
一、个人基本情况
林峰,男,安徽铜陵人,博士,副教授,博士生导师,沈阳市领军人才。长期从事微波破岩理论、技术与装备方面研究,并担任冯夏庭院士团队微波方向负责人。获得国家资助博士后研究人员计划B档资助、国际岩石力学与岩石工程学会罗哈奖(Rocha Medal)提名、辽宁省科技进步一等奖1项。主持国家自然科学基金青年项目、深地国家重大专项专题、国家重点研发计划子课题、辽宁省应用基础研究计划项目等科研项目十余项。近5年发表SCI(Q1)论文20余篇,授权发明专利20余项。提出了“深部金属矿微波机械全连续采矿”的原创性思想,并自主研制了国际首台坚硬矿岩微波多盘刀悬臂式掘进机、矿废微波智能分选设备等6台套成体系微波破岩装置。研究成果有望颠覆深部金属矿传统采矿工艺,并应用于日兴金矿、二道沟金矿、思山岭铁矿、川藏铁路深埋隧道等硬岩工程。
二、工作与学习经历
2025.09至今,东北大学,深部金属矿智能开采与装备全国重点实验室,副教授。
2023.10-2025.08,东北大学,工程力学,博士后(导师:冯夏庭院士)。
2018.09-2023.11,东北大学,采矿工程,博士(导师:冯夏庭院士)。
2015.09-2018.06,安徽理工大学,采矿工程,硕士。
2011.09-2015.06,安徽理工大学,采矿工程,学士。
三、主要研究方向
深部金属矿全连续采矿新方法;微波-机械协同破岩理论、技术与装备;低品位难选矿石智能分选技术;深部硬岩工程微波应力释放技术
四、代表性科研项目
[1] 深部金属矿山微波-机械一体化连续开采机理及关键技术研究,人社部,国家资助博士后研究人员计划B类,GZB20240129,2023-10至2025-08,36万,主持。
[2] 深部金属矿微波-机械协同连续开采机理研究,基金委,国家自然科学基金委-青年项目,52404116,2025-01至2027-12,30万,主持。
[3] 高应力金属矿微波钻头凿岩技术与装置,科技部,国家重点研发计划子课题,2023YFC2907202,2023-10至2026-09,65万,主持。
[4] 高功率毫米波-钻齿协同破岩机理试验研究,自然资源部,国家深地重大专项专题,2025ZD1008302,2025-08月至2029-07,270万,主持。
[5] 深部金属矿微波-机械连续开采关键技术研究及示范应用,辽宁省科技厅,辽宁省未来产业前沿技术项目,2025.06-2027.05,30万,主持。
[6] 金矿微波-机械连续破岩关键参数设计及现场试验研究,企业科研攻关项目,2024-01至2026-12,750万,执行负责人。
[7] 真三轴应力下煤体低功率微波-液氮耦合增渗机制研究,深部煤矿采动响应与灾害防控国家重点实验室开放基金,SKLMRDPC23KF17,2024-04至2026-003,10万,主持。
[8] 微波辐射后矿岩的磨蚀特征及刀具磨损机理,教育部中央高校基本科研业务费-引导远源学科交叉项目,2024-01至2024-12,20万,主持。
五、主要研究成果
(1)近5年发表论文
[1] Feng Lin, Xia-Ting Feng*, Gao-Ming Lu, et al. Study on microwave heating order and electromagnetic characteristics of copper and gold ores. Rock Mechanics and Rock Engineering, 2021; 54(5): 2129-2143. (SCI, Q1)
[2] Feng Lin, Xia-Ting Feng*, Cheng-Xiang Yang, et al. Microwave response characteristics and influencing factors of ores based on dielectric properties of synthetic samples. Journal of Rock Mechanics and Geotechnical Engineering, 2022; 14(2): 315-328. (SCI, Q1)
[3] Feng Lin, Xia-Ting Feng*, Cheng-Xiang Yang, et al. Experimental study on improving mechanical mining efficiency of deep banded iron ore by microwave presplitting. International Journal of Rock Mechanics and Mining Science, 2022; 159: 105233. (SCI, Q1)
[4] Feng Lin, Xia-Ting Feng*, Shi-Ping Li, et al. Effects of particle size and morphology on microwave cracking characteristics and cracking mechanism of three Fe-containing ores. Geomechanics and Geophysics for Geo-Energy and Geo-Resources, 2023, 9(1): 100. (SCI, Q1)
[5] Feng Lin, Xia-Ting Feng*, Shi-Ping Li, et al. Optimization of microwave presplitting iron ore to improve mechanical mining efficiency. Rock Mechanics and Rock Engineering, 2024, 57(3): 1897-1914. (SCI, Q1)
[6] Feng Lin, Xia-Ting Feng*, Shi-Ping Li, et al. Field test of high-power microwave-assisted mechanical excavation for deep hard iron ore. Journal of Rock Mechanics and Geotechnical Engineering, 2024, 16(6):1922-1935. (SCI, Q1)
[7] Xia-Ting Feng*, Feng Lin, Jiu-Yu Zhang, et al. Development of high-power microwave mechanical integrated continuous mining device. Journal of Rock Mechanics and Geotechnical Engineering, 2024,16(9): 3365-3377. (SCI, Q1)
[8] Feng Lin, Xia-Ting Feng, Shi-Ping Li, et al. Field tests using high-power microwaves to crack iron ore of different grades. Rock Mechanics and Rock Engineering, 2025, 58(9): 11019-11038. (SCI, Q1)
[9] Feng Lin*, Xia-Ting Feng, Yu-Xi Liu, et al. Exploring hard-rock cutting performances by a master-slave follow-up disc cutter. Journal of Rock Mechanics and Geotechnical Engineering. 2025. https://doi.org/10.1016/j.jrmge.2025.02.007 (SCI, Q1)
[10] Feng Lin*, Zi-Yang Wang, Yun-Tan Ao, et al. A high-power microwave continuous cracking system for hard ores. Ain Shams Engineering Journal. 2025, 16(7): 103440. (SCI, Q1)
[11] Jiu-Yu Zhang, Feng Lin*, Xia-Ting Feng, et al. Characteristics of microwave-induced borehole fracturing in hard rock with different heating rates and temperatures under true triaxial stress. Journal of Rock Mechanics and Geotechnical Engineering. 2025. https://doi.org/10.1016/j.jrmge.2025.03.008 (SCI, Q1)
[12] Tian-Yang Tong, Feng Lin*, Shi-Ping Li, et al. The characteristics and mechanism of microwave-induced subsurface fracturing of hard rock at different burial depths. Tunnelling and Underground Space Technology. 2025, 162. (SCI, Q1)
(2)发明专利
[1] Feng Lin, Xia-Ting Feng, et al. Microwave Drill Bit Capable of Achieving Fracturing of Borehole Wall and End of Deep Hard Rock While Drilling and Use Method Thereof. United States, US 12188338 B2, 2025.01.07.
[2] Feng Lin, Xia-Ting Feng, et al. Mechanical Continuous Mining Device Integrating Microwaves and Cutter Heads, and Use Method. United States, US 18/259760, 2025.10.07.
[3] Xia-Ting Feng, Feng Lin, et al. Microwave-mechanical Fludization Mining System and Mining Method for Metal Mines. United States, US11773720 B2, 2023.02.27.
[4] Xia-Ting Feng, Feng Lin, et al. Microwave Plasma Adaptive Rock Breaking Device for Microwave-insensitive Rocks and Method for Using the Same. United States, US11732582 B2, 2023.05.11.
[5] Xia-Ting Feng, Feng Lin, et al. Low-Power Microwave Coring Machine Suitable for Lunar Rocks and Method of Using the Same. United States, US11913336 B2, 2023.12.13.
[6] Xia-Ting Feng, Feng Lin, et al. A gravity type double tube controllable ore thickness microwave grinding device and its usage method. United States, US12109572 B2. 2024.10.08.
[7] 林峰,冯夏庭等. 硬岩金属矿微波机械联合掘进装置及方法. 中国,ZL202411822681.X, 2025.03.25.
[8] 林峰,童天扬等. 一种大尺度矿石微波致裂参数自适应调控系统. 中国,ZL202411180462.6, 2025.10.27.
[9] 冯夏庭,林峰,等. 一种金属矿微波-机械流态化开采系统及开采方法. 中国,ZL202110338294.9, 2022.02.01.
[10] 冯夏庭,林峰,等.一种适用于月岩的低功率微波取芯机及使用方法. 中国,ZL202110338295.3, 2022.01.25.
(3)科研奖励
[1] 硬岩金属矿石大功率微波机械连续开采与磨矿技术研究,国际岩石力学与工程学会(ISRM)罗哈奖提名奖(原岩石力学学会优博论文奖),省部级,排名1/1。
[2] 散体-碎裂软岩大跨度隧道大变形高效控制关键技术及工程应用,辽宁省科技进步一等奖,省部级,排名5/11。
六、招生信息
(1)每年招收博士研究生1-2名、硕士研究生2-3名,欢迎采矿、力学、机械、土木、地质等相关专业学生报考。将为每位同学提供良好的科研条件和生活保障。
(2)每年指导大学生创新训练计划项目1项。
七、联系方式
邮箱:linfeng@mail.neu.edu.cn;微信号:lf_super_panda;QQ:2417545035
地址:辽宁省沈阳市和平区文化路三巷11号