首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Microstructural modeling and numerical simulation of multi-physical fields for martensitic stainless steel during hot forging process of turbine blade
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Microstructural modeling and numerical simulation of multi-physical fields for martensitic stainless steel during hot forging process of turbine blade

机译:汽轮机叶片热锻造过程中马氏体不锈钢多物理场的微观结构建模与数值模拟

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摘要

The mechanical properties of forgings mainly depend on the microstructure evolution during closed-die forging process, during which the microstructure mainly undergoes dynamic recovery, dynamic recrystallization, static recovery, static recrystallization, and metadynamic recrystallization. The macroscopic factors such as deformation temperature, strain rate, and strain play a key role in the microstructure evolution when the material composition is given. This paper presents the mathematical models for the prediction of microstructure evolution for martensitic stainless steel based on the hot compression test. A coupled analysis system of flow stress field, temperature field, and microstructure evolution for hot forging was developed based on the commercial software. The forging process of martensitic stainless steel turbine blade was simulated by the developed system. The influence of initial temperature of billet and deformation velocity on the load and finial temperature of forging part was analyzed. The variation of strain, temperature, and recrystallization volume fraction and grain size has been analyzed through simulation of the forging process. Based on the simulation results, the optimum hot forging process for complex forging parts was obtained.
机译:锻件的机械性能主要取决于闭合锻造过程中的微观结构演化,在此期间微结构主要经历动态回收,动态再结晶,静态回收,静态再结晶和元动力学重结晶。诸如变形温度,应变率和应变等宏观因子在给出材料组合物时在微观结构演变中起关键作用。本文介绍了基于热压缩试验的马氏体不锈钢微观结构演化预测的数学模型。基于商业软件开发了一种耦合的流量应力场,温度场和热锻造的微观结构演进系统。由发达的系统模拟马氏体不锈钢涡轮机叶片的锻造过程。分析了钢坯初始温度对锻造部分载荷和细粒温度的影响。通过模拟锻造过程分析了应变,温度和再结晶体积分数和晶粒尺寸的变化。基于仿真结果,获得了复杂锻造部件的最佳热锻方法。

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