一种新型油浸式电气设备溢流阀的设计与分析

IF 1 4区 工程技术 Q4 ENGINEERING, MECHANICAL Journal of Pressure Vessel Technology-Transactions of the Asme Pub Date : 2022-12-03 DOI:10.1115/1.4056382
Liang Luo, Jinzhong Li, Nong Zhang, Ke Wang, Shuqi Zhang, Ningchuan Liang
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引用次数: 0

摘要

油浸电气设备发生内弧是不可避免的,具有很大的危险性。瞬态超压应由保护器快速、可控地释放。现有的泄压阀由于泄压能力不足,相应的阀门结构薄弱,与电气系统升级过程中电弧能量增加不匹配,不能充分保护电气设备。此外,喷射出的高温油气混合物燃烧的可能性明显,并且在没有任何隔离的油箱中保留的油可能被火焰点燃。遗憾的是,由于阀板上的液压分布不对称,导致阀板运动不稳定,现有的一些单出口阀的再密封无法控制。为此,研制了一种以对称出口为特征的新型泄压阀。首先介绍了新型阀的结构和功能,并对溢流过程中的动态性能、强度和流体发展进行了综合分析。最后,制作了样机并在特定的测试系统上进行了测试。该阀能很好地释放6 MJ等效电弧故障产生的超压,在整个释放过程中不产生任何火焰。阀体结构能够承受压力载荷,阀板通过优化的流体压力分布实现对油箱的精确再密封。本研究为减压阀的优化设计和改进型减压阀的设计提供了指导。
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Design and Analysis of a New Pressure Relief Valve for Oil-Immersed Electrical Equipment
Internal arcing in oil-immersed electrical equipment is inevitable and of great danger. Transient overpressure should be released by protectors quickly and controllably. Currently available pressure relief valves cannot fully protect the electrical equipment due to mismatch between insufficient relief capacity with correspondingly weak valve structure and increasing arcing energy in upgrading electrical systems. Additionally, flaming possibility of ejected high-temperature oil-gas mixture is distinct, and retained oil in an oil tank without any isolation may be ignited by the flame. Unfortunately, re-sealing of some existing single-outlet valves is out of control due to asymmetrical hydraulic pressure distribution on the valve plate which causes unstable valve plate movement. Therefore, a new pressure relief valve characterised by symmetrical outlets was developed. The novel structure and function of the new valve was firstly introduced, and comprehensive analysis regarding dynamic performances, strength and fluid development during the relief process were conducted. Finally, a prototype was manufactured and tested on a specific test system. The developed valve can well release the overpressure generated by a 6 MJ equivalent arcing fault without any flame during the entire relief process. Furthermore, the valve structure can withstand the pressure load, and valve plate can precisely re-seal the oil tank due to optimized fluid pressure distribution. This research provides an optimized pressure relief valve and a design guide for improved pressure relief valve.
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来源期刊
CiteScore
2.10
自引率
10.00%
发文量
77
审稿时长
4.2 months
期刊介绍: The Journal of Pressure Vessel Technology is the premier publication for the highest-quality research and interpretive reports on the design, analysis, materials, fabrication, construction, inspection, operation, and failure prevention of pressure vessels, piping, pipelines, power and heating boilers, heat exchangers, reaction vessels, pumps, valves, and other pressure and temperature-bearing components, as well as the nondestructive evaluation of critical components in mechanical engineering applications. Not only does the Journal cover all topics dealing with the design and analysis of pressure vessels, piping, and components, but it also contains discussions of their related codes and standards. Applicable pressure technology areas of interest include: Dynamic and seismic analysis; Equipment qualification; Fabrication; Welding processes and integrity; Operation of vessels and piping; Fatigue and fracture prediction; Finite and boundary element methods; Fluid-structure interaction; High pressure engineering; Elevated temperature analysis and design; Inelastic analysis; Life extension; Lifeline earthquake engineering; PVP materials and their property databases; NDE; safety and reliability; Verification and qualification of software.
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