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首页> 外文期刊>Advances in materials science and engineering >Strain Rate-Dependent Constitutive and Low Stress Triaxiality Fracture Behavior Investigation of 6005 Al Alloy
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Strain Rate-Dependent Constitutive and Low Stress Triaxiality Fracture Behavior Investigation of 6005 Al Alloy

机译:6005铝合金的应变率相关本构和低应力三轴断裂行为研究

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In order to study the dynamic and fracture behavior of 6005 aluminum alloy at different strain rates and stress states, various tests (tensile tests at different strain rates and tensile shearing tests at five stress states) are conducted by Mechanical Testing and Simulation (MTS) and split-Hopkinson tension bar (SHTB). Numerical simulations based on the finite element method (FEM) are performed with ABAQUS/Standard to obtain the actual stress triaxialities and equivalent plastic strain to fracture. The results of tensile tests for 6005 Al show obvious rate dependence on strain rates. The results obtained from simulations indicate the feature of nonmonotonicity between the strain to fracture and stress triaxiality. The equivalent plastic strain reduces to a minimum value and then increases in the stress triaxiality range from 0.04 to 0.30. A simplified Johnson-Cook (JC) constitutive model is proposed to depict the relationship between the flow stress and strain rate. What is more, the strain-rate factor is modified using a quadratic polynomial regression model, in which it is considered to vary with the strain and strain rates. A fracture criterion is also proposed in a low stress triaxiality range from 0.04 to 0.369. Error analysis for the modified JC model indicates that the model exhibits higher accuracy than the original one in predicting the flow stress at different strain rates. The fractography analysis indicates that the material has a typical ductile fracture mechanism including the shear fracture under pure shear and the dimple fracture under uniaxial tensile.
机译:为了研究6005铝合金在不同应变率和应力状态下的动态和断裂行为,通过机械测试和模拟(MTS)进行了各种测试(在不同应变率下的拉伸测试和在五个应力状态下的拉伸剪切测试),并且分裂式霍普金森张力杆(SHTB)。使用ABAQUS / Standard进行基于有限元方法(FEM)的数值模拟,以获得实际的应力三轴性和等效的塑性应变断裂。 6005 Al的拉伸试验结果表明,应变速率与速率明显相关。仿真结果表明,断裂应变与应力三轴性之间存在非单调性。当量塑性应变减小到最小值,然后在三轴应力范围从0.04到0.30时增加。提出了一种简化的Johnson-Cook(JC)本构模型来描述流应力与应变率之间的关系。此外,使用二次多项式回归模型修改了应变率因子,该模型被认为会随应变和应变率而变化。还提出了在0.04至0.369的低应力三轴性范围内的断裂准则。修改后的JC模型的误差分析表明,在预测不同应变率下的流应力时,该模型比原始模型具有更高的准确性。断口分析表明,该材料具有典型的韧性断裂机理,包括纯剪切作用下的剪切断裂和单轴拉伸下的凹痕断裂。

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