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Using high temperature tensile testing data to analyze hot formability of Sn-5Sb alloy: instability and critical damage criteria

机译:使用高温拉伸试验数据来分析SN-5SB合金的热成形性:不稳定性和临界损害标准

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In a general overview, hot workability defined by relative ease of deformation during thermomechanical processing depends on localized distribution of stress, strain, temperature and strain rate. In the current research, unsteady flow and formability behavior of Sn-5Sb alloy was investigated using hot tensile tests carried out on the homogenized cast material. To do this, occurrence of instability and evolution of microstructure of such alloy were studied taking the advantage of various instability criteria for hot deformation routes. The output of the models which can be categorized in analytical and empirical approaches were studied in detail and their performance and relative conservativeness and significance were compared. For a better clarification and cognitive comparison of obtained results, hot deformation processing maps were established based on data offered by diverse instability criteria. In addition, an attempt was made for determining critical damage values for this alloy during hot deformation considering several ductile fracture criteria. Taking the advantage of hot tensile data, the tests were then simulated for obtaining required characteristic stress and strain values to be used for evaluating ductile fracture. Simulations were performed by means of finite element method (FEM) in a three-dimensional state of strain in deformation zone. The results exhibit that critical damage values strongly depend on strain rate and temperature and is in accordance with flow instability variation in this alloy.
机译:在一般概述中,通过热机械加工期间相对变形定义的热可加工性取决于应力,应变,温度和应变率的局部分布。在目前的研究中,使用在均化浇铸材料上进行的热拉伸试验研究了SN-5SB合金的不稳定流动和可成形性行为。为此,研究了这种合金的微观结构的不稳定性和演化的发生,从而利用了热变形路线的各种不稳定标准。详细研究了可分析和经验方法分类的模型的输出,并比较了它们的性能和相对保守性和显着性。为了更好的澄清和认知比较所获得的结果,基于各种不稳定标准提供的数据建立热变形处理地图。此外,考虑到几种延性骨折标准,在热变形期间确定该合金的临界损伤值的尝试。采用热拉伸数据的优点,然后模拟测试以获得所需的特征应力和应变值用于评估延性骨折。通过在变形区中的三维应变状态下的有限元方法(FEM)进行仿真。结果表明,临界损伤值强烈取决于应变速率和温度,并根据该合金的流动不稳定变化。

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