硼微合金化17G1S-U低碳管钢的组织与性能

A. Babenko, V. Zhuchkov, Natalia Sel’menskikh, A. G. Upolovnikova
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引用次数: 0

摘要

本文给出了硼微合金化对17G1S-U管钢组织和性能影响的分析结果。通过电子显微镜和局部x射线光谱分析对金属结构进行了研究。结果表明,含硼量为0.006%的金属,其氧化物(OS)和硫氧化物(OSB)包裹体的体积浓度增加至0.029%,而不含硼的金属的氧化物和硫氧化物包裹体的体积浓度达到0.006%。单独的硫化物夹杂物(CB)在含0.01% S的不含硼金属中不超过0.004%,而在含0.01% S的不含硼金属中不超过0.029%,在含0.003% S的含硼金属中几乎不存在。硼对管钢的微合金化保证了较小的非金属夹杂物的优先形成,均匀地分布在金属体积中。尺寸小于2 (rm)的非金属夹杂物比例为76.1%,而在不含硼的钢中这一比例仅为58.5%。在这种情况下,含硼样品中几乎不存在大于10rm的大型非金属夹杂物。它们的含量不超过0.6%,比不含硼的样品中的含量少22倍。无硼试样主要由铁素体和少量珍珠岩组成,含硼试样以分散的铁素体-贝氏体结构为代表。在钢中加入硼后,铁素体和珠光体的显微硬度分别提高了80和100 HV10。含硼17G1S-U管钢10mm热轧金属的力学性能表现为:由于形成了主要的小的非金属夹杂物和精细分散的铁素体-贝氏体组织,在保持塑性特性的同时增强了强度性能。质量%:0.006 B和0.003 S的管材在585和685 MPa下无需热处理,屈服应力绝对值和耐时应力绝对值分别达到了X80强度等级,同时保持了足够高的塑性特性。含硫0.01%的无硼管钢强度等级为X70,抗拉强度降至540 MPa,抗拉强度降至610 MPa,暂时性抗拉强度降低。
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Structure and properties of 17G1S-U low-carbon pipe steel microalloyed by boron
The results of analysis of the influence of boron microalloying on structure and properties of 17G1S-U pipe steel are given in the paper. Studies of metal structure were performed by electron microscopy and local X-ray spectral analysis. It has been established that metal containing 0.006 % of boron is characterized by an increased volume concentration to 0.029 % of oxide (OS) and oxysulfide (OSB) inclusions, whose content in metal without boron reaches 0.006 %. Separate sulphide inclusions (CB), whose concentration does not exceed 0.004 % against 0.029 % in a metal without boron, containing 0.01 % S is practically absent in the metal with boron containing 0.003 % S. The microalloying of pipe steel by boron has ensured the preferential formation of small nonmetallic inclusions, evenly distributed in the volume of metal. The proportion of nonmetallic inclusions with size less than 2 (rm is 76.1 %, whereas in steel without boron it is only 58.5 %. In this case, large nonmetallic inclusions of more than 10 rm are practically absent in the sample with boron. Their share does not exceed 0.6 %, which is 22 times less than their amount in the sample without boron. The structure of the sample without boron consists mainly of ferrite and a small amount of perlite, and the sample with boron is represented by a dispersed ferritic-bainitic structure. Increasing the microhardness of both ferrite and pearlite 80 and 100 HV10, respectively, is observed by adding boron to steel. The mechanical properties of 10 mm hot rolled metal from boron-containing 17G1S-U pipe steel are characterized by increased strength properties with preservation of plastic characteristics, due to the formation of predominantly small nonmetallic inclusions and a finely dispersed ferritic-bainitic structure. The absolute values of the yield stress and the time resistance of pipe steel containing in mass %: 0.006 B and 0.003 S are achieved without heat treatment at 585 and 685 MPa, respectively, and meet the X80 strength class, while retaining sufficiently high plastic characteristics. The pipe steel without boron containing 0.01 % of S belongs to the X70 strength class and is characterized by tensile strength lowered to 540 and 610 MPa and a temporary resistance, respectively.
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来源期刊
Izvestiya Vysshikh Uchebnykh Zavedenij. Chernaya Metallurgiya
Izvestiya Vysshikh Uchebnykh Zavedenij. Chernaya Metallurgiya Materials Science-Materials Science (miscellaneous)
CiteScore
0.90
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81
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