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姓名 陈凌 性别:
职称 研究员 学位 博士
电话 010-82998416 传真: 010-62010846
Email: lchen@mail.iggcas.ac.cn 邮编: 100029
地址 北京朝阳区北土城西路19号,中科院地质与地球物理研究所
更多信息:
English岩石圈演化国家重点实验室 大陆岩石圈演化动力学学科组
 
简历:
陈凌,女,中国科学院地质与地球物理研究所研究员。 
学习简历 
1989-1994,中国科学技术大学,地球与空间科学系,大学本科 
1994-1997,中国地震局地球物理研究所,固体地球物理学,硕士 
1997-2002,中国地震局地球物理研究所,固体地球物理学,博士 
工作简历 
2002.12-2005.12,中国科学院地质与地球物理研究所,博士后 
2006.1-2009.12,中国科学院地质与地球物理研究所,副研究员 
2010.1至今,中国科学院地质与地球物理研究所,研究员 
访问交流 
1998.4-1998.9,美国加州大学Santa Cruz分校,访问学者 
2000.5-2002.10,美国加州大学Santa Cruz分校,访问学者 
2010.5-2010.11,美国麻省理工学院(MIT), 访问学者
2014.12-2015.3,台湾大学地质系,客座教授
 
学科类别:
地球物理学
 
研究方向:
地震偏移成像方法(用于地震勘探和流动地震台阵探测),基于密集地震台阵观测的地球内部结构研究,岩石圈和上地幔性质,大陆演化
 
职务:
 
社会任职:
 
承担科研项目情况:

在研项目

  • 国家自然科学基金首批基础科学中心项目“克拉通破坏与陆地生物演化”,核心成员,2017.1 – 2021.12
 
获奖及荣誉:
  1. 2017  国家自然科学二等奖(排名第二)
  2. 2017 “万人计划”科技创新领军人才
  3. 2015  中青年科技创新领军人才
  4. 2014  中国科学院杰出科技成就奖(共20人,排名第7)
  5. 2012  国家自然科学基金委员 杰出青年科学基金
  6. 2009  王宽诚教育基金会 优秀女科学家专项奖
  7. 2006  中国地球物理学会 傅承义青年科技奖
  8. 2002  中国地震局防震减灾优秀成果二等奖(共9人,排名第4)
 
代表论著:

2018年:

  1. Wang, X., Chen, L.*, Ai, Y.S., Xu, T., Jiang, M.M., Ling, Y., Gao, Y.F., 2018, Crustal structure and deformation beneath eastern and northeastern Tibet revealed by P-wave receiver functions, Earth and Planetary Science Letters, 497, 69-79.
  2. He, L.F., Chen, L., Dorji, He, Z.X., Wang, X.B., Xiao, B.Y., Xu, L.G., Zhao, X.F., Xi, X.L., Yao, H.C., Chen, R.J., 2018, Mapping chromite deposits with audio magnetotellurics in the Luobusa ophiolite of southern Tibet, Geophysics, 83(2), B47-B57.
  3. Lan, H.Q., Chen, L., 2018, An upwind fast sweeping scheme for calculating seismic wave first-arrival traveltimes for models with an irregular free surface, Geophysical Prospecting, 66, 327-341.
  4. Lan, H.Q., Chen, L., Badal, J., 2018, A hybrid method for calculating seismic wave first-arrival traveltimes in two-dimensional models with an irregular surface, Journal of Applied Geophysics, 155, 70-77.
  5. Yang, Y., Yao, H.J.*, Zhang, P., Chen, L., 2018, Crustal azimuthal anisotropy in the trans-North China orogen and adjacent regions from receiver functions, Science China Earth Science, 61(7), 903-913./杨妍,姚华建*,张萍,陈凌,2018, 用接收函数方法研究华北克拉通中部造山带及其邻域地壳方位各向异性,中国科学 地球科学,48(7),912-923。
  6. Bagherabadi, A.S., Sobouti, F., Ghods, A., Motaghi, K., Talebian, M., Chen, L., Jiang, M.M., Ai, Y.S., He, Y.M., 2018, Upper mantle anisotropy and deformation beneath the major Thrust-and-Fold Belts of Zagros and Alborz and the Iranian Plateau, Geophysical Journal International, 214, 1913-1918.
  7. Wan, B., Deng, C., Najafi, A., Hezareh, M.R., Talebian, M., Dong, L.L., Chen, L., Xiao, W.J., 2018, Fertilizing porphyry Cu deposits through deep crustal hot zone melting, Gondwana Research, 60, 179-185.
  8. Zhang, Z.Y., Xiao, W.J., Ji, W.Q., Majidifard, M.R., Rezaeian, M., Talebian, M., Xiang, D.F., Chen, L., Wan, B., Ao, S.J., Esmaeili, R., 2018, Geochemistry, zircon U-Pb and Hf isotope for granitoids, NW Sanandaj-Sirjan zone, Iran: Implications for Mesozoic-Cenozoic episodic magmatism during Neo-Tethyan lithospheric subduction, Gondwana Research, 62, 227-245.
  9. 张耀阳,陈凌*,艾印双,姜明明,许卫卫,申中寅,2018, 利用S波接收函数研究华南块体的岩石圈结构,地球物理学报,61(1), 138-149。
2017年:
  1. Chen, L., 2017, Layering of subcontinental lithospheric mantle, Science Bulletin, 62(10), 1030-1034.
  2. Ling, Y., Chen, L.*, Wei, Z.G., Jiang, M.M., Wang, X., 2017, Crustal S-velocity structure and radial anisotropy beneath the southern part of central and western North China Craton and the adjacent Qilian Orogenic Belt from ambient noise tomography, Science China Earth Science, 60(10), 1752-1768./凌媛,陈凌*,危自根,姜明明,王旭,2017,利用噪声层析成像研究华北克拉通中-西部南段及其邻区祁连造山带地壳S波各向异性速度结构,中国科学 地球科学,47(10),1202-1219。
  3. He, L.F., Chen, L., Wang, X.B., Wang, Z.J., Zhang, B., Xu, L.G., Liu, X.J., Li, W.L., Chen, R.J., 2017, Electrical properties and its correlation to the petrology of the Upper Yangtze organic shales, Geophysics, 82(4), D199-D209.
  4. Lü, Y., Chen, L., 2017, Upper crustal P-wave velocity structure beneath two volcanic areas in northern Iran, Science China Earth Science, 60(4), 786-795.
  5. Lü, Y., Ni, S.D., Chen, L., Chen, Q.-F., 2017, Pn tomography with Moho depth correction from eastern Europe to western China, Journal of Geophysical Research Solid Earth, 122, doi:10.1002/2016JB013052.
  6. Wang, X.J., He, L.F., Chen, L., Xu, L.G., Li, J., Lei, X.Y., Wei, D.H., 2017, Mapping deeply buried karst cavities using CSAMT: a case history of a tunnel investigation in southwest China, Geophysics, 82(1), EN1-EN11.
  7. Wei, X.Z., Jiang, M.M.*, Liang, X.F., Chen, L., Ai, Y.S., 2017, Limited southward underthrusting of the Asian lithosphere and material extrusion beneath the northeastern margin of Tibet, inferred from teleseismic Rayleigh wave tomography, Journal of Geophysical Research Solid Earth, 122, doi:10.1002/2016JB013832.
  8. Zhang, Z.Y., Xiao, W.J., Majidifard, M.R., Zhu, R.X., Wan, B., Ao, S.J., Chen, L., Rezaeian, M., Esmaeili, R., 2017, Detrital zircon provenance analysis in the Zagros Orogen, SW Iran: implications for the amalgamation history of the Neo-Tethys, International Journal of Earth Sciences, 106(4), 1223-1238.
2016年:
  1. He, L.F., Chen, L., Dorji, Xi, X.L., Zhao, X.F., Chen, R.J., Yao, H.C., 2016, Mapping the geothermal system using AMT and MT in the QP (Mapamyum) field, Lake Manasarovar, southwestern Tibet, Energies, 9(10), 855, doi:10.3390/en9100855.
  2. Wei, Z.G., Chen, L., Li, Z.W., Ling, Y., Li, J., 2016, Regional variation in Moho depth and Poisson's ratio beneath eastern China and its tectonic implications, Journal of Asian Earth Sciences, 115, 308-320.
  3. Ao, S.J., Xiao, W.J., Jafari, M.K., Talebian, M., Chen, L., Wan, B., Ji, W.Q., Zhang, Z.Y., 2016, U–Pb zircon ages, field geology and geochemistry of the Kermanshah ophiolite (Iran): From continental rifting at 79 Ma to oceanic core complex at ca. 36 Ma in the southern Neo-Tethys, Gondwana Research, 31, 305-318.
  4. 危自根,储日升,陈凌,崇加军,李志伟,2016, 复杂地壳接收函数H-κ叠加―以安纳托利亚板块为例,地球物理学报,59(11),4048-4062。
2015年:
  1. Wei, Z.G., Chen, L., Jiang, M.M., Ling, Y., 2015, Lithospheric structure beneath the central and western North China Craton and the adjacent Qilian orogenic belt from Rayleigh wave dispersion analysis, Tectonophysics, 646, 130-140.
  2. Wei, Z.G., Chu, R.S.*, Chen, L., 2015, Regional differences in crustal structure of the North China Craton from receiver functions, Science China Earth Science, 58(12), 2200-2210./危自根,储日升*,陈凌,2015, 华北克拉通地壳结构区域差异的接收函数研究,中国科学 地球科学,45(10),1504-1514。

2014年:

  1. Chen, L., Jiang, M.M., Yang, J.H., Wei, Z.G., Liu, C.Z., Ling, Y., 2014, Presence of an intralithospheric discontinuity in the central and western North China Craton: Implications for destruction of the craton, Geology, 42(3), 223-226.
  2. Su, B.X., S.L. Chung, M.H. Zarrinkoub, K.N. Pang, L. Chen, W.-Q. Ji, A. Brewer, J.-F. Ying, M.M. Khatib, 2014, Composition and structure of the lithospheric mantle beneath NE Iran: Constraints from mantle xenoliths, Lithos, 202-203, 267-282.

2013年: 

  1. Wei, Z., Chen, L., Wang, B.Y., 2013, Regional variations in crustal thickness and Vp/Vs ratios beneath the central-western North China Craton and adjacent regions, Geological Journal, 48(5), 531-542. 
  2. Jiang, M.M., Ai, Y.S., Chen, L., Yang, Y., 2013. Local modi?cation of the lithosphere beneath the central and western North China Craton: 3D constraints from Rayleigh wave tomography, Gondwana Research, 24, 849-864. 
  3. Cheng, C., Chen, L.*, Yao, H.J., Jiang, M.M., Wang, B.Y., 2013, Distinct variations of crustal shear wave velocity structure and radial anisotropy beneath the North China Craton and tectonic implications, Gondwana Research, 23, 25-38. 
  4. Zhang, H.-F., Chen, L., Santosh, M., Menzies, M.A., 2013, Construction and destruction of cratons: Preface, Gondwana Research, 23, 1-3. 
  5. 王炳瑜,陈凌,艾印双,何玉梅,2013,华北克拉通东北部及邻区地壳和地幔转换带厚度研究,地球物理学报,56(11),60-68。 

2012年: 

  1. Chen, L., Zhang, H.-F., Menzies, M.A., 2012, Understanding the formation, reactivation and destruction of cratons — Preface, Lithos, 149, 1-3. 
  2. Poliannikov, O.V., Rondenay, S., and Chen, L., 2012, Interferometric imaging of the underside of a subducting crust, Geophys. J. Int., 189, 681-690. 
  3. 危自根,陈凌,2012,东北地区至华北北缘地壳结构的区域差异: 地壳厚度与波速比的联合约束,地球物理学报,55(11),3601-3614。 

2011年: 

  1. Wei, Z., Chen, L., Xu, W., 2011, Crustal thickness and Vp/Vs ratio of the central and western North China Craton and its tectonic implications, Geophys. J. Int., 186, 385-389. 
  2. Zhu, R., Chen, L., Wu, F., Liu, J., 2011, Timing, scale and mechanism of the destruction of the North China Craton, Sci China-Earth Sci, 54(6), 789-797./朱日祥,陈凌,吴福元,刘俊来,2011,华北克拉通破坏的时间、范围与机制,中国科学:地球科学,41(5),583-592。 
  3. 危自根,陈凌,杨小林,2011,辽东台隆、燕山带和兴蒙造山带台站下方地壳厚度和平均波速比(Vp/Vs)的横向变化及其构造意义,地球物理学报,54(11),2799-2808。 

2010年: 

  1. Chen L., 2010, Concordant structural variations from the surface to the base of the upper mantle in the North China Craton and its tectonic implications, Lithos, 120, 96-115. 
  2. 陈凌,程骋,危自根,2010,从华北克拉通中、西部结构的区域差异性探讨克拉通破坏,地学前缘,17(1),212-228。 
  3. 陈凌,危自根,程骋,2010,华北克拉通边界带区域深部结构的特征差异性及其构造意义,地球科学进展,25(6),571-581。 

2009年: 

  1. Chen, L., Cheng, C., and Wei, Z.G., 2009, Seismic evidence for significant lateral variations in lithospheric thickness beneath the central and western North China Craton, Earth Planet. Sci. Lett., 286, 171-183. 
  2. Chen, L. and Y. Ai, 2009, Discontinuity Structure of the Mantle Transition Zone beneath the North China Craton from Receiver Function Migration, J. Geophy. Res., 114, B06307, doi:10.1029/2008JB006221. 
  3. Chen, L., 2009, Lithospheric structure variations between the eastern and central North China Craton from S- and P-receiver function migration, Phys. Earth Planet. Inter., 173, 216-227. 
  4. Wang, T. and Chen, L., 2009, Distinct Velocity variations around the Base of the Upper Mantle beneath Northeast Asia, Phys. Earth Planet. Inter., 172, 241-256. 

2008-2005年: 

  1. Chen, L., Wang, T., Zhao, L. and Zheng, T., 2008, Distinct Lateral Variation of Lithospheric thickness in the Northeastern North China Craton, Earth Planet. Sci. Lett., 267, 56-68. 
  2. Tang, Q. and Chen, L., 2008, Structure of the crust and uppermost mantle of the Yanshan Belt and adjacent regions at the northeastern boundary of the North China Craton from Rayleigh Wave Dispersion Analysis, Tectonophysics, 455, 43-52. 
  3. Zhao, L., L. Wen, L. Chen, and T. Zheng, 2008, A two-dimensional hybrid method for modeling seismic wave propagation in anisotropic media, J. Geophy. Res., 113, B12307, doi:10.1029/2008JB005733.  
  4. Zheng T., L. Chen, L. Zhao, R. Zhu, 2007, Crustal structure across the Yanshan belt at the northern margin of the North China Craton, Phys. Earth Planet. Inter., 161, 36-49. 
  5. Zhao, L., T. Zheng, L. Chen, Q. Tang, 2007, Shear wave splitting in eastern China, implications for upper mantle deformation beneath continental margin, Phys. Earth Planet. Inter., 162, 73-84. 
  6. Zheng, T.Y., L. Chen, and L. Zhao, 2007, The seismological studies of crust and lithospheric mantle structure in the eastern North China craton. Journal of China University of Geosciences, 18, 441-442. 
  7. Chen, L., T. Zheng, and W. Xu, 2006, Receiver function migration image of the deep structure in the Bohai Bay Basin, eastern China, Geophys. Res. Lett., 33, L20307, doi:10.1029/2006GL027593. 
  8. Chen, L., T. Zheng, and W. Xu, 2006, A Thinned Lithospheric Image of the Tanlu Fault Zone, Eastern China: Constructed from Wave Equation Based Receiver Function Migration, J. Geophys. Res., 111, B09312, doi:10.1029/ 2005JB003974. 
  9. Chen, L., Wu, R.S. and Chen Y., 2006, Target-oriented beamlet migration based on Gabor-Daubechies frame decomposition, Geophysics, 71(2), S37-S52. 
  10. Zheng T., L. Chen, L. Zhao, W. Xu, and R. Zhu, 2006, Crust-mantle structure difference across the gravity gradient zone in North China Craton: Seismic image of the thinned continental crust, Phys. Earth Planet. Inter., 159, 43-58. 
  11. Wu, R.S., L. Chen, 2006, Mapping directional illumination and acquisition dip response using beamlet propagators, Geophysics, 71(4), S147-S159. 
  12. Chen, L., L. X. Wen, and T. Zheng, 2005, A Wave Equation Migration Method for Receiver Function Imaging: 1. Theory, J. Geophys. Res., 110, B11309, doi:10.1029/2005JB003665. 
  13. Chen, L., L. X. Wen, and T. Zheng, 2005, A Wave Equation Migration Method for Receiver Function Imaging: 2. Application to the Japan subduction zone, J. Geophys. Res., 110, B11310, doi:10.1029/2005JB003666. 
  14. Zheng, T., L. Zhao and L. Chen, 2005, A Detailed Receiver Function Image of the Sedimentary Structure in the Bohai Bay Basin, Phys. Earth Planet. Inter., 152, 129-143. 
  15. 陈凌,朱日祥,王涛,2007,大陆岩石圈研究进展,地学前缘14(2),58-75。 
  16. 王伟君,陈凌,陈棋福,刘杰,2007,2003年大姚地震震中区的速度和衰减结构,地球物理学报,50(3),770-779。 

2005年以前部分论文: 

  1. Wu, R.S., L. Chen, and Y. Wang, 2002, Prestack migration/imaging using synthetic beam sources and plane sources, Special issue of "Studia Geoph. et Geod.", 46, 651-666. 
  2. Chen, Y., L. Chen, G. Federico, K. Ota, J. Li, 2002, Seismic hazard and loss estimation for Central America, Natural Hazards, 25, 161-175. 
  3. Wu, R.S and L. Chen, 2001, Wave propagation and imaging using Gabor-Daubechies beamlets, Theoretical and Computational Acoustics 2001, Ed. Shang, E.C., Li, Q. and Gao, T.F., 661-670. 
  4. Chen, Y., Chen, Q., Chen, L., 2001, Vulnerability analysis in earthquake loss estimate, Nature Hazards, 23, 349-364. 
  5. Chen, Y., L. Chen, Z. Liu, R.S. Wu, 1998, A new fractal approach to the clustering of earthquake: physical fractal, Bull.Seism.Soc.Am., 88(1), 89-94.  
  6. Chen Y., J. Liu, L. Chen, Q. Chen, and, L. S. Chan, 1998, Global seismic hazard assessment based on area source model and seismicity data, Natural Hazards, 17, 251-267. 
  7. Chen Q., Y. Chen, J. Liu, and L. Chen, 1997, Quick and approximate estimation of earthquake loss based on macroscopic index of exposure and population distribution, Natural Hazards, 15, 217-229.  
  8. 陈凌,吴如山,王伟君,2004,基于Gabor-Daubechies小波束叠前深度偏移的角度域共成像道集,地球物理学报,47(5),876-885。 
  9. 陈凌,吴如山,陈颙, 2004,基于Gabor-Daubechies小波束域波场外推的散射系数矩阵的计算及其应用,地球物理学报,47(2),289-298。 
  10. 陈凌,吴如山,陈颙,王伟君,2001,声子波及其在地震波资料分解中的应用,地球物理学报,44(3),369-378。 
  11. 陈颙,陈凌,1999,地震危险性分析中最大地震震级的确定,地球物理学报,42(3),351-357。 
  12. 陈棋福,陈颙,陈凌,刘杰,李敏峰,1999,采用宏观经济指标估计地震损失,科学通报,44(3),199-204。 
  13. 刘杰,陈颙,陈凌,陈棋福,李闽峰,1999,全球地震危险性评估的简化方法,科学通报,44(1),92-96。
 

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