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IRREVERSIBILITY OF FRICTION AND WEAR PROCESSES

机译:摩擦和磨损过程的不可逆转

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摘要

Ways of energy dissipation by friction are analysed from a thermodynamic perspective. The non-equilibrium and irreversibility of processes in tribological systems are found to be sufficient conditions for energy dissipation. M. Planck's currently prevailing opinion that mechanical work can be converted into heat without limitations, e.g., by means of heat, is demonstrated not to apply to the friction of solids subject to wear. Ranges of work conversion into friction heat are determined. The generation of tribological wear particles is dependent on work of mechanical dissipation and its components - surface and volume work. A friction pair or its fragments, where energy is directly dissipated, are treated as open thermodynamic systems. The processes in place are described with the first law of thermodynamics equation. The effect of friction heat and the work of mechanical dissipation on variations of internal energy, enthalpy, and energy transferred to the environment as heat are defined. These dependences should be addressed when planning and interpreting tribological tests.
机译:从热力学角度分析了摩擦耗能的途径。摩擦学系统中过程的非平衡性和不可逆性是能量耗散的充分条件。M.Planck目前流行的观点是,机械功可以在没有限制的情况下转化为热量,例如通过热量,这一观点被证明不适用于易磨损固体的摩擦。确定了功转化为摩擦热的范围。摩擦磨损颗粒的产生取决于机械耗散功及其组成部分——表面功和体积功。摩擦副或其碎片在能量被直接耗散的情况下,被视为开放的热力学系统。用热力学第一定律方程描述了这些过程。定义了摩擦热和机械耗散功对内能、焓和作为热传递到环境中的能量变化的影响。在计划和解释摩擦学试验时,应解决这些相关性。

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