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Stability Analysis and Optimal Design of Super-power Hydraulic Operating System

机译:超功率液压操作系统的稳定性分析与最优设计

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Running stability of hydraulic operating system with features of fast response, high flow rate and instantaneous super power greatly influences the normal and high effective action of ultra-high voltage circuit breaker. Mechanism of super-power hydraulic operating system in 1100 kV ultra-high voltage circuit breaker was analyzed to build a united simulation model, including multilevel control valves, accumulators, high-speed hydraulic cylinder buffering system and so forth, to investigate response features of control valves, buffering features of high-speed hydraulic cylinder and kinematic features of open and close action. Meanwhile, the accuracy of the model was validated with test data compared with design criterion, founding that there exist an extremely high pressure up to 107 MPa with a tremendous changing process within the hydraulic cylinder, and the velocity of the piston hitting the cushion sleeve at end of the cylinder was about 1.7 m/s which caused great impact on the sleeve. What's more, three optimal schemes for clearance distribution of the benched trunk piston were put forward to obtain a better cushion result reducing peak pressure and end speed of piston to a rate of more than 30%. Research methods, parameter analysis and optimal design results can act as guidance for further study and performance improvement of hydraulic operating system of ultra-high voltage circuit breaker.
机译:液压操作系统的运行稳定性具有快速响应,高流速和瞬时超功率的特点极大地影响了超高压断路器的正常和高效动作。分析了1100 kV超高压断路器中超功液压操作系统的机理,构建了一架联合仿真模型,包括多级控制阀,蓄电池,高速液压缸缓冲系统等,以研究控制的响应特征阀门,高速液压缸的缓冲特征和开放式和接近动作的运动特性。同时,与设计标准相比,模型的准确性验证了测试数据,建立在液压缸内具有巨大变化过程的极高压力,以及液压套筒的速度较大,伴随着垫子套管的速度非常高。气缸的末端约为1.7米/秒,这对套筒产生了很大的影响。更重要的是,提出了三个间隙分布的最佳方案,以获得更好的缓冲,降低活塞的峰值压力和活塞的最终速度,以超过30%的速率。研究方法,参数分析和最佳设计结果可以作为进一步研究和性能改进超高压断路器液压操作系统的指导。

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