A Head Loss Pressure Boundary Condition for Hydraulic Systems

J. Fahlbeck, H. Nilsson, S. Salehi
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引用次数: 4

Abstract

Despite the increase in computational power of HPC clusters, it is in most cases not possible to include the entire hydraulic system when doing detailed numerical studies of the flow in one of the components in the system. The numerical models are still most often constrained to a small part of the system and the boundary conditions may in many cases be difficult to specify. The headLossPressure boundary condition is developed in the present work for the OpenFOAM open-source CFD code to include the main effects caused by a large hydraulic system onto a component in the system. The main motivation is to provide a boundary condition for hydraulic systems where known properties are specified by the user and unknown properties are calculated. This paper is a guide to the developed headLossPressure boundary condition. It is based on the extended Bernoulli equation to calculate the kinematic pressure on the patch. An arbitrary number of minor and friction losses are considered to describe the system in terms of head losses. The boundary condition also provides the opportunity to specify the head in relation to a reference elevation. System changes during operations are modelled through Function1 variables, which enables time-varying inputs. The developments are validated against experimental test data, where the varying head between two free surfaces and a valve closing and opening sequence are modelled with the boundary condition. The main effects of the system are well captured by the headLossPressure boundary condition. It is thus a useful and trustworthy boundary condition for incompressible hydraulic system simulations.
液压系统水头损失压力边界条件
尽管高性能计算集群的计算能力有所提高,但在大多数情况下,在对系统中某个组件的流动进行详细的数值研究时,不可能包括整个液压系统。数值模型通常仍然局限于系统的一小部分,边界条件在许多情况下可能难以确定。在本工作中,为OpenFOAM开源CFD代码开发了headlospressure边界条件,以包括大型液压系统对系统中某个组件造成的主要影响。主要动机是为液压系统提供一个边界条件,其中已知特性由用户指定,未知特性由用户计算。本文是开发的水头损失压力边界条件的指南。基于扩展伯努利方程计算贴片上的运动压力。考虑任意数量的小损失和摩擦损失,以水头损失来描述系统。边界条件还提供了指定与参考标高相关的头部的机会。操作期间的系统变化是通过Function1变量建模的,它支持时变输入。根据实验测试数据对开发进行了验证,其中两个自由表面之间的变化水头和阀门关闭和打开顺序用边界条件进行了建模。headlospressure边界条件很好地反映了系统的主要影响。因此,它是不可压缩液压系统仿真的一个有用的、可靠的边界条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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