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光伏发电技术 储能系统 ★ 4.0

利用部分填充的拉西环多孔插入物增强CSP管状接收器的传热性能:一项数值研究

Heat transfer enhancement on CSP tubular receivers using partially filled Raschig Ring porous inserts: A numerical study

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中文摘要

摘要 本研究通过计算方法对由金属拉西环构成的部分填充多孔插入物在气态聚光太阳能吸收器中的性能进行了评估与分析。针对两种填充构型——侧向填充(将插入物沿管壁两侧布置)和中心填充(将其沿中心轴线布置),本文分析了多种设计方案,并通过改变填充指数来平衡传热强化与压降降低之间的关系。采用经过验证的三维孔隙尺度计算流体动力学模型,对包括流速、压力及温度梯度在内的流体动力学特性进行了细致研究。这些模型成功捕捉到了流体在多孔区域与清晰区域之间过渡的流动行为。结果表明,两种构型均表现出相似的泄漏流趋势,但在多孔介质内部存在显著差异。两种设计展现出独特的传热机制,导致吸收器壁面出现不同的温度分布特征。部分填充设计显著降低了压降——这是完全填充设计的主要缺陷——最高降幅可达95%,同时提升了整体吸收器性能。研究表明,与简单的光管设计相比,部分填充设计可实现高达40%的能量效率提升以及近90%的㶲效率提高,为太阳能高温系统提供了一种可行的替代方案。

English Abstract

Abstract This study presents a computational investigation to evaluate and analyze the performance of partially filled porous inserts, composed of metallic Raschig Rings in gaseous concentrated solar power absorbers. Two filling configurations, Lateral Filling (placing inserts along the tube sides) and Central Filling (positioning them along the central axis), were analyzed with different designs. Comparison was conducted by varying filling indices to balance thermal enhancement and pressure drop reduction. The fluid dynamics, encompassing flow velocity, pressure, and temperature gradients were meticulously studied using validated 3D pore-scale computational fluid dynamics models. These models were successfully able to capture the transitional behavior of the fluid between porous and clear regions. The results reveal similar flow leakage trends in both configurations with notable variations along the porous medium. The two designs exhibited unique heat transfer mechanisms, resulting in different temperature profiles on the absorber wall. Partial Filling significantly reduced the pressure drop – a major limitation of fully filled designs –by up to 95%, while simultaneously enhancing the overall absorber performance. This study demonstrated that the partially filled design could achieve up to 40% higher energy efficiency and nearly 90% greater exergy efficiency compared to simple tube designs, offering an alternative for solar high-temperature systems.
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SunView 深度解读

该CSP吸热管强化传热技术对阳光电源光热储能系统具有重要参考价值。研究中部分填充多孔介质设计在保持40%能量效率提升的同时降低95%压力损失的思路,可借鉴至PowerTitan储能系统的液冷热管理优化中。通过局部强化传热结构设计,可提升ST系列PCS功率模块散热效率,降低泵功耗。该流固耦合数值仿真方法亦可用于SG系列逆变器散热器拓扑优化,平衡热性能与系统能耗,助力高温工况下设备可靠性提升。