Zhang Jianrui, Wei Xing, Li Ni, Pan Xiaonan, Sun Yitong
College of Intelligent Manufacturing, Longdong University, Qing yang, China.
Operation Office of Production Capacity Construction Project Team of No. 10 Oil Production Plant, Changqing Oilfield Company, Qing yang, China.
PLoS One. 2025 Feb 21;20(2):e0316711. doi: 10.1371/journal.pone.0316711. eCollection 2025.
The rotary direct drive electro-hydraulic servo valve (RDDPV) is extensively employed in hydraulic systems across aerospace, automotive, and various industrial sectors owing to its remarkable precision and rapid response characteristics. The investigation of the durability life of such devices, constituting intricate amalgamations of mechanical, electrical, and hydraulic components, has perennially posed a formidable challenge. To address this challenge, our study proposes a methodology grounded in failure mechanisms to systematically quantify the durability life of RDDPV. In conjunction with finite element analysis, this study delves into the fatigue durability of the transmission mechanism and the wear durability of the slide valve-two components recognized as vulnerabilities within the RDDPV. Initially, a novel approach is proposed that integrates probability theory and fuzzy theory with the traditional Miner theory, enhancing the accuracy of fatigue life predictions for transmission mechanisms. Subsequently, a meticulous examination of the wear mechanism of the slide valve ensued, wherein we quantitatively characterized the radial wear between the valve core and sleeve using the degree of line wear. Ultimately, employing durability index calculations, the total operational life of the valve is ascertained at about 435,000 hours, thereby aligning with national standards. This research methodology not only contributes significantly to the field but also holds substantial reference value for the precise quantification of the durability life of analogous electro-hydraulic pressure servo valves.
旋转直驱式电液伺服阀(RDDPV)因其卓越的精度和快速响应特性,在航空航天、汽车及各类工业领域的液压系统中得到广泛应用。这类装置由机械、电气和液压部件复杂组合而成,对其耐久性寿命的研究一直是一项艰巨挑战。为应对这一挑战,我们的研究提出一种基于失效机制的方法,以系统地量化RDDPV的耐久性寿命。结合有限元分析,本研究深入探讨了传动机构的疲劳耐久性以及滑阀的磨损耐久性——这两个部件被认为是RDDPV中的薄弱环节。首先,提出一种将概率论和模糊理论与传统Miner理论相结合的新方法,提高了传动机构疲劳寿命预测的准确性。随后,对滑阀的磨损机制进行了细致研究,我们使用线磨损程度定量表征了阀芯与套筒之间的径向磨损。最终,通过耐久性指标计算,确定该阀的总运行寿命约为435,000小时,从而符合国家标准。本研究方法不仅对该领域有重大贡献,而且对类似电液压力伺服阀耐久性寿命的精确量化具有重要参考价值。