残余应力
材料科学
无粘流
弹性(物理)
温度梯度
热膨胀
机械
残余物
热的
粘弹性
工作(物理)
应力松弛
复合材料
热力学
数学
物理
蠕动
量子力学
算法
作者
E. H. Lee,T. G. Rogers,T. C. Woo
标识
DOI:10.1111/j.1151-2916.1965.tb14805.x
摘要
Residual stresses in tempered glass are generated by interactions between thermal contraction, elasticity at low temperatures, viscoelastic flow at higher temperatures, and temperature gradients caused by cooling. To date, analyses have assumed highly idealized material behavior, such as elasticity below, and inviscid fluid flow above, a critical temperature. The theory presented in this paper is based on measured relaxation characteristics of glass and temperature influence through thermorheologically simple response, which prescribes an acceleration of all relaxation phenomena with rising temperature by a factor determined by experiment. The analysis of the varying stress history for a glass plate cooled symmetrically on both sides is developed and solved for several furnace and coolant temperature combinations by numerical solution of the integral equations which arise. The determination of the residual stress distribution follows naturally in terms of a reduced time used in the analysis. Maximum compressive residual stresses under the surface increase extremely rapidly with increasing furnace temperature above 60O°C. The method is compared with previous work on the same problem.
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