储能科学与技术 ›› 2025, Vol. 14 ›› Issue (11): 4274-4276.doi: 10.19799/j.cnki.2095-4239.2025.0974

• 储能系统与工程 • 上一篇    下一篇

机械弹性储能发电运行控制与设备升级研究

  

  • 收稿日期:2025-10-28 修回日期:2025-11-06 出版日期:2025-11-28 发布日期:2025-11-24
  • 作者简介:第一联系人:闫培泽(1974—),男,硕士,副教授,研究方向为机械设计制造、数控加工,E-mail:peize829@163.com

Research on operation control and equipment upgrade of mechanical elastic energy storage power generation

Peize YAN   

  1. School of Mechatronics and Automotive Engineering, Puyang Vocational and Technical College, Puyang 457000, Henan, China
  • Received:2025-10-28 Revised:2025-11-06 Online:2025-11-28 Published:2025-11-24

摘要:

随着全球能源需求的增长和新能源技术的快速发展,储能技术的重要性日益凸显。机械弹性储能技术作为一种新型的储能方式,因其高效、环保、易于维护等优点,近年来受到了广泛关注。对此本文综述了机械弹性储能技术的研究现状,包括涡簧材料与储能箱结构、运行控制等方面的进展。研究指出,机械弹性储能技术的核心部件是涡簧,其物理性能和力学性能会直接影响整个储能系统的能量密度和效率。同时,储能箱的结构设计会对整个储能系统造成影响:而在运行控制方面,分析了永磁同步电机(PMSM)的控制策略以及解耦控制和智能控制优化等关键技术的发展。此外,本文还提出了储能过程优化的重要性,包括精确控制电机运行状态和优化涡簧物理行为等。这些研究为机械弹性储能技术的进一步发展和应用提供了有益的思路和借鉴。

关键词: 机械弹性, 涡簧, 储能

Abstract:

With the growth of global energy demand and the rapid development of new energy technologies, the importance of energy storage technology is becoming increasingly prominent. Mechanical elastic energy storage technology, as a new type of energy storage method, has received widespread attention in recent years due to its advantages of high efficiency, environmental protection, and easy maintenance. This article provides an overview of the current research status of mechanical elastic energy storage technology, including advances in vortex spring materials, energy storage box structures, and operational control. Research has shown that the core component of mechanical elastic energy storage technology is the vortex spring, whose physical and mechanical properties directly affect the energy density and efficiency of the entire energy storage system. Meanwhile, the structural design of the energy storage box will have an impact on the entire energy storage system. In terms of operation control, the control strategy of permanent magnet synchronous motor (PMSM) and the development of key technologies such as decoupling control and intelligent control optimization were analyzed. In addition, the article also highlights the importance of optimizing the energy storage process, including precise control of motor operating status and optimization of vortex spring physical behavior. These studies provide useful ideas and references for the further development and application of mechanical elastic energy storage technology.

Key words: mechanical elasticity, vortex spring, energy storage

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