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ROLE OF THERMO FLUIDS IN CARBON CAPTURE AND STORAGE SYSTEMS
ABSTRACT
Carbon Capture and Storage (CCS) is a critical technology for mitigating greenhouse gas emissions and combating climate change. Thermo fluids, which encompass the study of heat transfer, fluid dynamics, and thermodynamics, play a pivotal role in enhancing the efficiency and effectiveness of CCS systems. This research explores the application of thermo fluids in various stages of CCS, including carbon capture, transportation, and storage.
In the carbon capture phase, thermo fluids are essential for optimizing the performance of absorption, adsorption, and membrane-based separation technologies. The design of heat exchangers, condensers, and reactors relies heavily on principles of heat transfer and fluid dynamics to maximize CO₂ capture efficiency while minimizing energy consumption. For instance, the use of advanced thermo fluids in solvent-based capture systems can significantly reduce the energy penalty associated with CO₂ regeneration.
During transportation, thermo fluids are critical in ensuring the safe and efficient movement of captured CO₂ through pipelines or other means. The behavior of CO₂ in its supercritical state, which is influenced by temperature and pressure, must be carefully managed to prevent phase changes and ensure pipeline integrity. Computational fluid dynamics (CFD) simulations and thermodynamic modeling are employed to predict and optimize the flow characteristics of CO₂ under varying conditions.
In the storage phase, thermo fluids contribute to the effective injection and long-term sequestration of CO₂ in geological formations. Understanding the thermal and fluid properties of CO₂ is crucial for predicting its behavior in subsurface environments, including its interaction with reservoir rocks and fluids. Enhanced oil recovery (EOR) techniques, which utilize CO₂ injection, also benefit from thermo fluid principles to improve oil displacement efficiency and storage capacity.
This study highlights the interdisciplinary nature of thermo fluids in CCS systems, emphasizing their role in improving process efficiency, reducing costs, and ensuring environmental safety. By leveraging advancements in thermo fluid science, CCS technologies can be optimized to meet global climate goals and support the transition to a low-carbon future. The findings underscore the importance of continued research and innovation in thermo fluids to address the technical challenges associated with large-scale CCS deployment.
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