Aspen plus-based techno-economic assessment of a solar-driven calcium looping CO2 capture system integrated with CaO sorbent reactivation

IF 7.1 Q1 ENERGY & FUELS Energy Conversion and Management-X Pub Date : 2024-07-01 DOI:10.1016/j.ecmx.2024.100673
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Abstract

Given the gradual nature of the energy transition, retrofitting coal-fired power plants with carbon capture technology is crucial. The calcium looping (CaL) process is a promising solution, with challenges like absorbent deactivation and reduced thermal efficiency mitigated by absorbent reactivation and heat recovery systems. This study evaluated the techno-economic feasibility of integrating a novel wet extraction and precipitation process for absorbent reactivation within a solar-assisted CaL system, alongside an existing coal power plant. The process incorporated a secondary steam cycle and an ammonia absorption chiller for enhanced heat recovery and district cooling. The integrated project could increase daily power generation by 50% and reduce CO2 emissions from 820.4 g/kWh to 54.5 g/kWh. Over its lifespan, the reactivation facility could reduce limestone extraction by 21 Mt with 90% capture efficiency. With a levelized cost of electricity (LCOE) of 116.1 €/MWh and breakeven electricity selling price (BESP) of 56.6 €/MWh, the system demonstrated promising commercial viability, with the reactor and concentrated solar heating (CSH) system making up over 60% of investment costs. CSH cost and solar abundance were identified as key factors, indicating potential feasibility even in higher latitude regions. At CO2 revenues of 150 €/t, a stand-alone capture project can break even based solely on CO2 sales, demonstrating its potential for expansion to other areas. A case study highlighted the benefits of integrating absorbent reactivation and an ammonia absorption chiller, improving both economics and carbon capture efficiency. The study also confirmed the viability of solar-assisted projects in high-latitude regions, with optimistic future CO2 revenues and advancements in carbon capture technology enhancing feasibility.

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基于 Aspen plus 的太阳能驱动钙循环二氧化碳捕集系统与 CaO 吸附剂再活化的技术经济评估
鉴于能源转型的渐进性,利用碳捕集技术改造燃煤发电厂至关重要。钙循环(CaL)工艺是一种很有前景的解决方案,它可以通过吸收剂再活化和热回收系统来缓解吸收剂失活和热效率降低等挑战。本研究评估了将新型湿法萃取和沉淀工艺整合到太阳能辅助钙循环系统中进行吸收剂再活化的技术经济可行性,同时还评估了现有煤电厂的情况。该工艺包括一个二次蒸汽循环和一个氨吸收冷却器,用于加强热回收和区域冷却。该综合项目可将日发电量提高 50%,并将二氧化碳排放量从 820.4 克/千瓦时降至 54.5 克/千瓦时。在整个生命周期内,重新激活设施可减少石灰石开采量 2100 万吨,捕集效率为 90%。该系统的平准化电力成本(LCOE)为 116.1 欧元/兆瓦时,盈亏平衡电价(BESP)为 56.6 欧元/兆瓦时,显示出良好的商业可行性,反应器和聚光太阳能加热(CSH)系统占投资成本的 60% 以上。聚光太阳能加热(CSH)成本和太阳能丰富程度被认为是关键因素,这表明即使在纬度较高的地区也具有潜在的可行性。在二氧化碳收入为 150 欧元/吨的情况下,一个独立的捕集项目仅靠二氧化碳销售就能实现收支平衡,这表明该项目具有向其他地区扩展的潜力。一项案例研究强调了将吸收剂再活化和氨吸收冷却器整合在一起的好处,既提高了经济效益,又提高了碳捕集效率。研究还证实了高纬度地区太阳能辅助项目的可行性,未来乐观的二氧化碳收入和碳捕集技术的进步提高了可行性。
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来源期刊
CiteScore
8.80
自引率
3.20%
发文量
180
审稿时长
58 days
期刊介绍: Energy Conversion and Management: X is the open access extension of the reputable journal Energy Conversion and Management, serving as a platform for interdisciplinary research on a wide array of critical energy subjects. The journal is dedicated to publishing original contributions and in-depth technical review articles that present groundbreaking research on topics spanning energy generation, utilization, conversion, storage, transmission, conservation, management, and sustainability. The scope of Energy Conversion and Management: X encompasses various forms of energy, including mechanical, thermal, nuclear, chemical, electromagnetic, magnetic, and electric energy. It addresses all known energy resources, highlighting both conventional sources like fossil fuels and nuclear power, as well as renewable resources such as solar, biomass, hydro, wind, geothermal, and ocean energy.
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