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蓝春波职称: 副教授 学科: 力学,动力工程及工程热物理 教学部门: 新能源学院党委、新能源学院 办公地址: 通讯地址: 邮箱: chunbo.lan@hhu.edu.cn |
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个人简介蓝春波,工学博士,副教授,河海大学风能与系统研究所副所长。先后于2012年、2015年和2018年分别取得西北工业大学本科、硕士和博士学位。2016年-2017年,新西兰奥克兰大学机械工程系联合培养学习。长期从事:非线性动力学、振动能量收集与自供电传感等研究。主持国家自然科学基金面上项目、国自然青年基金、军委科技委基础加强领域基金、装备发展部共用技术项目、江苏省自然科学基金青年项目、国家博士后面上项目等科研项目,研究成果在MSSP、AS、JSV、SMS、APL等国际高水平SCI期刊上发表论文40余篇。获陕西省高等学校科学技术二等奖一项。入选ASME SMASIS Senate (智能结构、自适应系统与智能系统分会委员),担任ASME能量收集技术委员会委员和JPD-AP等3个SCI期刊客座编辑。个人总他引1100余次,单篇最高160余次,H指数=19。2024年入选全球前2%顶尖科学家(Elsevier)。 欢迎能源与动力、力学、土木、航空航天、机械、电力电子、自动化等专业同学报考。提供充足科研经费、国际化交流机会及个性化培养方案,助力学生成长为高水平科研人才。 邮箱:chunbo.lan@hhu.edu.cn. 教育经历 2016.03 – 2017.03 新西兰奥克兰大学,机械工程,公派联合培养博士 2013.09 – 2018.03 西北工业大学,工程力学,博士 2012.09 – 2015.09 西北工业大学,一般力学与力学基础,硕士,硕博联培 2008.09 – 2012.06 西北工业大学,交通工程,学士 工作经历 2018.04 – 2026.03 南京航空航天大学,航空学院,讲师、副研究员 2026.03 – 至今 河海大学,新能源学院,副教授 研究方向 方向一:环境微能量收集方法
方向二:风电机组能量收集自供电信息感知
方向二:结构自驱的风电机组异常信息感知与智能预警
学术活动 美国ASME会员、SPIE会员、中国振动工程学会会员、航空学会会员; ASME Energy Harvesting Technical Committee Member; ASME SMASIS Divison Senate; NVND,VEH等国内和国际会议分会场主席; 《Journal of Physics D: Applied Physics》、《Micromachines》等SCI期刊客座编辑。 项目经历(主持) [1].国家自然科学基金面上项目,面向无源应变传感的旋翼多谐波振动能量收集方法及其机理研究,2026.01-2029.12 [2].国家自然科学基金青年科学基金,12002152,自动追踪振源频率的压电能量收集系统的动力学机理与实验研究,2021.01-2023.12 [3].军委科技委基础加强领域基金,直升机XX减振技术研究,2023-2025 [4].直升机动力学全国重点实验室基金,直升机XX振动能量收集无源传感技术研究,2024-2026 [5].中国博士后科学基金面上项目,非对称追频式压电振动能量收集系统的动力学机理与实验研究,2020.09-2023.08 [6].江苏省自然科学基金--青年基金项目,BK20190379,自适应变频振动能量收集系统的动力学机理与实验研究,2019.07-2022.06 [7].中央高校基本科研业务费--青年科技创新基金(理工民口类),自适应变频振动能量收集技术研究,2020.11-2022.11 [8].中央高校基本科研业务费--青年科技创新基金(理工军口类),振动能量收集无源XX传感技术研究,2024-2025 [9]. 中央高校基本科研业务费,风电叶片能量收集与自供电传感,2026-2028.
教育教学 担任20级卓越工程师班班主任,所在班级获校“标兵班级”; 担任钱伟长班学业导师,指导学生获国家级大创项目项目1项,优秀结题; 指导学生获2022年“互联网+”大赛省赛二等奖1项; 指导学生获“第三届超材料力学大赛”一等奖1项; 指导学生获“第四届超材料力学大赛”二等奖1项。 个人获奖 陕西省高等学校科学技术二等奖; “第三届超材料力学大赛”优秀指导教师奖; “第四届超材料力学大赛”优秀指导教师奖; ASME能量收集年度最佳论文奖,2023, 2024全球前2%顶尖科学家。
期刊论文 2026年 [40] 陈曦, 蓝春波*, 张璐,基于振动能量收集的结构应变传感系统设计与实验研究, 振动工程学报, 2026, 已录用 [39] Liao Yabin*, Qian Feng, Lan Chunbo, Material and geometric nonlinearities in piezoelectric energy harvesting: modeling, validation, and analysis, Smart Materials and Structures, 2026, 35: 085046 [38] Li Yizhou, Zhang Ye, Tang Hao, Zheng Yaozi, Wang Yawei, Zhao Chaoyang, Dong Liwei, Wang Junlei*, Lan Chunbo*, Hu Guobiao*. Sustained Self-Powered Real-Time Vibration Monitoring Through Integrated Nonlinear Harvesting and Energy-Aware Wireless Sensing. Advanced Science, 2026: e76967. [37] Lan Chunbo*, Chen Xi, Liao Yabin, Wang Shuo, Deep-learning enabled parametric identification method of vibration-based energy harvesters with piezoelectric nonlinearity, Smart Materials and Structures, 2026, 35(4):045031 [36] Lan, Chunbo*, Wang Shuo, Chen Xi, Lu Yang, Hu Guobiao, Bandgap trade-off in a nonlinear metamaterial beam with magnetically coupled dual-resonators [J], Journal of Sound and Vibration, 2026, 632, 119727. 2025年 [35] 蓝春波*, 贾洁, 汪洋, 王烁,张璐, 仿节肢动物肢体构型的M形低频隔振结构设计及其动力学机理, 物理学报, 2025, 74(13):37-51 [34] Du, Chengyun, Shuai Jiang, Shuai Qu, Xiao Wang, Yingqi Zhang, Chunbo Lan, and Guobiao Hu*. Vehicle-level modeling and analysis of onboard energy harvesters and their impact on dynamics. Journal of Vibration and Acoustics 2025, 147(6): 061009. [33] Zhang Ye, Wang Yawei, Zheng Yaozi. Lan Chunbo, Hu Guobiao*, Magnetically enhanced quasi-zero-stiffness galloping harvester for efficient wind energy harvesting and autonomous sensing, Applied Physics Letters, 2025, 127(20) [32] Lan Chunbo*, Zhang Ye, Wang Shuo, Lu Yang, Wang Yang, Hu guobiao*, Enhancing galloping-based energy harvesting through expanded quasi-zero-stiffness region, Smart Materials and Structures, 2025, 34(05): 055018. 2024年 [31] Zhang Lu, Lan Chunbo*, Lu Fangjie, Lu Yang, Theoretical Analysis of the Power Performance of a Monostable Galloping‐Based Piezoelectric Energy Harvester, International Journal of Energy Research 2024 (1), 1386237 [30] Xu Xice, Lu Yang*, Lan Chunbo, Xing Zebao, Shao Mengxue, Experimental research on global active rotor noise control using near-field acoustic holography and sound field reproduction, Mechanical systems and signal processing, 2024, 206: 110930 [29] Xu Xice, Lu Yang*, Lan Chunbo, Xing Zebao, Shao Mengxue, Lu Jiaxin, Mechanism analysis of the influence of rotor-to-rotor interactions on global rotor noise, Journal of Sound and Vibration, 2024, 585:118473 2023年 [28] Li Chenglei, Lu Yang*, Lan Chunbo, Wang Yang, Noise reduction in helicopter cabins using microperforated panel composite sound absorption structures, Applied Sciences, 2023, 13(14):8153 [27] Xu Xice, Lu Yang*, Shao Mengxue, Lan Chunbo, Fast prediction method for multirotor global tonal noise based on acoustic modal analysis, Mechanical systems and signal processing, 2023, 183: 109620 2022年 [26] Lan Chunbo, Qian Feng, Liao Yabin, Zuo Lei, Power characteristics of vibration-based piezoelectric energy harvesters: the effect of piezoelectric material nonlinearity, Smart Materials and Structures, 31(10):105017 [25] Hu Guobiao, Lan Chunbo, Liang Junrui, Tang Lihua, Zhao Liya, Theoretical study of a two-degree-of-freedom piezoelectric energy harvester under concurrent aeroelastic and base excitation, Journal of Intelligent Material Systems and Structures, 2022, 33(15), 2000-2016 [24] Hu Guobiao, Lan Chunbo, Tang Lihua, Yang Yaowen, Deep-subwavelength interface states in mechanical systems, Mechanical systems and signal processing, 2022, 169: 108598 [23] Hu Guobiao, Lan Chunbo, Tang Lihua, Zhou Bo, Yang Yaowen, Dynamics and power limit analysis of a galloping piezoelectric energy harvester under forced excitation, Mechanical systems and signal processing, 2022, 168: 108724 [22] Hu Guobiao, Lan Chunbo, Tang Lihua, Yang Yaowen, Local resonator stimulated polarization transition in metamaterials and the formation of topological interface states, Mechanical systems and signal processing, 2022, 165: 108388 [21] 吴义鹏, 李森, 蓝春波, 周圣鹏, 谢维泰, 裘进浩, 季宏丽, 压电能量俘获结构及其升频转换技术的发展现状, 机械工程学报, 2022, 58(20):27-45 [20] Lan, Chunbo, Liao Yabin*, Hu Guobiao, A unified equivalent circuit and impedance analysis mothod for galloping piezoelectric energy harvesters[J], Mechanical systems and signal processing, 2022, 165: 108339 2021年 [19] Lan, Chunbo*, Chen Zhenning, Hu, Guobiao, Liao, Yabin and Qin, Weiyang, Achieve frequency-self-tracking energy harvesting using a passively adaptive cantilever beam[J], Mechanical systems and signal processing, 2021, 156: 107672 [18] Lan, Chunbo, Hu Guobiao*, Tang, Lihua, Yang Yaowen, Energy localization and topological protection of a locally resonant topological metamaterial for roubst vibration energy harvesting[J], Journal of Applied Physics, 2021, 129: 184502. [17] Lan, Chunbo*, Tang, Lihua, Hu, Guobiao, and Qin, Weiyang, A wind-induced negative damping method to achieve high-energy orbit of a nonlinear vibration energy harvester [J], Smart Materials and Structures, 2021, 30: 02LT02. 2020年 [16] Hu Guobiao, Liang Junrui, Lan Chunbo, Tang Lihua, A twist piezoelectric beam for multi-directional energy harvesting, Smart Materials and Structures, 2020. 29(11):11LT01 [15] Lan Chunbo, Liao Yabin, Hu Guobiao, Tang Lihua, Equivalent impedance and power analysis of monostable piezoelectric energy harvesters, Journal of Intelligent Material Systems and Structures, 2020, 31(14): 1697-1715. [14] Hu, Guobiao, Xu Jiawen, Tang Lihua, Lan Chunbo, and Das Raj. Tunable metamaterial beam using negative capacitor for local resonators coupling. Journal of Intelligent Material Systems and Structures, 2020, 31(3): 389-407. 2019年 [13] Hu, Guobiao, Tang Lihua*, Xu Jiawen, Lan Chunbo, and Das Raj. Metamaterial with local resonators coupled by negative stiffness springs for enhanced vibration suppression. Journal of Applied Mechanics, 2019. 86(8): 081009. [12] Lan Chunbo*, Tang Lihua, Hu Guobiao, and Qin Weiyang, Dynamics and performance of a two degree-of-freedom galloping-based piezoelectric energy harvester[J], Smart Materials and Structures, 2019, 28: 045018. 2018年 [11]Lan Chunbo, Tang Lihua*, and Harne Ryan. L., Comparative methods of assessment for study of nonlinear piezoelectric energy harvesters interfaced with AC and DC circuits[J], Journal of Sound and Vibration, 2018,421:61-78 [10] Lan Chunbo, Tang Lihua*, and Qin Weiyang, Magnetically coupled dual-beam energy harvester: benefit and trade-off[J], Journal of Intelligent Material Systems and Structures, 2018, 29(6):1216-1235 2018年以前 [9] Lan Chunbo, Tang Lihua*, and Qin Weiyang, Obtaining high-energy responses of nonlinear piezoelectric energy harvester by voltage impulse perturbations[J], European Physical Journal: Applied Physics, 2017, 79(2) 20902 [8] Lan Chunbo, Qin Weiyang*, Enhancing ability of harvesting energy from random vibration by decreasing the potential barrier of bistable harvester[J], Mechanical systems and signal processing, 2017, 85, 71-81 [7] 李海涛, 秦卫阳*, 邓王蒸, 蓝春波, 田瑞兰, 复合式双稳能量采集系统动力学及相干共振, 振动与冲击, 2016, 35(14):119-124+139 [6] Li Haitao, Qin Weiyang*, Lan Chunbo, Deng Wangzheng, Zhou Zhiyong, Dynamics and coherence resonance of tri-stable energy harvesting system, Smart Materials and Structures, 2016, 25(1):015001 [5] Lan Chunbo, Qin Weiyang*, Deng Wangzheng, Energy harvesting by dynamic unstability and internal resonance for piezoelectric beam[J], Applied Physics Letters, 2015,107 093902 [4] 蓝春波, 秦卫阳*, 李海涛, 随机激励下双稳态压电俘能系统的相干共振及实验验证. 物理学报, 2015, 64(08):76-83 [3] 蓝春波, 秦卫阳*, 带碰撞双稳态压电俘能系统的俘能特性研究. 物理学报, 2015, 64(21):191-202 [2] 李海涛, 秦卫阳*, 周志勇, 蓝春波, 带有分数阶阻尼的压电能量采集系统相干共振, 物理学报,2014, 63(22):100-107 [1] Lan Chunbo, Qin Weiyang*, Energy harvesting from the coherence resonance of horizontal vibration of beam excited by vertical base motion[J], Applied Physics Letters, 2014,105: 11 个人资料
教育经历
工作经历
研究领域研究方向 方向一:环境微能量收集方法
方向二:风电机组能量收集自供电传感及其应用
方向三:非线性动力学与人工智能
科研项目
论文科技成果开授课程教学成果教学资源社会职务荣誉及奖励招生信息 |