Contemporary Intensive Methods of Steel Hardening in Cold Fluids

N. Kobasko
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Abstract

In the paper, the new intensive quenching technologies are discussed which are based on controlling the self-regulated thermal process (SRTP) which exists for a long time if any film boiling is absent. It is rather intensive until convection starts. Despite the intense process (Kn > 0.8), when the heat transfer coefficient and Biot number tend to infinity, there are several ways of controlling the surface temperature of steel components by varying the boiling temperature of the fluid. To eliminate any film boiling process and provide SRTP, the author of the paper explores the resonance effect, a thin surface insulating layer that covers the surface of machine components and electrical negative forces to control the double electrical layer that is responsible for destroying the film boiling mode. Based on SRTP control it is possible to delay the transformation austenite into martensite or even accelerate these transformations. The most important are possibilities to control surface temperature during the boiling process. All of this opens great opportunities for increasing significantly service life of machine components and tools. In the paper also the simplified method of cooling time calculation is proposed. It is based on the new principles concerning pure transient nucleate boiling taking place during the hardening steel in cold fluids. Since the paper simply explains everything, results of investigations will be widely used in the heat-treating industry.
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冷流体中钢铁淬火的当代强化方法
本文讨论了新的强化淬火技术,该技术以控制自调节热过程(SRTP)为基础,如果没有膜沸腾,SRTP 会存在很长时间。在对流开始之前,该过程是相当密集的。尽管这一过程十分激烈(Kn > 0.8),但当传热系数和比奥特数趋于无穷大时,仍有几种方法可以通过改变流体的沸腾温度来控制钢铁部件的表面温度。为了消除任何膜沸腾过程并提供 SRTP,本文作者探索了共振效应、覆盖在机器部件表面的薄表面绝缘层和电负力,以控制负责破坏膜沸腾模式的双电层。基于 SRTP 控制,可以延迟奥氏体向马氏体的转变,甚至加速这些转变。最重要的是可以在沸腾过程中控制表面温度。所有这些都为大幅提高机械部件和工具的使用寿命提供了巨大的机遇。本文还提出了冷却时间计算的简化方法。该方法基于在冷流体中淬火钢时发生的纯瞬态核沸腾的新原理。由于本文简单明了,研究结果将广泛应用于热处理行业。
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