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Numerical prediction of micro-channel LD heat sink operated with antifreeze based on CFD method

机译:基于CFD方法的防冻微通道LD散热器的数值预测

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To theoretically study the feasibility of antifreeze coolants applied as cooling fluids for high power LD heat sink, detailed Computational Fluid Dynamics (CFD) analysis of liquid cooled micro-channels heat sinks is presented. The performance operated with antifreeze coolant (ethylene glycol aqueous solution) compared with pure water are numerical calculated for the heat sinks with the same micro-channels structures. The maximum thermal resistance, total pressure loss (flow resistance), thermal resistance vs. flow-rate, and pressure loss vs. flow-rate etc. characteristics are numerical calculated. The results indicate that the type and temperature of coolants plays an important role on the performance of heat sinks. The whole thermal resistance and pressure loss of heat sinks increase significantly with antifreeze coolants compared with pure water mainly due to its relatively lower thermal conductivity and higher fluid viscosity. The thermal resistance and pressure loss are functions of the flow rate and operation temperature. Increasing of the coolant flow rate can reduce the thermal resistance of heat sinks; meanwhile increase the pressure loss significantly. The thermal resistance tends to a limit with increasing flow rate, while the pressure loss tends to increase exponentially with increasing flow rate. Low operation temperature chiefly increases the pressure loss rather than thermal resistance due to the remarkable increasing of fluid viscosity. The actual working point of the cooling circulation system can be determined on the basis of the pressure drop vs. flow rate curve for the micro-channel heat sink and that for the circulation system. In the same system, if the type or/and temperature of the coolant is changed, the working point is accordingly influenced, that is, working flow rate and pressure is changed simultaneously, due to which the heat sink performance is influenced. According to the numerical simulation results, if ethylene glycol aqueous solution is applied instead of pure water as the coolant under the same or a higher working temperature, the available output of optical power will decrease due to the worse heat sink performance; if applied under a lower working temperature(0°C, - 20 °C), although the heat sink performance become worse, however the temperature difference of heat transfer rises more significantly, the available output of optical power will increase on the contrary.
机译:为了从理论上研究将防冻冷却剂用作大功率LD散热器的冷却液的可行性,对液冷微通道散热器进行了详细的计算流体动力学(CFD)分析。对于具有相同微通道结构的散热器,计算了使用防冻冷却剂(乙二醇水溶液)与纯水相比的性能数值。计算出最大热阻,总压力损失(流动阻力),热阻对流速,压力损失对流速等特性。结果表明,冷却剂的类型和温度对散热器的性能起着重要作用。与纯水相比,防冻冷却剂的散热片的整体热阻和压力损失显着增加,这主要是因为其相对较低的导热率和较高的流体粘度。热阻和压力损失是流量和工作温度的函数。冷却液流量的增加会降低散热器的热阻;同时显着增加压力损失。随着流量的增加,热阻趋于极限,而压力损失则随着流量的增加而呈指数增长。由于流体粘度的显着增加,较低的工作温度主要增加了压力损失,而不是增加了热阻。冷却循环系统的实际工作点可以基于微通道散热器和循环系统的压降-流量曲线确定。在同一系统中,如果冷却液的类型或温度发生变化,则会相应地影响工作点,即同时改变工作流量和压力,从而影响散热器的性能。根据数值模拟结果,如果在相同或更高的工作温度下使用乙二醇水溶液代替纯水作为冷却剂,则由于散热性能较差,可利用的光功率输出会降低;如果在较低的工作温度(0°C,-20°C)下使用,虽然散热器的性能会变差,但是传热的温差会明显增加,相反,可用的光功率输出会增加。

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