顾晓强
男, 博士, 教授,博士生导师,国家优青基金获得者,上海市“曙光”学者
1981年6月生, 浙江桐乡
guxiaoqiang@tongji.edu.cn
021-65984551
上海四平路1239号,同济大学地下建筑与工程系, 200092
英文主页(Resume)
主要研究方向:
(1)土的基本特性与高级土工试验;(2)岩土工程精细化变形分析与控制;(3)环境微振动分析及减隔振技术;(4)土动力学及岩土地震工程;(5)宏微观土力学及离散元数值模拟.
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2007.9~2011.8 香港大学土木工程系, 博士 (导师:杨峻教授)
2018.12~至今 同济大学地下建筑与工程系, 教授
主持纵向科研项目 1. 国家自然科学基金面上项目, 52178344, 复杂应力路径下土体各向异性小应变特性及其机理研究, 2022/01-2025/12. 2. 上海市曙光计划,20SG22, 复杂地层中环境微振动的分析理论与应用, 2021/01-2023/12. 3. 国家自然科学基金优青项目, 51822809, 岩土与基础工程, 2019/01-2021/12. 4. 国家自然科学基金面上项目, 41772283, 多维地震作用下含细颗粒饱和砂土液化特性及其微观机理研究, 2018/01-2021/12. 5. 国家自然科学基金青年基金项, 51308408, 松散砂土静态液化失稳机理的模型试验及离散元模拟, 2014/01-2016/12. 6. 上海市“高峰学科”土木工程学科交叉基金,软土深层排水隧道建设关键土力学问题研究,2017/06-2019/06. 7. 国际地震工程联合实验室ILEE项目, Investigation on the liquefaction of natural sand with fines, 2018/06-2020/12. 8. 中国矿业大学深部岩土力学与地下工程国家重点实验室开放基金,SKLGDUEK1712,深层软土K0状态力学特性的时间效应研究, 2017/01-2018/12. 9. 中央高校基本科研业务费专项(同济大学英才计划),多维地震作用下含细颗粒饱和砂土液化特性研究,2016/01-2017/12. 10. 南京水利科学研究院水文与水资源国家重点实验室开放基金, 2014492311, 土石坝堆填料非共轴特性的宏微观研究, 2015/01-2016/12. 11. 中央高校基本科研业务费专项(同济大学交叉学科),铁路道砟劣化的细观机理,2015/01-2016/12. 12. 中央高校基本科研业务费专项(同济大学培育计划),考虑颗粒级配的砂性土剪切波速宏、微观研究,2014/01-2015/12. 主持横向科研项目 1. 中交建筑集团有限公司, 长距离大断面矩形顶管下穿京杭大运河施工关键技术研究,2023/6-2025/12. 2. 上海建筑设计研究院有限公司,合肥先进光源项目主体建筑基础振动控制,2023/03-2024/12. 3. 上海勘测设计研究院有限公司, 上海区域海上风电室内高级土工试验与物理模型试验, 2023/03-2024/12. 4. 上海勘测设计研究院有限公司, 15MW及以上风电机组基础地质勘察及支撑结构选型关键技术研究,2023/03-2025/06. 5. 上海勘测设计研究院有限公司, 海上风电桶型基础VHM-CAP设计程序研发服务,2022/9-2025/6. 6. 上海城建市政工程(集团)有限公司, 港口大型堆场变形分析理论与控制关键技术研究及工程应用示范, 2022/08-2024/12. 7. 中国水利水电科学研究院, 级配转换对粗粒料变形特性影响的分析模型研究, 2021/10-2024/12. 8. 上海耀龙投资有限公司, 前滩21-02、21-03地块地铁振动影响评估顾问, 2020/7-2024/12. 9. 中国电建集团华东勘测设计研究院有限公司, 白鹤滩水电站库区深厚覆盖层周期性水位变化下高填方场地工程建设关键技术研究,2020/01-2023/12. 10. 中科院北京高能物理研究所, 北京高能同步辐射光源(HEPS)地基基础微振动分析,2019/09-2020/12. 11. 浙江祥生建设工程有限公司, 智能建造基坑支护风险源平台建设研究,2019/07-2020/12. 12. 中国电建集团华东勘测设计研究院有限公司, 非洲Karuma水电站咨询,2018/01-2019/12. 13. 上海华东电力设计院, 中电投大丰H3#300MW海上风电高级土工测试,2017/09-2017/12. 14. 中交第三航务工程勘察设计院有限公司, 华能灌云400MW海上风电工程高级土工测试,2019/05-2019/8. 15. 中交第三航务工程勘察设计院有限公司, 非洲吉布提共和国LNG项目高级土工测试,2017/07-2017/12.
参与重大科研项目 1. 国家自然科学基金重点项目,51737010,城市地下空间工程安全控制理论与分布式感测预警方法,2018/01-2022/12,300万 2. 国家重点研发计划课题,2016YFC0800204,暴雨作用下城市重大基础设施渗流突变失效机制及控制技术,2016/07-2021/12,310万 3. 国家重点基础研究发展计划(973)课题,2012CB719803,填埋场失稳流滑机理及灾害评估,2012/01-2016/12,596万 4. 硬X射线自由电子激光装置关键技术:土建工程子课题,1800 万 5. 横琴口岸基坑群优化设计及风险防范,350万 6. 上海苏州河深层排水调蓄管道系统工程试验段监测技术与分析模型,344万 7. 输电线路膨胀岩土地基基础承载特性及工程设计优化技术研究,236万
在国内外学术期刊和会议上发表论文130余篇,其中SCI/EI收录90余篇,代表性论文如下: 1. Hu, J.,Wu, H.W., Gu, X.Q., Zhou, Q.H. Particle Shape Effects on Dynamic Properties of Granular Soils: A DEM Study. Computers and Geotechnics, 2023, 161: 105578 2. Zuo, K.L., Gu, X.Q., Hu C., Hu, J., Gao, G.Y. Shear stiffness of sand-fines binary mixtures: Effects of sand gradation and fines content. Construction and Building Materials, 2023, 383: 131364 3. Zuo, K.L., Gu, X.Q., Zhang J.C., Wang, R. Exploring packing density, critical state, and liquefaction resistance of sand-fines mixture using DEM. Computers and Geotechnics, 2023, 156, 105278 4. Gu X.Q., Liang X.M., Hu J. Quantifying fabric anisotropy of granular materials using wave velocity anisotropy: A numerical investigation. Geotechnique, https://doi.org/10.1680/jgeot.22.00314 5. Lai, H.Y., Gu, X.Q., Tu, W.Bo., Lin, Y.F., Xiao, J.D. Effects of soil small strain nonlinearity on dynamic impedance of horizontally loaded suction caisson for offshore wind turbines. Soil Dynamics and Earthquake Engineering, 2023, 165, 107731 6. Wu, H.W., Gu, X.Q., Hu, J., Zhou, Q.H. DEM simulation of small strain and large strain behaviors of granular soils with a coherent contact model. Granular Matter, 24:125. https://doi.org/10.1007/s10035-022-01286-8 7. Pegah E., Liu H., Gu X., Gholami A. A semi-analytical approach for efficient calculation of drained cross-anisotropic elastic moduli in saturated granular soils from undrained attributes. Computers and Geotechnics, 2022, 148, 104794 8. Qian J., Zhou C., Li W., Gu X.*, Qin Y., Xie L. 2022. Investigation on the Influencing Factors of K0 of Granular Materials Using DEM. Applied Science, 12, 2899 9. Gu X.G., Li Y.H., Hu J., Shi Z., Liang F., Huang M. Elastic shear stiffness anisotropy and fabric anisotropy of natural clays. Acta Geotechnica, 2022, 17:3229–3243. https://doi.org/10.1007/s11440-022-01468-x 10. Shan Y, Cheng G.H., Gu X.G., Zhou S.H., Xiao F.Z. Optimization of design parameters of displacement isolation piles constructed between a high-speed railway bridge and a double-line metro tunnel: From the view point of vibration isolation effect. Computers and Geotechnics, 2021, 140, 104460 11. Gu X.G., Wu D.S., Zuo K.L., Tessari A. Centrifuge shake table tests on the liquefaction resistance of sand with clayey fines. J. Geotech. Geoenviron. Eng., 2022, 148(2): 04021180 12. Tu W.B., Gu X.G., Chen H.P., Fang T., Geng D.X.. Time domain nonlinear kinematic seismic response of composite caisson-piles foundation for bridge in deep water. Ocean Engineering, 235,109398 13. Liang F.Y., Zhang Z.W., Wang C., Gu X.G., Lin Y.F., Yang W. Experimental study on stiffness degradation and liquefaction characteristics of marine sand in the east Nan-Ao area in Guangdong Province, China. Journal of Marine Science and Engineering, 2021, 9(6), 638, https://doi.org/10.3390/jmse9060638 14. Yu K.Y., Gu X.G., Huang M.S., Ma X.F., Li N. Experimental, numerical and analytical studies on the attenuation of maglev train-induced vibrations with depth in layered soils. Soil Dynamics and Earthquake Engineering, 143, 106628, https://doi.org/10.1016/j.soildyn.2021.106628 15. Bastola A., Gu X.G.,Zuo K.L. Numerical investigations on liquefaction potential of saturated silty sands. Soil Dynamics and Earthquake Engineering, 147, 106799, https://doi.org/10.1016/j.soildyn.2021.106799 16. Gu X.G., Zuo K.L., Tessari A., Gao, G.Y. Effect of saturation on the characteristics of P-wave and S-wave propagation in nearly saturated soils using bender elements. Soil Dynamics and Earthquake Engineering, 145, 106742. https://doi.org/10.1016/j.soildyn.2021.106742 17. Ma X. F., Cao M. Y., Gu X.Q.*, Zhang B. M., Yang Z. H., Guan P. F. Vibration-Isolation Performance of a Pile Barrier in an Area of Soft Soil in Shanghai. Shock and Vibrations, 2020, https://doi.org/10.1155/2020/8813476 18. Wenbo Tu, Xiaoqiang Gu, Xianfeng Ma*, Dawei Huang. Analysis of lateral dynamic response of caisson foundation in layered clayey soils considering scour-hole dimensions. Shock and Vibrations, 2020, https://doi.org/10.1155/2020/8827498 19. Gu X.Q., Zhang J.C., Huang X*. DEM analysis of monotonic and cyclic behaviors of sand based on critical state soil mechanics framework. Computers and Geotechnics, 2020, 128, 103787 20. Gu X.Q., Liang X.M., Shan Y., Huang X., Tessari A. Discrete element modeling of shear wave propagation using bender element in confined granular materials of different grain sizes. Computer and Geotechnics, 2020, 125,103672 21. Tu W.B., Huang M.S., Gu X.Q., Chen H.P., Liu Z.H. (2020). Experimental and analytical investigations on nonlinear dynamic response of caisson-pile foundations under horizontal excitation. Ocean Engineering, 208, 107431. https://doi.org/10.1016/j.oceaneng.2020.107431 22. Xu K., Gu X.Q.*, Hu C., Lu, L.T. Comparison of small strain shear modulus and Young's modulus of dry sand measured by resonant column and bender-extender element. Canadian Geotechnical Journal, 57(11), 1745-1753. https://doi.org/10.1139/cgj-2018-0823 23. Tu W.B., Huang M.S.*, Gu X.Q., Chen H.P. Nonlinear dynamic behavior of laterally loaded composite caisson-piles foundation under scour conditions Marine Georesources and Geotechnology, DOI: 10.1080/1064119X.2020.1724217 24. Dai B.B., Yang J., Liu F.T., Gu X.Q., Lin K.R. (2020). A new index to characterize the segregation of binary mixture, Powder Technology, Powder Technology 363,611–620. 25. Liu, K., Chen, S.L., Gu, X.Q. (2019) Analytical and numerical analyses of tunnel excavation problem using an extended Drucker-Prager model. Rock Mechanics and Rock Engineering, https://doi.org/10.1007/s00603-019-01992-5 26. Gu X.Q.*, Hu C., Zhang J.R., Xu K. Laboratory tests on the compaction and crushing behaviors of construction waste slag-clay mixtures. Journal of Materials in Civil Engineering, ASCE, 31(11): 04019256 27. Qian, J.Q., Li S.Y., Gu, X.Q.*, Zhang, J.F. (2019). A unified model for estimating the permanent deformation of sand under a large number of cyclic loads. Ocean Engineering, 181, 293-302 28. Huang M.S, Chen, Y.W., Gu, X.Q*. (2019). Discrete element modeling of soil-structure interface behavior under cyclic loading. Computer and Geotechnics, 107, 14-24 29. Dai, B.B., Yang, J., Gu X.Q., Zhang Wei. (2019). A numerical analysis of the equivalent skeleton void ratio for silty sand. Geomechanics and Engineering, 17(1),19-30 30. Qian, J.Q.*, Du, Z.B., Lu, X.L., Gu, X.Q., Huang, M.S. (2019). Effects of principal stress rotation on stress-strain behaviors of saturated clay under traffic-load-induced stress path. Soils and Foundations, 2019,59,41-55. DOI: 10.1016/j.sandf.2018.08.014 31. Gu, X.Q., You, Z.P., Qian J.G.*, Li, Weiyi (2018). The deformation of granular materials under repeated traffic load by discrete element modelling. European Journal of Environmental and Civil Engineering, DOI: 10.1080/19648189.2018.1454860 32. Qian, J.G., Lin H., Gu, X.Q.*(2018). Dynamic Shakedown limits for flexible pavement with cross-anisotropic materials. Road Materials & Pavement Design, DOI: 10.1080/14680629.2018.1491881 33. Gu, X.Q.*, Yang, S.C. (2018). Why the OCR may reduce the small strain shear stiffness of granular materials? Acta Geotechnica, 13(6): 1467–1472 34. Qian, J.G*., Zhou R.Y., Chen S.L., Gu, X.Q., Huang M.S. (2018). The Influence of Pavement Roughness on Dynamic Stresses in Saturated Subsoil Subjected to Moving Traffic Loading. International Journal of Geomechanics,18(4),04018012 35. Huang M.S.*, Tu W.B., Gu X.Q. (2018).Time domain nonlinear lateral response of dynamically loaded composite caisson-piles foundations in layered cohesive soils, Soil Dynamics and Earthquake Engineering, 106: 113–130 36. Gu, X.Q.*., Hu, J., Huang, M.S., Yang, J. (2018). Discrete element analysis on the K0 of granular soil and its relation to small strain shear stiffness. International Journal of Geomechanics,18(3): 06018003 37. Gu, X.Q., Li, W.Y., Qian, J.G.*, Xu, K. (2018).Discrete element modelling of the influence of inherent anisotropy on the shear behaviour of granular soils. European Journal of Environmental and Civil Engineering, 22(sup1), 1-18. DOI: 10.1080/19648189.2017.1352030 38. Qian, J.G., Gu, J.B., Gu, X.Q.*, Huang, M.S. (2017). Discrete numerical modeling of granular materials considering crushability. Journal of Mountain Science, 2017, 14(4), 758-770 39. Gu, X.Q., Chen, Y.W., Huang, M.S.* (2017). Critical state shear behavior of the soil-structure interface determined by discrete element modeling. Particuology, 35, 68-77. DOI: 10.1016/j.partic.2017.02.002 40. Gu, X.Q.*, Hu, J., Huang, M.S. (2017). Anisotropy of elasticity and fabric of granular soils. Granular Matter, 19(2), 33 DOI: 0.1007/s10035-017-0717-6 41. Gu, X.Q., Lu, L.T., Qian, J.G.* (2017). Discrete element modeling of the effect of particle size distribution on the small strain stiffness of granular soils. Particuology, 32, pp. 21-29. DOI: 10.1016/j.partic.2016.08.002, 2016 42. Gao, G.Y., Chen, J., Gu, X.Q.*, Song J., Li, S.Y., Li, N. (2017). Numerical study on the active vibration isolation by wave impeding block in saturated soils under vertical loading. Soil Dynamics and Earthquake Engineering, 93, 99-112 43. Gu, X.Q., Yang, J.*, Huang, M.S., Gao, G.Y. (2015). Bender element tests in dry and saturated sand: signal interpretation and result comparison. Soils and Foundations, 55(5), 952-963 44. Gu, X.Q.*, Hu, J., Huang, M.S. (2015). K0 of granular soils: a particulate approach. Granular Matter, 17(6),703-715 45. Gao, G.Y., Li, N., Gu, X.Q.* (2015). Field experiment and numerical study on active vibration isolation by horizontal blocks in layered ground under vertical loading. Soil Dynamics and Earthquake Engineering, 69, 251-261 46. Gu, X.Q., Huang, M.S.*, Qian, J.G. (2014). DEM investigation on the evolution of microstructure in granular soils under shearing. Granular Matter, 16(1), 91-106. 21 47. Gu, X.Q., Huang, M.S.*, Qian, J.G. (2014). Discrete element modeling of shear band in granular materials. Theoretical and Applied Fracture Mechanics, 72, 37-49 48. Yang, J.*, Gu. X.Q. (2013). Shear stiffness of granular material at small strain: does it depend on grain size? Geotechnique, 63(2), 165-179 49. Gu, X.Q., Yang, J., Huang, M.S. (2013). Laboratory measurements of small strain properties of dry sands by bender element. Soils and Foundations, 53(5), 735-745 50. Gu, X.Q., Yang, J.* (2013). A discrete element analysis of elastic properties of granular materials. Granular Matter, 15(2), 139-147 51. Gu, X.Q.*, Yang, J., Huang, M.S. (2013). DEM simulations of the small strain stiffness of granular soils: effect of stress ratio. Granular Matter, 15(3), 287-298 52. Gu, X.Q.*, Yang, J. Huang, M.S. (2013). Laboratory investigation on relationship between degree of saturation, B-value and P-wave velocity. Journal of Central South University, 20(7), 2001-2007 53. Qian, J.G.*, You, Z.P., Huang, M.S., Gu, X.Q.(2013). A micromechanics-based model for estimating localized failure with effects of fabric anisotropy. Computers and Geotechnics, 50, 90-100 54. Song, Y., Gu, X.Q., Hu, J. DEM-FDM coupling simulation of cone penetration tests in a virtual calibration chamber. Cone Penetration Testing 2022. CRC Press, 2022: 703-707. 55. 左康乐, 顾晓强. 不同粒径比下含细颗粒砂土液化特性的试验研究. 岩土工程学报. http://kns.cnki.net/kcms/detail/32.1124.TU.20220719.1641.002.html 56. 顾晓强, 余宽原, 黄茂松, 刘鑫, 闫芳, 吴德顺. 无源环境振动的有限元分析方法及在北京光源工程应用. 岩土工程学报, 2022, 44(12), 2245-2253 57. 袁聚云, 陈玺元, 顾晓强,林毅峰,校建东,吴彩虹. 广东阳江海洋砂性土HSS模型参数的试验研究, 同济大学学报(自然科学版),2022, 50(6), 842-860 58. 顾晓强,梁玉珍, 周奇辉,刘尊景,荆子菁. 白鹤滩水电站移民区高填方工程砾石填料特性研究, 同济大学学报, ,2022, 50(4), 528-536 59. 顾晓强, 刘文倩, 陈玺元, 林毅峰, 校建东. 广东阳江地区海洋软土HSS模型参数的试验研究. 岩土工程学报, 2021, 43(S2), 41-44 60. 汪海林, 刘航宇, 顾晓强,宋许根. 基于多元概率分布模型的珠海黏土多参数预测. 岩土工程学报, 2021, 43(S2), 193-196 61. 吴瑞拓, 顾晓强, 高广运等. 基于HSS模型的上海地铁深基坑开挖变形分析. 建筑科学与工程学报, 2021, 38(6), 1-7 62. 刘磊,倪雨萍、黄茂松、时振昊、顾晓强. 基于小应变非线性弹性模型的基坑开挖三维数值模拟. 建筑科学, 2020,36(增),191-197 63. 顾晓强, 吴瑞拓,梁发云, 高广运. 上海土体小应变硬化模型整套参数取值方法及工程验证, 岩土力学,2021, 42(3), 833-845 64. 余宽原,顾晓强,黄茂松,马险峰,李宁. 磁悬浮列车运行引起的环境微振动实测分析, 岩土工程学报, 2020, 42(S1), 146-150 65. 黄茂松, 边学成, 陈育民, 王睿, 顾晓强, & 周燕国. (2020). 土动力学与岩土地震工程. 土木工程学报, 53(8), 64-86 66. 陈尚荣, 李通达, 梁发云, 顾晓强. 上海临港砂质粉土硬化土小应变模型参数研究. 同济大学学报,2020, 48(6), 841-846 67. 汪国章,顾晓强. 砂土静力触探试验的三维离散元模拟研究. 建筑科学, 2019,35(增),237-242 68. 陈少杰, 顾晓强, 高广运.土体小应变剪切模量的现场和室内试验及其工程应用.岩土工程学报,2019,41(S2),133-136 69. 顾晓强, 杨朔成. 基于离散元数值方法的砂土小应变弹性特性探讨. 岩土力学, 2019, 40(2), 785-791 70. 顾晓强, 陆路通, 李雄威. 居尚威.土体小应变刚度特性的试验研究. 同济大学学报,2017, 46(3), 312-317 71. 刘麟, 顾晓强, 黄茂松. (2017). 利用带弯曲元应力路径三轴仪量测静止土压力系数研究. 岩土工程学报,39(s2):212-215 72. 顾晓强, 杨峻, 黄茂松, 高广运. 砂土剪切模量测定的弯曲元、共振柱和循环扭剪试验. 岩土工程学报, 2016, 38(4), 740-746 73. 高广运, 李绍毅, 顾晓强. 列车运行引起高架桥群桩基础地面振动分析. 岩土工程学报, 2015, 37(10), 1751-1761 74. 顾晓强, 杨峻, 黄茂松, 高广运. 干砂弹性参数测定的弯曲-伸展元试验. 岩土力学, 2015, 36(s1), 220-224 75. 胡靖, 顾晓强, 黄茂松. 基于离散元法的静止土压力系数分析. 岩土力学,2015, 36(s1), 624-628
1. 顾晓强,吴德顺,胡超,高广运. 一种在三轴试验平台上制备低扰动干砂试样的装置,受理号201910574141.7,上海科律 2. 黄茂松,顾晓强,刘麟,张陈蓉,于锋. 能够制备各向异性砂土试样的单桩循环加载模型试验系统,国家发明专利ZL201710187540.9,授权日2019.10.18 3. 顾晓强,黄茂松,胡靖. 一种可量测静止土压力系数和各向异性土体小应变剪切模量的固结仪,国家发明专利ZL2015 1 0225638.X,授权日2018.07.06 4. 顾晓强,左康乐,吴德顺,梁发云,王琛. 一种模型试验中制备低扰动高饱和度砂土试样的装置及方法,申请日期:2021-03-26, 申请号: 202110649262.0 5. 顾晓强,刘文倩,王琛,吴德顺,钱建固. 一种土力学教学用手提式微型土工三轴仪,申请日期:2021-06-09, 申请号: 202110773800.7 6. 钱建固,姜文澜,顾晓强,屠梓真. 一种基于剪切波速的现场土样三向测试装置及方法,国家发明专利ZL 2019 1 1196702.0,授权日2021.09.14 7. 校建东、顾晓强. 基于PlAXIS的风机基础大直径单桩的优化计算分析二次开发程序软件. 2021年01月17日,原始取得,全部权利,登记号: 2021SR0368001
1. 精密仪器设备地基基础防微振测试与评估标准,主编 2. 上海市工程建筑规范《地基基础设计规范》DGJ08-11-2018,参加起草人 3. 风电场工程抗震设计规范,参加起草人
1. 尹振宇、顾晓强、金银富. 土的小应变刚度特性. 同济大学出版社, ISBN:9787560868523
1. 本科生:《土力学》、全英课程《Soil Mechanics A》、《基础工程设计原理》 2. 研究生:《岩土工程试验与测试技术》、《高等土动力学》
1.《Craig土力学》(注释),2019,机械工业出版社
1. 第十五届茅以升土力学与岩土工程青年奖,2022 2. 上海市青年五四奖章,2019 3. 同济大学青年五四奖章,2019 4. 教育部科技进步二等奖,2018,排第2 5. 上海市技术发明二等奖,2017,排第8 6. 国际SCI期刊Granular Matter 2014-2015年度最佳被引论文奖,2018 7. 土木工程学院“院长奖”,2018 8. 同济大学优秀班主任,2017 9. 同济大学优秀博士后,2014 10. 香港大学土木工程系杰出助教奖,2011
1. 第十届全国青年岩土力学与工程会议(2019.11,武汉),大会主题报告 2. 第十届第二届软土工程前沿论坛(2019.10,郑州),特邀报告 3. 第十届全国土动力学学术会议(2018.11,南京),特邀报告 4. 第28届全国土工测试学术研讨会议(2018.11,郑州),特邀报告 5. 第七届全国岩土工程青年学者论坛(2018.10,大连),大会主题报告 6. 3rd International Conference on Ground Improvement and Ground Control (2017.11,杭州), 特邀报告 7. 21st Annual National Conference of Indonesian Society for Geotechnical Engineering,(2017.11,印尼雅加达),大会主题报告 1. 《European Journal of Environmental and Civil Engineering》副主编,2022~ 2. 《Buildings》编委,2023/06~ 3. 《International Journal of Mining Science and Technology》青年编委,2021~ 4. 《Journal of Central South University》(JCR Q3) 青年编委,2021~ 5. 国际土力学及岩土工程学会(ISSMGE) TC102正式委员 6. 中国地震学会岩土工程防震减灾专业委员会常务委员 7. 中国土木工程学会土力学及岩土工程分会土工测试专业委员会委员 8. 中国岩石力学与工程学会青年工作委员会委员
1. 每年招收博士生2-3名,硕士生3名;欢迎少高计划和军队专项计划学生报考; 2. 博士后合作研究人员2-3名(除学校规定的待遇外,课题组根据博士后贡献额外提供每年6-12万的劳务费)。
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