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A NOVEL APPROACH TO ACCOUNT FOR WELD RESIDUAL STRESSES IN PRESSURE VESSEL FLAW ASSESSMENTS

机译:压力容器缺陷评估中残余应力计算的新方法

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A periodic inspection of a reactor pressure vessel in refinery was scheduled. Prior to that inspection, criteria need to be established to determine what flaw indication would be tolerable so that the vessel can safely be put back in to service in a timely manner, or in the worst case, identify what flaw indication would create a very strong case for repair or replacement criteria for the vessel. A flaw tolerance criterion that can be applied to the refinery inspection process was developed for numerous potential flaw locations in this vessel. The finite element alternating method was used to determine the appropriate fracture parameters to assist in this flaw assessment procedure. These computational efforts involved examining the fracture response of the system in preparation for planned inspections. Stress intensity factors were evaluated for a total of ten (10) cracks inserted into the refinery pressure vessel at several locations and crack orientations. Most of the cracks had depth to thickness ratios of 0.25 and a half width 3 times this depth. The crack sizes are chosen based on the assumed maximum initial flaw sizes expected to be found from NDI. The stress intensity factor for residual stress loading was conservatively estimated by placing a unit tensile pressure on the crack face for all 10 cracks. The approximation of crack face pressure loading to simulate residual stress is also shown to be accurate. Therefore, one can estimate the contribution to stress intensity factor by multiplying the residual stress value of K by the estimated residual stress ratio. The final estimate of crack driving force for a crack, K_I, is obtained by adding the contributions of the pressure loading with the residual stress contribution. Internal pressure loading of this vessel is the only significant source of loading in this vessel.
机译:计划对炼油厂的反应堆压力容器进行定期检查。在检查之前,需要建立标准来确定哪些缺陷指示是可以容忍的,以便可以安全地将船舶安全地及时投入使用,或者在最坏的情况下,确定哪些缺陷指示会产生非常强烈的缺陷。船舶维修或更换标准的情况。针对该容器中许多潜在的缺陷位置,制定了可应用于炼油厂检查过程的缺陷容限标准。有限元交替法被用来确定合适的断裂参数,以辅助该缺陷评估程序。这些计算工作包括检查系统的断裂响应,以准备计划的检查。针对在几个位置和裂缝方向插入精炼厂压力容器中的总共十(10)个裂缝,评估了应力强度因子。大多数裂缝的深度与厚度之比为0.25,而其半宽度为该深度的3倍。裂纹尺寸是根据预期可从NDI找到的假定的最大初始裂纹尺寸来选择的。通过将所有10个裂纹的单位拉伸压力施加在裂纹面上,可以保守地估计残余应力负载的应力强度因子。还显示了模拟残余应力的裂纹面压力载荷的近似值是正确的。因此,可以通过将K的残余应力值乘以估算的残余应力比来估算对应力强度因子的贡献。裂纹的裂纹驱动力的最终估算值K_I是通过将压力载荷的贡献与残余应力贡献相加得出的。该容器的内部压力载荷是该容器中唯一重要的载荷来源。

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