Affiliation:
1. Thermal System and Automotive Department, “Dunărea de Jos” Universitaty of Galați, 800008 Galati, Romania
Abstract
Waste heat recovery from exhaust gas is one of the most convenient methods to save energy in internal combustion engine-driven vehicles. This paper aims to investigate a reduction in waste heat from the exhaust gas of an internal combustion engine of a serial Diesel–electric hybrid bus by recovering part of the heat and converting it into useful power with the help of a split-flow supercritical CO2 (sCO2) recompression Brayton cycle. It can recover 17.01 kW of the total 33.47 kW of waste heat contained in exhaust gas from a 151 kW internal combustion engine. The thermal efficiency of the cycle is 38.51%, and the net power of the cycle is 6.55 kW. The variation in the sCO2 temperature at the shutdown of the internal combustion engine is analyzed, and a slow drop followed by a sudden and then a slow drop is observed. After 80 s from stopping the engine, the temperature drops by (23–33)% depending on the tube thickness of the recovery heat exchanger. The performances (net power, thermal efficiency, and waste heat recovery efficiency) of the split-flow sCO2 recompression Brayton cycle are clearly superior to those of the steam Rankine cycle and the organic Rankine cycle (ORC) with cyclopentane as a working fluid.
Reference41 articles.
1. (2024, January 10). European Environment Agency. Available online: https://www.eea.europa.eu/en.
2. Heber, L., Schwab, J., and Knobelspies, T. (2022). 3 kW Thermoelectric Generator for Natural Gas-Powered Heavy-Duty Vehicles—Holistic Development, Optimization and Validation. Energies, 15.
3. Thermoacoustic engine as waste heat recovery system on extended range hybrid electric vehicles;Chamoun;Energy Convers. Manag.,2020
4. A review of turbocompounding as a waste heat recovery system for internal combustion engines;Aghaali;Renew. Sustain. Energy Rev.,2015
5. The second generation turbosteamer;Freymann;MTZ Worldw.,2012