Advancements in Supercritical Carbon Dioxide Brayton Cycle for Marine Propulsion and Waste Heat Recovery

被引:1
作者
Alzuwayer, Bashar [1 ]
Alhashem, Abdulwahab [2 ]
Albannaq, Mohammad [2 ]
Alawadhi, Khaled [1 ]
机构
[1] PAAET, Dept Automot & Marine Engn Technol, Coll Technol Studies, Kuwait 70654, Kuwait
[2] PAAET, Coll Technol Studies, Dept Mech Power & Refrigerat Technol, Kuwait 70654, Kuwait
关键词
marine propulsion; green propulsion; sCO(2)-BC; cycle simulations; waste heat recovery; HYDRAULIC PERFORMANCE; OPTIMIZATION; EXCHANGERS; TURBINE;
D O I
10.3390/pr12091956
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The Supercritical Carbon Dioxide Brayton Cycle (sCO(2)-BC) is a highly efficient and eco-friendly alternative for marine propulsion. The adoption of sCO(2)-BC aligns with the industry's focus on sustainability and can help meet emission regulations. In this context, the current study introduces a cascade system that harnesses the exhaust gases from a marine Gas Turbine Propulsion System to serve as a heat source for a bottoming Supercritical Carbon Dioxide Brayton Cycle (sCO(2)-BC), which facilitates an onboard heat recovery system. The investigation primarily focuses on the recompression cycle layouts of the sCO(2)-BC. To assess the performance of the bottoming cycle layouts and the overall cascade system, various parameters of the recompression sCO(2)-BC are analyzed. These parameters include the mass flow rate of CO2 in the bottoming cycle and the effectiveness of both the low-temperature recuperator (LTR) and the high-temperature recuperator (HTR). For conducting the cycle simulations, two codes are built and integrated; this first code models the thermodynamic cycle, while the second code models the recuperators. The research shows that incorporating the sCO(2) Brayton Cycle as a bottoming cycle has the potential to greatly improve the efficiency of the entire system, increasing it from 54% to 59%. Therefore, it provides a useful framework for advancing energy-efficient gas turbine systems and future research.
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页数:18
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