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Reduction of the flow forces in a small hydraulic seat valve as alternative approach to improve the valve characteristics

机译:减小小型液压座阀中的流动力是改善阀特性的替代方法

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In this paper the optimization of the spool and housing geometry in a small hydraulic seat valve to enable the reduction of the axial flow forces to a minimum value is described. Non-optimized hydraulic valve geometry is usually the main cause for many problems related to response time, actuation force and energy consumption. To overcome these limitations and problems we have done a thorough numerical and experimental analysis of a seat valve. The main influential geometry parameters of the seat valve are defined for numerical analyses. In the next step the basic theory of the numerical simulation, including the 3D modelling, meshing and parameterization, is explained. The reduction of the flow forces in a small hydraulic seat valve is treated in detail by using a commercial simulation tool, Ansys CFX. The validation of the numerical fluid model of the valve is done by comparing simulation and experimental results obtained with the test rig for axial flow force measurement. With the validated numerical fluid model of the valve new fluid models are built taking into account all influential geometry parameters of the valve for the purpose of the final optimization of the valve geometry. The results of the simulation analyses show that the axial component of the flow forces can be reduced significantly just by modifying the geometry of the valve spool and housing. Thus the valve dynamic characteristics, such as response time, are significantly improved while the necessary actuation force and power consumption are reduced.
机译:在本文中,描述了在小型液压座阀中优化滑阀和壳体几何形状以使轴向力减小到最小值的方法。未优化的液压阀几何形状通常是引起许多问题的主要原因,这些问题涉及响应时间,致动力和能耗。为了克服这些限制和问题,我们对座阀进行了全面的数值和实验分析。定义了座阀的主要影响几何参数,以进行数值分析。在下一步中,将解释数值模拟的基本理论,包括3D建模,网格划分和参数化。使用商用仿真工具Ansys CFX对减小液压小座阀中的流动力进行了详细处理。阀门数值流体模型的验证是通过将模拟和试验结果与用于轴向流力测量的试验台进行比较来完成的。通过阀的经过验证的数值流体模型,可以在考虑阀的所有影响几何参数的情况下建立新的流体模型,以最终优化阀的几何形状。仿真分析的结果表明,仅通过修改阀芯和阀壳的几何形状,就可以显着降低流动力的轴向分量。因此,显着改善了阀门的动态特性,例如响应时间,同时减少了必要的致动力和功耗。

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