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Thermal and mechanical analysis of a sodium-cooled solar receiver operating under a novel heliostat aiming point strategy

机译:在新型定日镜瞄准点策略下运行的钠冷太阳能接收器的热和机械分析

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The nature in which a solar receiver in a concentrated solar power plant interacts with an accompanying heliostat field plays a significant role in plant performance and economics. An appropriate heat flux distribution should help deliver maximum receiver thermal performance, while minimising mechanical damage - thereby maximising power production and reducing costs. The current work presents an investigation into the thermal performance and mechanical reliability of a sodium-cooled solar receiver operating under heat flux profiles generated by a novel heliostat aiming strategy. A modification of the HFLCAL model is used to generate heat flux profiles for individual heliostats in a representative plant, and simulated annealing optimisation techniques are used to produce a novel heliostat aiming strategy. The importance of giving consideration to receiver limitations under non-uniform thermal boundary conditions in the development of a heliostat aiming strategy is demonstrated in this study, with mathematical optical, thermal, and mechanical models used to complete the analysis. An investigation has been conducted for a point-in-time resulting in maximum thermal loading conditions, with theoretical modelling techniques used to calculate receiver tube temperatures for aiming strategy yielded heat flux profiles, thereby allowing for the determination of heat losses and mechanical reliability through creep fatigue damage. Results show that the simulated annealing algorithm can significantly improve heat flux homogeneity on the receiver, potentially reducing peak heat flux to less than 10% that of a single aiming point strategy, given an appropriate spillage allowance and aiming point grid size. A satisfactory configuration of spillage allowance and aiming grid size exists so as to supply maximum power to the receiver, while uniformly distributing the incident heat flux in order to meet mechanical reliability requirements. Based on the receiver design and conditions simulated in the analysis, a grid constructed of more than 81 aiming points (receiver area coverage of 32.7%), and an additional spillage allowance of 10% allows the receiver to deliver maximum power output while retaining mechanical durability through a 30 year plant life cycle.
机译:集中式太阳能发电厂中的太阳能接收器与随之而来的定日镜场相互作用的性质在电厂性能和经济性方面起着重要作用。适当的热通量分布应有助于提供最大的接收器热性能,同时将机械损坏降到最低,从而最大程度地提高发电量并降低成本。当前的工作提出了对钠冷却的太阳能接收器的热性能和机械可靠性的研究,该接收器在由新型定日镜瞄准策略产生的热通量分布下运行。 HFLCAL模型的修改用于生成代表性工厂中单个定日镜的热通量曲线,模拟退火优化技术用于生成新的定日镜瞄准策略。在这项定日镜瞄准策略的开发中,通过数学的光学,热学和机械模型来完成分析,在定日镜瞄准策略的开发中考虑了在非均匀热边界条件下考虑接收器限制的重要性。已针对导致最大热负荷条件的时间点进行了调查,并使用理论建模技术来计算接收器管的温度,以针对策略产生的热通量分布图,从而确定通过蠕变产生的热损失和机械可靠性疲劳损伤。结果表明,模拟退火算法可以显着提高接收器上的热通量均匀性,并在适当的溢出量和瞄准点网格大小的情况下,将峰值热通量降低到单个瞄准点策略的10%以下。存在令人满意的溢出余量配置和瞄准栅格尺寸,以便向接收器提供最大功率,同时均匀分布入射热通量,以满足机械可靠性要求。根据接收器的设计和分析中模拟的条件,由超过81个瞄准点构成的网格(接收器区域覆盖率为32.7%),额外的泄漏余量为10%,可以使接收器在保持机械耐用性的同时提供最大的功率输出通过30年的植物生命周期。

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