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Intercritical annealing to achieve a positive strain-rate sensitivity of mechanical properties and suppression of macroscopic plastic instabilities in multi-phase medium-Mn steels

机译:跨临界退火,实现多相介质 - Mn钢中力学性能的阳性应变率敏感性和宏观塑性稳定性

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摘要

This study investigates the high strain-rate tensile properties of a cold-rolled medium-Mn steel (Fe-12Mn-3Al-0.05C % in mass fraction) designed to have a multi-phase microstructure and positive strain-rate sensitivity. At the intercritical annealing temperature of 585 °C, increasing the annealing time from 0.5 h to 8 h increased the phase volume fraction of ultrafine-grained (UFG) austenite from 2% to 35% by reversion. The remainder of the microstructure was composed of UFG ferrite and recovered α'-martensite (the latter resembles the cold-rolled state). Servo hydraulic tension testing and Kolsky-bar tension testing were used to measure the tensile properties from quasi-static strain rates to dynamic strain rates (ε = 10~(-4) s~(-1) to ε = 10~3 s~(-1)). The strain-rate sensitivities of the yield strength (YS) and ultimate tensile strength (UTS) were positive for both annealing times. Tensile properties and all non-contact imaging modalities (infrared imaging and digital image correlation) indicated an advantageous suppression of Lueders bands and Portevin Le Chatelier (PLC) bands (a critical challenge in multiphase medium-Mn steel design) due to the unique combination of microstructural constituents and overall composition. Fracture surfaces of specimens annealed for 0.5 h showed some instances of localized cleavage fracture (approximately 30 μm wide areas and lath-like ridges). Specimens annealed for 8 h maintained a greater product of strength and elongation by at least 2.5 GPa % (on average for each strain rate). The relevant processing-structure-property relationships are discussed in the context of recommendations for design strategies concerning multi-phase steels such that homogeneous deformation behavior and positive strain-rate sensitivities can be achieved.
机译:本研究研究了旨在具有多相微观结构和阳性应变率灵敏度的冷轧介质-MN钢(Fe-12mN-3Al-0.05℃%)的高应变率拉伸性能。在585℃的跨临界退火温度下,将退火时间从0.5小时增加到8小时,通过逆转将超细晶粒(UFG)奥氏体的相体积分数增加到2%至35%。微观结构的其余部分由UFG铁氧体组成并回收α'''-马氏体(后者类似于冷轧状态)。伺服液压张力测试和KOLSKY-BAR张力测试用于测量从准静态应变率的拉伸性能,以动态应变速率(ε= 10〜(-4)S〜(-1)至ε= 10〜3 s〜 (-1))。屈服强度(ys)和最终拉伸强度(UT)的应变率敏感性对于退火时间为阳性。拉伸性能和所有非接触式成像模式(红外成像和数字图像相关)表示由于独特的组合,Lufeers频带和Portevin Le Chatelier(PLC)频段(Muliphase Medium-Mn Steel Design中的临界挑战)的有利抑制微观结构成分和整体组合物。标本的断裂表面退火0.5小时显示了局部裂解骨折的一些情况(大约30μm宽区域和岩石状脊)。退火的试样8小时将更大的强度和伸长产物保持至少2.5GPa%(每个应变率平均)。在关于多相钢的设计策略的建议的背景下讨论了相关的加工结构性质关系,从而可以实现均匀变形行为和阳性应变率敏感性。

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  • 来源
    《Materials Science and Engineering》 |2021年第28期|140469.1-140469.12|共12页
  • 作者单位

    Interdisciplinary Materials Science Vanderbilt University Nashville TN 37235-1683 USA National Institute of Standards and Technology Applied Chemicals and Materials Division 325 Broadway Stop 647 Boulder CO 80305 USA;

    National Institute of Standards and Technology Materials Science and Engineering Division 100 Bureau Drive Stop 8553 Gauhersburg MD 20899 USA;

    National Institute of Standards and Technology Materials Science and Engineering Division 100 Bureau Drive Stop 8553 Gauhersburg MD 20899 USA;

    Max-Planck-Institut fuer Eisenforschung Max-Planck-Str. 1 40237 Duesseldorf Germany;

    Max-Planck-Institut fuer Eisenforschung Max-Planck-Str. 1 40237 Duesseldorf Germany;

    Interdisciplinary Materials Science Vanderbilt University Nashville TN 37235-1683 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Medium-Mn steel; Multi-phase steel; Positive strain-rate sensitivity; Servo hydraulic tension; Kolsky bar tension;

    机译:中型钢;多相钢;阳性应变率敏感性;伺服液压张力;Kolsky Bar紧张;
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