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ALTERNATIVE APPROACH TO DETERMINING THE PREFERRED PLANT SIZE OF PARABOLIC TROUGH CSP POWER PLANTS

机译:确定抛物面槽CSP电厂首选电厂规模的替代方法。

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The share of Concentrated Solar Power plants in power generation has increased significantly in the last decade due to the need to develop and deploy clean technologies that help reduce the carbon footprint of the power generation industry and, at the same time, are less voracious in terms of fossil fuel consumption. As a governmental support to promote the installation of solar plants, different incentives are found in most countries: complementary rates to the market price of electricity (premium), tax credits, financial support, long term power purchase agreements and, in general, other mechanisms that are generally grouped in a "feed-in tariff' that should ideally be more demanding (stringent) over time. The objective of these measures is to make this technology competitive in the mid/long term. At the same time, and in order to distribute these economical resources as fairly as possible, governments have usually limited the power output of those power plants benefitting from these incentives, as a means to prevent oligopolies that would eventually stop technology evolution while concentrating on preserving market conditions. This has led to the common 50 and 80 MW limits that exist in Spain and the USA respectively. As a consequence, OEMs and EPCs have focused on developing reliable and cost-effective CSP plants of these sizes, especially 50 MW. This work is based on unrestrained regulatory or market scenarios, with the aim of finding out which plant size yields the best efficiency at the lowest cost of electricity (COE). In other words, the objective is to establish the plant size of interest for power producers and consumers, should CSP facilities compete in the same market conditions as conventional fossil-fuel plants. The work begins by reviewing briefly the origins of the usual constraints applied to CSP plants. Then, a survey of existing literature dealing with the issue of technical and economic CSP optimization is presented, with a special focus on the work by B. Kelly from Nexant Inc. Taking this work as reference, a model of performance of parabolic trough plants developed in Thermoflex environment to put forth strong project specific feature of CSP facilites. Thermal storage and natural gas hybridization are included among the key design parameters.
机译:在过去的十年中,由于需要开发和部署有助于减少发电行业碳足迹的清洁技术,集中式太阳能发电厂在发电中的份额已显着增加,同时,其变废为宝化石燃料的消耗。作为政府促进太阳能发电站安装的支持,大多数国家/地区都采取了不同的激励措施:对电力(溢价)市场价格的补充费率,税收抵免,财务支持,长期购电协议以及总体上其他机制通常归类为“上网电价”,理想情况下,上网电价应随着时间的推移更加苛刻(严格)。这些措施的目的是使这项技术在中长期内具有竞争力。为了尽可能公平地分配这些经济资源,政府通常会限制那些从这些激励措施中受益的发电厂的电力输出,以此作为一种防止寡头垄断的手段,这种寡头最终会停止技术发展,同时集中精力维护市场条件。西班牙和美国分别存在50和80兆瓦的常见限值,因此,原始设备制造商(OEM)和EPC(EPC)一直致力于开发可靠且成本低廉的产品。这些规模的有效CSP电厂,尤其是50兆瓦。这项工作基于不受限制的监管或市场情况,目的是找出哪种工厂规模以最低的电费(COE)产生最高的效率。换句话说,目标是在CSP设施与传统化石燃料电厂在相同的市场条件下竞争的情况下,确定发电商和消费者感兴趣的电厂规模。这项工作首先简要回顾了应用于CSP工厂的通常约束的起源。然后,对现有的有关技术和经济CSP优化问题的文献进行了调查,特别关注了来自Nexant Inc.的B. Kelly的工作。以此工作为参考,开发了抛物线槽植物的性能模型在Thermoflex环境中提出了CSP设施强大的项目特定功能。关键的设计参数包括蓄热和天然气杂交。

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