残余应力
残余物
动作(物理)
组分(热力学)
材料失效理论
压力(语言学)
灾难性故障
故障评估
法律工程学
结构工程
可靠性工程
物理
计算机科学
断裂力学
材料科学
工程类
复合材料
有限元法
热力学
算法
语言学
量子力学
哲学
标识
DOI:10.1088/0034-4885/70/12/r04
摘要
Our safety, comfort and peace of mind are heavily dependent upon our capability to prevent, predict or postpone the failure of components and structures on the basis of sound physical principles. While the external loadings acting on a material or component are clearly important, There are other contributory factors including unfavourable materials microstructure, pre-existing defects and residual stresses. Residual stresses can add to, or subtract from, the applied stresses and so when unexpected failure occurs it is often because residual stresses have combined critically with the applied stresses, or because together with the presence of undetected defects they have dangerously lowered the applied stress at which failure will occur. Consequently it is important that the origins of residual stress are understood, opportunities for removing harmful or introducing beneficial residual stresses recognized, their evolution in-service predicted, their influence on failure processes understood and safe structural integrity assessments made, so as to either remove the part prior to failure, or to take corrective action to extend life. This paper reviews the progress in these aspects in the light of the basic failure mechanisms.
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