USE OF THE HEAT OF WASTE GASES FROM THE BOILERS OF SMALL POWER STEAM-GAS TYPE POWER PLANTS THROUGH HEAT PUMPS.
Main Article Content
Abstract
This study investigates the utilization of waste heat from the exhaust gases of boilers in small power steam-gas type power plants using heat pumps. The research focuses on improving the efficiency and sustainability of these power plants by recovering and repurposing waste heat that would otherwise be lost. By implementing heat pump technology, the study demonstrates potential energy savings and reductions in greenhouse gas emissions. Experimental and simulation results are presented to show the effectiveness of this approach, along with a discussion of the economic and environmental benefits. The findings highlight the feasibility and advantages of integrating heat pumps into the existing infrastructure of small power steam-gas type power plants.
Article Details
Issue
Section

This work is licensed under a Creative Commons Attribution 4.0 International License.
How to Cite
References
Baumann, H., & Tillman, A.-M. (2004). The Hitchhiker's Guide to LCA: An Orientation in Life Cycle Assessment Methodology and Application. Studentlitteratur AB.
Breeze, P. (2016). Power Generation Technologies. Newnes.
Chua, K. J., Chou, S. K., & Yang, W. M. (2010). Advances in heat pump systems: A review. Applied Energy, 87(12), 3611-3624.
Dincer, I., & Rosen, M. A. (2015). Exergy Analysis of Heating, Refrigerating and Air Conditioning: Methods and Applications. Elsevier.
Freire, R. Z., Oliveira, G. H. C., & Mendes, N. (2008). Predictive controllers for thermal comfort optimization and energy savings. Energy and Buildings, 40(7), 1353-1365.
Garg, H. P., & Prakash, J. (2000). Solar Energy: Fundamentals and Applications. Tata McGraw-Hill Education.
Hepbasli, A. (2008). A key review on exergetic analysis and assessment of renewable energy resources for a sustainable future. Renewable and Sustainable Energy Reviews, 12(3), 593-661.
Jianbo, L., & Ting, L. (2017). Numerical simulation and performance evaluation of a heat pump system using R32 and R410A as refrigerants. International Journal of Refrigeration, 82, 148- 157.
Kaltschmitt, M., Streicher, W., & Wiese, A. (2007). Renewable Energy: Technology, Economics, and Environment. Springer Science & Business Media.
Luo, X., Wang, J., Dooner, M., & Clarke, J. (2015). Overview of current development in electrical energy storage technologies and the application potential in power system operation. Applied Energy, 137, 511-536.
Manohar, K., & Pushpendra, S. (2018). Experimental analysis of a heat pump system for waste heat recovery. Energy Procedia, 144, 482-488.
Moran, M. J., Shapiro, H. N., Boettner, D. D., & Bailey, M. B. (2014). Fundamentals of Engineering Thermodynamics. John Wiley & Sons.
Spath, P. L., & Mann, M. K. (2000). Life cycle assessment of hydrogen production via natural gas steam reforming. National Renewable Energy Lab (NREL), Golden, CO (US).
Wang, R. Z., & Oliveira, R. G. (2006). Adsorption refrigeration—An efficient way to make good use of waste heat and solar energy. Progress in Energy and Combustion Science, 32(4), 424-458.
Zhang, X., & Wang, J. (2014). Performance analysis of a solar-assisted heat pump system with energy storage. Energy Conversion and Management, 87, 559-568.