40Kh钢机电复合加工方式对其组织和硬度的影响

A. S. Simachev, T. N. Oskolkova, R. A. Shevchenko
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引用次数: 0

摘要

研究了三种不同方式的组合机电加工对处于正火状态(原始组织)的40Kh钢表层组织和硬度的影响。由于施加的载荷和脉冲数不同,模态各不相同。模式1和模式2(电流强度39 kA,脉冲时间0.02 s,脉冲数1)的外加负载分别为100和250 MPa。与模式2相比,模式3的一个显著特征是脉冲数更多(两个)。金相分析表明,三种情况下均形成了不同厚度(300 ~ 1200 μm)的硬化表面层,硬度为593 ~ 598 HV,由两个区组成:表层为细针状马氏体组织;过渡区平稳过渡到初始铁素体结构)。其组织中的过渡区(按模式1处理)含有马氏体和铁素体。过渡区(模式2处理)由Widemannstett结构组成。与模式1 (300 μm)相比,该模式(700 μm)的表面受热区更大,再加上密集的散热,导致了Widmanstett结构的形成,这是有缺陷的,无法接受的。按模式3处理的过渡区具有马氏体和铁素体的组织。由于在处理过程中使用的脉冲比模2多2倍,因此在过渡区不会形成有缺陷的Widmanstett结构。这使得表面层的加热深度更大(1200 μm),因此,过渡区的结构形成发生在临界区间Ag 3 - Ag 1。
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Influence of combined electromechanical processing modes of 40Kh steel on its structure and hardness
The paper considers the effect of combined electromechanical processing in three different modes on the structure and hardness of the surface layers of 40Kh steel, which was in a normalized state (the original structure). The modes differ from each other by the different applied load and the number of pulses. The applied load in modes 1 and 2 (current strength 39 kA, pulse time 0.02 s, number of pulses 1) is 100 and 250 MPa, respectively. A distinctive feature of mode 3 compared to mode 2 is a greater number of pulses (two). Metallographically it was established that in all three cases a hardened surface layer of different thickness (from 300 to 1200 μm) with a hardness of 593 – 598 HV is formed, consisting of two zones (a surface zone with a structure of fine-needle martensite; a transition zone smoothly transitioning into the initial ferrite structure). The transition zone (treatment according to mode 1 ) in its structure contains martensite and ferrite. The transition zone (mode 2 processing) consists of a Widemannstett structure. A more substantial surface heating zone according to this mode (700 μm) in comparison with the processing according to mode 1 (300 μm) in combination with intensive heat removal contributed to the formation of a Widmanstett structure, which is defective and unacceptable for operation. The transition zone with the processing according to mode 3 has the structure of martensite and ferrite. The formation of a defective Widmanstett structure in the transition zone does not occur, since 2 times more pulses are used during processing than in mode 2 . This contributes to the heating of the surface layer to a greater depth (1200 μm), and, consequently, the structure formation in the transition zone occurs from the intercritical interval Ag 3 – Ag 1 .
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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
自引率
0.00%
发文量
81
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