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Temperature Drop of Molten Metals in Open Channels

Temperature Drop of Molten Metals in Open Channels
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摘要 The temperature drop of molten metal flowing in open channels is numerically determined. Rectangular, trapezoidal and triangular geometries are considered. The overall heat transfer coefficients for the bottom, side walls and free surface of the channel have been taken from the literature. For each geometry, the volumetric flow rate, mean residence time and temperature drop as a function of the channel inclination angle were determined. The rectangular and trapezoidal geometries present the smallest temperature drops, while the triangular geometry presents the greatest temperature drop. The factors that most affect this drop are the value of the free surface area of the channel, and the average residence time of the molten metal in the channel. The temperature drop of molten metal flowing in open channels is numerically determined. Rectangular, trapezoidal and triangular geometries are considered. The overall heat transfer coefficients for the bottom, side walls and free surface of the channel have been taken from the literature. For each geometry, the volumetric flow rate, mean residence time and temperature drop as a function of the channel inclination angle were determined. The rectangular and trapezoidal geometries present the smallest temperature drops, while the triangular geometry presents the greatest temperature drop. The factors that most affect this drop are the value of the free surface area of the channel, and the average residence time of the molten metal in the channel.
作者 Miguel A. Barron-Meza Joan Reyes-Miranda Miguel A. Barron-Meza;Joan Reyes-Miranda(Departamento de Materiales, Universidad Autonoma Metropolitana Azcapotzalco, Ciudad de Mexico, Mexico)
出处 《World Journal of Engineering and Technology》 2024年第3期493-500,共8页 世界工程和技术(英文)
关键词 Free Surface Heat Transfer Molten Metal Open Channel Geometry Residence Time Temperature Drop Free Surface Heat Transfer Molten Metal Open Channel Geometry Residence Time Temperature Drop
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