地热二元 ORC 系统比较分析:二氧化碳和水作为地质流体的性能和环境考虑因素

Nkemakolam Chinedu Izuwa, S. Ekwueme, N. Okereke, O. Nwanwe, N. Ohia
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引用次数: 0

摘要

本研究考虑了地热二元有机郎肯循环(ORC)系统的过程模拟,该系统利用二氧化碳和水作为地质流体进行发电。模拟是通过使用 Peng Robinson 的流体特性包,使用 Hysys v11 软件进行的。使用了两种干工作流体,包括异戊烷和正戊烷。评估了地层流体温度和工作流体质量流量对发电量以及工作流体最大压力的影响。 结果表明,由于传热增强,地层流体温度越高,发电量越大。异戊烷的热力学性能优于正戊烷。 二氧化碳作为地球流体的性能优于水,其优越性体现在发电量的增加上。二氧化碳的独特特性使其能够在较低温度下高效传热,因此是一种环保而有效的选择。相反,使用水作为地质流体则会对当地的生态系统和水资源造成一些影响。从环境角度来看,二氧化碳更有可能减少对环境的影响,这与向清洁能源过渡的趋势相一致。然而,从经济角度考虑,二氧化碳项目的前期成本可能高于水基系统,因此需要权衡利弊。因此,监管因素和经济可行性在地热发电的地质流体选择中起着至关重要的作用。
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Comparative analysis of geothermal binary ORC systems: performance and environmental considerations for CO2 andwater as geofluids
This study considers the process simulation of geothermal binary Organic Rankine Cycle (ORC) systems which utilizes CO2 and water as geofluids for electricity generation. The simulation was performed using Hysys v11 software by using Peng Robinson’s fluid property package. Two dry working fluids including isopentane and n-pentane, were used. The effects of geofluid temperature and working fluid mass flowrate on power generation, as well as the maximum pressure of working fluids were evaluated.  The result showed that power generation increases with higher geofluid temperature due to enhanced heat transfer. Isopentane outperformed n-pentane, attributed to its superior thermodynamic properties.  CO2 showed better performance as geofluid than water highlighting its superiority, observed in the increased power generation. The unique characteristics of CO2 enable efficient heat transfer at lower temperatures, making it an environmentally friendly and effective choice. Contrarily, the use of water as a geofluid poses some implications for local ecosystems and water resources. From an environmental perspective, CO2 shows greater potential for reduced environmental impact, which aligns with the transition to cleaner energy sources. However, the economic considerations suggest a trade-off, as CO2 projects may entail higher upfront costs compared to water-based systems. Regulatory factors and economic feasibility, therefore, play a crucial role in the choice of geofluid for geothermal power generation.
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Zastita materijala
Zastita materijala Materials Science-General Materials Science
CiteScore
0.80
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0.00%
发文量
26
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