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Analytical Evaluation of Fitted Piston Compression Ring: Modal Behaviour and Frictional Assessment

机译:安装活塞压缩环的分析评价:模态行为和摩擦评估

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Piston compression rings are thin, incomplete circular structures which are subject to complex motions during a typical 4-stroke internal combustion engine cycle. Ring dynamics comprises its inertial motion relative to the piston, within the confine of its seating groove. There are also elastodynamic modes, such as the ring in-plane motions. A number of modes can be excited, dependent on the net applied force. The latter includes the ring tension and cylinder pressure loading, both of which act outwards on the ring and conform it to the cylinder bore. There is also the radial inward force as the result of ring-bore conjunctional pressure (i.e. contact force). Under transient conditions, the inward and outward forces do not equilibrate, resulting in the small inertial radial motion of the ring. The conjunctional friction, comprising viscous shear of the lubricant and any boundary friction as the result of direct interaction of surfaces also act on the ring, as well as the inertial force in the axial direction of the cylinder. Therefore, ring motions are quite complex. However, with properly fitted rings, the radial modal behaviour of the ring is the most important. This provides an opportunity to determine the in-situ ring shape analytically by assuming a series of quasi-static steps in which the balance between ring tension and pressure induced forces with the instantaneous contact force is assumed. The resulting ring shape yields the ring-bore gap, allowing the determination of frictional losses for a given bore out-of-roundness and surface topography. A subsequent analysis based upon one-dimensional lubricated conjunction for certain ring configurations enables evaluation of lubricant flow and any chance of oil loss and blow-by. This fully analytical as opposed to computationally intensive numerical analysis is verified with FEA.
机译:活塞压缩环是薄的,不完全的圆形结构,其在典型的4行程内燃机循环期间经受复杂的运动。环形动力学包括其相对于活塞的惯性运动,在其座椅槽的限制内。还存在弹性动力学模式,例如环面内运动。可以激发许多模式,取决于净施加的力。后者包括环张力和气缸压力负载,两者在环上向外行动并符合圆筒孔。由于环形孔和接触力的结果,还存在径向向内力。在瞬态条件下,向内和向外的力不平衡,导致环的小惯性径向运动。包括润滑剂的粘性剪切和由于表面直接相互作用的粘性剪切和任何边界摩擦的结合摩擦也用在环上作用,以及圆柱轴向轴向的惯性力。因此,环运动非常复杂。然而,通过适当的戒指,环的径向模态行为是最重要的。这提供了一种通过假设一系列准静态步骤来确定原位环形形状,其中假设环张力和压力引起的压力之间的平衡,具有瞬时接触力之间的平衡。所得到的环形产生环形孔隙,允许确定给定的孔隙外部和表面形貌的摩擦损失。基于一维润滑结合的某些环形配置的后续分析使得能够评估润滑剂流量和任何机油损失和吹气的机会。这种完全分析与计算密集的数值分析相反,用FEA验证。

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