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Experimental and Theoretical Study on Melting Kinetics of Spherical Aluminum Particles in Liquid Aluminum

机译:液态铝中球形铝颗粒熔化动力学的实验和理论研究

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In this study a process analysis of the melting process of solid particles in a bath of same composition is performed using both experimental information and theoretical computations. An experimental setup was used to measure the thermal histories and to follow the evolution with time of the size of solid metallic spherical particles being melted in a metallic bath of same composition. For such a purpose, pure aluminum was used during the experiments for both solid particles and liquid bath. A mathematical model was also developed based on first principles of heat transfer to simulate the melting kinetics of a cold metallic spherical particle immersed in a hot liquid bath of same composition. The mathematical model was reasonably validated when compared against the experimental results obtained in this work. A process analysis of the melting process was performed to determine the effect of the initial temperature and size of the solid particle, the bath temperature and the convective heat transfer coefficient on the melting time and on the energy consumption. The analysis showed that the variable presenting the most significant effect on both the melting time and the energy consumption is the convective heat transfer coefficient between the particle and the bath, since an increment in such a parameter accelerates the melting process and saves energy. Therefore, proper stirring of the bath is highly recommended to enhance the melting of metallic alloying additions in the metallic baths.
机译:在这项研究中,使用实验信息和理论计算方法对相同组成的熔池中固体颗粒的熔化过程进行了过程分析。实验装置用于测量热历史,并跟踪在相同组成的金属浴中熔化的固态金属球形颗粒的大小随时间的演变。为此目的,在实验过程中,纯铝既用于固体颗粒,又用于液体浴。还基于传热的第一原理开发了数学模型,以模拟浸没在相同组成的热液浴中的冷金属球形颗粒的熔化动力学。与这项工作中获得的实验结果相比,该数学模型得到了合理验证。对熔化过程进行了过程分析,以确定固体颗粒的初始温度和尺寸,熔池温度和对流传热系数对熔化时间和能耗的影响。分析表明,对熔化时间和能耗均影响最大的变量是颗粒与熔池之间的对流传热系数,因为该参数的增加会加速熔化过程并节省能量。因此,强烈建议适当地搅拌熔池以增强金属熔池中金属合金添加剂的熔化。

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