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Hydraulic manifold design via additive manufacturing optimized with CFD and fluid-structure interaction simulations

机译:液压歧管设计通过加性制造,用CFD和流体结构相互作用模拟进行了优化

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Purpose The purpose of this study is to investigate the feasibility of using additive manufacturing (AM) technique to produce an efficient valve manifold for hydraulic actuator by redesigning valve blocks produced by conventional methods. Design/methodology/approach A priori, a computational fluid dynamics (CFD) analysis was carried out using the software ANSYS Fluent to determine the optimal flow path that results in least pressure drop, highest average velocity and least energy losses. Fluid-structure interaction (FSI) simulations, processed with imported pressure distribution from the CFD, were conducted to determine the resulting loading and deformations of the manifold assembly. Findings The new design offers a 23 per cent reduction of oil volume in the circuit, while weighing 84 per cent less. When using the new design, a decrease of pressure drop by nearly 25 per cent and an increase in the average velocity by 2.5 per cent is achieved. A good agreement, within 16 per cent, is found in terms of the pressure drop between the experiment and computational model. Originality/value It is possible to build an efficient hydraulic manifold design by iterative refinement for adequate production via selective laser melting (SLM) and minimize used material to circumventing building support structures in non-machinable features of the manifold.
机译:目的本研究的目的是研究使用添加剂制造(AM)技术的可行性,通过通过传统方法生产的重新设计阀块来生产用于液压致动器的有效阀歧管的可行性。设计/方法/方法先验,使用软件ANSYS流畅地进行计算流体动力学(CFD)分析,以确定导致压降,最高的平均速度和最小能量损耗的最佳流动路径。通过从CFD的进口压力分布处理的流体结构相互作用(FSI)模拟,以确定歧管组件的所得加载和变形。调查结果新设计在电路中提供了23%的油量减少,同时重达84%。使用新设计时,降低了近25%的压降近25%,平均速度增加了2.5%。就实验和计算模型之间的压降,找到了一个良好的一致意见。原创性/值可以通过选择性激光熔化(SLM)通过迭代精制构建高效的液压歧管设计,并最大限度地减少使用的材料来绕过歧管的不可加工特征来规避建筑物支撑结构。

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