利用 Q-P-T 热处理方法调查分区温度波动对 ASTM A36 碳钢机械性能的影响:一项实验研究

Alief Muhammad, Mochamad Fani Nur Umri, Muhammad Fathuddin Noor, Dani Hari Tunggal Prasetyo, Indah Noor Dwi Kusuma Dewi, Angga Prasmana, Mas Ahmad Baihaqi, Hartawan Abdillah
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引用次数: 0

摘要

随着时间的推移和技术的进步,金属(尤其是碳钢)作为主要材料在各种操作和工业领域(包括工具制造和汽车零部件)的使用显著增加。为了满足不断发展的工业需求,人们开发了精确的热处理工艺来提高金属性能。本研究特别关注淬火-分区-回火(Q-P-T)方法在 ASTM A36 钢中的应用。研究调查了不同的分区温度,即 300℃、350℃ 和 400℃,间隔时间为 15 分钟。为评估材料对处理的反应,进行了一系列全面的机械测试,包括硬度、拉伸和微观结构分析。结果显示了重要发现:300℃的分区温度产生了 164 维氏硬度数(VHN)的最高硬度值。此外,拉伸试验表明,300℃的分区温度是最佳温度,可获得 515.73 兆帕的最大应力值。相反,分区温度为 400℃ 时,应变值最高,为 21.08%,弹性模量值最高,为 11.47 GPa。微观结构评估强调了波来石相和铁素体相的存在,分区温度为 300℃ 时,波来石相的比例最高,为 38.5%。这项细致的研究拓展了我们对冶金学的理解,并强调了分区温度与 ASTM A36 钢机械性能之间错综复杂的关系。它为材料设计和应用方法提供了宝贵的见解,并促进了工业实践的进步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigating the effects of partitioning temperature fluctuations on the mechanical properties of ASTM A36 carbon steel using Q-P-T heat treatment: an experimental study
In the continuum of time and technological advancement, the use of metals, specifically carbon steel, has significantly increased as primary materials in various operational and industrial domains, including tool fabrication and automotive components. To meet the evolving demands of industries, precise heat treatment processes have been developed to enhance the metallic properties. This study specifically focused on the application of the Quenching-Partitioning-Tempering (Q-P-T) method to ASTM A36 steel. The study investigated different partitioning temperatures, namely 300℃, 350℃, and 400℃, with 15-minute intervals. A comprehensive set of mechanical tests, including hardness, tensile, and microstructural analyses, were conducted to assess the response of the material to the treatment. The results reveal significant findings: a partitioning temperature of 300℃ yields the highest hardness value of 164 Vickers Hardness Number (VHN). Furthermore, the tensile tests demonstrate that a partitioning temperature of 300℃ is optimal, achieving a maximum stress value of 515.73 MPa. Conversely, a partitioning temperature of 400℃ exhibits the highest strain value at 21.08% and the highest elastic modulus value at 11.47 GPa. Microstructural evaluations highlighted the presence of pearlite and ferrite phases, with the partitioning temperature of 300°C displaying the highest proportion of pearlite phase at 38.5%. This meticulous investigation expands our understanding of metallurgy and underscores the intricate relationship between partitioning temperatures and the mechanical properties of ASTM A36 steel. It provides valuable insights for material design and application methodologies and facilitates advancements in industrial practices
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