专利成果
授权专利
[1] 马小燕; 黄娜颖; 王建卫; 孙崇飞; 刘刚; 臧春月; 王启元; 陈海龙; 刘恒序.一种饱和潜水钟用主动升沉补偿系统[P].山东省:CN202411266201.6,2025-01-21.
[2] 金叶青; 闫锋; 朱铁峰; 孙崇飞; 杨璨; 孔凡凯; 郑雄波; 陈海龙; 刘恒序.一种可为海洋漂流浮体供电的惯性波能装置[P].黑龙江省:CN202111241422.4,2024-07-09.
[3] 杨璨; 孙雨欣; 王贝贝; 刘恒序; 金叶青; 柴元超; 陈海龙; 孙崇飞; 万畅; 徐婷婷.一种可与多功能海洋平台集成的仿生鳗式波能发电装置[P].黑龙江省:CN202111357822.1,2023-05-26.
[4] 罗自荣; 尚建忠; 孙崇飞; 杨军宏; 卢钟岳.基于自适应限位翼板的波浪能转换装置[P].湖南省:CN201510739094.9,2018-04-17.
[5] 尚建忠; 罗自荣; 孙崇飞; 卢钟岳; 杨军宏.基于仿生鱼鳍的波浪能转换装置[P].湖南省:CN201510739158.5,2018-01-12.
[6] 孙崇飞; 王东胜; 董丽华; 张丽.一种用于模拟船舶尾气的动态配气系统[P].上海市:CN201310751658.1,2016-01-27.
公开专利
[7] 孙崇飞; 邵存; 孙文龙; 孙启瑞; 侯玉鑫; 张子航; 陈海龙; 刘恒序. 一种多级储能的波浪能液压能量转换系统及其控制方法[P].黑龙江省: CN202510072149.9,2025-01-17.
[8] 柴元超; 戴绍仕; 于丹; 孙崇飞; 易为佑; 唐聃; 吴宗阳; 吕福江.一种嵌入浮标内的双频共振波能转换装置及转换方法[P].黑龙江省:CN202411514038.0,2024-11-26.
[9] 孙崇飞; 滕怀钰; 王雪瑞; 田业帅; 李明浩; 郭杨林; 段育鹏; 邵存; 刘恒序.一种基于调谐阻尼的新型半潜式风浪能耦合电能供给平台[P].黑龙江省:CN202410059034.1,2024-07-12.
[10] 孔凡凯; 刘利杰; 崔文博; 孙崇飞; 刘恒序; 聂重阳; 夏瑞廷.一种解决多热源高热流密度与高热功率的多层微通道散热器及其运行方法[P].黑龙江省:CN202410014607.9,2024-04-09.
发表论文
[1] Duan Y, Liu H, Liu H, et al. Numerical study of wave resonance characteristics in gaps of a floating array[J]. Physics of Fluids, 2024, 36(11).
[2] Zhou Y, Liu H, Kong F, et al. Research on the design and optimal control of the power take-off (PTO) system for underwater eel-type power generators[J]. Applied Energy, 2024, 372: 123845.
[3] Zhou Y, Kong F, Liu H, et al. Numerical study on hydrodynamic characteristics of deep sea microfluidic eel energy capture device[J]. Renewable Energy, 2024, 225: 120325.
[4] Yu D, Sun C, Wang K, et al. A novel direct-driven triboelectric–electromagnetic hybridized wave energy converter for buoy power supply[J]. Applied Nanoscience, 2022, 12(5): 1697-1711.
[5] Kong F, Yin S, Sun C, et al. Design and optimization of a maglev electromagnetic–triboelectric hybrid energy converter for supplying power to intelligent sensing equipment[J]. Sustainable Energy & Fuels, 2022, 6(3): 800-814.
[6] Sun C, Shang J, Luo Z, et al. Performance characteristics of a Novel point Absorber-type WEC based on counter-rotating self-adaptable movement mechanism[J]. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 2021, 43(7): 783-799.
[7] Sun C, Shang J, Luo Z, et al. CFD Simulation and Experimental Study of a New Elastic Blade Wave Energy Converter[J]. Fluid Dynamics & Materials Processing, 2020, 16(6): 1147-1159.
[8] Sun C, Shang J, Luo Z, et al. Using flexible blades to improve the performance of novel small-scale counter-rotating self-adaptable wave energy converter for unmanned marine equipment[J]. Journal of Marine Science and Engineering, 2019, 7(7): 223.
[9] Wu G, Lu Z, Luo Z, et al. Experimental analysis of a novel adaptively counter-rotating wave energy converter for powering drifters[J]. Journal of Marine Science and Engineering, 2019, 7(6): 171.
[10] Cong D, Shang J, Luo Z, et al. Energy efficiency analysis of multi-type floating bodies for a novel heaving point absorber with application to low-power unmanned ocean device[J]. Energies, 2018, 11(12): 3282.
[11] Sun C, Luo Z, Shang J, et al. Design and numerical analysis of a novel counter-rotating self-adaptable wave energy converter based on CFD technology[J]. Energies, 2018, 11(4): 694.
[12] 孙崇飞,李欣,朱一鸣,尚建忠,罗自荣,何立军.基于状态空间模型的飞行器装配误差敏感度研究[J].农业机械学报,2020,51(5):421-426.
[13] 孙崇飞,罗自荣,朱一鸣,卢钟岳,吴国恒,尚建忠.波浪能点吸收器结构设计与数值优化[J].农业机械学报,2018,49(9):406-413.
[14] 李欣,孙崇飞,尚建忠,等.直接挤出成型用环氧树脂的流变性及其可打印性[J].国防科技大学学报,2021,43(3):159-164.