Optimization of Storage Bin Geometry for High Temperature Particle-Based CSP Systems

J. Sment, Kevin Albrecht, J. Christian, C. Ho
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引用次数: 2

Abstract

Solid particle receivers provide an opportunity to run concentrating solar tower receivers at higher temperatures and increased overall system efficiencies. The design of the bins used for storing and managing the flow of particles creates engineering challenges in minimizing thermomechanical stress and heat loss. An optimization study of mechanical stress and heat loss was performed at the National Solar Thermal Test Facility at Sandia National Laboratories to determine the geometry of the hot particle storage hopper for a 1 MWt pilot plant facility. Modeling of heat loss was performed on hopper designs with a range of geometric parameters with the goal of providing uniform mass flow of bulk solids with no clogging, minimizing heat loss, and reducing thermomechanical stresses. The heat loss calculation included an analysis of the particle temperatures using a thermal resistance network that included the insulation and hopper. A plot of the total heat loss as a function of geometry and required thicknesses to accommodate thermomechanical stresses revealed suitable designs. In addition to the geometries related to flow type and mechanical stress, this study characterized flow related properties of CARBO HSP 40/70 and Accucast ID50-K in contact with refractory insulation. This insulation internally lines the hopper to prevent heat loss and allow for low cost structural materials to be used for bin construction. The wall friction angle, effective angle of friction, and cohesive strength of the bulk solid were variables that were determined from empirical analysis of the particles at temperatures up to 600°C.
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高温颗粒基CSP系统储仓几何结构优化
固体颗粒接收器提供了在更高温度下运行聚光太阳能塔接收器的机会,并提高了整体系统效率。用于存储和管理颗粒流动的箱的设计在最小化热机械应力和热损失方面创造了工程挑战。在桑迪亚国家实验室的国家太阳能热测试设备上进行了机械应力和热损失的优化研究,以确定1mwt试验工厂设备的热颗粒储存漏斗的几何形状。采用一系列几何参数对料斗设计进行热损失建模,目标是在不堵塞的情况下提供均匀的散装固体质量流,最大限度地减少热损失,并减少热机械应力。热损失计算包括使用包括绝缘和料斗在内的热阻网络对颗粒温度进行分析。总热损失作为几何和所需厚度以适应热机械应力的函数的图显示了合适的设计。除了与流动类型和机械应力相关的几何形状外,本研究还表征了CARBO hsp40 /70和Accucast ID50-K与耐火绝热材料接触时的流动相关特性。这种绝缘内部内衬料斗,以防止热量损失,并允许低成本的结构材料用于料仓建设。壁面摩擦角、有效摩擦角和大块固体的内聚强度是根据颗粒在高达600℃温度下的经验分析确定的变量。
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