Bai, L., Zhang, T. (2015). Complex deformation pattern of the Pamir-Hindu Kush region inferred from multi-scale double-difference earthquake relocations, Tectonophysics, 638: 177-184, doi:10.1016/j.tecto.2014.11.006.
Barnes, J.B., Ehlers, T.A. (2009). End member models for Andean plateau uplift. Earth Science Reviews, 97(1-4), 105-132.
Bloch, W., Schurr, B., Yuan, X., Ratschbacher, L., Reuter, S., Kufner, S.K., et al. (2021). Structure and stress field of the lithosphere between Pamir and Tarim. Geophysical Research Letters, 48, e2021GL095413.
Burov, E.B., Molnar, P. (1998). Gravity anomalies over the Ferghana Valley (central Asia) and intracontinental deformation. Journal of Geophysical Research: Solid Earth.
Burtman, V.S., Molnar, P. (1993). Geological and geophysical evidence for deep subduction of continental crust beneath the Pamir. Geological Society of America Special Papers.
Buslov, M.M., Grave, J.D. (2011). Seismic hazard in Tien Shan: basement structure control over the deformation induced by Indo-Eurasia collision. Tectonics.
Capoiali, A. (1998). Gravimetric constraints on the rheology of the Indian and Tarim Plates in the Karakoram continent–continent collision zone. Journal of Asian Earth Sciences 16, 313-321.
Chung, S.-L., Lo, C.-H., & Lee, T.-Y. (2003). Petrologic case for Eocene slab breakoff during the Indo-Asian collision: Comment and Reply. Geology, 31(1), e7-e8.
Gągała, Ł., Ratschbacher, L., Ringenbach, J. C., Kufner, S. K., Schurr, B., Dedow, R., Abdulhameed, S., Le Garzic, E., Gadoev, M., & Oimahmadov, I. (2020). Tajik Basin and Southwestern Tian Shan, Northwestern India‐Asia Collision Zone: 1. Structure, Kinematics, and Salt Tectonics in the Tajik Fold‐and‐Thrust Belt of the Western Foreland of the Pamir. Tectonics, 39(5).
Gao, R., Hou, H., Cai, X., Knapp, J. H., He, R., Liu, J., Xiong, X., Guan, Y., Li, W., Zeng, L., & Roecker, S. W. (2013). Fine crustal structure beneath the junction of the southwest Tian Shan and Tarim Basin, NW China. Lithosphere, 5(4), 382-392.
Hacker, B., Luffi, P., Lutkov, V., Minaev, V., Ratschbacher, L., Plank, T., Ducea, M., PatiÑO-Douce, A., McWilliams, M., & Metcalf, J. I. M. (2005). Near-Ultrahigh Pressure Processing of Continental Crust: Miocene Crustal Xenoliths from the Pamir. Journal of Petrology, 46(8), 1661-1687.
He, H., Pan, F.-B., Chen, H., Zhang, Y., Zheng, X., & He, X. (2017). Subducting continental lower crust and crustal thickness variations in the intermediate seismic zone of Pamir–Hindu Kush inferred from Moho underside reflection pmP. Tectonophysics, 718, 132-139.
Huang, G.-c. D., Roecker, S. W., Levin, V., Wang, H., & Li, Z. (2017). Dynamics of intracontinental convergence between the western Tarim basin and central Tien Shan constrained by centroid moment tensors of regional earthquakes. Geophysical Journal International, 208(1), 561-576.
Jay, C. N., Flesch, L. M., & Bendick, R. O. (2018). Kinematics and Dynamics of the Pamir, Central Asia: Quantifying the Roles of Continental Subduction in Force Balance. Journal of Geophysical Research: Solid Earth, 123(9), 8161-8179.
Jia, D., Lu, H., Cai, D., Wu, S., Shi, Y., & Chen, C. (1998). Structural Features of Northern Tarim Basin: Implications for Regional Tectonics and Petroleum Traps1. AAPG Bulletin, 82 (1).
Jiang, X., Jin, Y., & McNutt, M. K. (2004). Lithospheric deformation beneath the Altyn Tagh and West Kunlun faults from recent gravity surveys. Journal of Geophysical Research: Solid Earth, 109(B5).
Jiang, X., Li, Z. X., & Li, H. (2013). Uplift of the West Kunlun Range, northern Tibetan Plateau, dominated by brittle thickening of the upper crust. Geology, 41(4), 439-442.
Jiang, X. D., & Li, Z. X. (2014). Seismic reflection data support episodic and simultaneous growth of the Tibetan Plateau since 25 Myr. Nature Communications, 5, 5453.
Kao, H., Gao, R., Rau, R.-J., Shi, D., Chen, R.-Y., Guan, Y., & Wu, F. T. (2001). Seismic image of the Tarim basin and its collision with Tibet. Geology, 29(7), 575.
Khan, N. G., Bai, L., Zhao, J., Li, G., Rahman, M. M., Cheng, C., & Yang, J. (2017). Crustal structure beneath Tien Shan orogenic belt and its adjacent regions from multi-scale seismic data. Science China Earth Sciences, 60(10), 1769-1782.
Kohn, M. J., & Parkinson, C. D. (2002). Petrologic case for Eocene slab breakoff during the Indo-Asian collision. Geology, 30(7), 591.
Kufner, S.-K., Schurr, B., Haberland, C., Zhang, Y., Saul, J., Ischuk, A., & Oimahmadov, I. (2017). Zooming into the Hindu Kush slab break-off: A rare glimpse on the terminal stage of subduction. Earth and Planetary Science Letters, 461, 127-140.
Kufner, S.-K., Schurr, B., Ratschbacher, L., Murodkulov, S., Abdulhameed, S., Ischuk, A., Metzger, S., & Kakar, N. (2018a). Seismotectonics of the Tajik Basin and Surrounding Mountain Ranges. Tectonics, 37(8), 2404-2424.
Kufner, S.-K., Schurr, B., Sippl, C., Yuan, X., Ratschbacher, L., Akbar, A. s. o. M., Ischuk, A., Murodkulov, S., Schneider, F., Mechie, J., & Tilmann, F. (2016). Deep India meets deep Asia: Lithospheric indentation, delamination and break-off under Pamir and Hindu Kush (Central Asia). Earth and Planetary Science Letters, 435, 171-184.
Kufner, S. K., Eken, T., Tilmann, F., Schurr, B., Yuan, X., Mechie, J., Sippl, C., & Schneider, F. (2018b). Seismic Anisotropy Beneath the Pamir and the Hindu Kush: Evidence for Contributions From Crust, Mantle Lithosphere, and Asthenosphere. Journal of Geophysical Research: Solid Earth.
Kufner, S. K., Kakar, N., Bezada, M., Bloch, W., Metzger, S., Yuan, X., Mechie, J., Ratschbacher, L., Murodkulov, S., Deng, Z., & Schurr, B. (2021). The Hindu Kush slab break-off as revealed by deep structure and crustal deformation. Nature Communications, 12(1), 1685.
u, J., & Yang, T. (2016a). Mantle Subduction and Uplift of Intracontinental Mountains: A Case Study from the Chinese Tianshan Mountains within Eurasia. Sci Rep, 6, 28831.
Li, W., Chen, Y., Tan, P., & Yuan, X. (2020b). Geodynamic processes of the continental deep subduction: Constraints from the fine crustal structure beneath the Pamir plateau. Science China Earth Sciences, 63(5), 649-661.
Li, W., Chen, Y., Yuan, X., Schurr, B., Mechie, J., Oimahmadov, I., & Fu, B. (2018b). Continental lithospheric subduction and intermediate-depth seismicity: Constraints from S-wave velocity structures in the Pamir and Hindu Kush. Earth and Planetary Science Letters, 482, 478-489.
Liang, Y., Li, L., Liao, J., & Gao, R. (2020). Interaction of the Indian and Asian Plates Under the Pamir and Hindu‐Kush Regions: Insights From 3‐D Shear Wave Velocity and Anisotropic Structures. Geochemistry, Geophysics, Geosystems, 21(8).
Liao, J., Gerya, T., Thielmann, M., Webb, A. A. G., Kufner, S.-K., & Yin, A. (2017). 3D geodynamic models for the development of opposing continental subduction zones: The Hindu Kush–Pamir example. Earth and Planetary Science Letters, 480, 133-146.
Lu, R., He, D., John, S., Wu, J. E., Liu, B., & Chen, Y. (2014). Structural model of the central Longmen Shan thrusts using seismic reflection profiles: Implications for the sediments and deformations since the Mesozoic. Tectonophysics, 630, 43-53.
Lu, R., He, D., Suppe, J., Ma, Y., Liu, B., & Chen, Y. (2012). Along-strike variation of the frontal zone structural geometry of the Central Longmen Shan thrust belt revealed by seismic reflection profiles. Tectonophysics, 580, 178-191.
Lukk, A. A., Yunga, S. L., Shevchenko, V. I., & Hamburger, M. W. (1995). Earthquake focal mechanisms, deformation state, and seismotectonics of the Pamir‐Tien Shan region, Central Asia. Journal of Geophysical Research: Solid Earth, 100(B10), 20321-20343.
Lü, Z., Gao, H., Lei, J., Yang, X., Rathnayaka, S., & Li, C. (2019). Crustal and upper mantle structure of the Tien Shan orogenic belt from full‐wave ambient noise tomography. Journal of Geophysical Research: Solid Earth, 124(4), 3987-4000.
Mechie, J., Schurr, B., Yuan, X., Schneider, F., Sippl, C., Minaev, V., ... & Orunbaev, S. (2019). Observations of guided waves from the Pamir seismic zone provide additional evidence for the existence of subducted continental lower crust. Tectonophysics, 762, 1-16.
Molnar, P., & Lyon-Caen, H. (1988). Some simple physical aspects of the support, structure, and evolution of mountain belts. Processes in continental lithospheric deformation, 218, 179-207.
Molnar, P., & Bendick, R. (2019). Seismic moments of intermediate‐depth earthquakes beneath the Hindu Kush: Active stretching of a blob of sinking thickened mantle lithosphere?. Tectonics, 38(5), 1651-1665.
Negredo, A. M., Replumaz, A., Villaseñor, A., & Guillot, S. (2007). Modeling the evolution of continental subduction processes in the Pamir–Hindu Kush region. Earth and Planetary Science Letters, 259(1-2), 212-225.
Nikolaev, V. G. (2002). Afghan-Tajik depression: Architecture of sedimentary cover and evolution. Russian Journal of Earth Sciences, 4(6).
Pavlis, G. L., & Das, S. (2000). The Pamir‐Hindu Kush seismic zone as a strain marker for flow in the upper mantle. Tectonics, 19(1), 103-115.
Peng, C. C., Kuo, B. Y., Faccenda, M., & Chiao, L. Y. (2020). Mantle flow entrained by the Hindu Kush continental subduction inferred from source-side seismic anisotropy. Earth and Planetary Science Letters, 530, 115905.
Schneider, F. M., Yuan, X., Schurr, B., Mechie, J., Sippl, C., Haberland, C., . . . Negmatullaev, S. (2013). Seismic imaging of subducting continental lower crust beneath the Pamir. Earth and Planetary Science Letters, 375, 101-112.
Schneider, F. M., Yuan, X., Schurr, B., Mechie, J., Sippl, C., Kufner, S. K., . . . Murodkulov, S. (2019). The Crust in the Pamir: Insights From Receiver Functions. Journal of Geophysical Research: Solid Earth, 124(8), 9313-9331.
Sippl, C., Schurr, B., Tympel, J., Angiboust, S., Mechie, J., Yuan, X., . . . Haberland, C. (2013). Deep burial of Asian continental crust beneath the Pamir imaged with local earthquake tomography. Earth and Planetary Science Letters, 384, 165-177.
Tiwari, V. M., Mishra, D. C., & Pandey, A. K. (2015). The lithospheric density structure below the western Himalayan syntaxis: tectonic implications. Geological Society, London, Special Publications, 412(1), 55-65.
Van der Voo, R., Spakman, W., & Bijwaard, H. (1999). Tethyan subducted slabs under India. Earth and Planetary Science Letters, 171(1), 7-20.
Wang, C. (2004). Crustal structure of the northern margin of the eastern Tien Shan, China, and its tectonic implications for the 1906 M?7.7 Manas earthquake. Earth and Planetary Science Letters, 223(1-2), 187-202.
Wang, S., Chen, Y., Charreau, J., Li, Y., Chen, Z., Zhu, G., . . . Wang, L. (2021). Underthrusting of the Tarim Lithosphere Beneath the Western Kunlun Range, Insights From Seismic Profiling Evidence. Tectonics, 40(2).
Xu, Q., Zhao, J., Yuan, X., Liu, H., Ju, C., Schurr, B., & Bloch, W. (2021). Deep Crustal Contact Between the Pamir and Tarim Basin Deduced From Receiver Functions. Geophysical Research Letters, 48(9).
鲍子文, & 高原. (2017). 天山构造带及邻区地壳各向异性. 地球物理学报, 60(04), 1359-1375. http://html.rhhz.net/dqwlxb/2017-4-1359.htm
陈顺云, 宋春燕, 闫玮, 刘琼颖, 刘培洵, 卓燕群, & 张智河. (2021). 2020年1月19日伽师M_S6.4地震前后的基岩温度变化. 地震地质, 43(02), 447-458. https://www.dzdz.ac.cn/CN/abstract/abstract11606.shtml
崔华伟, 万永革, 黄骥超, 盛书中, & 靳志同. (2019). 帕米尔—兴都库什地区构造应力场反演及拆离板片应力形因子特征研究. 地球物理学报, 62(05), 1633-1649. http://www.igg-journals.cn/article/doi/10.6038/cjg2019M0202?viewType=HTML
高锐, 黄东定, 卢德源, 钱桂, 李英康, 匡朝阳, . . . 烨, 管. (2000). 横过西昆仑造山带与塔里木盆地结合带的深地震反射剖面. 科学通报(17), 1874-1879. https://www.sciengine.com/CSB/article?doi=10.1360/csb2000-45-17-1874&scroll=
高锐, 王海燕, 王成善, 尹安, 张玉修, 李秋生, . . . 李文辉. (2011). 青藏高原东北缘岩石圈缩短变形——深地震反射剖面再处理提供的证据. 地球学报, 32(05), 513-520. http://www.cagsbulletin.com/dqxbcn/ch/reader/view_abstract.aspx?flag=1&file_no=20110501&journal_id=dqxbcn
高锐, 肖序常, 刘训, 管烨, 李秋生, 卢德源, & 李朋武. (2001). 新疆地学断面深地震反射剖面揭示的西昆仑-塔里木结合带岩石圈细结构. 地球学报(06), 547-552+570. http://www.cagsbulletin.com/dqxbcn/ch/reader/view_abstract.aspx?file_no=20010613
贺日政, 高锐, 李秋生, 管烨, & 李朋武. (2001). 新疆天山(独山子)-西昆仑(泉水沟)地学断面地震与重力联合反演地壳构造特征. 地球学报(06), 553-558. http://www.cagsbulletin.com/dqxbcn/ch/reader/view_abstract.aspx?flag=1&file_no=20010614&journal_id=dqxbcn
贺日政, 赵大鹏, 高锐, 王宝善, 齐诚, & 王宝善. (2006). 西昆仑造山带下岩石圈地幔速度结构. 地球物理学报(03), 778-787. http://www.geophy.cn/article/id/cjg_51
侯贺晟, 高锐, 贺日政, 蔡勋育, 刘金凯, 熊小松, . . . Roecker, S. (2012). 西南天山—塔里木盆地结合带浅深构造关系——深地震反射剖面的初步揭露. 地球物理学报, 55(12), 4116-4125. http://www.geophy.cn/article/doi/10.6038/j.issn.0001-5733.2012.12.024
姜迪迪, 江为为, 胥颐, 郝天珧, 胡卫剑, & 余景锋. (2014). 中国西部地区地壳结构特征与强震活动相关性研究. 地球物理学报, 57(12), 4029-4040. http://www.geophy.cn/article/doi/10.6038/cjg20141215
雷建设, 周蕙兰, & 赵大鹏. (2002). 帕米尔及邻区地壳上地幔P波三维速度结构的研究. 地球物理学报(06), 802-811+907. http://www.geophy.cn/article/id/cjg_3538
李秋生, 卢德源, 高锐, 李敬卫, 范井义, 熊贤明, . . . 李德兴. (2000). 横跨西昆仑-塔里木接触带的爆炸地震探测. 中国科学(D辑:地球科学)(S1), 16-21. https://www.sciengine.com/publisher/scp/journal/Sci%20Sin%20Terrae-D/30/%E5%A2%9E%E5%88%8A%E2%85%A0/10.1360/zd2000-30-S1-16?slug=fulltext
李秋生, 卢德源, 高锐, 张之英, 刘文, 李英康, . . . 熊贤明. (2001). 新疆地学断面(泉水沟-独山子)深地震测深成果综合研究. 地球学报(06), 534-540. http://www.cagsbulletin.com/dqxbcn/ch/reader/view_abstract.aspx?flag=1&file_no=20010611&journal_id=dqxbcn
李玮, 陈赟, 谭萍, & 袁晓晖. (2020). 大陆深俯冲的深浅动力学响应:来自帕米尔高原地壳精细结构的约束. 中国科学:地球科学, 50(05), 663-676.
李昱, 刘启元, 陈九辉, 李顺成, 郭飚, & 赖院根. (2007). 天山地壳上地幔的S波速度结构. 中国科学(D辑:地球科学)(03), 344-352. https://www.sciengine.com/publisher/scp/journal/Sci%20Sin%20Terrae-D/37/3/10.1360/zd2007-37-3-344?slug=fulltext
刘志, 张先康, 周雪松, 赵金仁, 张成科, & 潘纪顺. (2003). 帕米尔东北侧地壳物性结构及其发震环境探讨. 地震学报(03), 242-249+341. https://www.dzxb.org/article/id/6e15a1ae-bee2-4ceb-8e46-5e3d2dac10b8
卢德源, 李秋生, 高锐, 李英康, 李德兴, 刘文, & 张之英. (2000). 横跨天山的人工爆炸地震剖面. 科学通报(09), 982-988. https://www.sciengine.com/CSB/article?doi=10.1360/csb2000-45-9-982&scroll=
卢丽莉, 陈顺云, 刘琼颖, 闫玮, 刘培洵, 宋春燕, . . . 陈立春. (2021). 利用基岩温度获取地下流体运移特征:以喀什地区为例. 地球物理学报, 64(12), 4594-4606. http://www.geophy.cn/article/doi/10.6038/cjg2021P0108
鲁新便, 何发岐, & 赵洪生. (1997). 塔里木盆地西南缘构造带的地球物理特征、构造及其演化. 石油物探(01), 43-52. http://www.geophysics.cn/CN/abstract/abstract2947.shtml
鲁新便, 石彦, & 田春来. (1995). 塔里木盆地西南部—西昆仑地区构造电性特征与A型俯冲模式. 石油实验地质(03), 238-248. http://www.sysydz.net/cn/article/doi/10.11781/sysydz199503238
吕子强, 赵俐红, 李铂, & 杨玉永. (2019). 天山造山带地区瑞利面波相速度与方位各向异性. 地球物理学报, 62(09), 3354-3364. http://www.geophy.cn/article/doi/10.6038/cjg2019M0276
马海陇,于静芳,张长建,王明 & 陈群.(2019).塔里木盆地巴楚隆起东段北东向走滑断裂特征. 新疆地质(03),348-353. 塔里木盆地巴楚隆起东段北东向走滑断裂特征-【维普期刊官网】- 中文期刊服务平台 (cqvip.com)
马润勇,彭建兵,门玉明,潘爱芳.(2003).逆冲断层发育的力学机制研究. 西北大学学报(自然科学版)(02),196-200. 西北大学学报(自然科学版) (nwu.edu.cn)
米宁,王良书,李华,徐鸣洁,李成,张勇,陈运平,于大勇.(2005).天山和塔里木盆山接合部地壳上地幔速度结构研究. 科学通报(04),363-368.
苗继军,贾承造,侯向辉,王招明,邹才能,汤良杰 & 宋玉斌.(2007).塔里木盆地西部喀什地区新生代褶皱冲断带构造解析. 地质科学(04),740-752. 塔里木盆地西部喀什地区新生代褶皱冲断带构造解析 (dzkx.org)
裴军令,李海兵,司家亮,家伟,吴富峣,孙知明 & 赵越.(2011).早更新世以来青藏高原隆升作用在塔里木盆地腹地的响应. 岩石学报(11),3487-3498. 早更新世以来青藏高原隆升作用在塔里木盆地腹地的响应 (ysxb.ac.cn)
彭守涛.库车坳陷北部白垩系磁性地层划分[J].科学通报,2005,(19):2136-2144.
钱俊锋,肖安成,张微,孟立丰,王亮 & 楼谦谦.(2009).南天山西段前陆褶皱冲断带平衡剖面分析. 科技通报(04),402-406. http://dx.chinadoi.cn/10.3969/j.issn.1001-7119.2009.04.004
钱俊锋,肖安成,程晓敢,王亮,张微,孟立丰 & 姚琪.(2008).喀什北缘南天山冲断带构造变形分析. 中国矿业大学学报(04),538-544. http://dx.chinadoi.cn/10.3321/j.issn:1000-1964.2008.04.020
钱俊锋,肖安成,张微,孟立丰,王亮 & 楼谦谦.(2009).南天山西段前陆褶皱冲断带平衡剖面分析. 科技通报(04),402-406. http://dx.chinadoi.cn/10.3969/j.issn.1001-7119.2009.04.004
钱俊锋,肖安成,杨树锋,贾东,孟立丰 & 李一泉.(2009).南天山造山带与西昆仑(帕米尔)造山带深层岩石圈对接. 科技通报(02),153-159+166. http://dx.chinadoi.cn/10.3969/j.issn.1001-7119.2009.02.007
钱俊锋,肖安成,周乐尧,杨树锋 & 孟立丰.(2010).南天山与西昆仑帕米尔冲断带的空间对接关系研究. 中国矿业大学学报(06),881-885. 南天山与西昆仑帕米尔冲断带的空间对接关系研究 (wanfangdata.com.cn)
钱俊锋,肖安成,杨树锋,李平,邱玉双,孟立丰... & 王亮.(2011).南天山冲断带与帕米尔冲断带构造接触关系探讨. 科技通报(04),523-530. doi:10.13774/j.cnki.kjtb.2011.04.033. http://dx.chinadoi.cn/10.3969/j.issn.1001-7119.2011.04.011
邱荣华,陈文礼,林社卿,杜耀斌,渠渝鲁.(2001).焉耆盆地中生界层序地层和沉积体系分析. 地球科学(06),615-620. 焉耆盆地中生界层序地层和沉积体系分析 (earth-science.net)
曲国胜,Joseph,Canerot,王宗起,赵民.(1996).造山带弧形构造——西昆仑—帕米尔弧及其预测. 地质科学(04),313-326. 造山带弧形构造——西昆仑—帕米尔弧及其预测 (dzkx.org)
曲国胜,陈杰,陈新发,Canerot J,李亦纲,尹军平,李军,彭琪宇,尹金辉.(2001).塔里木盆地阿图什-八盘水磨反冲构造系统研究. 地震地质(01),1-14. https://www.dzdz.ac.cn/CN/
曲国胜,李亦纲,李岩峰,等. 塔里木盆地西南前陆构造分段及其成因[J]. 中国科学D辑,2005,35(3):193-202. DOI:10.3969/j.issn.1674-7240.2005.03.001. 塔里木盆地西南前陆构造分段及其成因 (sciengine.com)
曲国胜,马宗晋,张宁,李涛 & 田野.(2008).准噶尔盆地及周缘断裂构造特征. 新疆石油地质(03),290-295. http://www.zgxjpg.com/CN/
饶刚,沈忠悦,汪新,唐鹏程,裴仰文,付璐露 & 李世琴.(2009).南天山库车坳陷吐孜玛扎剖面磁性地层学研究.中国地球物理学会.(eds.)中国地球物理·2009(pp.456).中国科学技术大学出版社. 南天山库车坳陷吐孜玛扎剖面磁性地层学研究 (wanfangdata.com.cn)
史兴民,李有利,杨景春,南峰 & 钱蟒.(2007).新疆玛纳斯河石河子北郊剖面的沉积环境研究. 干旱区资源与环境(03),99-104. 文章详细信息 (cnki.net)
泰国卿,陈九辉,刘大建,顾群,熊杨武,李海孝.(1994).昆仑山脉和喀喇昆仑山脉地区的地壳上地幔电性结构特征. 地球物理学报(02). 昆仑山脉和喀喇昆仑山脉地区的地壳上地幔电性结构特征 (geophy.cn)
汤良杰,邱海峻,云露,杨勇,黄太柱,王鹏昊... & 蒋华山.(2012).塔里木盆地北缘—南天山造山带盆-山耦合和构造转换. 地学前缘(05),195-204. http://www.earthsciencefrontiers.net.cn/CN/
唐明帅,郑勇,葛粲,王海涛,冀战波,孔祥艳... & 李志海.(2014).帕米尔东北缘地壳结构的P波接收函数研究. 地球物理学报(10),3176-3188. 帕米尔东北缘地壳结构的P波接收函数研究 (geophy.cn)
田继强,贾承造,段书府,陈竹新,肖安成,高力... & 王成林.(2012).塔西南昆仑山前冲断带甫沙—克里阳段构造特征与物理模拟. 石油学报(06),941-948. http://www.syxb-cps.com.cn/CN/Y2012/V33/I6/941
汪新.(2005).南天山山前复杂褶皱的构造形态分析:以库车秋里塔克背斜和柯坪八盘水磨背斜为例. 高校地质学报(04),568-576. https://geology.nju.edu.cn/CN/
汪新,王招明,谢会文,李世琴,唐鹏程,尹宏伟... & 黄少英.(2010).塔里木库车坳陷新生代盐构造解析及其变形模拟. 中国科学:地球科学(12),1655-1668. 塔里木库车坳陷新生代盐构造解析及其变形模拟 (sciengine.com)
王步清.(2009).塔里木盆地乌泊尔构造带构造平衡剖面分析. 新疆石油地质(02),186-187. http://www.zgxjpg.com/CN/
王步清,谢会文,陈汉林,王清华 & 杨宝俊.(2011).塔里木盆地西南坳陷周缘的滑脱构造. 地质科学(03),733-742. 塔里木盆地西南坳陷周缘的滑脱构造 (dzkx.org)
王桂梁,姜波,余志伟.(1994).逆冲断层前锋带的构造样式. 地质科技情报(03). 逆冲断层前锋带的构造样式 (wanfangdata.com.cn)
王国林, 李曰俊, 孙建华, 黄智斌, 赵岩, 刘亚雷. 塔里木盆地西北缘柯坪冲断带构造变形特征[J]. 地质科学, 2009, 44(1): 50-62. 塔里木盆地西北缘柯坪冲断带构造变形特征 (dzkx.org)
王黎栋,于炳松,张永旺 & 苗继军.(2006).塔里木盆地西部康克林组沉积期生物礁滩体——以柯坪地区苏巴什露头剖面为例. 现代地质(02),291-298. http://www.geoscience.net.cn/CN/
王胜利,卢华复,陈剑.(2002).库车再生前陆逆冲带生长褶皱的倾斜剪切恢复. 石油学报(03),18-22+8.
王世虎,徐希坤,宋国奇.(2001).塔西南坳陷和田凹陷前陆逆冲带构造特征. 石油实验地质(04),378-383.
魏国齐,贾承造.(1998).塔里木盆地逆冲带构造特征与油气. 石油学报(01). http://www.syxb-cps.com.cn/CN/Y1998/V19/I1/11
温声明,丁长辉,刘兴晓,许怀智 & 王贵重.(2005).塔里木盆地塔东南地区构造特征. 石油地球物理勘探(S1),19-24+138. http://www.ogp-cn.com/CN/Y2005/V40/IS1/19
温声明,王贵重,程明华 & 王志勇.(2006).南天山山前冲断带的构造样式及成因探讨. 新疆地质(01),24-29. http://dx.chinadoi.cn/10.3969/j.issn.1000-8845.2006.01.006
邬光辉,罗春树,胡太平,黄广建,席勤 & 李文华.(2007).褶皱相关断层——以库车坳陷新生界盐上构造层为例. 地质科学(03),496-505. 褶皱相关断层——以库车坳陷新生界盐上构造层为例 (dzkx.org)
伍秀芳,刘胜,汪新,杨树锋,顾雪梅.(2004).帕米尔—西昆仑北麓新生代前陆褶皱冲断带构造剖面分析. 地质科学(02),260-271. 帕米尔—西昆仑北麓新生代前陆褶皱冲断带构造剖面分析 (dzkx.org)
肖安成,陈毓遂,胡望水,刘学峰,刘生国.(1995).塔里木盆地西南坳陷的构造类型. 新疆石油地质(02). http://www.zgxjpg.com/CN/
肖安成.(1996).塔里木盆地西南缘西昆仑前陆逆冲-褶皱带主滑脱面深度. 江汉石油学院学报(01). 塔里木盆地西南缘西昆仑前陆逆冲-褶皱带主滑脱面深度-【维普期刊官网】- 中文期刊服务平台 (cqvip.com)
肖安成,李启明,董大忠.(1997).中国西北含油气盆地前陆冲断带的构造特征. 江汉石油学院学报(03). 中国西北含油气盆地前陆冲断带的构造特征-【维普期刊官网】- 中文期刊服务平台 (cqvip.com)
肖安成,李景义,张春生.(1998).塔里木盆地色力布亚断裂系的走滑双重构造特征. 江汉石油学院学报(02). 塔里木盆地色力布亚断裂系的走滑双重构造特征-【维普期刊官网】- 中文期刊服务平台 (cqvip.com)
肖安成,张春生,李景义,陈振银.(1999).干涉背斜:冲断带内一种新的油气圈闭——以外帕米尔阿克脱拉尔背斜为例. 江汉石油学院学报(02). 干涉背斜:冲断带内一种新的油气圈闭——以外帕米尔阿克脱拉尔背斜为例-【维普期刊官网】- 中文期刊服务平台 (cqvip.com)
肖安成,杨树锋,陈汉林,贾承造,魏国齐.(2000).西昆仑山前冲断系的结构特征. 地学前缘(S2),128-136. 西昆仑山前冲断系的结构特征-【维普期刊官网】- 中文期刊服务平台 (cqvip.com)
谢小敏,胡文瑄,王小林,钱一雄,张军涛,曹剑 & 李庆.(2009).新疆柯坪地区寒武纪-奥陶纪碳酸盐岩沉积旋回的碳氧同位素研究. 地球化学(01),75-88. doi:10.19700/j.0379-1726.2009.01.009. 新疆柯坪地区寒武纪-奥陶纪碳酸盐岩沉积旋回的碳氧同位素研究-《地球化学》 (geochimica.cn)
胥颐,刘福田,刘建华,孙若昧.(2000).天山地震带的地壳结构与强震构造环境. 地球物理学报(02),184-193. 天山地震带的地壳结构与强震构造环境 (geophy.cn)
胥颐,Steven W.Roecker,魏若平,张文来,魏斌.(2005).天山中部的地震定位和地壳活动性分析. 地球物理学报(06). 天山中部的地震定位和地壳活动性分析 (geophy.cn)
胥颐,刘建华,刘福田,朱令人,龙海英 & 魏斌.(2006).天山—帕米尔结合带的地壳速度结构及地震活动研究. 地球物理学报(02),469-476. 天山—帕米尔结合带的地壳速度结构及地震活动研究 (geophy.cn)
杨庚,钱祥麟.(1995).塔里木盆地库车坳陷冲断构造带储油构造探讨. 石油勘探与开发(06). 塔里木盆地库车坳陷冲断构造带储油构造探讨 (wanfangdata.com.cn)
易士威,杨海军,李君,李勇,莫午零 & 雷刚林.(2012).塔里木盆地前陆冲断带含油气构造样式及成藏主控因素. 新疆石油地质(03),272-276. 塔里木盆地前陆冲断带含油气构造样式及成藏主控因素 (wanfangdata.com.cn)
张国清,吴晓智,唐勇.(2000).塔西南甫沙-克里阳地区盆山接触带构造特征及油气勘探有利区带. 新疆石油地质(06),459-461+486-535. http://www.zgxjpg.com/CN/
张培震.(2008).青藏高原东缘川西地区的现今构造变形、应变分配与深部动力过程. 中国科学(D辑:地球科学)(09),1041-1056. 青藏高原东缘川西地区的现今构造变形、应变分配与深部动力过程 (sciengine.com)
张玮,雷刚林,师骏,曾昌民,杜治利 & 陈才.(2012).塔西南坳陷甫沙构造带正反转构造及其石油地质意义. 吉林大学学报(地球科学版)(03),681-688+714. doi:10.13278/j.cnki.jjuese.2012.03.007. 文章详细信息 (chinajournal.net.cn)
张先康,赵金仁,张成科,任青芳,聂文英,成双喜,潘素珍,唐周琼.(2002).帕米尔东北侧地壳结构研究. 地球物理学报(05),665-671. 帕米尔东北侧地壳结构研究 (geophy.cn)
张永,何登发 & 刘长磊.(2019).塔里木盆地巴楚隆起的三维地质结构及成因机制. 地学前缘(01),134-148. doi:10.13745/j.esf.sf.2019.1.1. http://www.earthsciencefrontiers.net.cn/CN/Y2019/V26/I1/134
张志亮,沈忠悦,汪新,唐鹏程,余养里,赵博... & 石林权.(2013).库车坳陷克拉苏河新生代沉积岩磁组构特征与古流向分析. 地球物理学报(02),567-578. 库车坳陷克拉苏河新生代沉积岩磁组构特征与古流向分析 (geophy.cn)
赵俊猛,黄英,马宗晋,邵学钟,程宏岗,王伟 & 徐强.(2008).准噶尔盆地北部基底结构与属性问题探讨. 地球物理学报(06),1767-1775. 准噶尔盆地北部基底结构与属性问题探讨 (geophy.cn)
赵瑞斌,卢静芳,杨主恩,曲国胜 & 马宗晋.(2008).天山深浅构造特征及盆山耦合关系. 新疆石油地质(03),278-282. http://www.zgxjpg.com/CN/
郑洪波.(2002).从新疆叶城剖面砂岩和砾岩组分看西昆仑山的剥蚀历史. 地质力学学报(04),297-305. 从新疆叶城剖面砂岩和砾岩组分看西昆仑山的剥蚀历史 (geomech.ac.cn)
周辉,张健,许鹤华,李继亮.(2000).西昆仑及邻区岩石圈动力学特征. 自然科学进展(11). http://dx.chinadoi.cn/10.3321/j.issn:1002-008X.2000.11.016
周新源,罗金海,王清华.(2004).塔里木盆地南缘冲断带构造特征及其油气地质特征. 中国科学(D辑:地球科学)(S1),56-62. 塔里木盆地南缘冲断带构造特征及其油气地质特征 (sciengine.com)
庄锡进,陈伟,汪新.(2005).准噶尔盆地南缘吐谷鲁背斜的构造解释与初步建模. 大地构造与成矿学(02),223-226. doi:10.16539/j.ddgzyckx.2005.02.009. 准噶尔盆地南缘吐谷鲁背斜的构造解释与初步建模-《大地构造与成矿学》
Bai, L., Klemperer, S. L., Mori, J., Karplus, M. S., Ding, L., Liu, H., Li, G., Song, B., & Dhakal, S. (2019). Lateral variation of the Main Himalayan Thrust controls the rupture length of the 2015 Gorkha earthquake in Nepal. Science Advances, 5(6), eaav0723. https://www.science.org/doi/full/10.1126/sciadv.aav0723
Bhatti, Z. I., Zhao, J., Khan, N. G., & Shah, S. T. H. (2018). Structure of crust and upper mantle beneath NW Himalayas, Pamir and Hindukush by multi-scale double-difference seismic tomography. Physics of the Earth and Planetary Interiors, 281, 92-102.
Cui, Q., Zhou, Y., Li, W., Wei, R., & Li, G. (2019). Seismic evidence for the 410 km discontinuity beneath the Hindu Kush-Pamir region from the SdP converted phases. Tectonophysics, 766, 31-39.
Kelly, S., & Beaumont, C. (2021). Balanced cross‐sections and numerical modeling of the lithospheric‐scale evolution of the Hindu Kush and Pamir. Journal of Geophysical Research: Solid Earth, 126(3), e2020JB020678.
Tian, P., & He, C. (2019). Velocity weakening of simulated augite gouge at hydrothermal conditions: Implications for frictional slip of pyroxene‐bearing mafic lower crust. Journal of Geophysical Research: Solid Earth, 124(7), 6428-6451.
Xiao, Z., Fuji, N., Iidaka, T., Gao, Y., Sun, X., & Liu, Q. (2020). Seismic structure beneath the Tibetan plateau from iterative finite‐frequency tomography based on ChinArray: New insights into the Indo‐Asian collision. Journal of Geophysical Research: Solid Earth, 125(2), e2019JB018344.
Yang, Y., Zeng, Z., King, S. D., & Shuang, X. (2022). Double-sided subduction with contrasting polarities beneath the Pamir-Hindu Kush: Evidence from focal mechanism solutions and stress field inversion. Geoscience Frontiers, 13(4), 101399.
田平, & 何昌荣. (2020). 热水条件下透辉石的摩擦本构特征. 地球物理学报, 63(12), 4440-4450. http://html.rhhz.net/dqwlxb/2020-12-4440.htm