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GENERAL PLASTIC COLLAPSE LOAD EQUATIONS OF PIPE BEND WITH OR WITHOUT CRACK UNDER IN-PLANE BENDING

机译:一般塑料坍塌载荷方程,管弯曲有或没有裂缝在面内弯曲

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Elbows exhibit highly strained regions and are vulnerable to plastic collapse. It has been observed that available equations in literature for evaluation of plastic collapse load of a pipe bend have limited applicability and do not cover wide range of pipe bend radius ratios and bend angles which are used in power plant piping. Moreover, the elbow collapse load equation should approach to straight pipe collapse load as elbow bend radius increases or bend angle decreases. Generally, the available equations do not satisfy this asymptotic behaviour of an elbow. About 600 number of elastic plastic and geometric nonlinear finite element analyses of elbows having different geometric parameters bend radius, pipe radius, thickness and crack size (in case of cracked elbow), have been performed. For each of the elbow the in-plane plastic collapse moments have been evaluated from M-rotation curve by twice elastic slope (TES) method. Further two weakening factors were defined to quantify the degrees in plastic collapse moment, one due to elbow doubly curved geometry and second due to presence of crack. The geometric weakening factor was evaluated by comparing elbow plastic collapse moment with corresponding straight pipe collapse load while the crack weakening factor was evaluated by comparing cracked elbow plastic collapse moment with corresponding un-cracked elbow plastic collapse moment. The simple equation were developed for these weakening functions which can be used with pipe plastic collapse load equation for prediction of plastic collapse load of elbows.
机译:肘部展示高度紧张的地区,易受塑料坍塌的影响。已经观察到,用于评估管道弯曲的塑性塌陷载荷的文献中的可用方程具有有限的适用性,并且不涵盖宽范围的管道弯曲半径比,弯曲角度在发电厂管道中使用。此外,弯头坍塌载荷方程应该接近直管折叠载荷,因为弯头弯曲半径增加或弯曲角度降低。通常,可用的方程不满足肘部的这种渐近行为。已经进行了大约600个弹性塑料和几何非线性有限元分析,具有不同的几何参数弯曲半径,管道半径,厚度和裂缝尺寸(在裂纹弯头的情况下)。对于每个弯头的每个弯头,通过两次弹性斜率(TES)法从M旋转曲线评估了面内塑料塌陷矩。进一步的两个弱化因子被定义为量化塑料坍塌时刻的程度,因为由于存在裂纹,因此弯头弯曲的几何形状和第二。通过将弯头塑料塌陷矩与相应的直管塌陷荷载进行比较,评估几何弱化因子,而通过将裂纹肘塑料塌陷瞬间进行比较,评价裂纹弱化因子。为这些弱化功能开发了简单的方程,这些功能可用于管塑料坍塌负载方程,用于预测肘部的塑料坍塌载荷。

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