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Elastic–Plastic Limit Load of Coiled Tubing Under Complex Stress State

机译:复杂应力状态下连续油管的弹塑性极限载荷

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摘要

Coiled tubing (CT) endures complex stresses during the operations. The loading imposed on the CT can push it close to its performance limits. This paper presents new analytical models to define the limit load of CT and solve the problem of CT failures. Elastic–plastic limit load models of CT are established based on the twin shear unified strength theory. Moreover, the effects of residual bending stress, buckling, axial force, and external pressure on the elastic–plastic limit load are discussed. The results indicate that the elastic–plastic limit load models determined using the twin shear unified strength theory can describe the mechanical behaviors of CT under complex stress state. The initial yield elastic limit load of CT decreases with increasing axial compressive force. The effect of buckling and residual bending stress on the initial yield elastic limit load cannot be ignored in the analysis of CT strength. With increasing internal pressure, the plastic region keeps extending to the outer surface of CT. Plastic limit load is the value of internal pressure for which the entire wall thickness of CT becomes plastic. The proposed approach can be used to set operation limits for other oil tubulars.
机译:连续油管(CT)在操作过程中承受复杂的应力。施加在CT上的负载会使它接近其性能极限。本文提出了新的分析模型,以定义CT的极限载荷并解决CT故障的问题。基于双剪统一强度理论建立了CT的弹塑性极限载荷模型。此外,还讨论了残余弯曲应力,屈曲,轴向力和外部压力对弹塑性极限载荷的影响。结果表明,使用双剪统一强度理论确定的弹塑性极限载荷模型可以描述复杂应力状态下CT的力学行为。 CT的初始屈服弹性极限载荷随着轴向压缩力的增加而减小。在CT强度分析中不能忽略屈曲和残余弯曲应力对初始屈服弹性极限载荷的影响。随着内部压力的增加,塑料区域一直延伸到CT的外表面。塑性极限载荷是CT整个壁厚变为塑性的内部压力值。所提出的方法可用于设置其他油管的操作极限。

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