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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Kinetics of Uniaxial Tensile Flow and Work Hardening Behavior of Type 316L(N) Austenitic Stainless Steel in the Framework of Two-Internal-Variable Approach
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Kinetics of Uniaxial Tensile Flow and Work Hardening Behavior of Type 316L(N) Austenitic Stainless Steel in the Framework of Two-Internal-Variable Approach

机译:双内变法框架下316L(N)型奥氏体不锈钢的单轴拉伸流动动力学和加工硬化行为

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摘要

Uniaxial tensile flow and work hardening behavior of type 316L(N) austenitic stainless steel have been examined in the framework of two-internal-variable approach based on the evolution of forest dislocation density and mean free path with plastic strain in the temperature range from 300 K to 1023 K (27 A degrees C to 750 A degrees C) and strain rates ranging from 3.16 x 10(-5) to 3.16 x 10(-3) s(-1). The steel exhibited three-stage work hardening behavior in the variations of theta sigma (d) with sigma (d), where theta sigma (d) is the product of instantaneous work hardening rate, theta (theta = d sigma (d)/d epsilon (p)) and flow stress contribution from dislocation (sigma (d)), and epsilon (p) is the true plastic strain. The three-stage work hardening was characterized by a gradual increase in theta sigma (d) at low stresses (transient stage) followed by a linear increase in theta sigma (d) in stage-II and inverted parabolic hardening at high sigma (d) in stage-III. At all the strain rate and temperature conditions, the flow and work hardening behavior was appropriately described by the two-internal-variable model. The work hardening parameters such as dynamic recovery parameter and final mean free path, and the predicted forest, mobile, and total dislocation densities at uniform plastic strain exhibited three distinct temperature regimes. Anomalous variations in the work hardening parameters with respect to temperature and strain rate observed at intermediate temperatures have been ascribed to the occurrence of dynamic strain aging. At high temperatures, dominance of dynamic recovery has been observed.
机译:基于森林位错密度和平均自由程在300℃温度范围内的塑性应变的演变,在两个内部变量方法的框架内,研究了316L(N)型奥氏体不锈钢的单轴拉伸流动和加工硬化行为。 K到1023 K(27 A摄氏度到750 A摄氏度),应变率范围从3.16 x 10(-5)到3.16 x 10(-3)s(-1)。钢在θσ(d)与σ(d)的变化中表现出三阶段加工硬化行为,其中θσ(d)是瞬时加工硬化率θ的乘积(θ= dσ(d)/ d ε(p))和位错引起的流应力贡献(σ(d)),ε(p)是真正的塑性应变。三阶段加工硬化的特征在于,在低应力(瞬态阶段)下,theta sigma(d)逐渐增加,然后在II期阶段,theta sigma(d)线性增加,而在高sigma(d)下,抛物线形硬化在第三阶段。在所有应变率和温度条件下,通过两个内部变量模型可以适当地描述流动和加工硬化行为。工作硬化参数(例如动态恢复参数和最终平均自由程)以及在均匀塑性应变下的预测森林,活动性和总位错密度表现出三种不同的温度状态。在中间温度下观察到的加工硬化参数相对于温度和应变速率的异常变化已归因于动态应变时效的发生。在高温下,已观察到动态恢复占主导地位。

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