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Analytical prediction of buckling collapse for reinforced thermoplastic pipes based on hoop stress analysis of crushed rings

机译:基于碎环环向应力分析的增强热塑性塑料管屈曲塌陷的分析预测

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摘要

Reinforced thermoplastic pipes (RTPs) can experience collapse under external pressure. The maximum external pressure that RTPs can resist before buckling collapse must be considered in engineering practice. To predict the critical pressure of RTPs, a new analytical model is proposed by analyzing the hoop stress distributions of crushed rings. The model is made under the assumption that the maximum hoop stress equals the critical stress when pipes collapse. Different from the previously reported studies, focusing on axial compression, the critical stress of cylinders' buckling under crushing loads is formulated. With regard to the material anisotropy of RTPs, the equivalent stiffness method is applied to obtain the homogenized hoop elastic modulus in the proposed model. The effectiveness of the proposed model is verified by eigenvalue analyses on solid models and continuum shell models. Compared with numerical methods and Timoshenko and Gere (1961), the proposed model was found to give accurate critical pressures and hoop stress distributions. Furthermore, the optimal range for fiber's winding angle is obtained, and the effect of thickness-radius ratios on critical pressure and the disproportionate motions of singularity points are also discussed.
机译:增强热塑性塑料管(RTP)可能会在外部压力下塌陷。在工程实践中必须考虑RTP在屈曲崩溃之前可以抵抗的最大外部压力。为了预测RTP的临界压力,通过分析破碎环的环向应力分布,提出了一个新的分析模型。该模型是在假设最大坍塌应力等于管道塌陷时的临界应力的前提下建立的。与先前报道的研究不同,侧重于轴向压缩,公式化了压碎载荷下圆柱体屈曲的临界应力。关于RTPs的材料各向异性,在该模型中,采用等效刚度法获得均质的环向弹性模量。通过对实体模型和连续壳模型进行特征值分析,验证了所提模型的有效性。与数值方法以及Timoshenko和Gere(1961)相比,所提出的模型能够给出准确的临界压力和环向应力分布。此外,获得了纤维缠绕角度的最佳范围,并讨论了厚度-半径比对临界压力和奇异点不成比例运动的影响。

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