Hydroelectric generating units harness the potential energy of flowing water in a hydromechanical system, characterized by constantly varying flow velocity and discharge, with energy distribution that is far from uniform. Water flow is regulated—both cut off and supplied—via an inlet valve system. Such systems typically employ ball‑valve or butterfly‑valve arrangements actuated by servo‑actuators powered by hydraulic control. These control schemes demand high reliability and must meet stringent emergency‑shut‑down requirements under fault conditions. To enhance operational performance, enable long‑term maintenance‑free operation, and promote energy efficiency and environmental sustainability—while also improving on‑site noise levels and cleanliness—modern hydroelectric plants increasingly adopt advanced Westinghouse high‑pressure piston‑type hydraulic control systems equipped with energy monitoring. Particularly in applications with large vertical head differences, high‑oil‑pressure hydraulic systems ensure reliable emergency closure of valve equipment under abnormal conditions and support redundant design for opening and closing operations. In accordance with the relevant provisions of IEC 61362, where no gravity‑assisted shut‑off is employed, the volume of the high‑pressure accumulator is generally sized to accommodate three full‑stroke volumes for opening and closing, or to provide sufficient energy for two complete opening/closing cycles. Piston‑type accumulators with energy monitoring not only enable continuous oversight of stored gas energy but also effectively mitigate the risk associated with bladder accumulators—namely, pressure‑gas leakage into the servo‑actuator due to bladder rupture, which can cause actuator rollback or creep and pose significant safety hazards during operation. Moreover, by incorporating multi‑stroke accumulator volumes, such systems both satisfy emergency‑cut‑off requirements and facilitate black‑start capability following plant restarts.
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