
一、个人简介
张鸣原,讲师,曾获博士研究生国家奖学金,发表论文30余篇,参与中科院先导项目等多项国家级重大项目,主持“中国岩石力学与工程学会青年科技创新人才培育博士生专项计划”与“中国矿业大学(北京)博士研究生拔尖创新人才培育基金”项目。
电子邮件:zmy_cumtb@163.com
二、教育背景
1. 2015.09-2019.06:中国矿业大学(北京),消防工程本科
2. 2019.09-2026.06:中国矿业大学(北京),力学硕博连读
三、研究领域
主要从事岩石断裂力学,超短脉冲激光的应用,光学与岩石力学交叉相关的研究。
四、代表性科研/教学成果
1. 项目
[1] 中央高校基本科研业务费专项资金资助项目(中国矿业大学(北京)博士研究生拔尖创新人才培育基金项目):“深部岩石断裂行为的超快时间分辨研究”,主持。
[2] 2025年中国岩石力学与工程学会青年科技创新人才培育博士生专项计划,主持。
[3] 中国科学院先导项目:“双锥对撞点火中瑞利泰勒不稳定性的理论分析”,参与。
[4] 科技部重大仪器专项:“深部条件下固体材料断裂损伤过程的超快时间分辨测量系统”,参与。
[5] “深部高瓦斯采动巷道冲击荷载作用下围岩力学行为及抗冲击性能测试项目”,参与。
2. 论著
一、第一作者及通讯作者论文
[1] ZHANG M, CHEN L, et al. Influence of loading rate on the infrared radiation of PMMA[J]. AIP Advances, 2021, 11(7): 075023.
[2] ZHANG M, LI D, et al. An ultrafast time-resolution method based on picosecond pulsed laser for determining rock fracture toughness at multipoint during the crack propagation[J]. Scientific Reports, 2022, 12(1): 4550.
[3] ZHANG M, YANG L, et al. Investigation of crack propagation behavior on shales with different inclination based on ultra-fast time resolution method[J]. Engineering Fracture Mechanics, 2023, 292: 109599.
[4] ZHANG M, YANG L, et al. The influence of SC-CO2 on the shales’ fracture behavior described by using ultra-fast time resolution method and the damage fracture constitutive model: A case study of the Cretaceous Qingshankou Formation in Gulong Depression, Songliao Basin, NE China[J]. Theoretical and Applied Fracture Mechanics, 2024, 134: 104705.
[5] ZHANG M, KE Y, YANG L, et al. The influence of SC-CO2 on the nanopore structures of different types of shales based on small-angle neutron scattering and multifractal methods[J]. Energy & Fuels, 2024, 38(15): 14514-14525.
[6] ZHANG M, SHEN M, LI D, et al. A method for determining crack tip location during the tuff crack propagation based on ultra-fast time resolution method and immune algorithm[J]. Engineering Fracture Mechanics, 2025, 321: 111129.
[7] ZHANG M, SHEN M, ZHAO S, et al. Experimental study on the crack propagation characteristic of coal specimens with offset cracks and the I-II mixed SIF variation by using ultrafast time-resolution method[J]. Theoretical and Applied Fracture Mechanics, 2026, 142: 105398.
[8] YANG L, LIU Z, ZHANG M*, et al. Investigation of shale mesoscale mechanical properties based on a coupled statistical-clustering analysis method[J]. Journal of Materials Engineering and Performance, 2024, 33(12): 6193-6207.
[9] YANG L, YANG D, ZHANG M*, et al. Application of nano-scratch technology to identify continental shale mineral composition and distribution length of bedding interfacial transition zone—A case study of Cretaceous Qingshankou Formation in Gulong Depression, Songliao Basin, NE China[J]. Geoenergy Science and Engineering, 2024, 234: 212674.
[10] LI D, QI H, ZHANG M*, et al. A modeling method for elastic-viscous-plastic material with fractal structure and its solution[J]. Acta Mechanica Sinica, 2024, 40: 423263.
[11] ZHAO S, ZHANG M*, HE G, et al. Experimental study on fracture behavior of coal-rock samples with varying sandstone strength using the ultrafast time-resolution method[J]. Theoretical and Applied Fracture Mechanics, 2025, 137: 104885.
[12] YANG L, ZHANG M*, et al. Application of the ultra-fast time resolution method to describe the influence of SC-CO2 on crack propagation behavior[J]. Fractals, 2025, 33(10): 2540217.
[13] ZHAO S, PAN Y, KE Y, Zhang M*, et al. The influence of microstructures on the coal fragment’s kinetic energy generated by the true triaxial unloading impact experiments[J]. Rock Mechanics and Rock Engineering, 2026, online first.
[14] LIU G, MA X, Zhang M*, et al. Study on the evolution of stress intensity factors during rock crack propagation using ultrafast time-resolved method and machine learning[J]. Engineering Failure Analysis, 2026, 196: 111097.
二、其他参与发表论文
[15] LI Y, ZHANG M, HE M. Applications and state-of-the-art review of pulsed laser ultrafast time-resolution method in the field of rock mechanics[J]. Scientia Sinica Technologica, 2024, 54(8): 1549-1562.
[16] CHANG L, LI D, et al. IRT monitoring and energy analysis of cyclic bending failure in 3D-printed beams with pre-set crack[J]. Engineering Failure Analysis, 2026, 192: 110849.
[17] LI D, HU B, et al. Unloading impact failure mechanisms and kinetic energy analysis of coal-rock composites in deep roadways[J]. Engineering Fracture Mechanics, 2026, 341: 112205.
[18] CHANG L, CHEN L, et al. Experimental study on the influence of water on infrared radiation characteristics during rock failure[J]. Acta Mechanica Sinica, 2026, 42(8): 425367.
[19] CHANG L, LI Y, et al. Spatiotemporal representation of internal fracture sources using dual-surface infrared radiation and particle swarm optimization algorithm[J]. Theoretical and Applied Fracture Mechanics, 2026, 141: 105249.
[20] CHEN L, WANG E, et al. Analysis of damage and energy evolution characteristics of pre-flawed red sandstone based on infrared thermography[J]. Acta Mechanica Sinica, 2026, 42(7): 424813.
[21] CHEN Y, WANG G, et al. Machine-learning-based integrated mining big data and multi-dimensional ore-forming prediction: A case study of Yanshan Iron Mine, Hebei, China[J]. Applied Sciences, 2025, 15(8): 4082.
[22] CHANG L, CHEN L, et al. Analysis of failure characteristics and constitutive model development for sandstone with different ligament angles under biaxial loading based on infrared radiation[J]. Theoretical and Applied Fracture Mechanics, 2025, 136: 104856.
[23] CHANG L, ZHANG M, et al. Infrared radiation characteristics and statistical damage model for failure of water-bearing sandstone[J]. Infrared Physics & Technology, 2025, 147: 105778.
[24] CHEN L, YIN S, et al. A damage evolution model of red sandstone under uniaxial compressive loading with different loading rates based on infrared thermography[J]. Infrared Physics & Technology, 2025, 145: 105664.
[25] CHANG L, CHEN L, et al. Experimental study on infrared radiation and crack evolution characteristics during the failure process of rocks with pre-set crack[J]. Infrared Physics & Technology, 2024, 138: 105236.
[26] CHEN L, LI D, et al. Strain energy evolution analysis of elastic-plastic deformation on polycarbonate by infrared radiation characteristics[J]. Nondestructive Testing and Evaluation, 2023, 38(3): 519-538.
[27] CHEN L, ZHANG M, et al. Infrared thermographic evaluation of thermal release phenomena in polycarbonate during plastic deformation[J]. Advanced Industrial and Engineering Polymer Research, 2023, 6(1): 39-48.
[28] CHEN L, LI D, et al. Experimental investigation of key infrared radiation signals on rock during damaging process[J]. Infrared Physics & Technology, 2022, 126: 104320.
[29] CHEN L, ZHANG M, et al. A comparative study of whole-field stress between digital photoelasticity and infrared radiation testing applied for PMMA[J]. Optical Materials, 2022, 124: 111951.
[30] CHEN L, ZHANG M, et al. Visualization and quantification of the stress distribution on epoxy resin through photoelasticity and infrared radiation techniques[J]. AIP Advances, 2022, 12(1): 015312.
[31] SHEN M, CHEN L, ZHANG M, et al. The study on rock classification based on mid-infrared spectroscopy[J]. Journal of Instrumental Analysis, 2025, 44(7): 1273-1281.
[32] CHEN L, CHANG L, SHEN M, ZHANG M, et al. Research on mid-infrared spectral characteristics and prediction models of sandstone in different water content[J]. Journal of Instrumental Analysis, 2024, 43(3): 489-495.
[33] SHEN M, ZHANG M, CHANG L, LI Y, LI D. Digital image correlation of brittle materials based on ultrashort pulse laser imaging[C]//Proceedings of SPIE: First Advanced Imaging and Information Processing Conference. 2023, 12942: 1294204.
3. 获奖
(1)博士生国家奖学金,2024年12月
(2)中国矿业大学(北京)博士优秀毕业生,2026年7月
4. 专利
(1)[1] 李德建,张鸣原,沈沐傲,等. 一种基于脉冲激光的超快数字散斑系统和实验方法,发明专利,专利号:ZL 2021 1 0669575.2。
[2] 杨柳,张鸣原,何剑英,等. 一种白云岩砂化程度检测装置及方法,发明专利,专利号:ZL 2022 1 0024835.5。
[3] 李英骏,张鸣原,杨柳,等. 一种非均质性岩石I型断裂能的获取方法,发明专利,专利号:ZL 2023 1 0539032.8。
[4] 李英骏,常龙飞,张鸣原,等. 一种隧道渗漏水的检测方法,发明专利,专利号:ZL 2023 1 0203575.2。
[5] 李德建,霍君豪,张鸣原,等. 弹黏性元件模型构建方法、求解方法、设备及存储介质,发明专利,专利号:ZL 2023 1 0888776.0。