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Design optimization and experimental performance test of dynamic flow balance valve

机译:动态流量平衡阀的设计优化与实验性能试验

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This paper considers a solution to the serious problem of hydraulic maladjustment in a dynamic flow balance valve for small diameter and low-pressure drop working conditions. The pressure drop compensation coefficient revising method was proposed to optimize the profile line of the valve core variable opening area. The flow rates of the valve before and after optimization under different displacements were simulated using Computational Fluid Dynamics (CFD) methods. The flow control accuracy of the balance valve before and after the optimization is compared and analyzed to the test values. At the same time, the influence of three key parameters: spring stiffness, the shell structure of the valve core, and geometry imperfections change due to machining burrs on the surface of the valve core for flow control accuracy was discussed. The results show that flow control accuracy after optimization satisfies the requirements of 5% flow rate control. Spring stiffness, the shell structure of the valve core and machining burrs on the surface of the valve core are shown to have an influence on the flow rate of the balance valve. This is especially true for machining burrs which has a larger effect with an average error of 10.1.
机译:本文考虑了一种解决动态流量平衡阀中的液压不良阀的严重问题,用于小直径和低压下降工作条件。提出了压降补偿系数修正方法,以优化阀芯变速开口区域的轮廓线。使用计算流体动力学(CFD)方法模拟不同位移之前和之后的阀门的流速。比较优化前后平衡阀的流量控制精度并分析到测试值。同时,探讨了三个关键参数的影响:弹簧刚度,阀芯的壳结构,以及由于在阀芯的表面上的加工毛刺而导致的几何缺陷变化,用于流动控制精度。结果表明,优化后的流量控制精度满足5%的流量控制要求。弹簧刚度,阀芯的壳结构和阀芯表面上的加工毛刺被示出为对平衡阀的流速的影响。这对于加工毛刺尤其如此,该毛刺具有较大效果的平均误差为10.1。

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