

浏览全部资源
扫码关注微信
1.西安交通大学复杂服役环境重大装备结构强度与寿命全国重点实验室, 710049,西安
2.西安交通大学航天航空学院, 710049,西安
Received:09 September 2024,
Online First:10 January 2025,
Published:10 May 2025
移动端阅览
HAO Xiaoyu, ZHANG Yanming, ZUO Hong, et al. Research on Large-Capacity Continuous Elastic Deformation Energy Storage Technology[J]. Journal of Xi’an Jiaotong University, 2025, 59(5): 23-29.
HAO Xiaoyu, ZHANG Yanming, ZUO Hong, et al. Research on Large-Capacity Continuous Elastic Deformation Energy Storage Technology[J]. Journal of Xi’an Jiaotong University, 2025, 59(5): 23-29. DOI: 10.7652/xjtuxb202505003.
针对机械储能问题,研究了一种基于弹性变形的大容量持续弹性变形储能技术。设计了可实现这一目标的传动及控制机构。该机构通过同步两个不同半径绕线轮的转速,或固定转速比的两个相同半径绕线轮,实现缠绕在两个同步轮上的可弹性变形拉线的持续弹性变形,进而在弹性线收放过程中实现能量的连续储能与释放。在储能过程中,将外界输入的机械能转化为弹性拉线伸长的弹性势能;在释放能量时,弹性拉线变形回复,进而释放其储存的弹性势能。相比传统的机械储能技术,该大容量持续弹性变形储能技术具有结构设计简洁紧凑,单位体积内储能密度高,系统响应速度快,制造与维护成本低、可持续性强等优势。研究成果可为风、光等可再生能源的收集提供技术支持,并能发挥电力系统调频调峰、紧急备用等功能。
In the field of mechanical energy storage
a large-capacity continuous elastic deformation energy storage technology based on elastic deformation has been researched. A drive and control mechanism capable of achieving this objective was designed. This mechanism facilitates the continuous elastic deformation of the tensile line wound around two synchronized pulleys by either synchronizing the rotational speeds of two pulleys with different radii or utilizing two identical pulleys with a fixed speed ratio. Consequently
this allows for the ongoing storage and release of energy during the extension and retraction of the elastic line. During the energy storage process
mechanical energy input from the external environment is converted into elastic potential energy through the elongation of the elastic line. Conversely
when energy is released
the elastic line undergoes deformation recovery
thus releasing its stored elastic potential energy. In comparison to traditional mechanical energy storage technologies
this large-capacity continuous elastic deformation energy storage system boasts several advantages: a compact and straightforward structural design
high energy density per unit volume
rapid system response times
low manufacturing and maintenance costs
and sustainability. The research findings provide technical support for the collection of renewable energy sources such as wind and solar power
while also enhancing power system functions like frequency regulation
peak shaving
and emergency backup capabilities.
吴皓文 , 王军 , 龚迎莉 , 等 . 储能技术发展现状及应用前景分析 [J ] . 电力学报 , 2021 , 36 ( 5 ): 434 - 443 .
WU Haowen , WANG Jun , GONG Yingli , et al . Development status and application prospect analysis of energy storage technology [J ] . Journal of Electric Power , 2021 , 36 ( 5 ): 434 - 443 .
戴兴建 , 张小章 , 姜新建 , 等 . 清华大学飞轮储能技术研究概况 [J ] . 储能科学与技术 , 2012 , 1 ( 1 ): 64 - 68 .
DAI Xingjian , ZHANG Xiaozhang , JIANG Xinjian , et al . Flywheel energy storage technology in Tsinghua University [J ] . Energy Storage Science and Technology , 2012 , 1 ( 1 ): 64 - 68 .
赵攀 , 苟非非 , 许文盼 , 等 . 风-火-储耦合系统储能容量配置优化对比 [J ] . 西安交通大学学报 , 2024 , 58 ( 8 ): 38 - 48 .
ZHAO Pan , GOU Feifei , XU Wenpan , et al . Comparison of storage capacity configuration optimization in wind-thermal power-storage coupling system [J ] . Journal of Xi'an Jiaotong University , 2024 , 58 ( 8 ): 38 - 48 .
AMIRYAR M E , PULLEN K R . A review of flywheel energy storage system technologies and their applications [J ] . Applied Sciences , 2017 , 7 ( 3 ): 286 .
郑明阳 , 赖杰 . 中盐金坛建压缩空气储能电站,储能领域“前沿中的前沿” [J ] . 中国盐业 , 2019 ( 9 ): 29 - 32 .
ZHENG Mingyang , LAI Jie . Zhongyan Jintan builds compressed air energy storage power station, the forefront of energy storage field [J ] . China Salt Industry , 2019 ( 9 ): 29 - 32 .
葛刚强 , 王焕然 , 李瑞雄 , 等 . 压缩空气储能蓄热器性能分析和优化设计 [J ] . 西安交通大学学报 , 2023 , 57 ( 1 ): 45 - 54 .
GE Gangqiang , WANG Huanran , LI Ruixiong , et al . Performance analysis and optimization design of heat accumulator in compressed air energy storage [J ] . Journal of Xi'an Jiaotong University , 2023 , 57 ( 1 ): 45 - 54 .
王焕然 , 席光 , 李瑞雄 , 等 . 先进抽水压缩空气复合储能技术 [J ] . 西安交通大学学报 , 2024 , 58 ( 5 ): 1 - 9 .
WANG Huanran , XI Guang , LI Ruixiong , et al . A study on the combined pumped-hydro and compressed air energy storage system [J ] . Journal of Xi'an Jiaotong University , 2024 , 58 ( 5 ): 1 - 9 .
吴海峰 , 鲁军勇 , 马伟明 , 等 . 大功率混合储能装置控制策略研究 [J ] . 西安交通大学学报 , 2015 , 49 ( 2 ): 93 - 98 .
WU Haifeng , LU Junyong , MA Weiming , et al . Control strategy for high power hybrid energy storage device [J ] . Journal of Xi'an Jiaotong University , 2015 , 49 ( 2 ): 93 - 98 .
周生喜 , 陶凯 , 秦卫阳 . 振动能量俘获专题序 [J ] . 力学学报 , 2021 , 53 ( 11 ): 2891 - 2893 .
ZHOU Shengxi , TAO Kai , QIN Weiyang . Preface to the special topic of vibration energy capture [J ] . Chinese Journal of Theoretical and Applied Mechanics , 2021 , 53 ( 11 ): 2891 - 2893 .
XU Yanhe , LI Chaoshun , WANG Zanbin , et al . Load frequency control of a novel renewable energy integrated micro-grid containing pumped hydropower energy storage [J ] . IEEE Access , 2018 , 6 : 29067 - 29077 .
FERTIG E , APT J . Economics of compressed air energy storage to integrate wind power: a case study in ERCOT [J ] . Energy Policy , 2011 , 39 ( 5 ): 2330 - 2342 .
BUCKLES W , HASSENZAHL W V . Superconducting magnetic energy storage [J ] . IEEE Power Engineering Review , 2000 , 20 ( 5 ): 16 - 20 .
SUO Liumin , BORODIN O , GAO Tao , et al . “Water-in-salt” electrolyte enables high-voltage aqueous lithium-ion chemistries [J ] . Science , 2015 , 350 ( 6263 ): 938 - 943 .
范玮 . 储能技术研究进展及经济性分析 [J ] . 煤质技术 , 2024 , 39 ( 3 ): 21 - 29 .
FAN Wei . Research progress and economic analysis on energy storage technology [J ] . Coal Quality Technology , 2024 , 39 ( 3 ): 21 - 29 .
刘荣峰 , 张敏 , 储毅 , 等 . 新型储能技术路线分析及展望 [J ] . 新能源科技 , 2023 , 4 ( 3 ): 44 - 51 .
LIU Rongfeng , ZHANG Min , CHU Yi , et al . Analysis and prospect of new energy storage technology routes [J ] . New Energy Technology , 2023 , 4 ( 3 ): 44 - 51 .
王楠 . 我国抽水蓄能电站发展现状与前景分析 [J ] . 电力技术经济 , 2008 , 20 ( 2 ): 18 - 20 .
WANG Nan . Current situation and prospects of the pumped-storage power plant in China [J ] . Electric Power Technologic Economics , 2008 , 20 ( 2 ): 18 - 20 .
张维煜 , 朱熀秋 . 飞轮储能关键技术及其发展现状 [J ] . 电工技术学报 , 2011 , 26 ( 7 ): 141 - 146 .
ZHANG Weiyu , ZHU Jiqiu . Key technologies and development status of flywheel energy storage system [J ] . Transactions of China Electrotechnical Society , 2011 , 26 ( 7 ): 141 - 146 .
梅生伟 , 李瑞 , 陈来军 , 等 . 先进绝热压缩空气储能技术研究进展及展望 [J ] . 中国电机工程学报 , 2018 , 38 ( 10 ): 2893 - 2907 .
MEI Shengwei , LI Rui , CHEN Laijun , et al . An overview and outlook on advanced adiabatic compressed air energy storage technique [J ] . Proceedings of the CSEE , 2018 , 38 ( 10 ): 2893 - 2907 .
王粟 , 肖立业 , 唐文冰 , 等 . 新型重力储能研究综述 [J ] . 储能科学与技术 , 2022 , 11 ( 5 ): 1575 - 1582 .
WANG Su , XIAO Liye , TANG Wenbing , et al . Review of new gravity energy storage [J ] . Energy Storage Science and Technology , 2022 , 11 ( 5 ): 1575 - 1582 .
单文泽 , 潘孝斌 , 陈元泰 , 等 . 涡卷弹簧式制动能量回收装置研究 [J ] . 机械设计与制造工程 , 2015 , 44 ( 10 ): 73 - 77 .
SHAN Wenze , PAN Xiaobin , CHEN Yuantai , et al . The development of equipment for braking energy recovery with spiral spring [J ] . Machine Design and Manufacturing Engineering , 2015 , 44 ( 10 ): 73 - 77 .
刘美娇 . 弹性储能系统平面涡卷弹簧优化设计及模拟仿真 [D ] . 保定 : 华北电力大学 , 2013 .
CARPINO G , ACCOTO D , SERGI F , et al . A novel compact torsional spring for series elastic actuators for assistive wearable robots [J ] . Journal of Mechanical Design , 2012 , 134 ( 12 ): 121002 .
汤敬秋 . 机械弹性储能用大型蜗卷弹簧力学特性研究 [D ] . 北京 : 华北电力大学 , 2016 .
郑晓明 , 米增强 , 余洋 , 等 . 机械弹性储能箱结构及并网控制策略优化 [J ] . 电工技术学报 , 2019 , 34 ( 22 ): 4708 - 4718 .
ZHENG Xiaoming , MI Zengqiang , YU Yang , et al . Optimization of energy storage box mechanical structure and Grid-Connected generation control strategy for mechanical elastic energy storage [J ] . Transactions of China Electrotechnical Society , 2019 , 34 ( 22 ): 4708 - 4718 .
米增强 , 余洋 , 王璋奇 , 等 . 永磁电机式机械弹性储能机组及其关键技术初探 [J ] . 电力系统自动化 , 2013 , 37 ( 1 ): 26 - 30 .
MI Zengqiang , YU Yang , WANG Zhangqi , et al . Preliminary exploration on permanent magnet motor based mechanical elastic energy storage unit and key technical issues [J ] . Automation of Electric Power Systems , 2013 , 37 ( 1 ): 26 - 30 .
杨恒 , 柯玉超 , 王申 , 等 . 航空橡胶密封件力学与密封性能检测技术 [J ] . 航空制造技术 , 2017 ( 22 ): 106 - 109 .
YANG Heng , KE Yuchao , WANG Shen , et al . Measurement technologies of mechanical and seal performance for aviation rubber seals [J ] . Aeronautical Manufacturing Technology , 2017 ( 22 ): 106 - 109 .
陈振英 . 基于数字图像相关法的应变测量研究 [D ] . 上海 : 上海交通大学 , 2013 .
尹辉 . 基于光纤光栅传感的卡套式管路接头应力测试与密封性能研究 [D ] . 烟台 : 烟台大学 , 2024 .
LIANG Lei , WANG Renliang , XU Gang , et al . Analysis and study of FBG sensor in crack monitoring of aircraft structure [C ] // IOP Conference Series: Earth and Environmental Science . Bristol, United Kingdom : IOP Publishing , 2019 : 022111 .
KIM J H , PARK Y , KIM Y Y , et al . Aircraft health and usage monitoring system for in-flight strain measurement of a wing structure [J ] . Smart Materials and Structures , 2015 , 24 ( 10 ): 105003 .
0
Views
6
下载量
0
CSCD
Publicity Resources
Related Articles
Related Author
Related Institution
京公网安备11010802024621