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Numerical Simulation and Experimental Validation of Residual Stresses in Water-Quenched Aluminum Alloy Castings

机译:水淬铝合金铸件残余应力的数值模拟与实验验证

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摘要

Aluminum alloy castings are normally water quenched after solution treatment to improve mechanical properties. Rapid water quenching can result in high-residual stress and severe distortion which significantly affect functionality and performance of the products. To optimize product design and durability, one needs to model and predict residual stress and distortion produced in the water-quenched components. In this article, a finite element-based approach was developed to simulate the transient heat transfer and residual stress development during water quenching. In this approach, an iterative zone-based heat transfer algorithm was coupled with material constitutive model called mechanical threshold stress (MTS). With the integrated models, a good agreement was achieved between the numerically predicted and the experimentally measured residual stresses in the aluminum alloy frame-shape casting. The integrated FEA-based heat transfer and residual stress models were also applied to a water-quenched cast aluminum cylinder head with a great success.
机译:铝合金铸件通常在固溶处理后进行水淬以提高机械性能。快速水淬会导致高残留应力和严重变形,从而严重影响产品的功能和性能。为了优化产品设计和耐用性,人们需要对水淬部件中产生的残余应力和变形进行建模和预测。在本文中,开发了一种基于有限元的方法来模拟水淬过程中的瞬态传热和残余应力的发展。在这种方法中,将基于迭代区域的热传递算法与称为机械阈值应力(MTS)的材料本构模型相结合。利用集成模型,铝合金框架型铸件的数值预测值和实验测量的残余应力之间达成了良好的一致性。集成的基于FEA的传热和残余应力模型也成功应用于水淬铸铝气缸盖。

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