Meso-Cenozoic evolution of mountain range - Intramontane basin systems in the Southern Siberian Altai Mountains by Apatite fission-track thermochronology

被引:0
作者
De Grave, Johan [1 ]
Buslov, Michael M. [2 ]
Van den Haute, Peter [1 ]
Dehandschutter, Boris [3 ]
Delvaux, Damien [4 ,5 ]
机构
[1] Univ Ghent, Dept Mineral & Petrol, Krijgslaan 281,S8, B-9000 Ghent, Belgium
[2] Inst Geol, Siberian Branch Russian Acad Sci, Novosibirsk, Russia
[3] Int Bur Environm Studies, Tervuren, Belgium
[4] Royal Ontario Cent Africa, Dept Geol & Mineral, Tervuren, Belgium
[5] Free Univ Amsterdam, Netherland Res Ctr Integrated Solid Earth Sci, ISES, Amsterdam, Netherlands
来源
THRUST BELTS AND FORELAND BASINS: FROM FOLD KINEMATICS TO HYDROCARBON SYSTEMS | 2007年
关键词
apatite fission-trackthermochronology; Siberia; Altai; intracontinental tectonics;
D O I
暂无
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
The Altai Mountains form the northern part of the Cenozoic Central Asian intracontinental orogenic system that developed as a far-field effect of ongoing India-Eurasia convergence. Our study focuses on the southern Siberian Altai Mountains where basement rocks for apatite fission-track (AFT) analysis were sampled. These rocks are mainly Paleozoic granitoids that currently outcrop in several high mountain ranges along reactivated transpressive Paleozoic fault zones. These ranges are in most cases thrust systems adjacent to lacustrine intramontane basins. We present AFT results from the Chuya and Kurai ranges (3 samples) that are thrust over Late Cenozoic sediments of the Chuya-Kurai Basin and from the Shapshal range (4 samples) east of the Dzhulukul Basin. In addition, 5 samples were collected along a transect west of aforementioned study areas in the low-elevation areas of the Siberian Altai or Gorny Altai. Apparent AFT ages were found to be Mesozoic (roughly ranging between 180 and 80 Mai and AFT length distributions show signs of thermal track fading (mean track lengths vary between 11.3 and 14.1 pm). AFT age and length data were modelled and thermal histories for the different sample sites reconstructed. These yield a two- to three-stage evolution: Late Jurassic-Cretaceous rapid basement cooling, a prolonged period of Late Cretaceous to Paleogene-Neogene stability, and a possible Late Cenozoic cooling to ambient temperatures.
引用
收藏
页码:457 / +
页数:4
相关论文
共 59 条
[1]   Fault reactivation in the Junggar region, northwest China: The role of basement structures during Mesozoic-Cenozoic compression [J].
Allen, MB ;
Vincent, SJ .
JOURNAL OF THE GEOLOGICAL SOCIETY, 1997, 154 :151-155
[2]  
[Anonymous], RUSSIAN GEOLOGY GEOP
[3]   KINEMATIC MODEL OF ACTIVE DEFORMATION IN CENTRAL-ASIA [J].
AVOUAC, JP ;
TAPPONNIER, P .
GEOPHYSICAL RESEARCH LETTERS, 1993, 20 (10) :895-898
[4]   'Forebergs', flower structures, and the development of large intracontinental strike-slip faults: the Gurvan Bogd fault system in Mongolia [J].
Bayasgalan, A ;
Jackson, J ;
Ritz, JF ;
Carretier, S .
JOURNAL OF STRUCTURAL GEOLOGY, 1999, 21 (10) :1285-1302
[5]  
Bullen ME, 2001, GEOL SOC AM BULL, V113, P1544, DOI 10.1130/0016-7606(2001)113<1544:LCTEOT>2.0.CO
[6]  
2
[7]  
Buslov M.M., 1996, Russ. Geol. Geophys., V37, P74
[8]  
Buslov MM, 2003, GEOL GEOFIZ+, V44, P49
[9]  
BUSLOV MM, 2001, GEOSCI J, V5, P203, DOI DOI 10.1007/BF02910304
[10]   GPS measurements of crustal deformation in the Baikal-Mongolia area (1994-2002):: Implications for current kinematics of Asia -: art. no. 2501 [J].
Calais, E ;
Vergnolle, M ;
San'kov, V ;
Lukhnev, A ;
Miroshnitchenko, A ;
Amarjargal, S ;
Déverchère, J .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2003, 108 (B10)