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The behaviour of aluminium matrix composites under thermal stresses

机译:铝基复合材料在热应力下的行为

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The present review work elaborates the behaviour of aluminium matrix composites (AMCs) under various kinds of thermal stresses. AMCs find a number of applications such as automobile brake systems, cryostats, microprocessor lids, space structures, rocket turbine housing, and fan exit guide vanes in gas turbine engines. These applications require operation at varying temperature conditions ranging from high to cryogenic temperatures. The main objective of this paper was to understand the behaviour of AMCs during thermal cycling, under induced thermal stresses and thermal fatigue. It also focuses on the various thermal properties of AMCs such as thermal conductivity and coefficient of thermal expansion (CTE). CTE mismatch between the reinforcement phase and the aluminium matrix results in the generation of residual thermal stress by virtue of fabrication. These thermal stresses increase with increasing volume fraction of the reinforcement and decrease with increasing interparticle spacing. Thermal cycling enhances plasticity at the interface, resulting in deformation at stresses much lower than their yield stress. Low and stable CTE can be achieved by increasing the volume fraction of the reinforcement. The thermal fatigue resistance of AMC can be increased by increasing the reinforcement volume fraction and decreasing the particle size. The thermal conductivity of AMCs decreases with increase in reinforcement volume fraction and porosity.
机译:目前的审查工作阐述了铝基复合材料(AMCs)在各种热应力下的行为。 AMC在汽车制动系统,低温恒温器,微处理器盖,空间结构,火箭涡轮机壳体和燃气涡轮发动机中的风扇出口导流叶片等方面有许多应用。这些应用需要在从高温到低温的各种温度条件下运行。本文的主要目的是了解AMC在热循环过程中在诱导的热应力和热疲劳下的行为。它还着重于AMC的各种热特性,例如热导率和热膨胀系数(CTE)。增强相和铝基体之间的CTE不匹配会导致由于制造而产生残余热应力。这些热应力随着增强材料体积分数的增加而增加,而随着颗粒间间距的增加而减小。热循环增强了界面处的可塑性,导致应力下的变形远低于其屈服应力。可以通过增加钢筋的体积分数来实现低而稳定的CTE。 AMC的耐热疲劳性可以通过增加增强体积分数和减小粒径来提高。 AMC的导热系数随增强体积分数和孔隙率的增加而降低。

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