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51.
王瑜  万景林  李齐  王非  王二七 《地质学报》2002,76(2):191-198
阿尔金山北段阿克塞—当金山口一带的裂变径迹测年证据表明,该地区于9~7 Ma以来发生过快速抬升和剥蚀,并且一直持续形成了现今所见的阿尔金山。新生代以来至少经历了三次抬升:早期43.6~24.3Ma、中期19.6~13.6 Ma、晚期9~7 Ma。抬升速率先缓慢、后相对快速,9~7 Ma以来的抬升速率为0.94 mm/a。晚期的构造拾升可能与阿尔金断裂带左行走滑活动有关,而与相邻的柴达木盆地北缘地区的构造抬升并不一致。  相似文献   
52.
韩伟  姜亭  李玉宏  魏建设 《地质通报》2011,30(6):911-915
分析了额济纳旗及其邻区二叠系烃源岩热演化史与油气生成的关系。根据镜质组反射率、包裹体均一温度、磷灰石裂变径迹等资料得出研究区达到最大埋深时的古地温梯度,分析额济纳旗地区热演化史的信息,进一步研究了热演化与油气生成的关系。研究结果表明,额济纳旗地区在白垩纪达到最大埋深,古地温梯度为4.1~5.5℃/100m。通过与邻区查干凹陷比较分析,认为额济纳旗地区古地温梯度高于现今的地温梯度,二叠系烃源岩热演化程度主要受古地温场的控制。热演化史与油气关系的研究结果表明,额济纳旗部分地区二叠系烃源岩在晚二叠世已进入油气生成期,生烃阶段以干气为主,在早白垩世热演化程度达到最高。  相似文献   
53.
Guo-Can  Wang  Robert P.  Wintsch  John I.  Garver  Mary  Roden-Tice  She-Fa  Chen  Ke-Xin  Zhang  Qi-Xiang  Lin  Yun-Hai  Zhu  Shu-Yuan  Xiang  De-Wei  Li 《Island Arc》2009,18(3):444-466
Triassic turbidites dominate the Songpan–Ganzi–Bayan Har (SGBH) terrane of the northern Tibetan Plateau. U‐Pb dating on single detrital zircon grains from the Triassic Bayan Har Group turbidites yield peaks at 400–500 m.y., 900–1000 m.y., 1800–1900 m.y., and 2400–2500 m.y., These results are consistent with recently published U‐Pb zircon ages of pre‐Triassic bedrock in the East Kunlun, Altyn, Qaidam, Qilian and Alaxa areas to the north, suggesting that provenance of the Bayan Har Group may include these rocks. The similarities in the compositions of the lithic arkosic sandstones of the Bayan Har Group with the sandstones of the Lower‐Middle Triassic formations in the East Kunlun terrane to the north also suggests a common northern provenance for both. A well exposed angular unconformity between the Carboniferous–Middle Permian mélange sequences and the overlying Upper Permian or Triassic strata indicates that regional deformation occurred between the Middle and Late Permian. This deformation may have been the result of a soft collision between the Qiangtang terrane and the North China Plate and the closure of the Paleo‐Tethyan oceanic basin. The Bayan Har Group turbidites were then deposited in a re‐opened marine basin on a shelf environment. Fission‐track dating of detrital zircons from the Bayan Har Group sandstones revealed pre‐ and post‐depositional age components, suggesting that the temperatures did not reach the temperatures necessary to anneal retentive zircon fission tracks (250–300°C). A 282–292 m.y. peak age defined by low U concentration, retentive zircons likely reflects a northern granitic source. Euhedral zircons from two lithic arkoses with abundant volcanic fragments in the southern area yielded a ~237 m.y. zircon fission track (ZFT) peak age, likely recording the maximum age of deposition. A dominant post‐depositional 170–185 m.y. ZFT peak age suggests peak temperatures were reached in the Early Jurassic. Some samples appear to record a younger thermal event at ~140 m.y., a short lived event that apparently affected only the least retentive zircons.  相似文献   
54.
对合肥盆地中部肥西县打子塘地区圆筒山组砂岩(J2y)的磷灰石裂变径迹(AFT)分析表明,其FT年龄为(32.5±2.4)Ma(22个颗粒的平均),明显小于其地层的年龄(176~168 Ma);围限径迹长度为(12.43±0.18)μm(126个径迹长度的平均值),为单峰式分布。模拟热史主要为5段:距今176~152 Ma,冷却速率为-21.4℃/Ma;距今152~85 Ma,冷却速率为-0.1℃/Ma;距今85~32 Ma,冷却速率为1.4℃/Ma;距今32~10 Ma,冷却速率为1.6℃/Ma;10 Ma至今,冷却速率为5.0℃/Ma,这5个阶段分别对应了沉积物快速沉降加热、盆地趋于构造热稳定、盆地较快速抬升冷却和快速抬升冷却等演化阶段。沉积物快速加热阶段(176~152 Ma)反映了大别造山晚期山根拆沉阶段与盆地挤压、快速沉降和加热作用,构造热稳定阶段(152~85 Ma)反映了大别造山带热隆伸展和岩浆作用,冷却阶段(85~25 Ma)代表了郯庐断裂的走滑拉张作用与区域性断陷伸展(K2—E)取代热隆伸展体制与早白垩世的岩浆活动。最后一阶段(25 Ma以来)则为合肥盆地的挤压抬升、快速剥露阶段。  相似文献   
55.
Ryo  Anma  Richard  Armstrong  Toru  Danhara  Yuji  Orihashi Hideki  Iwano 《Island Arc》2006,15(1):130-142
Abstract   The Late Miocene–Pliocene Taitao ophiolite is composed of a complete sequence of classic oceanic lithosphere and is exposed approximately 50 km southeast of the Chile triple junction, where the Chile Ridge subducts beneath the South American Plate. Gabbros and ultramafic rocks are folded into a complex pattern, but only evidence for block rotation has been reported in the overriding sheeted dyke complex. In the present study, sensitive high mass-resolution ion microprobe U–Pb and fission-track dating methods were applied to zircon crystals separated from gabbros and sheeted dykes. Two sets of radiometric ages of gabbros range between 5.9 ± 0.4 and 5.6 ± 0.1 Ma. These ages coincide within their error ranges and imply rapid intrusion and cooling of gabbros. The U–Pb age of a dacite dyke intruded into the sheeted dyke complex was determined to be 5.2 ± 0.2 Ma. These data indicate that the magmas of the Taitao ophiolite were formed during the 6 Ma Chile Ridge collision event and emplaced in a shorter period than previously thought. A short segment of the Chile Mid-oceanic Ridge must have been emplaced during the 6 Ma event.  相似文献   
56.
海拉尔盆地呼和湖凹陷热演化史与油气关系   总被引:4,自引:3,他引:4       下载免费PDF全文
呼和湖凹陷现今地温梯度为3.54℃/100m,属于中温型地温场。根据镜质体反射率、包裹体测温和磷灰石裂变径迹法恢复了呼和湖凹陷古地温演化史,研究表明呼和湖凹陷早白垩世古地温梯度可达3.7~6.5℃/100m,古地温梯度高于现今地温梯度,古地温高于今地温。古地温恢复及热史模拟表明最高古地温是在早白垩世晚期达到的,下白垩统烃源岩热演化程度主要受古地温场控制。热演化史与油气关系研究表明呼和湖凹陷油气生成期主要有两期,分别是早白垩世晚期及古近纪以来,且以早白垩世晚期为主要成藏期,古近纪以来由于目的层温度降低生烃强度减弱。  相似文献   
57.
A multi-method geochronological approach is applied to unravelthe dynamics of a paired metamorphic belt in the Coastal Cordilleraof central Chile. This is represented by high-pressure–low-temperaturerocks of an accretionary prism (Western Series), and a low-pressure–high-temperatureoverprint in the retro-wedge with less deformed metagreywackes(Eastern Series) intruded by magmas of the coeval arc. A pervasivetransposition foliation formed in metagreywackes and interlayeredoceanic crust of the Western Series during basal accretion nearmetamorphic peak conditions (350–400°C, 7–11kbar) at 292–319 Ma (40Ar/39Ar phengite plateau ages).40Ar/39Ar UV laser ablation ages of phengite record strain-freegrain growth and recrystallization with a duration of 31–41Myr during a pressure release of 3–4 kbar. During earlyaccretion the main intrusion in the arc occurred at 305 Ma (Pb–Pbevaporation; zircon) and the Eastern Series was overprintedby a short high-temperature metamorphism at 3 kbar, 296–301Ma (40Ar/39Ar muscovite plateau ages). Fission-track ages ofzircon (206–232 Ma) and of apatite (80–113 Ma) aresimilar in both series, indicating synchronous cooling duringdistinct periods of exhumation. Early exhumation (period I)during continuing basal accretion proceeded with mean ratesof 0·19–0·56 mm/yr, suggesting that erosionin a tectonically active area was an important unroofing mechanism.At the same time mean rates were 0·03–0·05mm/yr in the Eastern Series, where crustal thickening was minor.A shallow granite intruded into the Western Series at 224 Ma,at the end of basal accretion activity, when exhumation ratesdecreased to 0·04–0·06 mm/yr in both seriesduring period II (100–225 Ma). Major extension, basinformation and local bimodal dyke intrusion at 138 Ma were accompaniedby mean cooling rates of 1–2°C/Myr. Accelerated coolingof 3–5°C/Myr at 80–113 Ma suggests a mid-Cretaceousconvergence event (period III). After 80 Ma cooling rates decreasedto 1–2°C/Myr (period IV). The pressure–temperature–deformation–timeinformation for subduction, basal accretion and exhumation inthe accretionary wedge of central Chile illustrates that theseprocesses reflect a continuous cyclic mass flow that lastednearly 100 Myr, while the retro-wedge remained stable. Afterthe cessation of accretion activity a similarly long periodof retreat of the subducting slab occurred; this ended withrenewed convergence and shortening of the continental margin. KEY WORDS: exhumation rates; Ar/Ar geochronology; fission-track geochronology; Chile; paired metamorphic belt  相似文献   
58.
In the Montes de Toledo area, located in the axial part of the Central Hercynian zone, a long-term thermo-tectonic evolution can be deduced from apatite fission-track (AFT) data in conjunction with tight geological constraints derived from the knowledge of regional geology and other independent chronometers. The area is composed of two different blocks separated by the Toledo Shear Zone (TSZ). The northern block is a granulite facies anatectic terrane. The southern block is composed of greenschist facies Paleozoic sediments intruded by a late Hercynian granitic pluton. A total of 13 samples have been recovered for AFT analysis. AFT ages in both blocks cluster around 189–221 Ma, with mean confined track lengths between 11.4 m and 12.4 m. Modeling of the AFT data indicates that the thermal history is broadly similar in both blocks, which constrains the main movement of the TSZ, as essentially before the Upper Permian. AFT ages in the TSZ cluster around 124–164 Ma, and the track lengths vary between 11.4 m and 12.4 m. These data reveal that the fault must have been affected by a later thermal overprint as AFT ages are significantly younger than those of the footwall and hangingwall blocks. This differential thermal resetting is likely related to the advection of localized hydrothermal fluids that are responsible for the widespread Pb–Zn mineralization along the TSZ. These results give an example of resetting AFT data by hydrothermal events. The long-term evolution suggests a lack of important Alpine tectonism in the Montes de Toledo block, in clear contrast to other nearby Hercynian areas such as the Sierra de Guadarrama, where the important effect of Alpine tectonism has almost totally erased the previous thermal signal in the AFT system.  相似文献   
59.
Abstract The Lesnaya Group is part of a thick, poorly dated turbidite assemblage that sits in the footwall of a regionally extensive collision zone in which the Cretaceous–Paleocene Olutorsky island arc terrane was obducted onto continental margin basin strata. Nannoplankton from 18 samples from the upper part of the Lesnaya Group yield Paleocene through Middle Eocene assemblages. Detrital zircons from nine sandstone samples have a young population of fission-track ages that range from 43.7 ± 3.4 to 55.5 ± 3.5 Ma (uppermost Paleocene to Middle Eocene). The deformed footwall rocks of the Lesnaya Group and the overlying thrusts of the Olutorsky arc terrane, are unconformably overlain by neoautochthonous deposits which are Lutetian (lower Middle Eocene) and younger. Together, these new data indicate that thrusting, which is inferred to have been driven by collision of the Cretaceous–Paleocene island arc with north-eastern Asia, took place in the mid-Lutetian, at about 45 Ma.  相似文献   
60.
Both erosion and surface topography cause a time-dependent variation in isotherm geometry that can result in significant errors in estimating natural exhumation rates from geochronologic data. Analytical solutions and two-dimensional numerical modelling are used to investigate the magnitude of these inaccuracies for conditions appropriate to many rapidly exhumed mountain chains of rugged relief. It is readily demonstrated that uplift of the topographic surface has a negligible effect on the cooling history of an exhumed rock sample and cannot be quantified by current geochronologic methods. The topography itself perturbs the isotherms to a depth that depends on both the vertical and horizontal scale of the surface relief. Estimations employing different isotopic systems in the same sample with higher closure temperatures (> 200°C) are not generally influenced by topography. However, direct conversion of cooling rates to exhumation rates assuming a simple constant linear geotherm markedly underestimates peak rates, due to variation of the geothermal gradient in time and space and to the time lag between exhumation and cooling. Estimations based on the altitude variation in apatite fission-track ages are less prone to such inaccuracies in geothermal gradient but are affected by near-surface time-dependent variation in isotherm depth due to advection and topography. In tectonically active mountain belts, high exhumation rates are coupled with rugged topography, and exhumation rates may be markedly overestimated, by factors of 2 or more. Even at lower exhumation rates on the order of 1 mm/a, the shape of the cooling curve is modified by advection and topography. A convex-concave shape to the cooling curve does not necessarily imply a change of exhumation rate; it may also be attained by a more complicated geothermal gradient induced by topographic relief. Very fast cooling below 100°C, often interpreted as reflecting faster exhumation, can be more simply explained by the lateral cooling effect of topographic relief, with samples exhumed in valleys displaying a different near-surface cooling history to those on ridge crests.  相似文献   
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