首页> 外文会议>2018 Global Fluid Power Society PhD Symposium >Axial Piston Machine Cylinder Block Bore Surface Profile for High-Pressure Operating Conditions with Water as Working Fluid
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Axial Piston Machine Cylinder Block Bore Surface Profile for High-Pressure Operating Conditions with Water as Working Fluid

机译:轴向活塞式气缸体孔表面轮廓,适用于高压工作条件,以水为工作液

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Construction, agriculture, forestry, aerospace equipment: axial piston machines of swash plate design (APMSPD) are the positive displacement machines of choice in a wide variety of hydraulic systems. The performance of these highly efficient units is delicately hinged on the rigorous design of three major lubricating interfaces, each striving to keep the machine's moving components a hair's width apart in order to avert potentially catastrophic metal-to-metal contact, whilst simultaneously limiting the leakage of high-pressure fluid into the unit's low- pressure case. Of the three, the most difficult in its conception for these duties is the piston-cylinder interface, owing to the fact that especially during high-pressure operation, the pistons of APMSPD must bear a considerable side load. The measure of challenge this side load presents is heavily modulated by the choice of lubricant (i.e., the hydraulic system's working fluid). While the use of oil still dominates the hydraulics industry, the past few decades have seen the re-emergence of water hydraulics. In its non-toxicity, its inflammability, its availability, its low cost and green footprint, water embodies an almost ideal hydraulic fluid; however, the illusion unravels in giving consideration to its viscosity, which is low enough to raise serious load-support concerns for the aforementioned interface, therewith barricading the design of marketable APMSPD for high-pressure operation with water. In aiming to enable such operation, micro surface shaping on the bores in the cylinder block through which the pistons in APMSPD move has been examined as an effective means of enhancing load support. The focus of the present work is a surface profile that has the walls of these bores curving inwards. A past exploration of this profile defined its shape via a radius and a shift; the present investigation refines that definition to two radii and a shift, thereby significantly opening the design space. In a simulation study spanning several different operating conditions, the effect of dimensional variations of this design on load support and power loss is captured with a non-isothermal fluid-structure interaction model developed by the Maha Fluid Power Research Center. The resulting design trends reveal the potential of this surface profile to handle these operating conditions.
机译:建筑,农业,林业,航空航天设备:斜盘设计的轴向活塞式机械(APMSPD)是各种液压系统中的正排量机械。这些高效装置的性能精巧地取决于三个主要润滑接口的严格设计,每个接口都努力使机器的运动部件保持一头毛发的宽度,从而避免了潜在的灾难性金属与金属接触,同时限制了泄漏高压流体进入设备的低压箱。在这三种任务中,最困难的是活塞-气缸接口,原因是特别是在高压操作期间,APMSPD的活塞必须承受相当大的侧向载荷。通过选择润滑剂(即液压系统的工作流体),可以极大地调节这种侧向负载所带来的挑战性措施。尽管石油的使用仍然主导着液压行业,但在过去的几十年中,水液压技术又重新出现了。水具有无毒,易燃,易得,价格低廉和绿色环保的特点,几乎是一种理想的液压油;但是,考虑到其粘度不足以引起错觉,该粘度低到足以引起上述界面的严重的负载-支撑问题,从而限制了用于水高压操作的可买到的APMSPD的设计。为了实现这种操作,已经研究了气缸体中的孔的微观表面整形,APMSPD中的活塞通过该表面移动,作为增强载荷支撑的有效手段。本工作的重点是使这些孔的壁向内弯曲的表面轮廓。以前对该轮廓的探索是通过半径和偏移来定义其形状的。目前的研究将该定义细化为两个半径和一个位移,从而显着地打开了设计空间。在跨越几个不同运行条件的仿真研究中,通过Maha流体动力研究中心开发的非等温流体-结构相互作用模型,捕获了此设计尺寸变化对负载支撑和功率损耗的影响。由此产生的设计趋势揭示了这种表面轮廓处理这些工作条件的潜力。

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