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Microstructural modelling of electrical conductivity and mechanical properties of sintered ferrous materials

机译:烧结铁材料的电导率和力学性能的微观结构建模

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The role of microstructure on mechanical properties of sintered ferrous materials was studied using A method based on electrical conductivity measurement. The method was accompanied by quantitative fractography to evaluate the dewaxing and sintering process in iron compacts. The effects of manufacture mg parameters, such as compacting pressure in the range of 150-800 MPa, sintering temperature from 400 to 1300 deg C, sintering time up to 8 h, and lubrication mode were investigated. Several mathematical models were checked to obtain the best one for prediction of electrical conductivity changes as a function of manufacturing parameters. The mechanical properties of the sintered compacts were also evaluated to establish a relationship between conductivity, total porosity, pore morphology, and mechanical behaviour. The results show that the electrical conductivity/resistivity of sintered materials is closely related to its microstructure, so that measuring these properties can replace destructive test methods for prediction of mechanical strength of sintered materials with homogeneous matrix microstructure. The application of the method is shown for sintered Fe-0.8 percent C, and Fe-1.5 percent Mo-0.7 percent C compacts.
机译:使用基于电导率测量的方法研究了微观结构对烧结铁材料力学性能的作用。该方法伴有定量分形术,以评估铁坯的脱蜡和烧结过程。研究了制造参数的影响,例如压制压力在150-800 MPa范围内,烧结温度从400到1300摄氏度,烧结时间长达8小时以及润滑方式。检查了几种数学模型以获得最佳模型,以预测作为制造参数的函数的电导率变化。还对烧结体的机械性能进行了评估,以建立电导率,总孔隙率,孔形态和机械性能之间的关系。结果表明,烧结材料的电导率/电阻率与其微观结构密切相关,因此测量这些性能可以代替破坏性测试方法来预测具有均质基体微观结构的烧结材料的机械强度。显示了该方法在烧结的Fe-0.8%C和Fe-1.5%Mo-0.7%C压块中的应用。

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