首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part J: Journal of Engineering Tribology >On the effects of sliding velocity and operating pressure differential in rotary O-ring seals
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On the effects of sliding velocity and operating pressure differential in rotary O-ring seals

机译:关于旋转O形密封圈中滑动速度和工作压力差的影响

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An experimental study is conducted to investigate the effect of sliding velocity and pressure differential across an O-ring seal. Of specific interest are the power loss, friction torque and temperatures at the interface between the O-ring and rotating shaft. Nitrile butadiene rubber of circular cross-section with 70 Shore A hardness is used as a test specimen. The O-ring power loss and temperatures at a distance of 0.61 mm away from the O-ring tip are measured during the tests. In order to analyze the temperature at the interface, a two-dimensional axisymmetric computational fluid dynamics (CFD) model is preprocessed in GAMBIT and thermal heat transfer analysis is carried out using a commercial CFD package, FLUENT. Variations of frictional torque, O-ring friction power loss and interfacial temperatures with changes in sliding velocity and operating pressure differential are presented. Results reveal that the O-ring power loss increases in an approximately linear fashion with sliding velocity. Further, it is found that the friction power significantly increases with relatively higher pressure differentials across an O-ring. Friction torque is found to drop with an increase in shaft speed and it rises at relatively higher pressure differentials. Moreover, the interfacial temperatures are found to increase with increase in sliding speed and operating pressure differentials. The physical and practical usefulness of these results are discussed.
机译:进行了一项实验研究,以研究滑动速度和跨O形圈密封件的压力差的影响。特别令人感兴趣的是O形圈和旋转轴之间的界面处的功率损耗,摩擦扭矩和温度。将具有肖氏A硬度为70的圆形横截面的丁腈橡胶用作测试样品。在测试过程中测量O形圈的功率损耗和与O形圈尖端的距离为0.61毫米。为了分析界面温度,在GAMBIT中预处理了二维轴对称计算流体力学(CFD)模型,并使用商用CFD套件FLUENT进行了热传递分析。提出了摩擦扭矩,O形圈摩擦功率损耗和界面温度随滑动速度和工作压力差的变化。结果表明,O形圈的功率损耗随滑动速度以近似线性的方式增加。另外,发现随着跨O形环的压力差相对较高,摩擦力显着增加。发现摩擦扭矩随着轴速度的增加而下降,并且在相对较高的压差下会增加。而且,发现界面温度随着滑动速度和工作压力差的增加而增加。讨论了这些结果的物理和实际用途。

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