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Carbon dioxide-enhanced geothermal systems for heat and electricity production: Energy and economic analyses for central Poland

机译:增强二氧化碳增强的热电和电力生产地热系统:波兰中部的能量和经济分析

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摘要

The pursuit of economically feasible and socially acceptable carbon capture technologies is often focused on the permanent storage of carbon dioxide (CO2). Among well-established CO2 capture, utilisation, and storage technologies such as enhanced oil recovery, some have recently gained interest for application in the energy sector. One such technology is the use of CO2 as a working fluid in enhanced geothermal systems. The potential benefits of this technology will strongly depend on the parameters of the geological reservoir. The use of supercritical CO2 as a working fluid can provide additional benefits because of the occurrence of partial sequestration of CO2. The main goal of this study is to investigate which of the geological and wellbore parameters of an enhanced geothermal system have the most significant impact on the energy and economic performances of the investigated power generation systems. This paper presents the results of energy assessment of the analysed power generation systems together with the economic effects of their operation. The presented results suggest that CO2-enhanced geothermal systems can be a feasible candidate for the utilisation of the captured CO2 and can simultaneously be a valid source of heat and/or electricity. The analysed process configurations prove that the optimal design of the surface part of the CO2-enhanced geothermal system strongly depends on the parameters of the geological reservoir as well as on the availability of heat sinks (e.g. a low-temperature district heating system), and that this design provides a payback time of 10-12 years in the most optimistic scenario. The analysed enhanced geothermal systems, when compared with conventional geothermal energy systems, are characterised by a higher cost of electricity generation (average-weighted levelized cost of electricity of about 110-170 EUR/MWh as compared with 60 EUR/MWh for conventional systems), mainly because of the significantly higher (1.5 times) total installation costs of the former.
机译:追求经济上可行和社会可接受的碳捕集技术通常集中在二氧化碳(CO2)的永久储存。在既熟悉的二氧化碳捕获,利用和储存技术中,诸如增强的储存技术,其中一些最近获得了在能源领域的应用兴趣。一种这样的技术是在增强地热系统中使用CO2作为工作流体。该技术的潜在益处将强烈取决于地质水库的参数。使用超临界CO2作为工作流体可以提供额外的益处,因为CO 2的部分螯合。本研究的主要目的是探讨增强地热系统的地质和井筒参数的哪些地质和井筒参数对调查发电系统的能量和经济性能产生了最大的影响。本文介绍了分析的发电系统的能源评估结果以及其运作的经济影响。所呈现的结果表明,CO2增强的地热系统可以是用于利用捕获的CO2的可行候选者,并且可以同时成为有效的热量和/或电力。分析的工艺配置证明了CO2增强地热系统的表面部分的最佳设计强烈取决于地质储层的参数以及散热器的可用性(例如低温区供暖系统)和这种设计在最乐观的情景中提供了10-12岁的投资回报时间。与传统地热能系统相比,分析的增强的地热系统,其特点是发电成本更高(平均加权电压的电力成本约为110-170欧元/兆瓦,与传统系统为60欧元) ,主要是由于前者的总安装成本明显更高(1.5倍)。

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