PCFV和预压缩槽对轴向柱塞泵流量纹波减小的影响

E. Frosina, G. Marinaro, A. Senatore, M. Pavanetto
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引用次数: 7

摘要

本文介绍了采用初步数值方法降低轴向柱塞泵噪声的结果。从初步设计(进一步称为“阀板#1”)开始,提出了两种不同的阀板,比较了它们对减少流量脉动的贡献。该泵为开式轴向柱塞泵,斜盘设计为9柱塞,最大排量为65.9 cm3/rev。第一个泵设计的三维CFD模型已经建立,商业代码为PumpLinx®,由Simerics公司开发。考虑泵的旋转、流体特性和泄漏,对数值模型进行了验证。该泵已由泵制造商在所有工况下进行了测试。第一个阀板设计(“阀板#1”)进行了修改,优化了预压缩泄压槽设计(“阀板#2”),包括预压缩过滤器容积(PCFV,“阀板#3”)。阀板#2,包括优化的预压缩槽,主要是为了提高容积效率,以及减少流量脉动。第二种解决方案(“3号阀板”)是在2号阀板的基础上得到的,包括一个PCFV,以减少回流到汽缸腔。本文提出的所有设计都是为了最小化泵满排量时的峰值流量波动和1500rpm输送压力的转速而建模的。最佳几何形状表明,将PCFV引入轴向柱塞泵后,回流量大幅减少了40%。这项研究是那不勒斯“费德里科二世”大学与泵制造商外交MS和大陆液压公司合作的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of PCFV and Pre-Compression Groove on the Flow Ripple Reduction in Axial Piston Pumps
This paper represents the results obtained with a preliminary numerical methodology adopted to reduce noise in axial piston pumps. Starting from a preliminary design (further called “Valve plate #1”), two different valve plates have been proposed comparing their contribution to reduction of flow ripple. The pump is an open circuit axial piston pump, swash plate designed with nine-piston and a maximum displacement of 65.9 cm3/rev. A three-dimensional CFD model of the first pump design has been built up with the commercial code PumpLinx®, developed by Simerics Inc. The numerical model has been validated, considering the pump rotation, fluid characteristic and leakages. The pump has been tested by the pump manufacturer in all the working conditions. The first valve plate design (“Valve plate #1”) has been modified optimizing the pre-compression relief groove design (“Valve plate #2”) and including a pre-compression filter volume (PCFV, “Valve plate #3”) The Valve plate #2, including an optimized pre-compression groove, has been designed mainly to improve the volumetric efficiency and as well as to reduce the flow ripple. The second solution (“Valve plate #3 has been obtained on the basis of the Valve plate #2, including a PCFV to reduce the reverse flow back to the cylinder chamber. All the designs presented in this paper have been modelled for minimizing the peak-to-peak discharge flow ripple at the pump full displacements and for the rotational speed of 1500rpm delivery pressure. The best geometry has been found demonstrating that, with the introduction of the PCFV into axial piston pump, the reverse flow has been drastically reduced up to 40%. This research is result of a collaboration among the University of Naples “Federico II” and the pump manufacturers Duplomatic MS and Continental Hydraulics Inc.
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