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Evaluating Applicator Designs for Heating Nanoparticle Flow Chemistries Using Single-Mode Microwave Energy

机译:使用单模微波能量评估加热纳米颗粒流化学的涂敷器设计

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A single-mode microwave system can provide an electro-magnetic field with very sharp peaks and high power densities which can heat chemical process fluids rapidly on a much shorter time scale than by convective means. This type of microwave heating provides the opportunity to reduce thermal gradients within process fluids which are important, for example, in the control of reactive precipitation processes used to produce colloidal nanomaterials. Here, the effects of flow applicator design on the thermal gradients and energy efficiency of the microwave-assisted heating is considered as a function of flow rate. A heat efficiency model is developed to simulate the single-mode microwave heating of a continuous flow process fluid over a variety of flow rates and powers. To validate the model, an experimental setup is developed involving a three kW 2450 MHz microwave processing system. The system was used to heat salt water over a range of concentrations while temperature change across a microwave heating zone was measured using in-situ fiber optic probes. Experimental results were found to be in good agreement with the model yielding an average error for all cases of 4.8% and an average error for cases with salinity of 17.3%. The model is used to evaluate the effects of applicator design on thermal gradients and energy efficiency with changes in flow rate.
机译:单模微波系统可以提供具有非常尖锐的峰值和高功率密度的电磁场,与对流方式相比,它可以在短得多的时间范围内快速加热化学过程流体。这种类型的微波加热提供了降低工艺流体中的热梯度的机会,这在例如控制用于生产胶体纳米材料的反应性沉淀过程的控制中很重要。在此,流量施加器设计对微波辅助加热的热梯度和能量效率的影响被视为流量的函数。开发了一个热效率模型,以模拟在各种流速和功率下连续流动过程流体的单模微波加热。为了验证该模型,开发了一个涉及三千瓦2450 MHz微波处理系统的实验装置。该系统用于加热一定浓度范围内的盐水,同时使用原位光纤探头测量整个微波加热区的温度变化。实验结果与该模型吻合良好,所有模型的平均误差为4.8%,盐度为17.3%。该模型用于评估喷头设计对流量变化时热梯度和能效的影响。

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