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Experimental and Numerical Study of Recuperative Heat Recirculation

机译:换热换热的实验与数值研究

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In many power-generating systems heat recirculation is needed in order to increase their thermal efficiency and ensure sufficiently high temperatures required in fuel processing. The current article investigates experimentally and numerically a heat recirculation phenomenon by using gas-gas recuperation. The systematized description of practicalities of heat recirculation is reported. The experimental characteristics of a heat recirculator are presented in terms of the effect of power of the heater at constant mass flow rate, effect of mass flow rate at constant power of the heater, and effect of mass flow rate at constant ratio power of the heater/mass flow rate on heat transferred, heat lost to the surroundings, and processing temperatures. The results show that heat recirculation is maximized at moderate mass flow rate, at large power, and in miniaturized channels. Further, a numerical model is used in order to interpret and extend the experimental data set. The simulations are focused on heat recirculation under conductive, dispersive, and convective regimes of heat transfer. Finally, the principles of thermal integration of power-generating systems by using heat recirculation are expounded.
机译:在许多发电系统中,需要热再循环以增加其热效率并确保燃料处理中所需的足够高的温度。当前文章通过使用气体-气体换热器从实验上和数值上研究了热再循环现象。报告了热循环实用性的系统化描述。根据加热器在恒定质量流量下的功率影响,质量流量在加热器恒定功率下的影响以及质量流量在加热器恒定功率比下的影响来表示换热器的实验特性/传热的质量流量,散发到周围环境中的热量以及加工温度。结果表明,在中等质量流量,大功率和小型化通道中,热循环得以最大化。此外,使用数值模型来解释和扩展实验数据集。模拟的重点是在传热的传导,分散和对流状态下的热再循环。最后,阐述了利用热循环对发电系统进行热集成的原理。

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