首页> 外文会议>International conference on energy sustainability;ES2010 >A NUMERICAL MODEL FOR OFF-DESIGN PERFORMANCE CALCULATION OF PARABOLIC TROUGH BASED SOLAR POWER PLANTS
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A NUMERICAL MODEL FOR OFF-DESIGN PERFORMANCE CALCULATION OF PARABOLIC TROUGH BASED SOLAR POWER PLANTS

机译:基于抛物线槽型太阳能电站设计性能计算的数值模型

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The paper deals with the development and testing of an innovative code for the performance prediction of solar trough based CSP plants in off-design conditions. The code is developed in MS Visual Basic 6.0 with Excel as user interface. The proposed code originates from a previously presented algorithm for on-design sizing and cost estimation of the solar field lay-out, as well as of the main components of the plant, including connecting piping and the steam cycle. Off-design calculation starts from data obtained through the on-design algorithm and considers steady-state situations. Both models are implemented in the same software, named PATTO (PArabolic Trough Thermodynamic Optimization), which is very flexible: the optical-thermal model of collectors can simulate different kinds of parabolic trough systems in commerce, including a combination of various mirrors, receivers and supports. The code is also flexible in terms of working fluid, temperature and pressure range, and can also simulate direct steam generation plants (DSG). Regarding the power block, a conventional steam cycle with super-heater, eventually a re-heater section, and up to seven regenerative bleedings is adopted. The off-design model calculates thermal performance of collectors taking into account proper correlations for convective heat transfer coefficients, considering also boiling regime in DSG configurations. Solar plant heat and mass balances and performances at off-design conditions are estimated by accounting for the constraints imposed by the available heat transfer areas in heat exchangers and condenser, as well as the characteristic curve of the steam turbine. The numerical model can be used for a single calculation in a specific off-design condition, as well as for a whole year estimation of energy balances with an hourly resolution.The model is tested towards real applications and reference values found in literature; in particular, focusing on SEGS VI plant in the USA and SAM~® code. Annual energy balances with ambient condition taken from TMY3 database are obtained, showing good accuracy of predicted performances. The code potentiality in the design process reveals twofold: it can be used for plant optimization in feasibility studies; moreover it is useful to find the best control strategy of a plant, especially the mass flow of heat transfer fluid in each operating condition.
机译:本文讨论了创新代码的开发和测试,该代码用于在非设计条件下预测基于太阳能槽的CSP工厂的性能。该代码是在MS Visual Basic 6.0中以Excel作为用户界面开发的。提议的代码源自先前提出的算法,用于算法设计,估算太阳能场布局以及工厂的主要组件,包括连接管道和蒸汽循环。非设计计算从通过设计算法获得的数据开始,并考虑稳态情况。两种模型都在同一软件(称为PATTO)中实现,该软件非常灵活:收集器的光热模型可以模拟商业中不同种类的抛物线槽系统,包括各种反射镜,接收器和接收器的组合。支持。该代码在工作流体,温度和压力范围方面也很灵活,并且还可以模拟直接蒸汽发生设备(DSG)。关于动力块,采用了带有过热器的传统蒸汽循环,最后是再加热器部分,并且最多进行了七次再生放气。非设计模型在考虑对流传热系数的适当相关性的情况下计算集热器的热性能,同时还考虑了DSG配置中的沸腾状态。通过考虑由换热器和冷凝器中可用的传热面积以及蒸汽轮机的特性曲线所施加的约束,可以估算太阳能发电站在设计外条件下的热量和质量平衡以及性能。该数值模型可用于特定非设计条件下的单次计算,以及用于以小时为单位的全年能量平衡估算。 该模型已针对实际应用和文献中的参考值进行了测试;特别是专注于美国的SEGS VI工厂和SAM〜®代码。从TMY3数据库中获取了具有环境条件的年度能量平衡,显示了预测性能的良好准确性。设计过程中的代码潜力有两个方面:可用于可行性研究中的工厂优化;此外,找到工厂的最佳控制策略,特别是在每个运行条件下的传热流体的质量流量是很有用的。

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