首页> 外文会议>ASME/BATH symposium on fluid power and motion control >THE IMPACT OF MICRO-SURFACE SHAPING ON THE PISTON/CYLINDER INTERFACE OF SWASH PLATE TYPE MACHINES
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THE IMPACT OF MICRO-SURFACE SHAPING ON THE PISTON/CYLINDER INTERFACE OF SWASH PLATE TYPE MACHINES

机译:微表面成形对冲盘式机器的活塞/缸体界面的影响

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With the wide use of axial piston machines of the swashplate type in industry, it is essential to maximize the overall efficiency of the machines. Focusing on the piston-cylinder interface, as it performs as a hydrodynamic bearing simultaneously fulfilling a sealing function, the overall machine can be improved by reducing the power losses due to viscous friction and leakage flow of this interface. This paper presents a research study in regards to altering the geometry of the piston through micro-surface shaping influencing the generation of the fluid film between the piston and the cylinder. This investigation utilizes a novel fully coupled fluid structure interaction model considering both thermal and elastic deformations of the solid bodies to predict the phenomena occurring within the fluid gap. Encompassed in this simulation study is a diversity of piston micro-surface shapes and a wide range of machine operating conditions. The designs presented include an axial sine wave, a flat, cylindrical design with tapered ends, a barreled shape, a combination of the axial sine wave and barrel, along with a circumferential sine wave. High pressure operating conditions in pumping mode as well as common operating conditions in both pumping and motoring mode are considered for the various designs. The results demonstrate up to a 30% reduction in energy dissipation from a standard piston-cylinder interface at higher pressure operating conditions (over 15% reduction considering all three interfaces of the machine) with the addition of a barrel surface shape while a 25% reduction (over 5% overall) is achievable at lower operating pressures in pumping mode with a waved barrel surface profile. As for motoring mode a 30% reduction (around 10% overall) is possible with the introduction of a waved barrel surface profile on the piston. It will also be shown, that not only are these reductions possible though micro- surface shaping of the piston, but the reliability of the machine is also improved by reducing run-in wear all while maintaining a cost-effective, manufacturable design.
机译:随着工业上旋转斜盘式轴向活塞机的广泛使用,使机械的整体效率最大化是必不可少的。着眼于活塞-气缸接口,因为它同时充当液压轴承,同时实现了密封功能,因此可以通过减少由于该接口的粘滞摩擦和泄漏流而导致的功率损失来改善整个机器。本文就通过影响活塞和气缸之间的液膜生成的微表面成形来改变活塞的几何形状提出了一项研究研究。这项研究利用了一种新颖的完全耦合的流体结构相互作用模型,同时考虑了固体的热变形和弹性变形,以预测在流体间隙内发生的现象。该模拟研究包括多种活塞微表面形状和各种机器操作条件。呈现的设计包括轴向正弦波,带有锥形端的扁平圆柱设计,桶形,轴向正弦波和桶形的组合以及周向正弦波。对于各种设计,都考虑了泵送模式下的高压操作条件以及泵送和机动模式下的常见操作条件。结果表明,在较高的压力操作条件下,标准活塞-气缸界面的能耗降低了30%(考虑到机器的所有三个界面,能耗降低了15%以上),并增加了机筒表面形状,而能耗降低了25%在较低的工作压力下,具有波动的枪管表面轮廓,可以在较低的工作压力下(总压力超过5%)达到目标。对于电动模式,通过在活塞上引入波浪形的枪管表面轮廓,可以减少30%(总体减少约10%)。还将表明,不仅可以通过活塞的微表面成形来进行这些减小,而且还可以通过减少磨合磨损来改善机器的可靠性,同时保持经济高效的可制造设计。

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