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A numerical investigation of the thermal distribution effects in a heat-exchanger-method crystal growth system

机译:换热器法晶体生长系统中热分布效应的数值研究

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Numerical computations have been performed to investigate the effects of the thermal distribution in a heat-exchanger-method crystal growth system on the convexity of the melt-crystal interface and the rate of crystal size increase. Heat transport from the furnace to the crucible is modelled by a convection boundary condition. Two types of environmental temperature distribution outside the crucible are considered: a uniform temperature and an upward temperature gradient. A higher environmental temperature generates higher maximum convexity. During the environmental temperature reduction process, the crystal quickly enlarges in size as the environmental temperature approaches the melting point of the growing crystal. Therefore, decreases in the environmental temperature must be slow to obtain a constant rate of crystal size increase. An upward temperature gradient decreases the convexity of the melt-crystal interface and the hot spot area. The rate of crystal size increase for an upward temperature gradient is less abrupt than it is without the upward temperature gradient. An upward temperature gradient case is more adapted to the maintenance of a constant increase in the crystal size during a decrease in the furnace temperature to near the melting point of the growing crystal. [References: 19]
机译:已经进行了数值计算,以研究热交换器-方法晶体生长系统中的热分布对熔体-晶体界面的凸度和晶体尺寸增加率的影响。从热炉到坩埚的传热是通过对流边界条件来模拟的。考虑了坩埚外部的两种类型的环境温度分布:均匀温度和向上温度梯度。较高的环境温度会产生较高的最大凸度。在环境温度降低过程中,随着环境温度接近生长晶体的熔点,晶体尺寸迅速增大。因此,环境温度的降低必须缓慢才能获得恒定的晶体尺寸增加率。向上的温度梯度会降低熔体晶体界面和热点区域的凸度。与没有上升温度梯度的情况相比,上升温度梯度的晶体尺寸增加速率不那么突然。向上的温度梯度情况更适合于在炉温降低至生长晶体的熔点附近期间维持晶体尺寸的恒定增加。 [参考:19]

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