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A mathematical model to assess the influence of transients on a refractory-lined solar receiver

机译:一种数学模型,以评估瞬变对耐火衬里太阳能接收机的影响

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An approach to analyze and optimize the thermal performance of a refractory-lined particle receiver in response to solar resource variability has been demonstrated. A transient mathematical model has been developed, incorporating variable direct normal irradiance (DNI) and heat losses associated with a directly irradiated particle receiver. The model is employed to assess the time-dependent temperature fields of the receiver cavity walls, the particles and gas from the initial state to another equilibrium. The influence of the receiver's geometric parameters on the transient thermal response of the receiver has been assessed using real-time solar irradiance data based on the temperature changes for each phase. This can be used to support optimization of the refractory lining and insulation, to trade-off between the solar DNI input, thermal losses from the receiver, and allowable temperatures and heating rates of refractory and outer steel shell, via an energy balance. New insight is provided on the role of the material and thickness of the refractory lining on the system output when accounting for the allowable heating rate of refractory material to avoid failure due to thermal shock. (c) 2020 Elsevier Ltd. All rights reserved.
机译:已经证明了响应于太阳能变化响应于太阳能资源变异性耐火衬里粒子接收器的分析和优化耐火衬里粒子接收器的热性能的方法。已经开发出瞬态数学模型,包括可变直接正常辐照度(DNI)和与直接照射粒子接收器相关的热损耗。该模型用于评估接收器腔壁,颗粒和气体的时间依赖温度场,初始状态到另一个平衡。基于每个阶段的温度变化,使用实时太阳辐照度数据评估了接收器几何参数对接收器的瞬态热响应的影响。这可用于支持耐火衬里和绝缘的优化,在太阳能DNI输入,从接收器的热损失之间进行折衷,并且通过能量平衡,耐火和外钢壳的允许温度和加热速率。在难熔材料的允许加热速率算时,在系统输出上的材料和厚度的作用提供了新的洞察,以避免由于热冲击而避免故障。 (c)2020 elestvier有限公司保留所有权利。

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