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Enhancing the Thermo-Economic Performance of a Direct Steam Generation Solar Tower Power Plant through the Implementation of Steam Flow Control Strategies for Flexible Operation

机译:通过实施灵活的蒸汽流量控制策略,提高直接蒸汽发电太阳能塔式电厂的热经济性能

摘要

Above 90% of the current installed concentrating solar power plants are based on conventional steam-turbine cycles. The operation of steam turbines in these plants is distinctive when compared to traditional base-load power plants. The reason goes back to the intermittent nature of solar power which, in the absence of thermal energy storage or a back-up combustion boiler, forces plant operators to shut down the turbines during night time or at times of low solar radiation. Furthermore, such intermittency often leads to undesirable off-design turbine operating circumstances, either by load variations or changes on live-steam conditions.The present study examines the influence of implementing two operating strategies dealing with steam flow control as a function of incoming solar power for enhancing the thermo-economic performance of a direct steam generation solar tower power plant. The first one consists of a simultaneous high pressure turbine stage- and feed-water preheater bypass. This strategy is used during periods in which the solar radiation is higher than nominal. On these occasions, the plant is capable of generating a larger flow of steam, which allows for an increase in the power production when inserting the additional steam in the turbine bypass. On the other hand, the second operating strategy consists of using an additional feed-water preheater when the power from the field is lower than nominal. In this way, the feed water can reach a higher temperature prior entering the boiler, which is not only beneficial during times of cloud-passages, but also during the start-up process.A dynamic model of a direct steam generation solar tower power plant has been developed following design and operation specifications of an existing reference plant. The two proposed strategies were implemented to the reference model, then a whole year worth simulation was performed for both the reference and the modified models. Lastly, the thermodynamic and economic performance of both systems was measured for the purpose of comparison, by means of using KTH in-house tool DYESOPT. Results show that the implementation of the proposed strategies can enhance the economic viability of the systems by yielding a reduction of 8.7% on the levelized cost of electricity, mainly due to allowing achieving a 12% increase in the net electricity production.
机译:当前安装的集中式太阳能发电厂中有90%以上是基于常规的蒸汽轮机循环。与传统的基本负荷发电厂相比,这些发电厂中的蒸汽轮机运行非常独特。原因可以归结为太阳能的间歇性,在没有热能存储或没有备用燃烧锅炉的情况下,太阳能迫使电厂操作员在夜间或太阳辐射较低时关闭涡轮机。此外,这种间歇性通常会因负载变化或有热蒸汽条件的变化而导致不良的涡轮机非设计工况。本研究研究了实施两种运行策略的影响,这些策略涉及蒸汽流量控制与太阳能输入的函数关系。用于提高直接蒸汽发电太阳能塔式发电厂的热经济性能。第一个由同时的高压涡轮级和给水预热器旁路组成。在太阳辐射高于标称值的时间段内使用此策略。在这些情况下,工厂能够产生更大的蒸汽流量,当在涡轮机旁通管中插入额外的蒸汽时,可以增加发电量。另一方面,第二种操作策略是当来自现场的功率低于额定功率时,使用一个额外的给水预热器。这样,给水可以在进入锅炉之前达到较高的温度,这不仅有利于云层通行,而且也有利于启动过程。按照现有参考工厂的设计和操作规范进行开发。对参考模型实施了两种建议的策略,然后对参考模型和修改后的模型进行了为期一年的仿真。最后,为了进行比较,通过使用KTH内部工具DYESOPT对两个系统的热力学和经济性能进行了测量。结果表明,所提出策略的实施可以通过使平均电力成本降低8.7%来提高系统的经济可行性,这主要是由于净电力生产实现了12%的增长。

著录项

  • 作者

    Ellakany Farid;

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  • 年度 2014
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  • 原文格式 PDF
  • 正文语种 eng
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