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On the Tensile Behavior of High-Manganese Twinning-Induced Plasticity Steel

机译:高锰双晶诱导塑性钢的拉伸行为

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摘要

High-manganese FeMnC and FeMnAlC austenitic twinning-induced plasticity (TWIP) steel exhibits excellent strain-hardening properties due to the gradual reduction of the mean free path for dislocations glide resulting from deformation twinning. Serrated stress-strain curves are often obtained when this type of steel is tested in a uniaxial tensile test. This phenomenon is due to dynamic strain aging (DSA). It is related to the occurrence of localized Portevin–LeChatelier (PLC) deformation bands. The properties of the PLC bands were accurately determined for a FeMnAlC TWIP steel using a combination of high-sensitivity infrared (IR) thermographic imaging and optical strain analysis carried out in situ during tensile deformation. Strain rate jump tests were conducted at room temperature to measure the instantaneous and steady-state strain rate sensitivity as a function of true stress and true strain. Negative values of the steady-state strain rate sensitivity were measured in both upward and downward jump tests. These measurements explain why FeMnC and FeMnAlC TWIP steels have a limited postuniform elongation. A model for the room-temperature DSA of high-Mn austenitic TWIP steel containing C in solid solution is proposed.
机译:高锰含量的FeMnC和FeMnAlC孪晶诱发塑性(TWIP)钢表现出优异的应变硬化性能,这是由于变形孪晶导致的位错滑移的平均自由程逐渐减小。在单轴拉伸试验中测试此类钢时,通常会获得锯齿状的应力-应变曲线。此现象是由于动态应变老化(DSA)引起的。它与局部Portevin-LeChatelier(PLC)变形带的发生有关。结合高灵敏度红外(IR)热像成像和拉伸变形过程中原位进行的光学应变分析,可以准确地确定FeMnAlC TWIP钢的PLC带性能。在室温下进行了应变速率跳跃测试,以测量瞬时应力和稳态应变速率的敏感性,作为真实应力和真实应变的函数。在向上和向下跳跃测试中均测量了稳态应变率灵敏度的负值。这些测量结果解释了为何FeMnC和FeMnAlC TWIP钢的均匀后延伸率有限。提出了固溶碳含量高的奥氏体TWIP钢室温DSA模型。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2009年第13期|3147-3158|共12页
  • 作者单位

    Materials Design Laboratory Graduate Institute of Ferrous Technology Pohang University of Science and Technology Pohang 790-784 South Korea;

    Materials Design Laboratory Graduate Institute of Ferrous Technology Pohang University of Science and Technology Pohang 790-784 South Korea;

    Materials Design Laboratory Graduate Institute of Ferrous Technology Pohang University of Science and Technology Pohang 790-784 South Korea;

    Technical Research Laboratories POSCO Gwangyang Works Gwangyang 545 South Korea;

    Department of Materials Engineering Monash University and CSIRO Division of Materials Science and Engineering Clayton 3800 VIC Australia;

    Materials Design Laboratory Graduate Institute of Ferrous Technology Pohang University of Science and Technology Pohang 790-784 South Korea;

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