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Design of composite systems for rotary wear applications

机译:旋转磨损应用的复合系统设计

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摘要

Due to the prevalence of sliding interfaces in mechanical assemblies, fast and reliable wear prediction capabilities are imperative for system design and analysis. This study investigates the rotary wear of multi-material composite systems that have thrust washer geometries. An analytical rotary wear model is developed to predict the rotary wear performance based on Archard's wear law and a Pasternak elastic foundation model. Numerical methods are used to track the evolution of key wear parameters including surface profile, contact pressure distribution, volume loss and composite wear rate during both run-in and steady-state wear regimes. A direct method is also developed to determine the steady-state characteristics from just the initial conditions and configurations of a given composite system. Optimal designs and design guidelines for several wear objectives are identified. Initial optimal material distributions for target steady-state surface profiles are determined. In addition, the steady-state composite wear rate is minimized to reduce material loss for bi-material systems with prescribed volume fractions. It is found that the optimal material configuration for this objective is counterintuitive. Wear tests are conducted to evaluate the proposed models and optimal design solutions. Results obtained from the wear models agree well with the experimental measurements. (C) 2017 Elsevier Ltd. All rights reserved.
机译:由于机械组件中普遍存在滑动界面,因此,快速可靠的磨损预测功能对于系统设计和分析至关重要。这项研究调查了具有止推垫圈几何形状的多材料复合系统的旋转磨损。建立了解析旋转磨损模型,以基于Archard的磨损定律和Pasternak弹性地基模型预测旋转磨损性能。数值方法用于跟踪磨合和稳态磨损过程中关键磨损参数的演变,包括表面轮廓,接触压力分布,体积损失和复合磨损率。还开发了一种直接方法,仅从给定复合系统的初始条件和配置确定稳态特性。确定了几种磨损目标的最佳设计和设计准则。确定用于目标稳态表面轮廓的初始最佳材料分布。此外,稳态复合材料的磨损率被最小化,以减少具有规定体积分数的双材料系统的材料损失。发现针对该目的的最佳材料配置是违反直觉的。进行磨损测试以评估建议的模型和最佳设计解决方案。从磨损模型获得的结果与实验测量结果非常吻合。 (C)2017 Elsevier Ltd.保留所有权利。

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