Effect of the deformation degree at low temperatures on the phase transformations and properties of metastable austenitic steels

IF 0.4 Q4 METALLURGY & METALLURGICAL ENGINEERING Obrabotka Metallov-Metal Working and Material Science Pub Date : 2022-03-15 DOI:10.17212/1994-6309-2022-24.1-73-86
S. Vologzhanina, A. Igolkin, A. Peregudov, I. Baranov, N. Martyushev
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引用次数: 1

Abstract

Introduction. For reliable operation of low-temperature equipment, it is necessary to use materials capable of ensuring operability in a wide temperature range under conditions of alternating loads, exposure to corrosive media, etc. Most often, in such cases, metastable austenitic steels (MAS) of various alloying systems are used. Despite sufficient experience in the use of such materials, not enough information is collected on the behavior of such materials at low temperatures, including phase-structural transformations, the features of such transformations in different temperature zones, including when a load is applied, both static and dynamic. The subject of the study in this work is selected MAS 10Cr14NMn20 and 10Cr14Mn14Ni4Ti grades. The purpose of the study is to evaluate the performance of industrially used metastable austenitic steels for its possible use instead of steel 12Cr18Ni10Ti. Research methodology. The phase composition of the samples was studied on a DRON-3.0 X-ray diffractometer. Mechanical tests were carried out in the temperature range from +20 to -196 °C. Static uniaxial tensile tests were carried out on a R-20 tensile testing machine; cylindrical specimens with threaded heads were prepared according to GOST 11150–75, as well as samples with a circumferential notches. Dynamic bending tests were carried out on a pendulum impact tester, using samples according to GOST 9454–78. Results and Discussion. Based on the data obtained, it is found that an increase in the strain rate at low temperatures contributes to a decrease in the number of martensitic phases in the steels under study. It is found that the hardenability during elastic-plastic deformation decreases and completely disappears at the temperature of the material transition to a brittle state. It is shown that an increase in the rate of low-temperature deformation of samples prevents the development of phase martensitic transformations in steels. The results obtained can be recommended for use in the selection of materials for the manufacture of equipment operating at temperatures down to -196 °C. Conclusions. It is shown that the obtained values of the characteristics of mechanical properties make it possible to recommend the studied MAS as a substitute for steel 12Cr18Ni10Ti, down to a temperature of -196 °C.
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低温变形程度对亚稳奥氏体钢相变及性能的影响
介绍为了使低温设备可靠运行,有必要使用能够确保在交变负载、暴露于腐蚀性介质等条件下在宽温度范围内可操作性的材料。在这种情况下,通常使用各种合金体系的亚稳奥氏体钢(MAS)。尽管在使用这种材料方面有足够的经验,但没有收集到足够的关于这种材料在低温下的行为的信息,包括相结构转变、这种转变在不同温度区的特征,包括当施加静态和动态负载时。本工作的研究对象是MAS 10Cr14NMn20和10Cr14Mn14Ni4Ti。本研究的目的是评估工业上使用的亚稳奥氏体钢的性能,以替代12Cr18Ni10Ti钢。研究方法。在DRON-3.0 X射线衍射仪上研究了样品的相组成。机械试验在+20至-196°C的温度范围内进行。在R-20拉伸试验机上进行静态单轴拉伸试验;根据GOST 11150-75,制备了带螺纹头的圆柱形试样,以及带有周向缺口的试样。根据GOST 9454–78,使用样品在摆锤冲击试验机上进行动态弯曲试验。结果和讨论。根据获得的数据,发现低温下应变速率的增加有助于所研究钢中马氏体相数量的减少。研究发现,弹塑性变形过程中的淬透性降低,并在材料转变为脆性状态的温度下完全消失。研究表明,样品低温变形速率的增加阻止了钢中相马氏体相变的发展。所获得的结果可用于选择在-196°C以下温度下运行的设备的制造材料。结论。结果表明,所获得的力学性能特征值可以推荐所研究的MAS在-196°C的温度下代替12Cr18Ni10Ti钢。
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Obrabotka Metallov-Metal Working and Material Science
Obrabotka Metallov-Metal Working and Material Science METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
1.10
自引率
50.00%
发文量
26
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