the fossiliferous beds of the Ter- tiary limestone. This suggests that during the deposition of the Tertiary the erosion surfaces of the oldland were in close proximity, such as would be the case if the Tertiary were laid down upon an irregular topography. The abrupt transition, therefore, from the Tertiary to the oldland is rather to be expected. A second locality deserving particu- lar attention is along the Jacaguas River, just a mile southwest of Juana Diaz. An almost vertical cliff has been cut by the river in a high hill of Ter- tiary beds. Some of the beds are highly tilted, showing dips of 30 to 35 degrees. Because this occurrence is not far from the line of the assumed fault, Berkey is inclined to believe that the apparent uptilting of the Tertiary strata is due to the disturbance of faulting. A care- ful study of this locality, however, leads me to ascribe the pronounced local dip of the beds to the collapse of cavities. This resulted in the formation of sink- holes on the surface of the ground. In this locality a cross-section of one of LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 343 the sink-holes is provided, and it is to be noted that the beds dip toward the center of the depression (Fig. 22). The variation in dip from place to place along the section, sometimes toward the north and sometimes toward the south, would seem to suggest that the dip is due to local causes. Since it is evident that variations in dip, at least occasionally, may be brought about by the bending of strata beneath a sink-hole, it would appear unsafe to use the occasional southward dip as evidence of a major fault. Moreover, north of the section cited—that is, between it Sink Hole South ~ S Fe MOTOR <—_ Vacaqguas Fiver pi 2 North Fic. 22.—Section of hill along Jacaguas River one mile southwest of Juana Diaz The variations in dip are due to collapse of sink holes. and the position of the assumed fault—the beds flatten out and become horizontal. In addition it is worth while to note that Berkey estimated a great thickness for the Tertiary at this point. He states that “for con- siderable distances an average dip of 30 to 36 degrees was estimated and the total thickness represented, based upon the width of the belt, must be at least 3000 feet.” With this estimate I am unable to agree, and am therefore inclined to reduce the figure to approximately 500 feet, or 500 feet at most. VIEQUES The dissection of the coastal plain on Vieques has resulted in a well- defined though small cuesta at its eastern end and on the south coast. Parts of the inner lowland have since suffered drowning. RECENT SLIGHT SUBMERGENCE GENERAL Most of the coast line of Porto Rico shows evidence of recent submer- gence. However, many of the bays which resulted from the drowning of stream valleys have since been filled with alluvium. Indeed, the great alluvial plains bordering the lower courses of the rivers constitute not only one of the most striking and characteristic features of Porto Rico, but also one of the island’s most valuable assets; for it is upon these ex- b44 SCIENTIFIC SURVEY OF PORTO RICO tensive level tracts that the majority of the sugar-cane is grown. Tle term playa as used in Porto Rico refers to these plains. In general, the activities of each plain center in an important village built upon it, as, for instance, Fajardo, Naguabo, Humacao, and Yabucoa. The seaports for these villages are, respectively, Fajardo Plava, Naguabo Playa, Huma- cao Playa, and Yabucoa Playa, and in these cases the term playa is used in its true etymological meaning, referring to the shore. Bays not yet filled with alluvium are the exception and are to be found only in those situations where there are no large rivers to bring down material to the sea. This is especially true on local extremities, as in the north- east part of the island on San Juan Point. It is usual, however, to find such bays cut off from the ocean by a bay-mouth bar. That the drowning occurred since the dissection of the Tertiary is evi- denced by the drowned inner lowland and the drowned subsequent valleys eroded in the Tertiary coastal plain, as in the Guanica region and on Vieques. The effect of drowning is to be noted at the east and west ends of Porto Rico much more than on the north and south coasts. There are a number of reasons for this. First, the old subsequent valleys developed along the general east-west strike of the older series rocks are much wider and are opened out much farther inland than those formed by the north- flowing or south-flowing streams. Examples of such valleys are those of the Fajardo, Rio Blanco, Humacao, and Yabucoa at the east end of the island and the Culebrinas, Afiaseo, and Guanajibo at the west end. [i the second place, the large alluvial deposits of the north and south coasts have buried many irregularities and have pushed the shoreline so far seaward as to disguise the effects of drowning. Third, the dissection cl the Tertiary coastal plain on the north side resulted mainly in narrow valleys or left much of it intact so that slight submergence did not appre- ciably alter its outline. East Coast San Juan Point is the most northeastern promontory of the island. It is really a complex tombole. Owing to the scarcity and small size of the streams, the bays which have been cut off from the ocean by long sand beaches have not been entirely filled with alluvium and the drowne'l aspect of the coast is thus somewhat preserved. The entire east coast 0! Porto Rico, from San Juan Point to Yabucoa, presents the usual features indicative of drowning, an irregular shoreline, characterized by promon- tories and islands. The general appearance of this part of the coast may be gained by noting Fig. 23. Along the stretch of coast in the southea-t corner of Porto Rico between Yabucoa and Maunabo the valleys which LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 345. suffered drowning were very small and have since become clogged with alluvium. The headlands, and the alluvium deposits as well, are being cut back by the waves. Sourn Coast The south coast from Patillas to Ponce is made up of low alluvial flats or else the edges of alluvial fans trimmed by the waves, so that what carlier evidence there may have been of drowning is now lost. There are occasional hills, as, for example, at Central Aguirre, now entirely sur- rounded by alluvial deposits. These doubtless were islands immediately Fig. 23.—The drowned coast of eastern Porto Rico t View north of Fajardo, looking toward San Juan Point. Most of the headlands have been cliffed by the waves. alter submergence. West of Ponce the submergence affected not only some of the subsequent valleys between the cuestas of the coastal plain, but also parts of the inner lowland. Guanica Lake is apparently a drowned portion of a broad valley or lowland in the oldland itself. Tt has since been cut off from direct communication with the sea by the deposits of the Susua River. Guanica Harbor is a part of the drowned inner lowland (Fig. 10) and Pardas Bay, as well as Salinas Cove, near Guanica, are parts of a drowned subsequent valley. Guayanilla Harbor apparently has a similar origin. The region about Parguera on the southwest coast exhibits further evidence of drowning in the peninsulas and islands of the oldland. The Morillos de Cabo Rojo represent parts 346 SCIENTIFIC SURVEY OF PORTO RICO e of the coastal plain detached as a result of submergence, but now con- nected with the mainland to form a complex tombolo of rare beauty. West Coast The west coast of Porto Rico is in many respects similar to the east. The three largest rivers—the Guanajibo, Blanco, and Culebrinas—emerge from the hills upon extensive flood plains, which are apparently alluvium- filled estuaries. Boqueron Bay still displays rather distinctly its drowned character. Whether the drowning affected the entire valley from Bo- queron to Guanica it is impossible to assert definitely, but it seems very likely that this was the case. Though most of the valley floor is now spread over with alluvium, it is very low and swampy, and the wells put down through the alluvium yield water of a distinctly saline character. The divide between Guanica Lake and the marshes draining westward to Boqueron Bay is low and in times of heavy rains covered with water, so that even now a very slight rise of sealevel would effect a junction between Guanica and Boqueron bays (Fig. 5). North of Boqueron Bay the west coast is only moderately irregular, but this is because the bays have to so large an extent been filled with alluvial deposits. NortH Coast Along the north coast of Porto Rico evidences of embayment are not striking. THEORETICAL CONSIDERATIONS AMOUNT AND CAUSE OF SUBMERGENCE; GLACIAL CONTROL Vaughan (1916) has made a study of the Virgin and Leeward Islands and St. Thomas, to the east of Porto Rico, as well as of other West In- dian islands, and concludes from an investigation of hydrographic charts that the recent submergence in this whole region has been approximately 20 fathoms. He notes also that “there is in the Virgin Islands and in Cuba clear evidence of a lowering of sealevel by about 20 fathoms, per- haps more, previous to resubmergence.” He states in addition that in other places, as, for instance, off the north side of St. Thomas, the west side of Anguilla, the southeast coast of Antigua, and Mosquito Bank off Nicaragua, the similarity of submarine profiles suggests that a lowering of sealevel preceded resubmergence. What caused this lowering and sub- sequent rise of sealevel? To cite Vaughan again: “As it affects a large area, it appears too widespread to be explained by local crustal move: ments. The changes in position of strand line here noted are more rea- LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 847 sonably explained by a lowering of sealevel due to the withdrawal of water in the Pleistocene ice epochs to form the great Continental glaciers and the raising of sealevel after each epoch through the melting of glaciers.” The amount of drowning, 20 fathoms, proposed by Vaughan, agrees closely with Daly’s estimates (1915) of the rise of sealevel due to ice melting. SUBMARINE PROFILES EAST OF PORTO RICO; ORIGIN OF CORDILLERAS REETS A submarine profile just east of Porto Rico reveals a sea floor under Vieques Sound standing at a depth of 8 to 16 fathoms. Much of it is flat, but it appears to be made up of different levels or terraces. To the north of the Cordilleras Reefs and Culebra Island there is a second flat area or bench 5 to 10 miles in breadth. This stands approximately 30 fathoms below sealevel and is separated from the higher level to the south. just described, by a distinct break or submarine escarpment. Upon this escarpment stands the east-west trending chain of islands known as the Cordilleras Reefs. Vaughan has expressed the opinion that the outer bench represents a surface reduced by marine planation during the last period of maximum glaciation when the sealevel was lowered some 20 fathoms and then submerged. The escarpment he considers a wave-cut cliff marking the southern edge of this bench. As for the apparent ter- races on the shallower flats to the south, Vaughan suggests that they may have been formed as a result of oscillations in water level during the different glacial epochs, or in places they may represent submarine ter- races being formed at the present time. The depth of the outer platform, as before stated, is approximately 30 fathoms. This depth below sealevel Daly (1915, p. 182) estimates as the present position of platforms cut and built by the waves during maximum glaciation. The essential line of reasoning as to how this present depth was brought about is as fol- lows: It is assumed that in weak materials open-ocean waves can quickly form a bench about 10 meters below low-water level, but that abrasion in greater depths is infinitely slower; that in the course of 50,000 years the depth of the bench surface would probably not be increased to more than 20 meters or roughly 10 fathoms. It is also assumed, after careful esti- mates, that the maximum lowering of level in the tropical ocean during the Pleistocene was 30 fathoms below present sealevel. This amount added to the 10 fathoms cut by the waves would leave the bench surfaces now 40 fathoms below sealevel as a maximum. Variation in the strength of the wave attack in different localities and in the character of the ma- terial eroded, as well as in other factors, would account for the slight 348 SCIENTIFIC SURVEY OF PORTO RICO variation in the present depth of the benches. As a rule, a depth of 30 fathoms would be the average. No other theory has been proposed which so well accounts for the ap- proximate accordance in level of submarine benches at a depth of 30 fathoms the world over. And there is apparently no other way to explain the escarpment marking the inner margin of the platform than to assume that it is the wave-cut cliff cut during the time the platform was being beveled. From the crest of this escarpment rise the Cordilleras Reefs. This line of reefs may be explained as a range of dunes capping the escarpment and formed of the material cut from the platform during its erosion in Pleistocene time. The summit of the ridge in its highest points rises some 50 to 60 feet above the escarpment on which it stands. The bed rock making up this platform is apparently Tertiary limestone, al- though no liméstone outcrops on the immediate mainland. There is a marked cross-bedded structure of the limestone material composing the islands, and in general aspect they suggest dune formation. If the glacial-control theory is accepted, then it must be assumed that the top of the escarpment stood slightly above sealevel during the Pleistocene. Dune formation was therefore possible. In the western part of Porto Rico dunes of similar height are now forming. The Cordilleras Reets appear to be the eastern expression of the San Juan formation occurring on the mainland. RECENT CHANGES The changes which have been effected in Porto Rico since the period of drowning, though all going on simultaneously, can be most clearly treated as separate topics. They involve the following events or processes: The deposition of alluvium in stream valleys, in drowned bays, and as alluvial fans on the south side of the island. Wave and wind work. A probable slight emergence. ALLUVIAL DEposits Extensive alluvial deposits form broad plains known as playas along the lower courses of most of the rivers of Porto Rico. These deposits, especially those on the east and west ends of the island, apparently fill estuaries caused by drowning. In the case of the Fajardo, Naguabo. Blanco, Yabucoa, and Maunabo rivers on the east coast and the Guana- jibo, Mayaguez, Blanco, and Culebrinas on the west coast, this relation- ship is distinct. Undoubtedly portions of these plains are flood plains LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 349 developed by the widening out of the lower courses of the rivers. The surface of the alluvial plains along the lower river courses grades into the surface of the terraces which occur further upstream. During excessive rains the rivers overflow much of the playa areas. There, old courses, meanders, and other usual features of flood plains are to be observed. In occasional instances the rivers bring down sufficient sediment to extend the flood plain forward into the sea as a delta. But this occurs only in protected places where the waves and currents along shore are weak. The Fajardo River entering Vieques Sound appears to be a case in point. Along the north and along the south coast the alluvial plains extend as a broad strip parallel with the coast rather than as estuarine fillings. However, there is a distinct contrast in the aspect of the alluvial deposits of these two coasts. The north coastal stretches are low and swampy. The plains on the south side stand considerably above sealevel. Along the north coast the deposits are often typical flood plains with almost horizontal surfaces. The deposits on the south coast are more truly allu- vial fans with a pronounced seaward slope. Practically all of the low north coast is fringed with barrier reefs. The waves of the south coast, however, have thrown up no such reefs; there the alluvial plains pass imperceptibly into the mangrove swamps along the shore, which shallows out for long distances, and only in one or two places, as, for instance, south of Guayama, have the quiet waters of the Caribbean cut away the non-resisting alluvium to form low cliffs. Occasional observers have suggested that the low plains bordering the coast of Porto Rico, as also on other West Indies islands, represent a sea floor recently uplifted. It is true that in isolated places there is evidence of recent uplift in Porto Rico to an extent of 20 or 30 feet. On the other hand, it is rather certain that these coastal deposits are not of marine origin. Old stream channels filled with gravel, combined with angularity of the boulders, lack of assortment, and poor bedding, indicate that they are alluvial fans deposited by streams. Most of the streams flowing across the alluvial plains of the south coast usually carry very small volumes of water. “Owing to the infrequency and small amount of the precipitation and the relatively porous character of the soil reducing the percentage of run-off, as well as the smallness of their catchment’ basins, they discharge minimum volumes of but 50 to 100 second-feet” (Wilson, 1899). In time of flood, however, they attain maximum discharges of nearly 10,000 to 20,000 second-feet, almost equal to that of the maximum of the larger northward-flowing streams. In the drier season of the year, during the months of January and February, even the larger streams of the southern coast do not flow through on the 550 SCIENTIFIC SURVEY OF PORTO RICO Their boulder-strewn channels are marked here and there |) pools of water, and it is a common thing to find that during these period. the extemporized trails and roads of the natives follow the stream beds, which occasionally lie as much as 20 to 30 feet below the general surface of the plains. In their lower courses the rivers are not confined by suct high banks and nearest to the coast they flow on the surface of the flood plains (Pig. 24). None of the deposits along the coast west of Ponce can be classed with the alluvial fans just described. They are typically flood plains filling broad valleys and terminating apparently in delta deposits. rr Lower course of the Descalabrado River during the dry season Phis is one of the southward-flowing streams east of Ponce, all of which are subject to great variation in volume, In the distance appears the even skyline of the Vorto Rico upland, Perhaps brief mention should be made of the coarse wash from the hill sides in the southeast and southwest corners of the island. This const! tutes very local features, although similar deposits were observed alone the northern margin of the Boqueron-Yauco Valley. Deposits of thi- type oecupy a position intermediate between talus accumulations and tric alluvial fans. Terraces are almost universal features along the Porto Rico rivers. Even well upstream, sometimes actually in the headwater portions, alli vial deposits oceur, Except on the broad plains near their mouths 1) streams are now cutting well below the original surface of the allavit LOBECK, THE PHYSIOGRAPHY OF PORTO RICO B54 The resulting terraces are occasionally 100 feet or so above the stream. The terraces of the Plata River may be cited as a striking example (Fig. 25). Just at the mouth of the gorge (near K 13 on the Comerio road), where the river emerges from its course through the upland, they may be sily visited. Their elevation above sealevel is about 290 feet, some 100 ae feet above the surface of the river. Their surface apparently slopes down- stream: and becomes continuous with that of the alluyial deposits of the north coast. In the alluvial-covered Caguas lowland terraces are com- mon features. Perhaps the finest are those along the Gurabo River. UPPER PENEPLANE The high terrace of the Plata River at K 13 on the Comerio road Fic, y 100 feet high and dies out uy narrow and gorge: This terrace is ¢ tream, where the valley hecomes Most of the flood-plain surface of this lowland is out of reach of any present-day floods and seems to record an earlier period of more active ‘leposition. All the streams entering the cast coast have broad flood plains which true of the Fajardo, erade upstream into high alluvial terraces. This i the Rio Blanco, and the Humacao. Some of the best-formed terraces on the island were seen along Pena Pobre Creek, a tributary to the Rio Slanco above its main flood plain (Fig. 26). The terraces of the Coamo River and its branches, on the south side of B52 SCIENTIFIC SURVEY OF PORTO RICO the island, are more readily observed than those of most of the other streams in Porto Rico. East of Coamo the military road follows the Cuyon River, a valley deeply filled with alluvium, into which the stream is now incising itself. The town of Coamo stands upon a distinet terrace and the road from Coamo to Coamo Springs runs on the top of a terrace. At Coamo Springs Hotel several terraces may be seen. ‘The lowest one, upon which the hotel is built, stands 100 feet or so above the river. The main valley of the Coamo River above the town of Coamo is heavily filled with alluvium. In cutting into this material the stream has in several places superposed itself upon hard rock ledges and this has resulted in pronounced waterfalls. The steep gradient attained by the alluvial deposits on the south side of Porto Rico may be appreciated by the fact that in the upper valley of the Jueyes River, less than three miles back from the coast, the surface of the alluvium which fills the subsequent valley behind the Coamo limestone Fig. 26,—Alluvial terraces of the Pefa Pobre Creek, west of Rio Blanco crossing ridge stands almost 500 feet above sealevel. The slope seaward is suffi- ciently pronounced to be detected by the eye, though it is difficult to read with an ordinary clinometer, since it amounts to only one or two degrees. The upper branches of the Jueyes River have cut down very deeply into this alluvium, producing in places miniature canyons, which are distinct hindrances to cross-country travel. The upper course of the Guanajibo between San German and Sabana Grande and the Rio Blanco east of Afiasco provide examples of terraces in the western part of the island. The smallest, but in some ways the most striking, of the alluvial de- posits of Porto Rico are those clogging the short, open valleys in the southeast corner of the island between Maunabo and Yabucoa. These valleys head back only a mile, or even less, from the coast and are sepa- rated by headlands subject to wave attack. The surface of the alluvium is exceedingly steep and is now only in the initial stage of dissection Along the shore these deposits are terminated by low cliffs 20 feet or + LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 353 in height, which are usually fringed with a narrow beach. The alluvium is entirely the result of wash from the granite hills, whose slopes are cov- ered with a very deep residual soil, granular in texture, but so firmly held together by its lime content as to be extremely brittle and ringing like cast iron under the hammer. The walls of the streams in the alluvium, like the sides of the gullies in the granitic soil, maintain an almost vertical attitude. Two explanations may be offered for the development of terraces in Porto Rico, which, however, are not incompatible with each other. The first one suggests that the recent slight uplift of the island rejuvenated the streams and caused them to incise themselves below the flood deposits formerly laid down. The evidence of uplift, to be presented later, hardly justifies assumption of an uplift greater than 20 to 30 feet, and this is insufficient to account for the high terraces everywhere observed. Ac- cording to the second explanation, the streams of Porto Rico have changed in general from aggrading streams to degrading streams, without neces- sarily any change in the relative position of land and sea. In the streams of New England such a condition is recognized. During the end of glacial time the rivers were heavily charged with debris and accordingly filled their channels with alluvium. But when the ice-sheets ceased to provide material for the streams to carry, their preglacial vigor was re- gained and terraces were formed as they cut down into the alluvium. We do not know just what causes may have contributed to the earlier over- loading of the Porto Rico rivers. It is not unreasonable to think, how- ever, that during glacial time climatic conditions in Porto Rico were different from those of the present. Not that any glaciers existed there, for there is no evidence of this, but it is conceivable that a heavier rain- fall prevailed. Such a climatic condition is thought to have accounted for the ancient Lake Bonneville in Utah. In Porto Rico a prolonged period of heavy rains, though adding to the actual volume, would at the same time overload the streams with sediment. The rapid run-off makes almost every drop of rain that falls an active erosional agent, and because the effectiveness of the erosion is not in direct proportion to the run-off, but increases at a much greater rate, the tendency is therefore toward an overloaded condition of the streams below the steeper headwater portions. Increase of rainfall at the end of the glacial period would therefore add greatly to the load of the streams and cause aggrading of their courses where the slopes were modest. With the dying-out of these conditions degrading would again come into play until the stream profile prior to glacial times was restored. Terraces thus formed would grade into the present flood plains of the lower river courses. B54 SCIPNTIFIC SURVEY OF PORTO RICO Wave anp Winp Work CAPE SAN JUAN REGION Wave attack on Porto Rico has been much more clfective on the north; than on the south coast. In brief, it may be said that wave action. has resulted in the development of marine cliffs throughout much of the northern coastal plain region, bay bars and elitfed headlands in the drowned oldland portion of the east and west coasts. barrier beaches and the consolidation of sand dunes to form the so-called San -uan formation on the north coast. It is believed that the subject can be best presente: by means of a regional description. Wig, 28.—Tidal deltas at Luquillo Formed behind a bar which has been built across the mouth of several confluent streams. COAST OF THE CAPE SAN JUAN REGION The coast of Porto Rico between Luquillo and Cape San Juan may be deseribed as a shoreline of submergence in the submature stage of devel- opment. The headlands have been cut back, bars have been built: acros- the bays, and the contour of the coast line is becoming approximately straight. Many of the bays have been entirely filled with alluvium others remain as open lagoons. A sketch map of the region (Fig. 27). based on a rough field sketch, is serviceable in indicating the salient fea tures. The successive building of bars nearer the mouths of the bays sc as to form a succession of lagoons is well shown in Yegua Cove. Alreads Hosted by Google SAN JUAN Point LN MILES . SAN DIEGO PoINT ~eovA Cou, S\ S EY y yea DELTAS Q\ Ki" eROCKS ii it ZS 8 to Ke EZ NY } tN “EZ a ‘> Za \Y > - Uy “us ? “se q | INCE N N . y Rio ‘ Seeeree - a AWN > BSA Sy “yy, Sy, + p * tT + tg] N\ “en bi ww + | by Y Sy ret Le J AWS \ WW, S — yhoexs yw” 7) < oA S Vy S er" St eer RY % Su, MU. KZ Tn Wot Sap t -) i 4 NY HIS “aft BS ~ r > ‘4 + Sane yun Cs i, XN yt Tay t fob Sw Wy, Th gat betas Yr 3 ‘g Ort ft aS aS ANG a =? or t _ t tT SS) S Zz Ad NY r?y Sy WZ a Aa %, i, wg Ss 20L0 Sucde SS erg We Ihe Wy, NY SS To & ", \Y Ww t ESS SS Za N '~ \' LZ » Yr % > \ Af) 1 Ae % \ee -- 7) NY S ss A FAJARDO Fic. 27.—Sketch map of the coast east of Luquillo Showing bars built across the mouths of drowned valleys. Hosted by Google LOBECK, THE PHYSIOGRAVPHY OF PORTO RICO iwo bars have been built near its head, thus forming two lagoons, and at the present time a third bar is forming across its mouth. The cliffing of the headlands, in sympathy with the successive bars which are strung across between them, is a feature frequently observed, and is especially notable at Point San Diego. Attention has already been called to the fact that the hays receiving the larger streams have becn completely filled with allu- yium, whereas on Cape San Juan peninsula, where the streams are small. open lagoons still remain. Most of the beaches show interesting minor features in the form of tidal deltas either built out into the lagoon, as at Luquillo (Pig. 28), or almost buried under the later deposits of alluyiune iG. 29.-Vidal flats just east of Point Embacadevos In the pools, corallines and branching forms of Porites grow Occasionally large masses are torn up by the wayes. Beach ridges are common in this region. Just west of Luquillo at least ten parallel ridges were counted, each having a height of about five feet above the intervening swales. These ridges are extremely difficult sub- jects to bring out clearly in a photograph. The succession of parallel shows that the coast line has advanced seaward. Just offshore the ridge water is extremely shallow. At low tide, although the range in water level does not amount to more than one or two feet, considerable areas of tidal flats are exposed, such as may be seen just east of Point Embar deros (Fig. 29). Wave action upon the headlands serves to emphasize the system of 1 joints which are so well developed in the oldland rocks, especially in this SCIENTIFIC SURVEY OF PORTO RICO 356 northeastern corner of Porto Rico. Here, as on Culebra and its near-by islands, the cliffs are featured by sharp cle s along the prominent joints which in general trend in a northeast direction (Vig. 30). pa ie Sa Te Trees a nig se ee ae Le SS ee +e = se eS = =a ls ‘] yh: oy BN xe y¢ es ni he, ae rs iat 25 x Sa ae $f as 2 ee =a x ex Ss 2 e tae rer set = =) ate Apres ENS ae Ns o wes fe ek a aN es Se, base Sek a wy id? Po * hf wi ae *& ee Gas Recah ces t Raat Fic. 30.—Wave action along joint plane, San Juan Point In the distance part of Cordilleras Reets. LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 357 EAST COAST The long, palm-fringed beaches strung between the headlands of the cast coast constitute one of the most picturesque features of this part of the island. The former bay or lagoon cut off from the sea by the beaches has in most cases become filled with alluvium, and the extensive flat tracts or playas which result have already been described. They constitute the great and fertile sugar lands of the island. In general, the beaches are made up of a succe: sion of obscure ridges and are covered with groves of cocoanut trees, which in a distant view contrast strikingly with the cane lands behind them. The promontories are always undergoing wave at- BARRIER BEACH Fig. $1-—The Caribes Islands An offshore bar cutting off Jobos harbor from the Caribbean. tack. Occasionally older cliffs may be seen, now protected by a tract of sandy beach. The smaller streams flowing upon the playas. especially during low stages, find their outlets to the sea blocked by the bars just described, but the larger streams are able to maintain an opening through them, All of the water-courses bring down much fine material which, if it is carried out in front of the bar, serv sas a supply for the storm waves when they come to throw up another beach. Occasionally, when the supply of allu- vinm is excessive, or the wayes and currents are not sufficiently vigorous to dispose of the material carried through the bar dropped to form a delta. This is the case at the mouth of the Fajardo River, as is readily 358 SCIENTIFIC SURVEY OF PORTO RICO appreciated by an observer on one of the hills overlooking Fajardo Har- bor. Abandoned marine cliffs stand back from the shore in line with the original bar. The fines’ of the east coast beaches are those built across the valleys of the Blanco, Humacao, and Yabucoa rivers. SOUTH COAST Along the south coast the waves beat with far less vigor than they do- on the north or east coasts, where they are impelled by the steady and powerful northeast trade winds. East of Guayama the headlands are still Fic, 82.—The low southward sloping coastal plain cast of Cape Rojo The cutting back by the waves has been very slight. being attacked, and the small alluvial fillings already described: are being cut away; but between Guayama and Ponce the transition from land to sea floor is a most gradual one and only rarely, as south of Guayama, are the modern waves cliffing the stream-laid gravels of the extensive flood plains. West of Guayama practically no cliffing occurs, but there are oceasional places where insignificant shore bars have been thrown up. The mangroye-covered flats, known as the Caribes Islands (Fig. 31), ap- pear to have such an origin, and the lagoon lying back of them, known as Jobos Harbor, is exceedingly shallow. It is similar in origin to the La- guna de Las Mareas. Most of the coast, however, exhibits no features which can be aseribed to wave action. The alluvium brought down by LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 359 the streams seems to be pushing the shore line seaward against the in- effectual attack of the weak waves. West of Ponce fewer large streams enter the sea; none at all in the southwest portion of the coast beyond Guanica. The low remnants of the Tertiary coastal plain are cliffed seaward (Fig. 32). The bench offshore is exceedingly shallow for several miles and the waves which reach the land are consequently very weak. Coral colonies apparently isolated pro- vide material which has been thrown up to form low reefs, barely coming to the water’s surface. FG. 33,—The marine cliff forming the edge of the Tertiary coastal plain on the north coast west of Isabela Now protected by a beach one-fourth of a mile in width, which bears along its seaward margin a high ridge of wind-blown sand, In the vicinity of Cape Rojo the work of the modern waves may be seen in the delicate tracery of beaches connecting two groups of islands with each other and with the mainland. The lagoons thus cut off can best be described as shallow salt flats and are usually known as salinas. These natural evaporating basins have been somewhat improved by arti- ficial methods, and represent one of the three important sources of crude salt now shipped from the tropics. The block diagram of the region (Fig. 5) presents the aspect of the two complex tombolos. 360 SCIENTIFIC SURVEY OF PORTO RICO r toh + t t tars) PF is re haa HH rote + t aiseuewn ni rt Fic. 34.—North-south profiles through the margin of the coastal plain at Quebradillas and Isabela WEST COAST ‘The irregularity consequent upon the drowning of the west coast of Porto Rico has been destroyed by the development of beaches and the filling of the bays. Occa- sional lagoons still remain, as at Lake Joy- uda. The beaches customarily reveal their stages of development by parallel ridges, a feature well marked between Point Guana- jibo and Mayaguez. As a whole, the work of the waves along the west coast has pro- duced effects similar to those along the east coast, but cliffing of headlands has been much less pronounced. NORTH COAST The north coast from Aguadilla to Camuy is characterized by marine cliffs, averaging over 200 feet in height, cut in the limestone coastal plain. Considerable stretches of these cliffs, however, notably to the west of Isabela, are no longer subject to wave attack, owing to the protecting beaches built in front of them, in places to a width of one- quarter to one-third of a mile (Fig. 33). A protecting beach in front of a marine cliff is a normal feature in the process of wave ero- sion along a steep coast. It represents a temporary reversal of conditions from those favoring cutting to those favoring deposition and is quite analogous to similar alternations in the life of a stream. The extent to which the sea has cut back into the Tertiary coastal plain may be esti- mated by carrying the slope of the plain sur- face seaward until it meets sealevel. With a slope of 114 degrees, the distance is ap- proximately two miles.. It must be remem- bered that the outer thin edge of the wedge was easily removed, and it may also be as- LOBECK, THE PHYSIOGRAPHY OF PORTO RICO 361 sumed that cutting has been long active and was going on before the period of submergence. Fig. 34 provides two profiles from this part of the coast. The one through Isabela does not need any especial explana- tion beyond what has just been said. The other profile, through Quebra- dillas, seems to be anomalous, in that the continuation of the slope of the coastal plain surface meets the sea even beyond the edge of the narrow continental shelf. Two interpretations are possible: first, the dip of the strata is steeper than the slope of the plain surface. If the normal dip of the beds instead of the slope of the plain surface be continued seaward from the cliff, assuming that this is approximately the top of the series, sealevel is reached less than a mile from shore and within the limils of the continental shelf; second, faulting may have taken place at the edge of the continental shelf, so that the Tertiary coastal plain was broken off during uplift. The apparent marine bench, shown in the profile near Quebradillas, standing at an elevation of 150 to 200 feet, has already been explained as being due to differential erosion along bedding planes. East of Camuy most of the north coast is low and bordered with allu- vial deposits. Fringing the shore is a chain of sand dunes exhibiting all stages of consolidation and dissection and in part constituting the San Juan formation about to be described. These sand deposits frequently hold the position of barrier beaches, in which case they have behind them marshy lagoons or open bodies of water. This is the explanation of Lake Tortuguero near Manati, San Juan Harbor, and the smaller lakes of San José, Cangrejos, and Pifiones to the east. The prevailing drift of the water along the north coast is toward the west, as a result of the strong trade winds from the northeast. In the coves between the minor promontories formed by remnants of the San. Juan formation secondary eddy currents are developed. These affect the bars at the mouths of streams and serve to deflect the stream outlets to- ward the east. In Fig. 35 several sketch maps illustrate this tendency in the case of the Bayamon and Cocal rivers and San Fernando Creek near San Juan, and of the Arecibo, Manati, and Cibuco rivers further west. In each instance the mouth of the stream is diverted eastward. THE SAN JUAN FORMATION This interesting formation occurs only along the north coast of Porto Rico, and is described by Berkey as a series of solidified or fossil sand dunes dating from the Pleistocene. At San Juan city, which is built upon the formation, its elevation is 100 feet above sealevel. Nowhere else does it rise to quite this height. Almost everywhere associated with 384 Slumping (Ponce), 245 Springs, Coamo ‘Thermal (Coamo-Guay- ama), 209 and wells, occurrence of (Coamo- Guayama), 210 Stocks and bosses (San Juan), 79 Stone, building (Ponce), 296 (San Juan), 106 Stratigraphical summary (San Juan), 99 Stream capture (San Juan), 50 terraces, entrenched (Coamo - Guay- ama), 123 Streams, coastal (Coamo-Guayama), 123 relation to trend of valleys and moun- tains (Coamo-Guayama), 122 Structures, minor (San Juan), 98 Structural features (San Juan), 95 limestone (Coamo-Guayama), 224 Submarine profiles, 347 Submergence, very recent, 366 recent, 343; (San Juan), 41 with terrace-cutting (Ponce), 290 Syenites (San Juan), 86 Yerrace-cutting (Ponce), 290 Terraces and sea cliffs (Coamo-Guayama), 119 entrenched, stream (Coamo-Guayama) 123 (Ponce), 237, 239 (San Juan), 46 Tertiary coastal plain (Ponce), 237 fossils (Ponce), 283 limestone belt (San Juan), 44 limestone series (San Juan), 55 isolated remnants of, 337 SCIENTIFIC SURVEY OF PORTO RICO Thermal springs (Coamo-Guayama), 224 Coamo (Coamo-Guayama), 209 Topography, relation to rocks and rock structure (Ponce), 235, 238 Trachy-andesites (Ponce), 271 (San Juan), 87 Trachytes (San Juan), 86 Tuffs (Coamo-Guayama), 126, 131, 135, 145, 151, 156 (Ponce), 246, 275 (San Juan), 71 volcanic, 307 Tuff-limestone, Coamo (Ponce), 255 Turritella halensis, new variety (Vonce), 285 Uplift, character of, 327 and dissection, coastal plain, 327 recent (San Juan), 41 Unconformities (San Juan), 95 Valleys, interior (Coamo-Guayama), 122 (Ponce), 242 relation of streams to trend of (Coa- mo-Guayama), 122 ‘ Vegetation and climate (Ponce), 232 Vieques Island, 343, 373 Vitrophyrs (San Juan), 81 Voleanic breccias (Coamo-Guayama), 127 tuffs and shales, 307 Vulcanism (Coamo-Guayama), 202 Wave and wind work, 354 Wells and springs, occurrence of (Coamo- Guayama), 210 Younger series, 16 (San Juan), 52 ee | if if ad Qo) he 2 see Rig es Pinter ss ecm Hosted by Google Hosted by Google — mi ee es sae perme cites oree as ies perees peekd meds i Rie AN SE BS. ee Hosted by Goo gle