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March 18, 2026Processes0 citationsOpen Access

Recovering LNG Cold Energy for Scavenging Air Cooling in a Natural Gas–Diesel Dual-Fuel Marine Engine System

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VPVan Chien PhamJSJeonghoon ShimJKJun-Soo Kim

Key Points

  • The aim is to enhance energy utilization efficiency in dual-fuel marine engines by recovering LNG cold energy.
  • Proposed a method to utilize LNG cold energy in the fuel gas supply system.
  • Integrated a CaCl2-based secondary refrigerant loop into the engine cooling system.
  • Conducted thermodynamic analysis to assess heat flux recovery and CFD simulations to evaluate combustion impacts.
  • Recovered approximately 12.3% of required scavenging air cooling heat at full load.
  • Reduced scavenging air temperature from 37 °C to 17 °C increased indicated mean effective pressure by 3.8%.
  • Specific gas consumption decreased by 3.7%, and NO emissions dropped by up to 36.5%.
  • Soot emissions reduced by 47.6%, with a 1.8% decrease in CO2 emissions.

Abstract

This study proposes a method to recover liquefied natural gas (LNG) cold energy from the fuel gas supply system (FGSS) of a two-stroke ME-GI dual-fuel (DF) marine engine to enhance energy utilization efficiency. LNG cold energy was employed to reduce the scavenging air temperature (SAT) through a CaCl2-based secondary refrigerant loop integrated into the engine cooling system. Thermodynamic analysis showed that approximately 12.3% of the required scavenging air cooling heat flux can be recovered at full load. Transient crank-angle-resolved CFD simulations, validated against experimental data (maximum deviation < 8%), were conducted to evaluate combustion and emission impacts under varying SAT conditions. Reducing SAT from 37 °C to 17 °C in DF mode increased indicated mean effective pressure (IMEP) by approximately 3.8%, reduced specific gas consumption by 3.7%, and significantly decreased NO emissions by up to 36.5% and soot emissions by 47.6%, while CO2 emissions decreased by 1.8%. Considering both performance enhancement and emission reduction, operating the engine in DF mode with SAT controlled at approximately 17 °C is recommended. The proposed system demonstrates a practical pathway for improving thermal efficiency and reducing greenhouse gas (GHG) emissions in LNG-fueled marine propulsion systems.

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Cite This Study

Pham et al. (2026) studied this question.

synapsesocial.com/papers/69ba430d4e9516ffd37a3e15https://doi.org/10.3390/pr14060938
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