Afandi Nurfanizan, Satgunam M, Mahalingam Savisha, Manap Abreeza, Nagi Farrukh, Liu Wen, Johan Rafie Bin, Turan Ahmet, Wei-Yee Tan Adrian, Yunus Salmi
Institute of Sustainable Energy, Universiti Tenaga Nasional, Jalan IKRAM-UNITEN, 43000, Kajang, Selangor, Malaysia.
Department of Mechanical Engineering, College of Engineering, Universiti Tenaga Nasional, Jalan IKRAM-UNITEN, 43000, Kajang, Selangor, Malaysia.
Heliyon. 2024 Feb 24;10(5):e27119. doi: 10.1016/j.heliyon.2024.e27119. eCollection 2024 Mar 15.
The calcium looping cycle (CaL) possesses outstanding CO capture capacity for future carbon-capturing technologies that utilise CaO sorbents to capture the CO in a looping cycle. However, sorbent degradation and the presence of inert materials stabilise the sorbent, thereby reducing the CO capture capacity. Consequently, the CaO sorbent that has degraded must be replenished, increasing the operational cost for industrial use. CaO sorbents have been modified to enhance their CO capture capacity and stability. However, various CaO sorbents, including limestone, dolomite, biogenesis calcium waste and industrial waste, exhibit distinct behaviour in response to these modifications. Thus, this work comprehensively reviews the CO capture capacity of sorbent improvement based on various CaO sorbents. Furthermore, this study provides an understanding of the effects of CO capture capacity based on the properties of the CaO sorbent. The properties of various CaO sorbents, such as surface area, pore volume, particle size and morphology, are influential in exhibiting high CO capture capacity. This review provides insights into the future development of CaL technology, particularly for carbon-capturing technologies that focus on the modifications of CaO sorbents and the properties that affect the CO capture capacity.
钙循环(CaL)对于未来利用CaO吸附剂在循环过程中捕获CO₂的碳捕获技术而言,具有出色的CO₂捕获能力。然而,吸附剂的降解以及惰性材料的存在会使吸附剂稳定化,从而降低CO₂捕获能力。因此,必须补充已降解的CaO吸附剂,这增加了工业应用的运营成本。人们已对CaO吸附剂进行改性,以提高其CO₂捕获能力和稳定性。然而,包括石灰石、白云石、生物成因钙废物和工业废物在内的各种CaO吸附剂,在对这些改性的响应中表现出不同的行为。因此,这项工作全面综述了基于各种CaO吸附剂的吸附剂改进对CO₂捕获能力的影响。此外,本研究还阐述了基于CaO吸附剂的性质对CO₂捕获能力的影响。各种CaO吸附剂的性质,如表面积、孔体积、粒径和形态,对展现高CO₂捕获能力具有重要影响。本综述为CaL技术的未来发展提供了见解,特别是对于专注于CaO吸附剂改性以及影响CO₂捕获能力的性质的碳捕获技术。