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FLEXIBLE COMBINED CYCLE GAS TURBINE POWER PLANT UTILISING ORGANIC RANKINE CYCLE TECHNOLOGY

机译:利用有机兰科循环技术的柔性联合循环燃气轮机发电厂

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Historically gas turbine power plants have become more efficient and reduced the installed cost/MW by developing larger gas turbines and installing them in combined cycle configuration with a steam turbine. These large gas turbines have been designed to maintain high exhaust gas temperatures to maximise the power generation from the steam turbine and achieve the highest overall electrical efficiencies possible. However, in today's electricity market, with more emphasis on decentralised power generation, especially in emerging nations, and increasing penetration of intermittent renewable power generation, this solution may not be flexible enough to meet operator demands. An alternative solution to using one or two large gas turbines in a large central combined cycle power plant is to design and install multiple smaller decentralised power plant, based on multiple gas turbines with individual outputs below 100MW, to provide the operational flexibility required and enable this smaller power plant to maintain a high efficiency and low emissions profile over a wide load range. This option helps maintain security of power supplies, as well as providing enhanced operational flexibility through the ability to turn turbines on and off as necessary to match the load demand. The smaller gas turbines though tend not to have been optimised for combined cycle operation, and their exhaust gas temperatures may not be sufficiently high, especially under part load conditions, to generate steam at the conditions needed to achieve a high overall electrical efficiency. ORC technology, thanks to the use of specific organic working fluids, permits efficient exploitation of low temperatures exhaust gas streams, as could be the case for smaller gas turbines, especially when working on poor quality fuels. This paper looks at how a decentralised power plant could be designed using Organic Rankine Cycle (ORC) in place of the conventional steam Rankine Cycle to maximise power generation efficiency and flexibility, while still offering a highly competitive installed cost. Combined cycle power generation utilising ORC technology offers a solution that also has environmental benefits in a water-constrained World. The paper also investigates the differences in plant performance for ORC designs utilising direct heating of the ORC working fluid compared to those using an intermediate thermal oil heating loop, and looks at the challenges involved in connecting multiple gas turbines to a single ORC turbo-generator to keep installed costs to a minimum.
机译:从历史上看,燃气轮机发电厂已经变得更加高效,并通过开发更大的燃气轮机并将其安装在与蒸汽轮机的联合循环配置中来降低每兆瓦的安装成本。这些大型燃气轮机的设计旨在维持较高的废气温度,以最大程度地提高蒸汽轮机的发电量,并实现最高的总体电效率。但是,在当今的电力市场中,尤其是在新兴国家,尤其是在新兴国家中,由于偏重于分散式发电,并且间歇式可再生能源发电的普及率不断提高,因此该解决方案可能不够灵活,无法满足运营商的需求。在大型中央联合循环电厂中使用一台或两台大型燃气轮机的另一种解决方案是设计和安装多个小型分散式电厂,以多台单机输出低于100MW的燃气轮机为基础,以提供所需的运行灵活性并实现此目标。较小的发电厂,可在较宽的负载范围内保持高效率和低排放。该选件有助于维护电源的安全性,并通过能够根据需要打开和关闭涡轮机以满足负载需求的能力,从而提供增强的操作灵活性。尽管较小的燃气轮机往往没有针对联合循环操作进行优化,并且它们的排气温度可能不够高,特别是在部分负载条件下,以在实现高整体电效率所需的条件下产生蒸汽。由于使用了特殊的有机工作流体,ORC技术可以有效地利用低温废气流,这对于小型燃气轮机来说尤其如此,尤其是在处理劣质燃料时。本文探讨了如何使用有机朗肯循环(ORC)代替传统的蒸汽朗肯循环来设计分散式发电厂,以最大程度地提高发电效率和灵活性,同时仍提供极具竞争力的安装成本。利用ORC技术的联合循环发电提供了一种解决方案,该解决方案在缺水的世界中也具有环保优势。本文还研究了使用直接加热ORC工作流体的ORC设计与使用中间导热油加热回路的ORC设计在工厂性能方面的差异,并探讨了将多台燃气轮机连接到一台ORC涡轮发电机上所面临的挑战将安装成本降至最低。

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