师资队伍

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李鹏飞

职称职务:教授、博士生导师

E-mail:lpf@bjut.edu.cn;452754371@qq.com

通讯地址:北京工业大学平乐园100号


个人简介

李鹏飞教授,博士生导师,北京工业大学高层次优秀人才,教育部工程研究中心评估专家,中国知网高被引学者(TOP1%),全球前2%年度顶尖科学家,长期从事交通隧道与地下工程的科研工作,中国铁道学会桥隧委员会、标准化(隧道)专业技术委员会委员,中国土木工程学会隧道及地下工程分会等4个学会的理事、国家973项目“城市地下工程建设安全性基础理论”骨干成员,中国高速铁路隧道建造关键技术研发骨干成员主持国家自然科学基金(5项)和青岛胶州湾第二海底隧道工程揭榜挂帅科研项目等60余项科研课题,以第一(通讯)作者发表SCI论文120余篇,其中ESI热点论文1篇,ESI高被引论文8篇;授权发明专利/软件著作权40余项,获得北京市科技进步奖二等奖(排1)、中国科技产业化促进会科技进步奖一等奖(排1)、中国岩石力学与工程学会科技进步特等奖(排2)、山西省科技进步奖一等奖(排4)等省部级奖励10余项。

教育与工作经历

120029-20067月,北京交通大学,土木工程专业,工学学士;

220069-20117月,北京交通大学,桥梁与隧道工程,工学博士

320117-20136月,铁道部经济规划研究院与清华大学,博士后

420136-至今,北京工业大学,建筑工程学院,历任讲师、副教授、教授;

5201810-201910月,美国弗吉尼亚理工大学,访问学者。

6202412-20253月,澳大利亚南澳大学(现更名为阿德莱德大学),高级研究学者。

社会兼职

1)中国铁道学会桥隧委员会,委员

2)中国铁道学会标准化(隧道)专业技术委员会委员;

3)中国土木工程学会隧道及地下工程分会,理事;

4)中国土木工程工程风险与保险研究分会,理事;

5)中国岩石力学与工程学会地下工程分会,理事;

6)中国岩石力学与工程学会岩石工程设计方法分会,理事;

7)教育部工程研究中心评估专家,国家自然科学基金通讯评议专家;

8)期刊《铁道勘察》、《铁道建筑技术》编委;《中国公路学报》、《隧道建设》、《应用力学学报》、《铁道科学与工程学报》等期刊的青年编委;

930余个中外学术期刊的审稿专家。

课程教学

本科生教学:城市轨道工程、土木工程概论——隧道与地下工程、地下工程施工技术、地下铁道设计与施工、地下工程辅助施工技术、学术前沿课程

研究生教学:城市地下工程施工技术、现代隧道结构理论、隧道工程基本理论与应用。

科研项目

主持的纵向科研项目

[1] 国家自然科学基金面上项目矿山法地铁隧道结构缝渗漏机理与防治技术研究2026.01-2029.12

[2] 国家自然科学基金面上项目隧道钢波纹板-模袋混凝土支护承载性能与设计方法2023.01-2026.12

[3] 国家自然科学基金面上项目深埋砂卵石地层土压平衡盾构隧道开挖面失稳机制与控制措施2020.01-2023.12

[4] 国家自然科学基金面上项目城市土质地层小净距隧道失稳模式与控制机理研究2018.01-2021.12

[5] 国家自然科学基金青年项目:钻爆法海底隧道风化槽围岩工作面破坏模式研究,2014.01-2016.12

[6] 北京市自然科学基金面上项目承压水粉细砂地层盾构隧道管片结构抗连续破坏设计方法2022.01-2024.12

[7] 北京市自然科学基金面上项目城市非对称小净距隧道荷载计算模型与支护结构设计方法2018.01-2020.12

[8] 北京市自然科学基金青年项目:城市地下道路分岔隧道围岩稳定性与支护结构受力特性研究,2014.01-2015.12

[9] 中国博士后基金面上一等资助:黄土隧道围岩压力作用模式与计算方法研究,2016.10-2018.03

[10] 北京市教育委员会科技计划一般项目:北京城市地下道路分岔隧道地层荷载计算方法研究,2017-2019

[11] 北京工业大学基础研究基金:北京城市地下道路合理埋置深度研究,2014.01-2015.12

[12] 国家科技支撑计划课题《城市地下道路建造与运营安全关键技术研究》(资助编号:2012BAJ01B03)中子课题:城市地下道路暗挖隧道围岩稳定性测试与实验,2014.09-2015.12

[13] 中国铁路总公司重大课题《京张城际铁路大跨度深埋地下车站综合修建技术研究》(资助编号:2014G004-C)中子课题:地下车站复杂洞室群防排水技术研究,2014.05-2017.12

[14] 中国铁路总公司重大课题《铁路隧道底部新型结构设计施工关键技术研究》(资助编号:YS2016G-02)中子课题:铁路隧道底部防排水系统与预制装配技术研究,2016.05-2018.12

[15] 中国博士后科学基金(资助编号:2012M510491):水下隧道软弱围岩破坏模式与突水机制研究,2012.05-2013.06

[16] 城市地下工程教育部重点实验室开放基金(资助编号:TUE2017-01),深埋富水隧道掌子面失稳破坏模式研究,2017.12-2019.11

[17] 交通隧道工程教育部重点实验室开放基金(资助编号:TTE2014-06),基于蠕变效应的黄土隧道围岩压力计算方法研究,2014.09-2016.08

[18] 黄土地区公路建设与养护技术交通行业重点实验室开放基金:大断面黄土隧道支护结构受力特征研究,2014.01-2015.12

主持的部分横向课题

[1] 深地空间抽水蓄能电站智能建造关键技术研究,中铁十六局集团有限公司,2026.

[2] 地铁隧道结构缝、变形缝渗漏水治理灌浆料浆液扩散机理研究,北京市轨道交通建设管理有限公司,2026.

[3] 复杂地质与敏感环境盾构隧道施工关键技术研究,中铁三局集团第四工程有限公司,2026.

[4] 铁路与输油管道间相互影响安全评估,中铁三局集团有限公司,2025.

[5] 富水漂卵石地层超深竖井机械化建造与大直径盾构接收关键技术,北京建工土木工程有限公司,2025.

[6] 地铁车站装配式墙板力学性能与结构体系研究,北京建工康品智宅科技有限公司,2025.

[7] 山岭隧道穿越不良地质环境施工风险安全控制技术研究,北京市政路桥股份公司,2025.

[8] CZ 铁路隧道多变地质钻爆法施工机械化配套技术研究,中铁四局,2024.

[9] 复杂地质超大直径海底盾构掘进稳定性控制技术,中铁十四局,2024.

[10] 复杂地层和环境城际铁路地下工程施工关键技术研究,中铁十二局,2023.

[11] 大直径泥水盾构小净距长距离并行高速铁路施工关键技术研究,中铁十四局,2023.

[12] 川藏公路隧道软弱围岩大变形防控关键技术研究中咨勘察设计研究院2023.

[13] 雄安-大兴机场快线大直径盾构机快速掘进施工技术,中国水利水电第五工程局,2023

[14] 四孔小净距隧道施工力学与稳定性控制技术研究,宁波舜通集团有限公司,2023.

[15] 基于冗余度理论的基坑工程内支撑体系优化设计方法研究,北京市政院,2023.

[16] 深埋富水砂卵石地层盾构隧道开挖面稳定性研究,中铁十五局,项目获中国岩石力学与工程学会科技进步特等奖,2023.

[17] 复杂环境小半径曲线并行盾构施工关键技术,中铁三局,2023.

[18] 大直径盾构隧道下穿高速铁路路基沉降控制技术研究,中铁设计,2023.

[19] 盾构隧道机械法施工竖井封底试验关键技术研究,北京建工集团有限责任公司,2022.

[20] 深大复杂基坑智能化监测与分析,中建二局,2021.

[21] 基于监测数据的基坑安全评价方法研究,中建二局,2022.

[22] 盾构管片受力特性研究与设计参数优化,南通铁建建设构件有限公司,2022.

[23] 隧道预制装配式衬砌力学性能与设计理论研究,中铁一院,2020.

[24] 隧道洞口段变形机理及滑坡对运营隧道的影响研究,山西交通控股集团,2021.

[25] 地铁富水砂卵石地层暗挖工程不降水施工综合技术研究与应用,中铁十九局,2021.

[26] 复杂地质与环境城市高速铁路隧道修建关键技术,项目获山西省科技进步奖三等奖2020.

[27] 清华园隧道轨下预制结构底部压浆材料力学性能试验,中铁十四局,2019.

[28] 川藏线米林隧道冰水堆积体施工关键技术研究,中铁十九局,2019.

[29] 矿山法隧道排水系统土工布及盲管堵塞试验研究,中铁四院,2019.

[30] 京张高铁八达岭隧道外水压力监测,中铁五局,2018.

[31] 超大断面小净距隧道中夹岩墙稳定性与控制技术研究,西南交通大学,2015.

[32] 复杂环境下小断面引水隧洞长距离施工关键技术,中铁十二局,项目获山西省科技进步奖三等奖2016.

[33] 高地应力强膨胀性软弱围岩隧道修建关键技术,中铁十二局,2015.

[34] 复杂环境地质条件下的长大山岭隧道建造技术研究,中铁设计,2015.

[35] 天平山隧道大断面软弱围岩施工关键技术,中铁十二局,项目获山西省科技进步奖二等奖2015.

获奖情况

[1] 北京市科技进步奖二等奖(排1):小净距超大跨隧道建造关键技术及应用2025

[2] 山西省科技进步奖一等奖(排4):砂卵石地层大埋深高水压盾构隧道掘进关键技术及应用,2025

[3] 中国岩石力学与工程学会科技进步特等奖(排名第2),大埋深高水压砂卵石地层盾构隧道稳定性控制理论及关键技术,2023

[4] 中国铁道学会科技进步奖一等奖(排6),高铁大直径泥水盾构穿越城市核心区施工关键技术,2023

[5] 山西省科技进步奖三等奖(排1),复杂条件引水隧洞长距离施工关键技术,2022

[6] 山西省科技进步奖三等奖(排2),复杂地质与环境城市高速铁路隧道修建关键技术研究,2021

[7] 山西省科技进步奖二等奖(排2),天平山隧道大断面软弱围岩施工关键技术,2015

[8] 北京市科技进步奖一等奖(排10):复杂条件下大型海底隧道钻爆法建造关键技术研究及应用2017

[9] 岩石力学与工程学会科技进步奖一等奖(排6):高速铁路隧道支护结构体系设计理论及其应用2017

[10] 中国铁道学会科技进步等奖(排7):高速铁路隧道围岩稳定性控制技术,2016

[11] 教育部科技进步奖二等奖(排8):大型跨海隧道钻爆法修建核心技术,2012

[12] 北京高校青年教师社会调研优秀项目二等奖,北京城市轨道交通附属地下空间开发利用现状调研(排1),2015

[13] 北京工业大学高层次优秀人才,2019

[14] 北京工业大学优秀硕士学位论文指导教师,2018~20202022-2023

[15] 北京工业大学城建学部青年教师教学基本功比赛第一名,2020

[16] 北京工业大学本科特优毕业论文指导教师,2017

[17] 北京工业大学青年教师教学基本功比赛优秀奖,2017

[18] 北京工业大学日新人才培养计划,2016

[19] 北京工业大学立德树人优秀本科班主任,201520162020

[20] 北京工业大学优秀本科生毕业设计指导教师,2015

代表性论文

[1] Pengfei Li, Jiannan Xie, Shuang Chen, Fei Jia, Analytical Prediction of Ground Settlement Induced by Shield Tunneling in Upper-Soft and Lower-Hard Inclined Strata. International Journal for Numerical and Analytical Methods in Geomechanics. 2026.

[2] Li, P. F., Lu, Q. Q., Gao, X. J., Ge, Z. G., Li, S. H., 2026. Influence of local leakage in a shield tunnel on stratum deformation. International Journal of Geomechanics. 26(3): 04025376.

[3] Huang, Z., Li, P., Zhang, M., Zheng, H., Tao Y., Shan, Y.,2026. Mechanical performance of corrugated steel plate and mold-bag concrete (CSP-MBC) composite members. J. Constr. Steel Res., 237(PA), 110115. https://doi.org/10.1016/J.JCSR.2025.110115.

[4] He, N., Li, P., Zhang M., Ge C., 2026. Prediction of surface settlement during shield tunnel boring based on variational mold decomposition and machine learning models. Tunn. Undergr. Space Technol, 168, 107216.

[5] Yang, J., Li, P., Gao J., Tao Y., Tao L., 2026. Bearing performance of a novel multiple resistance yielding support for tunnel lining in squeezing rock: Experimental, numerical and theoretical investigations. Tunn. Undergr. Space Technol, 167, 107077.

[6] Wang, X., Liu, J., Liu, Z., Li, P.,2025. Dynamic characteristics of red sandstone subjected intermittent cyclic impact loading: Insights from experiment and theory. Construction and Building Materials, 144543.

[7] Shan, Y., Zhang, M., Tao, Y., Li, P., & Huang, Z. (2025). Investigations into Bending Behavior of Mold-Bag Concrete Clamped Joints in Fabricated Inner Supports. Journal of Building Engineering, 114508.

[8] Xie J., Li P., Ge Z., Chen S., Li S., Jia F., 2025. Analytical Solutions for Evaluating the Efficacy of the Clay Shock Method in Shield Tunnels With Space Curves. International Journal for Numerical and Analytical Methods in Geomechanics. 2025. 0:1-18.

[9] Ge, C., Li, P., Zhang, M., & Yang, M. (2025). Identification of surface subsidence risk in deep foundation pits using a Mamba fusion model. Engineering Applications of Artificial Intelligence, 161, 112077.  https://doi.org/10.1016/j.engappai.2025.112077

[10] Ge, C., Li, P., Zhang, M., Yang, M., 2025. Identification of surface subsidence risk in deep foundation pits using a mamba fusion model. Eng. Appl. Artif. Intel. 161, 112077.

[11] Xu, Q., Li, P., Li, Y., Zeng, J., Zhang, S., 2025. Mechanisms and prioritization of subway tunnel crack leakage in sandy strata: an integrated experimental and correlation analysis of key influencing factors. Tunnelling and Underground Space Technology 165, 106893. https://doi.org/10.1016/j.tust.2025.106893

[12] Wang, X., Liu, B., Li, P., Wang, S., 2025. Experimental and numerical investigation on the diffusion characteristics of cement slurry grouted in medium sand soils. Tunnelling and Underground Space Technology 165, 106857. https://doi.org/10.1016/j.tust.2025.106857

[13] Xu, Q., Li, P., Xu, C., Wang, S., Zhang, S., 2025. Investigation of the spatial distribution of tunnel seepage under varying drainage capacities in water-abundant regions. Underground Space 23, 343-361. https://doi.org/10.1016/j.undsp.2025.02.010

[14] Pengfei LI, Chuang WANG, Xiaopu CUI, Qing XU, Zhaoguo GE, Shaohua LI, 2025. Experimental investigation on the stability of shield tunnel excavation face in upper loose and lower dense water-rich strata. Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering), 26(5):471-491. https://doi.org/10.1631/jzus.A2400309

[15] Cui X., Li P., Wang C., Ge Z., Li S., Di Q., 2025. Effect of seepage flow on face stability for a tunnel in water-rich silty clay overlying sandy cobble strata. Tunn. Undergr. Space Technol, 161, 106539.

[16] Cui X., Li P., Ge Z., Li S., Chen Y., 2025. Experimental study on face stability of shield tunnel in water-rich inclined composite strata considering different inclination angles. Applied Ocean Research, 154: 104323.

[17] Ge C., Li P., Zhang M., Li Z., 2025. Mechanical analysis of the high bolt screw (HBS) active joint under eccentric loading for prestressed internal support in subway excavation. Engineering Structures 329, 119837.

[18] Ge C., Li P., Zhang M., Li Z., 2025. Bearing capacity of High Bolt-Screw (HBS) active joints for prestressed internal bracing in subway excavations. Tunn. Undergr. Space Technol, 106251.

[19] C. Ge, P. Li, M. Zhang, M. Yang, W. Wan, Experimental and numerical investigation of the load-bearing capacity of bolt-fastened wedge active joints for prestressed internal bracing in subway excavations, Underground Space (2025), 21: 100-116

[20] Gao, X., Li, P., Zhang, M., Ge, Z., Chen, C., 2025. Experimental investigation of ground collapse induced by Soil-Water leakage in local failed tunnels. Tunn. Undergr. Space Technol. 157, 105950.

[21] Gao, X.J., Li, P.F., Zhang, M.J., Ge, Z.G. and Chen, C. (2025), Experimental investigation of ground collapse induced by soil-water leakage in local failed tunnels, Tunnelling and Underground Space Technology, Vol. 157, 105950, doi: 10.1016/j.tust.2024.105950.

[22] Fan Wang, Pengfei Li, Xiuli Du, Jianjun Ma, Lin Wang, 2025. Numerical investigations of the mechanical properties and energy characteristics of sandy cobble strata considering its internal stochastic structures. Computers and Geotechnics, 177, 106867. (DOI: 10.1016/j.compgeo. 2024.106867)

[23] Cui, X., Li, P., Ma, Z., Xu, Q., Jia, F., Ge, Z., Li, S.,2025 Model test study on instability mechanism during shield under-crossing existing pipeline, Engineering Failure Analysis, 167, 109041

[24] Gao, X., Li, P., J, Z., Zhang, M., Wang, H., Liu, Z., Jia Z., 2024. Bearing capacities and failure behaviors of segments with a mid-span opening for a shield subway tunnel. Structure and Infrastructure Engineering.

[25] Xie, J., Li, P., Zhang, M., Cao, L., Jia, F., Li, S., 2024. Analytical investigation of the shield-soil rotary friction on tunnelling-induced ground mechanical reactions. Comput. Geotech. 165, 105922.

[26] Zhang, M., Ge, C., Li, P., Wan, W., Yang M., 2024. Bearing capacities and failure behaviors of bolt fasten wedge (BFW) active joints used in prestressed internal supports. Tunn. Undergr. Space Technol. 143, 105438. https://doi.org/10.1016/j.tust.2023.105438

[27] X. Gao, P. Li, M. Zhang, H. Wang, Z. Jia, W. Feng, Effect of local openings on bearing behavior and failure mechanism of shield tunnel segments, Underground Space (2024), doi: https://doi.org/10.1016/j.undsp.2023.10.006

[28] Fan Wang, Xiuli Du, Pengfei Li. Prediction of subsurface settlement induced by shield tunnelling in sandy cobble stratum. Journal of Rock Mechanics and Geotechnical Engineering, 2023-11-1, Online.

[29] Li, P., Cui, X., Wei, Y., Xia, J., Wang, X., 2023. Calibration method of mesoscopic parameter in sandy cobble soil triaxial test based on PFC3D. Front. Struct. Civ. Eng., https://doi.org/10.1007/s11709-023-0028-4.

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[46] Pengfei Li, Honghao Zou, Fan Wang, Haocheng Xiong, 2019. An analytical mechanism of limit support pressure on cutting face for deep tunnels in the sand. Computers and Geotechnics. (DOI: 10.1016/ j.compgeo.2019.103367)

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[48] Li P.F, Wang F., Fang Q.*, Undrained analysis of ground reaction curves for deep tunnels in saturated ground considering the effect of ground reinforcement, Tunnelling and Underground Space Technology, 2018, 71(1): 579-590.

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[51] Li P.F., Chen K.Y, Wang F.*, Li Z., 2019. An upper-bound analytical model of blow-out for a shallow tunnel in sand considering the partial failure within the face. Tunn. Undergr. Space Technol. Volume 91, September 2019. (DOI: 10.1016/j.tust.2019.05.019)

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