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铌微合金钢非再结晶温度的测定

Determination of Non-Recrystallization Temperature for Niobium Microalloyed Steel.

作者信息

Akhtar Mohammad Nishat, Khan Muneer, Khan Sher Afghan, Afzal Asif, Subbiah Ram, Ahmad Sheikh Nazir, Husain Murtuja, Butt Mohammad Mursaleen, Othman Abdul Rahim, Bakar Elmi Abu

机构信息

School of Aerospace Engineering, Universiti Sains Malaysia, Nibong Tebal 14300, Malaysia.

Department of Mechanical Engineering, NIT, Srinagar, Jammu and Kashmir 190006, India.

出版信息

Materials (Basel). 2021 May 18;14(10):2639. doi: 10.3390/ma14102639.

Abstract

In the present investigation, the non-recrystallization temperature (T) of niobium-microalloyed steel is determined to plan rolling schedules for obtaining the desired properties of steel. The value of T is based on both alloying elements and deformation parameters. In the literature, T equations have been developed and utilized. However, each equation has certain limitations which constrain its applicability. This study was completed using laboratory-grade low-carbon Nb-microalloyed steels designed to meet the API X-70 specification. Nb- microalloyed steel is processed by the melting and casting process, and the composition is found by optical emission spectroscopy (OES). Multiple-hit deformation tests were carried out on a Gleeble 3500 system in the standard pocket-jaw configuration to determine T. Cuboidal specimens (10 (L) × 20 (W) × 20 (T) mm) were taken for compression test (multiple-hit deformation tests) in gleeble. Microstructure evolutions were carried out by using OM (optical microscopy) and SEM (scanning electron microscopy). The value of T determined for 0.1 wt.% niobium bearing microalloyed steel is ~ 951 °C. Nb- microalloyed steel rolled at T produce partially recrystallized grain with ferrite nucleation. Hence, to verify the TNR value, a rolling process is applied with the finishing rolling temperature near TNR (~951 °C). The microstructure is also revealed in the pancake shape, which confirms T.

摘要

在本研究中,测定了铌微合金钢的非再结晶温度(T),以制定轧制工艺制度,从而获得所需的钢材性能。T值取决于合金元素和变形参数。在文献中,已经开发并应用了T值方程。然而,每个方程都有一定的局限性,限制了其适用性。本研究使用了设计符合API X - 70规范的实验室级低碳铌微合金钢来完成。铌微合金钢通过熔炼和铸造工艺加工而成,其成分通过光发射光谱法(OES)测定。在Gleeble 3500系统上采用标准袖珍夹头配置进行多道次变形试验来测定T值。在Gleeble中截取长方体试样(10(长)×20(宽)×20(厚)mm)进行压缩试验(多道次变形试验)。利用光学显微镜(OM)和扫描电子显微镜(SEM)观察微观组织演变。对于含0.1 wt.%铌的微合金钢,测定的T值约为951°C。在T温度下轧制的铌微合金钢会产生部分再结晶晶粒,并伴有铁素体形核。因此,为了验证非再结晶温度(TNR)值,采用了终轧温度接近TNR(约951°C)的轧制工艺。微观组织也呈现出饼状,这证实了T值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d98/8158136/f78d86c2c513/materials-14-02639-g001.jpg

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