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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >The fluid-structure-thermal coupled characteristics of the leakage rate of piston couples interface for common-rail injector
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The fluid-structure-thermal coupled characteristics of the leakage rate of piston couples interface for common-rail injector

机译:用于共轨喷射器的活塞耦合界面漏率的流体结构 - 热耦合特性

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摘要

In this article, a mathematical fluid-structure-thermal model for fuel leakage of piston couples was developed, with consideration of the physical properties of fuel, elastic deformation, and temperature distribution along the seal length. The calculated results were compared with experimental static fuel leakage data. Based on this model, the effects of various factors on the fuel leakage were investigated. The results showed, at pressures under 100 MPa, the most dominant influence on the fuel leakage of a piston couple was the initial clearance; however, as the pressure increased from 100 to 200 MPa, the influence of the initial clearance gradually weakened, while the effects of the piston diameter, elastic modulus, and diameter of the piston sleeve increased and became more significant; in this case, the piston diameter replaced the initial clearance as the most dominant factor. At a pressure range of 200-300 MPa, the effects of the elastic modulus exceeded the effects of the initial clearance and became the second most important factor. Therefore, simply adjusting the initial clearance is not an effective method to reduce fuel leakage. An increase in the seal length significantly influences the fuel leakage only under relatively low-pressure conditions, as the effect weakens with increasing pressure. As a result, under high-pressure conditions, it is necessary to consider both the diameter of the piston and the elastic modulus to reduce the fuel leakage.
机译:在本文中,开发了用于活塞耦合的燃料漏漏的数学流体结构 - 热模型,考虑到沿密封长度的燃料,弹性变形和温度分布的物理性质。将计算结果与实验静态燃料泄漏数据进行比较。基于该模型,研究了各种因素对燃料泄漏的影响。结果显示,在100MPa下的压力下,对活塞夫妇的燃料泄漏的最大影响是初始间隙;然而,随着压力从100到200 MPa增加,初始间隙的影响逐渐减弱,而活塞套筒的活塞直径,弹性模量和直径的影响增加并且变得更加重要;在这种情况下,活塞直径将​​初始间隙取代为最主导的因素。在200-300MPa的压力范围内,弹性模量的效果超过了初始间隙的影响,并成为第二个最重要的因素。因此,简单地调整初始清除不是一种减少燃料泄漏的有效方法。密封长度的增加显着影响燃料泄漏在相对低压条件下,因为效果随着压力的增加而削弱。结果,在高压条件下,需要考虑活塞的直径和弹性模量以降低燃料泄漏。

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