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Techno-economic performance evaluation of direct steam generation solar tower plants with thermal energy storage systems based on high-temperature concrete and encapsulated phase change materials

机译:基于高温混凝土和封装相变材料的具有储热系统的直接蒸汽发电太阳能塔装置的技术经济性能评估

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摘要

Nowadays, direct steam generation concentrated solar tower plants suffer from the absence of a cost-effective thermal energy storage integration. In this study, the prefeasibility of a combined sensible and latent thermal energy storage configuration has been performed from thermodynamic and economic standpoints as a potential storage option. The main advantage of such concept with respect to only sensible or only latent choices is related to the possibility to minimize the thermal losses during system charge and discharge processes by reducing the temperature and pressure drops occurring all along the heat transfer process. Thermodynamic models, heat transfer models, plant integration and control strategies for both a pressurized tank filled with sphere-encapsulated salts and high temperature concrete storage blocks were developed within KTH in-house tool DYESOPT for power plant performance modeling. Once implemented, cross-validated and integrated the new storage model in an existing DYESOPT power plant layout, a sensitivity analysis with regards of storage, solar field and power block sizes was performed to determine the potential impact of integrating the proposed concept. Even for a storage cost figure of 50 USD/kWh, it was found that the integration of the proposed storage configuration can enhance the performance of the power plants by augmenting its availability and reducing its levelized cost of electricity. As expected, it was also found that the benefits are greater for the cases of smaller power block sizes. Specifically, for a power block of 80 MWe a reduction in levelized electricity costs of 8% was estimated together with an increase in capacity factor by 30%, whereas for a power block of 126 MWe the benefits found were a 1.5% cost reduction and 16% availability increase
机译:如今,直接蒸汽发电的集中式太阳能塔装置缺少成本有效的热能存储集成。在这项研究中,从热力学和经济角度出发,已将显热和潜热能量存储组合配置的可行性作为一种潜在的存储选项。这样的概念相对于仅明智的选择或仅潜在的选择的主要优点涉及通过降低在整个传热过程中发生的温度和压力降而使系统充放电过程中的热损失最小化的可能性。在KTH内部工具DYESOPT中开发了热力学模型,传热模型,工厂集成和控制策略,用于装满球形密封盐的加压罐和高温混凝土存储模块,用于电厂性能建模。一旦实施,交叉验证并将新的存储模型集成到现有的DYESOPT电厂布局中,就存储,太阳能场和电源块大小进行敏感性分析,以确定集成提议的概念的潜在影响。即使对于50 USD / kWh的存储成本,发现建议的存储配置的集成也可以通过增加其可用性和降低其平均电费成本来提高电厂的性能。正如预期的那样,还发现对于较小的电源块而言,其好处更大。具体来说,对于80 MWe的电源块,估计平均水平的电力成本降低了8%,而容量系数增加了30%,而对于126 MWe的电源块,发现的好处是降低了1.5%的成本,而16可用性增加百分比

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