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首页> 外文期刊>Journal of Materials Processing Technology >Enhancing combined cryogenic mechanical properties of metastable austenitic stainless steel by warm forming
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Enhancing combined cryogenic mechanical properties of metastable austenitic stainless steel by warm forming

机译:通过热成形提高亚稳奥氏体不锈钢的组合低温力学性能

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摘要

Forming temperature is an essential factor for metastable austenitic stainless steel (M-ASS) products to accommodate microstructures and cryogenic mechanical performance. Warm forming has been proposed to suppress the strain-induced martensitic transformation (SIMT) of M-ASS during plastic deformation with effective costs recently. However, rational ranges of forming temperature and cryogenic properties of warm-formed M-ASS have not been studied thoroughly yet, which is more essential to evaluate the mechanical performance of M-ASS cryogenic equipment under service environment. Thus, in this research, the effect of warm-forming on cryogenic tensile and impact properties of 530408 (equivalent to grade of 304 SS) was investigated at liquefied nitrogen temperature (-196 degrees C) on specimens after uniaxial pre-strained 35 % at 20 similar to 180 degrees C. The transformed microstructure after warm-forming was also studied by electron backscatter diffraction, X-ray diffraction, and Ferritescope. Results show that after warm-forming, not only the content of SIM but also the dislocation density are decreased. Besides, the combined mechanical properties of cryogenic ductility and impact toughness are enhanced though the yielding strength degrades as compared to cold-formed materials that were pre-strained at 20 degrees C. Moreover, the optimal warm-forming temperature 200 degrees C was determined as an initial forming temperature for M-ASS based on comprehensive consideration of experimental results about the sensitivity of forming temperature on strength difference and static toughness. Furthermore, the 530408 head EHA 1000 x 14 was warm-formed at temperatures proposed above for verification, the cryogenic ductility and impact toughness of materials from the knuckle section and skirt section of the head are increased, while the strength is decreased as compared to cold pre-strained 35 % materials. It indicated that via warm-forming, the cryogenic combined mechanical properties of ductility and impact toughness could be enhanced significantly as compared to cold-forming, also strength increased than that of as-received materials due to the SIM. Finally, semi-empirical correlations of ultimate tensile strength and Charpy impact energy versus martensite contents were proposed for predicting mechanical properties of M-ASS.
机译:成形温度是亚稳奥氏体不锈钢(M-ASS)产品适应微观结构和低温机械性能的关键因素。近年来,人们提出了一种热成形方法来抑制M-ASS在塑性变形过程中的应变诱发马氏体相变(SIMT),并取得了良好的效果。然而,热成型M-ASS的合理成型温度范围和低温性能尚未得到深入研究,这对于评估M-ASS低温设备在服役环境下的力学性能更为重要。因此,在本研究中,在液氮温度(-196℃)下,在20℃和180℃下对试样进行单轴预应变35%后,研究了温成形对530408(相当于304不锈钢等级)低温拉伸和冲击性能的影响。还通过电子背散射衍射研究了温成形后转变的微观结构,X射线衍射和铁素体镜。结果表明,温成形后,不仅SIM含量降低,而且位错密度降低。此外,与在20℃下预应变的冷弯成型材料相比,尽管屈服强度降低,但低温塑性和冲击韧性的综合力学性能得到了提高。此外,在综合考虑成形温度对强度差和静态韧性敏感性试验结果的基础上,确定了M-ASS的最佳温成形温度200℃。此外,530408封头EHA 1000 x 14是在上述温度下热成型的,用于验证。与35%的冷预应变材料相比,封头转向节和裙部材料的低温延展性和冲击韧性增加,而强度降低。结果表明,与冷成形相比,温成形可显著提高材料的低温塑性和冲击韧性综合力学性能,同时,由于SIM的存在,材料的强度也比原材料有所提高。最后,提出了预测M-ASS力学性能的极限抗拉强度和夏比冲击能与马氏体含量的半经验关联式。

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