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Optimization of Process Parameters forTemperature Distribution during Water QuenchedProcess

机译:水淬过程温度分布工艺参数的优化

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Wide application and versatility of steel have resulted in the need to improve its mechanical properties at desired temperature and microstructure to achieve production goal and reliable service performance. Quenching, a method of improving mechanical properties of steel, is characterized with reworking and induced thermal stresses leading to defective product. This could be caused by low temperature was distributed in the steel sample to effect the desired mechanical property. This paper is aimed at rectifying this anomaly by investigating the synergetic effect of operating variables (quenching time, radial distance and immersion speed) on temperature distribution in the quenched steel using Box-Behnken design of Response Surface Methodology (RSM). Results of the investigation show the significant terms to temperature distribution with quenching time having the most influential effect on the model development. The temperature distribution of 37.24°C was obtained at optimum condition for the parameters at 100 seconds, 15 mm radial distance and immersion speed of 0.10 m/s. The coefficient of correlation (R2) obtained for water quenched gave 0.9999, Adjusted R2 of 0.99983 and adequate precision of 43.356 respectively. This indicated a good agreement between the laboratory experiment and model developed for temperature distribution.
机译:钢的广泛应用和多功能性导致需要在所需的温度和微观结构下改善其机械性能,以实现生产目标和可靠的服务性能。淬火是一种改善钢的机械性能的方法,其特征在于返工和产生的热应力导致产品出现缺陷。这可能是由于低温分布在钢样中以影响所需的机械性能所致。本文旨在通过使用响应曲面方法(RSM)的Box-Behnken设计,研究工作变量(淬火时间,径向距离和浸入速度)对淬火钢中温度分布的协同效应,以纠正此异常。研究结果表明,温度分布具有重要意义,淬火时间对模型的开发影响最大。在100秒,15 mm径向距离和0.10 m / s的浸入速度下的最佳条件下,获得了37.24°C的温度分布。水淬后获得的相关系数(R2)分别为0.9999,调整后的R2为0.99983和足够的精度为43.356。这表明实验室实验和为温度分布开发的模型之间有很好的一致性。

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