Kotrbacek Petr, Chabicovsky Martin, Resl Ondrej, Kominek Jan, Luks Tomas
Faculty of Mechanical Engineering, Brno University of Technology, 616 69 Brno, Czech Republic.
Materials (Basel). 2023 May 26;16(11):3983. doi: 10.3390/ma16113983.
To achieve the required mechanical properties in the heat treatment of steel, it is necessary to have an adequate cooling rate and to achieve the desired final temperature of the product. This should be achieved with one cooling unit for different product sizes. In order to provide the high variability of the cooling system, different types of nozzles are used in modern cooling systems. Designers often use simplified, inaccurate correlations to predict the heat transfer coefficient, resulting in the oversizing of the designed cooling system or failure to provide the required cooling regime. This typically results in longer commissioning times and higher manufacturing costs of the new cooling system. Accurate information about the required cooling regime and the heat transfer coefficient of the designed cooling is critical. This paper presents a design approach based on laboratory measurements. Firstly, the way to find or validate the required cooling regime is presented. The paper then focuses on nozzle selection and presents laboratory measurements that provide accurate heat transfer coefficients as a function of position and surface temperature for different cooling configurations. Numerical simulations using the measured heat transfer coefficients allow the optimum design to be found for different product sizes.
为了在钢的热处理中获得所需的机械性能,必须有足够的冷却速率并达到产品所需的最终温度。这应该通过一个冷却单元针对不同的产品尺寸来实现。为了使冷却系统具有高度的可变性,现代冷却系统中使用了不同类型的喷嘴。设计师常常使用简化的、不准确的关联式来预测传热系数,导致设计的冷却系统尺寸过大或无法提供所需的冷却工况。这通常会导致新冷却系统的调试时间延长和制造成本增加。关于所需冷却工况和设计冷却的传热系数的准确信息至关重要。本文提出了一种基于实验室测量的设计方法。首先,介绍了找到或验证所需冷却工况的方法。然后本文重点关注喷嘴的选择,并给出了实验室测量结果,这些测量结果给出了不同冷却配置下作为位置和表面温度函数的准确传热系数。使用测量得到的传热系数进行数值模拟,可以为不同的产品尺寸找到最佳设计。