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Challenges to Introduce Advanced Cooling Technology by the Utilization of Plural Cooling Velocity

机译:通过利用多种冷却速度来引进先进冷却技术的挑战

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The control of cooling power is very important to introduce desired properties. Usually, higher the cooling rate higher the quench hardness and distortion and the optimization of cooling power is the base for good heat treatment. The change of cooling speed during quenching is one of the effective methods to balance hardness and distortion. Different form the general knowledge of the demerit of vapor blanket stage, oil with long vapor blanket stage is also one of effective methods to reduce distortion. The reduction of distortion with enough quench hardness seems to be possible by optimization of cooling condition by the help of computer simulation. The exhibition of higher core hardness than surface in through hardening steels experienced in the "Inverse quench hardening" was introduced by Prof. Tamura and Shimizu. This mechanism is well explained by Arimoto et al, by analysis of computer simulation. In this paper, plural steps cooling methods are compared, in relation with cooling curve and heat transfer coefficient that is necessary to simulate quench results and the possibility of advanced cooling technology is discussed.
机译:冷却功率的控制对于引入所需的性质非常重要。通常,较高的冷却速度越高淬火硬度和变形,冷却功率的优化是良好的热处理的基础。淬火过程中冷却速度的变化是平衡硬度和变形的有效方法之一。不同的形式蒸汽毯阶段的脱钻的一般知识,具有长蒸汽毯阶段的油也是减少变形的有效方法之一。通过计算机模拟优化冷却条件,可以减少足够的淬火硬度的变形。桃花村教授和石米孜教授介绍了通过在“逆淬火硬化”中经历的硬化钢的表面更高的核心硬度展览。通过对计算机仿真分析,通过Arimoto等人解释了这种机制。在本文中,比较了多个步骤冷却方法,与冷却曲线和传热系数相比,讨论了淬火结果所必需的传热系数,并且讨论了先进的冷却技术的可能性。

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