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Thermal Simulation of an Arbitrary Residual Stress Field in a Fully or Partially Autofrettaged Thick-Walled Spherical Pressure Vessel

机译:完全自由化厚壁球形压力容器中任意残余应力场的热模拟

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The equivalent thermal load was previously shown to be the only feasible method by which the residual stresses due to autofrettage and its redistribution, as a result of cracking, can be implemented in a finite element analysis, of a fully or partially autofrettaged thick-walled cylindrical pressure vessel. The present analysis involves developing a similar methodology for treating an autofrettaged thick-walled spherical pressure vessel. A general procedure for evaluating the equivalent temperature loading for simulating an arbitrary, analytical or numerical, spherosymmetric autofrettage residual stress field in a spherical pressure vessel is developed. Once presented, the algorithm is applied to two distinct cases. In the first case, an analytical expression for the equivalent thermal loading is obtained for the ideal autofrettage stress field in a spherical shell. In the second case, the algorithm is applied to the discrete numerical values of a realistic autofrettage residual stress field incorporating the Bauschinger effect. As a result, a discrete equivalent temperature field is obtained. Furthermore, a finite element analysis is performed for each of the above cases, applying the respective temperature field to the spherical vessel. The induced stress fields are evaluated for each case and then compared to the original stress. The finite element results prove that the proposed procedure yields equivalent temperature fields that in turn simulate very accurately the residual stress fields for both the ideal and the realistic autofrettage cases.
机译:前面示出了等效的热负荷是唯一可行的方法,通过其裂化引起的自动压缩引起的残余应力和其再分配,可以在有限的元件分析中实现完全或部分自由的厚壁圆柱形压力容器。本分析涉及开发类似的方法,用于处理自由流厚壁球形压力容器。开发了用于评估用于模拟用于模拟球形压力容器中任意,分析或数值的运动的等效温度载荷的一般程序。一旦呈现,该算法应用于两个不同的情况。在第一种情况下,为球形壳中的理想自动调节应力场获得了等效热负荷的分析表达。在第二种情况下,该算法应用于包含Bauschinger效应的现实自动调节残余应力场的离散数值。结果,获得了离散的等效温度场。此外,对每个上述情况进行有限元分析,将各个温度场施加到球形容器中。对每个壳体评估诱导的应力场,然后与原始应力进行比较。有限元结果证明了所提出的程序产生等效温度场,反过来非常精确地模拟了理想和现实的自动制剂案例的残余应力场。

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