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THERMO-ECONOMIC OPTIMIZATION OF THE CCPP DESIGN WITH SUPPLEMENTARY FIRING CONSIDERING OFF-DESIGN PERFORMANCE AND OPERATING PROFILE

机译:CCPP设计热经济优化,辅助射击考虑摘录性能和运行简介

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This paper presents the latest developments of a methodology for the initial design of the water/steam cycle in combined-cycle power plants, which aims at delivering optimal designs from an operator's perspective. To this end, an evolutionary algorithm optimization toolbox is coupled to a process model of the water/steam cycle. The process model requires the definition of a number of boundary conditions (like GT type and ambient conditions) and the selection of the cycle configuration (number of pressure levels, single or double reheat, supplementary firing, heat integration with GT coolers, fuel gas preheating, steam extraction from the steam turbine and type of cold end, among others). Based on a number of thermodynamic parameters assigned by the optimizer, the process model derives an initial dimensioning and/or selection of the key components and systems from the OEM's portfolio: HRSG (full, geometry-based technical dimensioning), piping, steam turbines, condenser and generator, among others. For each of those, realistic designs are ensured by checking and enforcing the component design rules. Finally, performance and cost are derived. In the latest development, the process model computes the plant performance in a number of off-design conditions, specified in a plant operating profile. These may include different ambient conditions, GT loads, power augmentation (e.g. supplementary firing, inlet fogging and evaporative cooling) and steam exports (e.g. to district heating, desalination plant, carbon capture system) or imports (e.g. from a solar field). The cost of electricity (CoE), net present value (NPV) or average efficiency of the plant design in the given operating profile is the feedback to the optimization algorithm. This guides the process towards the definition of a plant design that gives the best thermo-economic performance under the specified economic boundary conditions and operating scenario. In a typical example, an air-cooled peaking plant needs to be optimized to maximize NPV in an operating scenario characterized by large spikes of the electricity price in hot summer days, during which the plant operator wants to use supplementary firing to boost power production. The described methodology is applied to find the most advantageous dimensions of the supplementary firing to be installed and the right HRSG design pressure at design conditions, ensuring that all design rules and technical limits are respected in all operating conditions. In this way, an optimal point is found in the trade-off between amount of supplementary firing and dimensions of HRSG and air-cooled condenser, delivering the highest possible benefit to the plant operator.
机译:本文介绍了在联合循环发电厂的水/蒸汽循环,其目的是在从运营商的角度来看,提供最佳的设计,初步设计的方法的最新进展。为此,进化算法优化工具箱被耦合到水/蒸汽循环的过程模型。过程模型需要多个边界条件(如GT类型和环境条件)的定义和循环配置的选择(压力水平,单或双再热,补充燃烧,具有GT冷却器热集成,燃料气体预热的数中,从蒸汽轮机和冷端的类型,等等蒸汽提取)。基于许多由优化分配热力学参数,过程模型导出从OEM的组合中的关键部件和系统的初始尺寸和/或选择:HRSG(全,几何基于技术尺寸),管道,蒸汽涡轮,冷凝器和发电机,等等。对于每一个这种的,逼真的设计是通过检查和执行部件的设计规则来保证。最后,性能和成本的。在最新的发展中,过程模型计算在一些非设计条件下的设备性能,在设备运行配置文件中指定。这些可以包括不同的环境条件下,GT负荷,功率增大(例如补充点火,进气喷雾和蒸发冷却)和蒸汽出口(例如区域供热,海水淡化厂,碳捕获系统)或进口(例如,从一个太阳能场)。电力(COE)的成本,净现值(NPV),或者在给定的操作简档的工厂设计的平均效率反馈给优化算法。该指南对工厂的设计,让指定的经济边界条件和运行情况下的最佳热经济性的定义过程。在一个典型的例子,空气冷却的调峰电厂需要进行优化的操作方案特点是电价在炎热的夏天,在此期间,工厂操作员想要使用补充燃烧来提升电力生产的大的尖峰最大化NPV。所描述的方法适用于找到要安装的补充燃烧和设计条件的权利余热锅炉设计压力的最有利的尺寸,确保所有的设计规则和技术限制在所有工作条件下得到尊重。通过这种方式,最佳点在补充燃烧量和余热锅炉的尺寸和空气冷却冷凝器之间的权衡中,提供尽可能造福于工厂操作员。

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