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Techno-economic analysis of carbon dioxide capture and utilisation analysis for an industrial site with fuel cell integration

机译:燃料电池集成工业部位二氧化碳捕获利用分析的技术经济分析

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The emergence of global warming phenomena that has adversely affected the world today has been largely attributed to the proliferation of greenhouse gases, with Carbon dioxide, as its main constituent. The challenge to reduce the Carbon dioxide footprint can be overcome by increasing the value of Carbon dioxide emissions by creating subsidiary industries that can utilize Carbon dioxide as its raw materials and producing other added-value products that can be utilised within the industrial site. The study proposes a framework that sequences the process of evaluating the CO2 footprint and proposing CO2 reduction measures to decrease the CO2 footprint of an existing industrial site. The framework considers an economic sustainability of a multipronged CO2 utilisation approach that includes a fuel cell configuration. Fuel cell is an efficient electrical energy generation technology that can also supplement the electrical needs of a site. The objective of this study is to conduct a techno-economic investigation of the feasibility of including subsidiary plants producing methanol, Calcium carbonate and baking soda from the carbon dioxide captured from the flue gas in the industrial site. This paper investigated the cost of capturing carbon dioxide from selected plants within the industrial site and determined the operating and capital cost required using a bottom-up approach from mass balances. The energy and power cost were interpolated from data obtained from similar waste to resources plants. From the methanol produced, it was determined that a maximum potential of 4.4 MWh per day of electricity can be produced from a Direct Methanol Fuel cell, configuration. It was determined that the cost of producing methanol and calcium carbonate would only be sustainable if the price of raw materials such as hydrogen and wollastonite could be brought down by producing hydrogen through solar-chemical water splitting and the wollastonite from steelmaking slag. The baking production was determined as the most sustainable subsidiary industry in the carbon capture and utilisation, CCU framework with an annual rate of return on investment of 12%. The sustainability of the Carbon capture and utilisation system proposed depends on the reduction of certain raw material costs and the carbon tax alleviation funds. The findings could serve as a guide for future industrial site planning when inviting CO2 fixing plants to join in the subsidiary industry. (C) 2020 Elsevier Ltd. All rights reserved.
机译:当今世界不利影响世界的全球变暖现象的出现在很大程度上归因于有二氧化碳的温室气体的扩散,作为其主要成分。通过创建可以利用二氧化碳作为原料的附属工业,可以通过增加二氧化碳排放的价值来克服减少二氧化碳足迹的挑战。该研究提出了一种框架,其序列序列评估CO2占地面积并提出CO2降低措施,以降低现有工业部位的CO2占地面积。该框架考虑了一种包括燃料电池配置的多强二氧化碳利用方法的经济可持续性。燃料电池是一种有效的电能发电技术,还可以补充部位的电气需求。本研究的目的是进行技术经济调查,该技术调查包括从工业部位烟气捕获的二氧化碳中生产甲醇,碳酸钙和小苏打的附属植物的可行性。本文研究了从工业部位内的所选植物中捕获二氧化碳的成本,并确定了使用质量平衡的自下而上的方法所需的运营和资本成本。能量和功率成本从从类似废物中获得的数据插入资源植物。从产生的甲醇中,确定每天电力的最大电位为4.4米的电力,可以由直接甲醇燃料电池,构型产生。确定生产甲醇和碳酸钙的成本仅是可持续的,如果通过通过太阳能化学水分和炼钢渣生产氢气,可以通过生产氢气和硅酸盐等原料和硅灰石的价格来降低。烘焙生产被确定为最可持续的子公司,在碳捕获和利用中,CCU框架,年度投资率为12%。碳捕获和利用制度的可持续性提出取决于减少某些原料成本和碳税减免基金。调查结果可以作为未来工业现场规划的指南,当邀请CO2修复工厂加入附属工业时。 (c)2020 elestvier有限公司保留所有权利。

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