Accès libre

Proposal and evaluation of a combined refrigeration system for engine waste heat recovery based on a supercritical CO2 Brayton cycle

À propos de cet article

Citez

Wang, Z., Han, F., Ji, Y., & Li, W. (2020). Redundant energy combination and recovery scheme for dual fuel carriers based on thermoelectric harvesting with a large temperature range. International Journal of Energy Research. Search in Google Scholar

Li, L., Tian, H., Shi, L., Zhang, Y., & Shu, G. (2022). Reducing the operational fluctuation via splitting co_2 transcritical power cycle in engine waste heat recovery. Energy(Aug.1), 252. Search in Google Scholar

Chen, W. J. H. (2017). Investigation of an ammonia-water combined power and cooling system driven by the jacket water and exhaust gas heat of an internal combustion engine. International Journal of Refrigeration, 82. Search in Google Scholar

Teo, A. E., Chiong, M. S., Yang, M., Romagnoli, A., Martinez-Botas, R. F., & Rajoo, S. (2019). Performance evaluation of low-pressure turbine, turbo-compounding and air-brayton cycle as engine waste heat recovery method. Energy, 166. Search in Google Scholar

Shu, G., Huo, Y., Tian, H., Yu, G., & Zhao, M. (2017). A three-level evaluation method for internal combustion engine waste heat orc recovery systems. Tianjin Daxue Xuebao (Ziran Kexue yu Gongcheng Jishu Ban)/Journal of Tianjin University Science and Technology, 50(4), 411-420. Search in Google Scholar

Liu, C., Li, H., Yu, S., Du, Z., Li, G., & Yu, T., et al. (2023). Analysis of main engine various waste heat cascade recovery systems under different evaporation pressure. International journal of exergy. Search in Google Scholar

Diaz-Secades, L. A., Gonzalez, R., & Rivera, N. (2022). Waste heat recovery from marine main medium speed engine block. energy, exergy, economic and environmental (4e) assessment – case study. Ocean engineering. Search in Google Scholar

Schweizer, F., Swoboda, J., & Wachtmeister, G. (2022). Holistic analysis of a mild hybrid waste heat recovery system for commercial vehicles. SAE International Journal of Commercial Vehicles(3), 15. Search in Google Scholar

Kwan, T. H., Shen, Y., & Pei, G. (2021). Recycling fuel cell waste heat to the thermoelectric cooler for enhanced combined heat, power and water production. Energy, 223. Search in Google Scholar

Thomas, Matousek, Paul, Lagaly, Michael, & Bens, et al. (2018). Experimental investigation of the influence of engine operating parameters on a rankine based waste heat recovery system in a si engine. Sae International Journal of Engines. Search in Google Scholar

Zhang, X., Wang, X., Cai, J., He, Z., Tian, H., & Shu, G., et al. (2022). Experimental study on operating parameters matching characteristic of the organic rankine cycle for engine waste heat recovery. Energy, 244. Search in Google Scholar

Chen, T., Shu, G., Tian, H., Ma, X., Wang, Y., & Yang, H. (2019). Compact potential of exhaust heat exchangers for engine waste heat recovery using metal foams. International Journal of Energy Research. Search in Google Scholar

Yebi, A., Xu, B., Liu, X., Shutty, J., Anschel, P., & Filipi, Z., et al. (2017). Estimation and predictive control of a parallel evaporator diesel engine waste heat recovery system. IEEE Transactions on Control Systems Technology, 1-14. Search in Google Scholar

Zhang, RuiTian, ZhongyunLiu, FengguoTian, ChangfeiMa, ZhenxiJia, Leilei. (2021). Research on waste heat recovery from gas engine for auxiliary heating: an emerging operation strategy to gas engine-driven heat pump. International Journal of Refrigeration, 121(1). Search in Google Scholar

LIU, Peng, SHU, Gequn, TIAN, & Hua. (2019). Carbon dioxide as working fluids in transcritical rankine cycle for diesel engine multiple waste heat recovery in comparison to hydrocarbons. Journal of Thermal Science, v.28(03), 104-114. Search in Google Scholar

Kim, Y. M., Lee, Y. D., & Ahn, K. Y. (2021). Parametric study of a supercritical co 2 power cycle for waste heat recovery with variation in cold temperature and heat source temperature. Energies, 14. Search in Google Scholar

Yao, Y., Shi, L., Tian, H., Wang, X., Sun, X., & Zhang, Y., et al. (2022). Combined cooling and power cycle for engine waste heat recovery using co2-based mixtures. Energy, 240. Search in Google Scholar

Elmer, Theo, Worall, Mark, Shenyi, & Riffat, et al. (2017). Experimental evaluation of a liquid desiccant air conditioning system for tri-generation/waste-heat-driven applications. International Journal of Low-Carbon Technologies. Search in Google Scholar

Lingfeng, S., Gequn, S., Hua, T., Guangdai, H., Liwen, C., & Tianyu, C., et al. (2017). Ideal point design and operation of co2-based transcritical rankine cycle (ctrc) system based on high utilization of engine’s waste heats. Energies, 10(11), 1692. Search in Google Scholar

eISSN:
2444-8656
Langue:
Anglais
Périodicité:
Volume Open
Sujets de la revue:
Life Sciences, other, Mathematics, Applied Mathematics, General Mathematics, Physics