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A method to account for transient performance requirements in the design of steam generators for concentrated solar power applications

机译:用于集中太阳能电力应用蒸汽发生器设计中的瞬态性能要求的方法

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摘要

Concentrating solar power plants are strongly characterized by recurring start-up and shut-down procedures. This imposes new challenges for conventional components such as the steam generator systems, as frequent load variations might lead to high thermal stress cycles, affecting their lifetime negatively. In this context, the header and coil design is a favourable configuration to reduce stresses. This paper introduces a method to design the heat exchangers of the header and coil steam generator type accounting for the dynamic performance, thermal stress sensitivity and impact on the performance of the power plant. Optimal designs were determined by minimizing the cost and total water-side pressure drop of the steam generator and the levelized cost of electricity of the power plant. The steam generator dynamic model was successfully validated using operational data. The results suggest that a steam generator design characterized by a tube outer diameter of 30 mm, high steam generator pressure drop and low investment cost is the optimal solution for the power plant under consideration. A configuration featuring a large number of tube layers is optimal in order to reduce the pressure drop at the superheater while at the same time, guaranteeing acceptable stresses and good transient response.
机译:集中的太阳能发电厂的特点是经常性的启动和关闭程序。这对诸如蒸汽发生器系统的传统部件产生了新的挑战,因为频繁的负载变化可能导致高热应力循环,影响它们的寿命负极。在这种情况下,标题和线圈设计是一种有利的配置,以减少应力。本文介绍了一种设计集管和线圈蒸汽发生器类型的热交换器的方法,用于动态性能,热应力灵敏度和对电厂性能的影响。通过最小化蒸汽发生器的成本和总水侧压降和电厂的电力电力的调整成本来确定最佳设计。使用操作系统成功验证蒸汽发生器动态模型。结果表明,一种蒸汽发生器设计,其特征在于管外径为30毫米,高蒸汽发生器压降和低投资成本是所考虑的发电厂的最佳解决方案。具有大量管层的配置是最佳的,以便在同一时间减少过热器的压降,保证可接受的应力和良好的瞬态响应。

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