Vertical versus horizontal motions in the Alpine orogenic wedge: stratigraphic response in the foreland basin

Basin Research - Tập 4 Số 3-4 - Trang 215-232 - 1992
Hugh Sinclair1, Philip A. Allen2
1Department of Geological Sciences, Science Laboratories, South Road, Durham DH1 3LE, UK
2Department of Earth Sciences, Parks Road, Oxford OX13PR, UK

Tóm tắt

AbstractThe long‐term (50 Myr) development of orogenic thrust wedges and their neighbouring foreland basins are inextricably linked. Foreland basins, such as occur nonh of the Alps, flanking the Pyrenees, east of the Apennines and south of the Himalayas, are characterized by an early underfilled (deep‐water) phase, followed by a filled (shallow‐marine) or overfilled (continental) phase. The extent to which a foreland basin is filled to sea‐level can be understood by comparing, over time, the rate at which sediment is delivered to the basin with the rate at which accommodation space is generated within the basin. This approach is applied to the Alpine thrust wedge/North Alpine Foreland Basin (NAFB) system. Using simple geometrical calculations assuming a critically tapered thrust wedge sliding over a foreland plate, preceded by a flexurally induced trough (foreland basin), it is possible to develop some general parameter relationships for the system. The thrust wedge is described firstly in terms of the history of exhumation which is directly linked to denudation and hence sediment generation, and secondly to thrust front advance rates. The accommodation space can be approximated by the product of the thrust front advance rate and the deflection of the basin at the thrust front. The extent to which a basin is, at one instant, being undersupplied or oversupplied (F) can then be described by the ratio of sediment supply to accommodation space generated:F=exhumation rate. width of thrust wedgeladvance rate. deflection at thrust frontWhen F> I, the basin is on a trend towards overfilling, and when F< 1 the basin is on a trend towards underfilling. The value for the width of the thrust wedge undergoing exhumation is held as a constant for most of the evolution of the NAFB.The development of the Alpine thrust wedge/NAFB system is characterized by an initial submarine phase (Cenomanian to mid‐Oligocene) of rapid thrust front advance and slow exhumation rates; this resulted in deep‐water and shelfal sedimentation in the foreland basin (F< 1), and is described as the occretionary wedge phase. By the mid‐Oligocene, exhumation rates were accelerating associated with major backthrusting, and frontal advance rates were slowing down; this resulted in the foreland basin being filled to sea‐level (F← 1), accumulating shallow‐marine and continental sediments. This period is described as the continental wedge phase. Although F‐values probably fell back to close to 1 following the period of major Oligocene exhumation, the basin remained in its filled state for the remainder of its geological history.Modern studies indicate that rapid exhumation rates lead to increased local relief and denudation. The increased relief causes increased maximum elevations, so enhancing orographic precipitation and glaciation leading to further increases in denudation. This positive feedback loop between denudation, exhumation and climate may have enhanced the rapid inversion of the core of the orogenic wedge during the latter part of its growth.

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Tài liệu tham khảo

10.2475/ajs.268.3.243

Allen P. A., 1985, Dynamic palaeogeography of the open Burdigalian seaway, Swiss Molasse basin, Eclog. Geol. Helv., 78, 351

Allen P. A., 1986, Foreland basins: an introduction, Spec. Pubis Inst. Ass. Sedim., 8, 3

10.1111/j.1365-2117.1991.tb00124.x

Angevine C H. Heller P. L.&Paola C.(1990) Quantitative Sedimentary Basin Modeling.Am. Ass. Petrol. Geol. Course Note Series #32.

Bachmann G. H., 1991, The Molasse basin, Germany: evolution of a classic petroliferous foreland basin, Spec. Pubt. Eur. Ass Petrol. Geosci., 1, 263

Badoux H.(1971)1305 Dl. de Morcles. Fueille et notice explicativeMap sheet 58 Atlas géologique de la Suisse 1 25000. Comm. Geol. Suisse. Kilmmerly & Frey. S. A. Berne.

Baldwin B., 1985, Compaction curves, Bull. Am. Ass. Petrol. Geol., 69, 622

10.2113/gssgfbull.S7-XII.4.664

10.1111/j.1365-246X.1981.tb02715.x

Beaumont C., 1991, Erosional control of active compressional orogens, 1

Berger J‐P., 1985, Munchner Geowiss. Abh.: Riehe A, Geol. Palaont., 5

Berger J.‐P.(1990)Tableau comparatif des correlations de I'Oligo‐Miocene el position straligraphiquc de la Molasse Suisse.Unpubl. ms University of Fribourg.

Bisig W. K.(1957)Blattengratflysch und Sardonaflysch im Sernftal nordlich dcr linie Richctlipass‐Elm‐Ramintal‐Gross Scheibe.Milt. Geol. Inst. ETH. Univ. Zürich..

Büchi U. P., 1977, Zur paleogeographie dcr schweizerischen Molasse, Erdol-Erdgas-Z., 93, 57

Burbank D. W., 1988, Stratigraphic keys to the timing of thrusting in terrestrial foreland basins: applications to the northwestern Himalaya, 331

Bürgisser H. M., 1980, Zur Mittel‐Miozänen sedimentation im Nordalpinen Molassebecken: das ‘Appenzellergranit’–leitni‐veau des Hörnli Schuttfächers (Obere Süsswassermolasse, Nordostschweiz), Mitt. Geol. Inst. ETH., Univ. Zürich N.F., 232, 196

10.1016/0012-8252(89)90002-0

10.1130/0016-7606(1978)89<1189:MOTFB>2.0.CO;2

10.1007/BF00381838

10.1007/BF00381295

10.1029/90TC01982

Covey M., 1986, The evolution of foreland basins to steady state: evidence from the western Taiwan foreland basin, Spec. Pubis Int. Ass. Sedim., 8, 77

10.1029/JB089iB12p10125

10.1130/SPE218-p161

10.1029/JB088iB02p01153

10.1016/0012-8252(70)90079-6

DeCelles P. G., 1987, Laramide thrust‐generated alluvial fan sedimentation, Sphinx Conglomerate, southwestern Montana, Bull. Am. Ass. Petrol. Geol., 71, 135

10.1144/GSL.SP.1989.045.01.15

Dickinson W. R., 1974, Plate tectonics and sedimentation, Spec. Pubis Soc. econ. Palaeonl. Miner., Tulsa, 22, 1

Diem B., 1986, Die Untere Meeresmolasse zwischen der Saane (Westschweiz) und der Ammer Oberbayern, Eclog. Geol. Helv., 79, 493

Embleton C., 1975, Glacial Geomorphology.

10.1016/0040-1951(78)90103-8

10.1016/0012-821X(81)90142-4

10.1029/JB094iB04p03851

Frakes L. A., 1979, Climate Change Through Geological Time., 310

Frey M‐, 1974, Alpine metamorphism of the Alps: a review, Schweiz. Miner. Petrog. Mitt., 54, 247

10.1016/0040-1951(79)90155-0

10.1130/0016-7606(1975)86<273:HMFFDI>2.0.CO;2

10.1007/BF00373788

Haq B. U., 1987, Geologic Time Table

10.1007/BF00371007

Hofmann F., 1973, Geol. Atlas Schweiz 1:25000, Blatt 65; Bischojic.'U. Schweiz

Hofmann F., 1988, GeoL Atlas Schweiz 1:25000, Blatt 86; Wil. Landeshydrologie'And geologie. Schweiz

Homewood P., 1977, Ultrahelvetic and north‐Penninic flysch of the Prealps: a general account, Eclog. Geol. Helv., 70, 627

Homewood P., 1980, Cretaceous and Tertiary evolution along the Besancon‐Biella traverse (western Alps), Eclog. Geol. Helv., 73, 635

Homewood P., 1981, Wave‐, tide‐ and current controlled sand bodies of Miocene Molasse, western Switzerland, Bull. Am. Ass. Petrol. Geol, 65, 2534

Homewood P., 1986, Dynamics of the Molasse basin in western Switzerland, Spec. Pubis Int. Ass. Sedtm., 8, 119

Homewood P., 1988, Classic Swiss elastics (flysch and molasse): The Alpine connection, Ceodin. Acta, 2, 1

Houseknecht D. W., 1986, Evolution from passive margin to foreland basin: the Atoka Formation of the Arkoma Basin, south‐central U.S.A, Spec. Pubis Int. Ass. Sedtm., 8, 327

10.1130/0016-7606(1959)70[115:ROFPIM]2.0.CO;2

Hunziker J. C., 1989, Alpine thermal evolution in the central and western Alps, Spec. Publ. Ceol. Soc. Lon., 45, 369

10.1144/GSL.SP.1989.045.01.21

10.1029/91TC00167

Johnson G. D., 1986, Late Cenozoic tectonics and sedimentation in the northwestern Himalayan foredeep. I. Thrust ramping and associated deformation in the Potwa‐ region, Spec. Pubis Int. Ass. Sedim., 8, 273

Jordan T. E., 1981, Thrust loads and foreland basin evolution, Cretaceous, Western United States, Bull. Am. Ass. Petrol. Geol., 65, 2506

Jordan T. E., 1988, Dating thrust fault activity by use of foreland basin strata, 307

10.2475/ajs.289.9.1041

10.1029/TC004i007p00661

Lateltin O.(1988)Les dépôts turbiditiques Oligocénes d'avant pays entre Annecy (Haute Savoie) et la Sanetsch (Suisse).Thesis 949 University of Fribourg Fribourg Switzerland 127pp.

Lateltin O., 1987, Evolution paléogéographique du bassin des grès de Taveyannaz dans les Aravis (Haute‐Savoie) à la fin du paléogène, Eclog. Geol. Helv., 80, 127

Lawton T. F., 1985, Style and timing of frontal structures, thrust belt, central Utah, Bull. Am. Ass. Petrol. Geol., 50, 2614

Laubscher H. P., 1987, Die tektonische Entwicklung der Nordschweiz, Eclog. Ceol. Helv., 80, 287

Matter A., 1980, Flysch and Molasse of central and western Switzerland, 261

10.1016/0040-1951(78)90039-2

Milnes A. G., 1977, Structural development of the Infrahelvetic complex, eastern Switzerland, Eclog. Geol. Helv., 70, 83

10.1038/346029a0

Naef H. Diebold P.&Schlanke S.(1985)Sedimentation und tektonic im Tertiar der Nordschweiz.NAGRA Techn. Ber.85‐14 147pp.

Oriel S. S., 1966, Times of thrusting in Idaho‐Wyoming thrust belt–reply, Bull. Am. Ass. Petrol. Geol., 50, 2614

10.1016/0037-0738(80)90058-5

Pfiffner O. A., 1986, Evolution of the north Alpine foreland basin in the Central Alps, Spec. Pubis Int. Ass. Sedtm., 8, 219

10.1029/TC009i006p01327

10.1029/TC007i003p00563

10.1130/0016-7606(1986)97<1037:DOOWAT>2.0.CO;2

10.1038/337158a0

10.1111/j.1365-3091.1992.tb02136.x

Price R. A., 1973, Large‐scale gravitational flow of supra‐crustal rocks, Southern Canadian Rockies, 491

10.1139/e84-103

Ricci Lucchi F., 1986, The Oligocene to Recent foreland basins of the northern Apennines, Spec. Pubis Im. Ass. Sedim., 8, 105

Ruefli W. H., 1959, StratigTaphie und tectonik des eingeschlos‐senen Glarner Flysches im Weisstannental (St Galler Ober‐land), Mitt. Geol. Inst. ETH. Univ. Zurich, 75, 194

10.1086/628860

Schmid G., 1970, Geologic der Gegend von Guggisberg und der angrenzenden Subalpinen Molasse, Beitr. Geol. Karte Schweiz, 139

10.1016/0040-1951(87)90151-X

Schulz R.(1990)Subsurface temperature and heat flow density maps for the central segment of the EGT. In:Subsurface temperature and heat flow density maps for the central segment of the EGT(Ed. byR.FreemanandS.Miiller) pp.417–422.

10.1029/JB085iB07p03711

10.1029/TC004i007p00687

Siegenthaler C.(1974)Die nordhelvetische flysch‐gruppe m Sernftal (fit. Glarus).Dissertation University Zürich.

10.1111/j.1365-3091.1992.tb02156.x

10.1029/90TC02507

Steidtmann J. R., 1988, Provenance and dispersal of tectogenic sediments in thin‐skinned, thrusted terrains, 353

10.1016/0012-821X(91)90036-H

10.1130/0016-7606(1960)71[843:PEOTCA]2.0.CO;2

Trümpy R., 1973, The timing of orogenic events in the central Alps, 229

Trümpy R., 1980, Geology of Switzerland, a Guide Book. Part A: An Outline of the Geology of Switzerland., 104

Van Stuijvenberg J., 1979, Geology of the Gurnigel area (Prealps, Switzerland)., 111

10.1016/0012-821X(79)90136-5

Wegmann R., 1961, Zur geologic der flyschgebeite sudlich Elm, Mitt. Geol. Inst. ETH, Univ. Zürich, 76, 256

Weidmann M., 1982, Sur les terrains subalpins et Ie flysch entre Bulle et Montreux, Bull. Soc. Vaud. Sci. Nat., 76, 151

10.1111/j.1525-1314.1983.tb00268.x

Wiltschko D. V., 1983, Timing of deformation in overthrust belt and foreland of Idaho, Wyoming and Utah, Bull. Am. Ass. Pet. Geol., 67, 1304