首页> 外文期刊>International Journal of Mechanical Sciences >Uniaxial and biaxial ratcheting behavior of pressurized AISI 316L pipe under cyclic loading: Experiment and simulation
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Uniaxial and biaxial ratcheting behavior of pressurized AISI 316L pipe under cyclic loading: Experiment and simulation

机译:循环加载下加压AISI 316L管的单轴和双轴棘轮行为:实验与仿真

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Ratcheting defined as the progressive accumulation of plastic strain occurring during cyclic loading in the presence of the mean stress is one of the most prevalent failure modes in engineering structures. Experimental studies were conducted to characterize the uniaxial and biaxial ratcheting responses of an AISI 316L pipe. Experimental results show that an obvious cyclic hardening occurs in the AISI 316L pipe under uniaxial strain loading. Uniaxial ratcheting rate obtained from the axial cyclic experiment reaches a quasi-steady rate after a certain number of loading cycles. Moreover, using a designed four-point bending experimental setup, different axial stress amplitudes in the presence of the constant hoop stress were considered to characterize the biaxial ratcheting response of the material. The ratcheting strain and ratcheting strain rate in the hoop direction increase with increasing axial stress amplitudes under the constant hoop stress. To simulate the uniaxial and biaxial ratcheting behavior of the AISI 316L pipe, the Chaboche nonlinear kinematic hardening model was used. Using the Particle Swarm Optimization (PSO) technique, parameters of the Chaboche model were identified efficiently from the monotonic response of a cold-worked sample. The elastic limit of the material was measured using a very careful quasi-static cyclic compression experiment. The procedure to calibrate the material parameters for the Chaboche model and finite element simulation results were validated well with experimental data for the AISI 316L pipe. It is shown that the Chaboche model with the suitably-calibrated parameters from the experimental study can be applied to rigorously predict the ratcheting behavior of the AISI 316L pipe under cyclic uniaxial and biaxial loading conditions.
机译:棘轮定义为在平均应力存在下循环加载期间发生塑性菌株的渐进积聚是工程结构中最普遍的失效模式之一。进行实验研究以表征AISI 316L管的单轴和双轴棘轮响应。实验结果表明,在单轴应变负载下AISI 316L管中发生明显的环状硬化。从轴向循环实验获得的单轴棘轮速率在一定数量的装载循环后达到了准稳定速率。此外,使用设计的四点弯曲实验装置,认为在恒定环旋应应力存在下的不同轴向应力幅度表征材料的双轴棘轮响应。箍方向上的棘轮应变和棘轮应变速率随着恒定箍应力下的轴向应力幅度的增加而增加。为了模拟AISI 316L管道的单轴和双轴棘轮,使用了Chaboche非线性运动硬化模型。使用粒子群优化(PSO)技术,从冷工样样品的单调响应有效地识别Chaboche模型的参数。使用非常谨慎的准静态循环压缩实验测量材料的弹性极限。校准Chaboche模型和有限元模拟结果的校准材料参数的过程良好,具有AISI 316L管的实验数据。结果表明,来自实验研究的合适校准参数的Chaboche模型可以应用于严格地预测循环单轴和双轴负载条件下AISI 316L管的棘轮行为。

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