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Evaluation of the Effects of Mixed Mode I-II Loading on Elastic-Plastic Ductile Fracture of Metallic Materials

机译:混合模式I-II载荷对金属材料弹塑性韧性断裂的影响

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In order to evaluate the mixed-mode fracture behavior of elastic-plastic metallic materials, experimental tests and numerical calculations were carried out. Since the transition of fracture toughness between opening and in-plane shear modes with ductile materials is a question of controversy, single-edge notched bend (SENB) specimens were subjected to asymmetric four-point bending (ASFPB) to provide various mode portions using four materials: A533B pressure vessel steel, F82H ferritic stainless steel, sensitized AISI 304 austenitic stainless steel, and CuAl25 copper alloy. Fracture resistance curves were determined and fracto-graphical studies performed. Numerical studies focused on determining the J-integral and stress intensity factor (SIF) solutions for the experimental program and the Gurson-Tvergaard constitutive model was used to simulate continuum features of the fracture process. The results demonstrate that Mode II fracture toughness of ductile metallic materials can be significantly lower than Mode I fracture toughness. Studies of the micromechanical aspects of fracture demponstrate the factors and variables responsible for the behavior noted in this investigation.
机译:为了评估弹塑性金属材料的混合模式断裂行为,进行了实验测试和数值计算。由于在韧性材料的开放和平面剪切模式之间断裂韧性的转变是一个有争议的问题,因此单边缘缺口弯曲(SENB)试样要经过非对称四点弯曲(ASFPB),以使用四个来提供各种模式部分材料:A533B压力容器钢,F82H铁素体不锈钢,敏化AISI 304奥氏体不锈钢和CuAl25铜合金。确定抗断裂曲线并进行分形学研究。数值研究侧重于确定用于实验程序的J积分和应力强度因子(SIF)解决方案,并且使用Gurson-Tvergaard本构模型来模拟断裂过程的连续特征。结果表明,韧性金属材料的II型断裂韧性可以明显低于I型断裂韧性。对骨折的微观力学方面的研究削弱了造成本研究中所指出的行为的因素和变量。

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