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Research papers on Carbon capture technology

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  1. Worldwide innovations in the development of carbon capture technologies and the utilization of CO2

    Peter Markewitz, Wilhelm Kuckshinrichs, Walter Leitner, et al. · 2012 · Energy & Environmental Science · 1,184 citations

    While Carbon Capture and Storage (CCS) technologies are being developed with the focus of capturing and storing CO2 in huge quantities, new methods for the chemical exploitation of carbon dioxide (CCU) are being developed in parallel. The intensified chemical or physical utilization of CO2 is targeted at generating value from a limited part of the CO2 stream and developing better and more efficient chemical processes with reduced CO2 footprint. Here, we compare the status of the three main lines of CCS technologies with respect to efficiency, energy consumption, and technical feasibility as well as the implications of CCS on the efficiency and structure of the energy supply chain.

  2. Current status of carbon capture, utilization, and storage technologies in the global economy: A survey of technical assessment

    Bartosz Dziejarski, Renata Krzyżyńska, Klas Andersson · 2023 · Fuel · 586 citations

    The latest tremendously rapid expansion of the energy and industrial sector has led to a sharp increase in stationary sources of CO2. Consequently, a lot of concerns have been raised about the prevention of global warming and the achievement of climate mitigation strategies by 2050 with a low-carbon and sustainable future. In view of this, the current state of various aspects of carbon capture, utilization, and storage (CCUS) technologies in general technical assessment were concisely reviewed and discussed. We concentrated on precisely identifying the technology readiness level (TRL), which is beneficial to specifically defining the maturity for each key element of the CCUS system with a co

  3. Carbon capture, utilization, and storage (CCUS) technologies: Evaluating the effectiveness of advanced CCUS solutions for reducing CO2 emissions

    Enobong Hanson, Chukwuebuka Nwakile, Victor Oluwafolajimi Hammed · 2024 · Results in Surfaces and Interfaces · 253 citations

    This review provides a comprehensive examination of Carbon Capture, Utilization, and Storage (CCUS) technologies, focusing on their advancements, challenges, and future prospects. It begins with an overview of carbon capture methods, including pre-combustion, post-combustion, and oxy-fuel combustion techniques, highlighting recent technological improvements and associated challenges. The review then explores various carbon utilization strategies, such as chemical conversion, biological processes, and mineralization, discussing emerging technologies, potential applications, and the economic and environmental benefits of utilizing captured CO 2 . The discussion on carbon storage covers geologi

  4. Mineralization Technology for Carbon Capture, Utilization, and Storage

    Colin D. Hills, Nimisha Tripathi, Paula J. Carey · 2020 · Frontiers in Energy Research · 170 citations

    Carbon capture, utilisation and storage (CCUS) is a technology approach to the management of anthropogenic emissions to atmosphere. The mineralisation of CO2 gas is one approach receiving increased attention. By injecting CO2 into host rocks, or via an ex-situ application step, geological formations have the capacity to react with and store huge volumes of this gas via the formation of carbonate minerals. Currently the technology involved is not advanced enough to handle large volumes of CO2 gas. An alternative mineral feedstock material is the Gt of industrial process wastes that are often disposed to landfill. Suitable solid industrial wastes include thermal process residues which are volu

  5. Development of Carbon Capture, Utilization and Storage Technology in China

    Xian Zhang, Yang Li, Qiao Ma, et al. · 2021 · Strategic Study of CAE · 84 citations

    Carbon capture, utilization and storage (CCUS) is an indispensable option for achieving carbon neutrality. This study evaluates the technical development level, demonstration progress, cost effectiveness, and CO2 reduction potential of CCUS in China to review the status of CCUS and identify its future direction of development. The conclusion indicates that China’s deployment of CCUS projects has developed rapidly and is generally at the stage of industrialized demonstration; although the overall development is comparable to international counterparts, some key technologies still lag behind the international advanced level. In terms of industrial demonstration, China already has the engineeri

  6. A Grand Challenge: Carbon Capture, Utilization, and Storage

    Kishore K. Mohanty · 2024 · Journal of Petroleum Technology · 2 citations

    _ This is the fifth in a series of six articles on SPE’s Grand Challenges in Energy, formulated as the output of a 2023 workshop held by the SPE Research and Development Technical Section in Austin, Texas. Described in a JPT article last year, each of the challenges will be discussed separately in this series: geothermal energy; net-zero operations; improving recovery from tight/shale resources; digital transformation; carbon capture, utilization, and storage; and education and advocacy. _ Net global anthropogenic greenhouse gases (GHG), mainly CO2 and CH4 emissions, rea

  7. Carbon Capture, Utilization and Storage (CCUS) Technology Development

    Zuhong Gong · 2024 · Academic Journal of Science and Technology · 1 citations

    Carbon capture, utilization and storage technology is one of the hot topics in the world in recent years. In the context of global climate change and energy security, reducing carbon dioxide emissions and improving energy efficiency have become the common focus of governments and scientists. Carbon capture utilization and storage technology is a technology that captures carbon dioxide and uses or stores it through various ways. This paper will discuss the development process, application scenarios and future prospects of this technology.

  8. Analyzing technology landscape of carbon capture storage and utilization in Baltic Sea region through patents

    Mayur Pal, Vilte Karaliute · 2022 · Baltic Carbon Forum · 1 citations

    Capturing CO 2 and preventing it from being released into the atmosphere was first suggested in 1977; using existing technology in new ways. CO 2 capture technology has been used since the 1920s for separating CO 2 sometimes found in natural gas reservoirs from the saleable methane gas. More recently, investment in CCS is being driven by the oil and gas industries as well as cement, iron and steel, and chemical production industries in the push for decarbonization. Once it is separated from other gases, the carbon dioxide is then compressed, transported

  9. Carbon Capture Storage dan Carbon Capture Utilization Storage (CCS/CCUS) sebagai Solusi Transisi Energi Fosil di Indonesia

    ARANANDA PUTRI, Nugroho Adi Sasongko, Donny Yoesgiantoro · 2024 · PENDIPA Journal of Science Education

    Penelitian ini mengulas komitmen Indonesia mencapai energi bersih nol emisi 2060 dan tantangan serta peluangnya, fokus pada teknologi pelacakan partikel cahaya. Transisi dari penambangan batu bara ke Teknologi Batu Bara Bersih (CCT) seperti Penyimpanan Penangkapan Karbon (CCS) sangat penting. Dengan pendekatan kualitatif dan data dari berbagai sumber, studi ini membahas target pengurangan emisi gas rumah kaca 2030 sesuai rencana Kontribusi Nasional (NDC). Strategi seperti Peningkatan Pemulihan Minyak (EOR), Peningkatan Pemulihan Gas (EGR), dan Penyimpanan dan Pemanfaatan Karbon (CCUS) menjadi fokus utama dalam mengurangi emisi. Kolaborasi regional dan infrastruktur CCS/CCUS penting dalam men

  10. Research Progress on Carbon Dioxide Capture, Utilization and Storage Technology

    Jiawen Wang · 2025 · Applied and Computational Engineering

    The escalating climate crisis, driven primarily by the enhanced greenhouse effect, has made carbon dioxide (CO2) a central focus of global scientific and political discourse. As the primary long-lived greenhouse gas emitted from human activities—such as fossil fuel combustion, industrial processes, and deforestation—CO2concentrations in the atmosphere have reached high levels. This rapid accumulation is unequivocally linked to global warming, rising sea levels, and an increased frequency of extreme weather events. While transitioning to renewable energy and enhancing energy efficiency remain crucial mitigation strategies, their progress has been insufficient to meet international climate tar

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