Journal of Engineering and Applied Sciences

Year: 2018
Volume: 13
Issue: 1
Page No. 119 - 129

Energy Efficiency of Combined Autunomous Energy Supply Systems Based on Ground Source Polygeneration Plants in the Conditions of the Extreme Continental Climate of Kazakhstan

Authors : Vyacheslav Stoyak, Saule Kumyzbayeva, Madina Ibragimova and Alimzhan Apsemetov

References

Angrisani, G., A. Akisawa, E. Marrasso, C. Roselli and M. Sasso, 2016. Performance assessment of cogeneration and trigeneration systems for small scale applications. Energy Convers. Manage., 125: 194-208.
CrossRef  |  

Anonymous, 2007. Residential buildings: With amendments and additions as of 10.10.2016. SNiP RK 3.02-43-2007, Kazakhstan.

Anonymous, 2013. Joint-stock company long-term development strategy 2012. Samruk-Energy JSC, Kazakhstan.

Anonymous, 2013. Kazakhstan country analysis brief. Energy Information Administration, Washington, USA.

Anonymous, 2015. Forecast of socioeconomic development of the republic of Kazakhstan 2016-2020. The Ukimet Uyi, Astana, Kazakhstan.

Anonymous, 2017. General information about the Republic of Kazakhstan. The Parliament of the Republic of Kazakhstan, Kazakhstan.

Anonymous, 2017. The republic of Kazakhstan geographical location, natural conditions. The Parliament of the Republic of Kazakhstan, Kazakhstan. http://www.parlam.kz/ru/kazakhstan.

Anonymous, 2017. The share of the agricultural industry in the GDP of Kazakhstan is not an indicator of efficiency. Department of Agriculture, Food and the Marine, New Delhi, India.

Asaee, S.R., V.I. Ugursal and I. Beausoleil-Morrison, 2015. An investigation of the techno-economic impact of internal combustion engine based cogeneration systems on the energy requirements and greenhouse gas emissions of the Canadian housing stock. Appl. Therm. Eng., 87: 505-518.
CrossRef  |  

Asmar, J.A., R. Kouta, K. Chaccour, J.E. Assad and S. Laghrouche et al., 2015. Power generation and cogeneration management algorithm with renewable energy integration. Energy Procedia, 74: 1394-1401.
Direct Link  |  

Bracco, S. and F. Delfino, 2017. A mathematical model for the dynamic simulation of low size cogeneration gas turbines within smart microgrids. Energy, 119: 710-723.
Direct Link  |  

Braun, M.A., S. Seijo, J. Echanobe, P.K. Shukla and I.D. Campo et al., 2016. A neuro-genetic approach for modeling and optimizing a complex cogeneration process. Appl. Soft Comput., 48: 347-358.
Direct Link  |  

Chepurnoy, M.N. and N.V. Resident, 2015. Comparative efficiency of heat-pumps in low-temperature heat supply systems. Proc. CIS. Higher Educ. Inst. Power Eng. Assoc., 5: 87-94.

Dai, L.H., Y. Shang, X.L. Li and S.F. Li, 2016. Analysis on the transient heat transfer process inside and outside the borehole for a vertical U-tube ground heat exchanger under short-term heat storage. Renewable Energy, 87: 1121-1129.
Direct Link  |  

Klimenko, V.N., 2011. Some features of the application of heat pumps for the utilization of the overflow warmth of heating boilers. Ind. Heat Eng., 5: 42-48.

Moradi, M.H., M. Hajinazari, S. Jamasb and M. Paripour, 2013. An energy management system (EMS) strategy for combined heat and power (CHP) systems based on a hybrid optimization method employing fuzzy programming. Energy, 49: 86-101.
CrossRef  |  Direct Link  |  

Moussawi, H.A., F. Fardoun and H. Louahlia-Gualous, 2016. Review of tri-generation technologies: Design evaluation, optimization, decision-making and selection approach. Energy Convers. Manage., 120: 157-169.
Direct Link  |  

Papadopoulos, S. and E. Azar, 2016. Integrating building performance simulation in agent-based modeling using regression surrogate models: A novel human-in-the-loop energy modeling approach. Energy Build., 128: 214-223.
Direct Link  |  

Rey, G., C. Ulloa, A. Cacabelos and B. Barragans, 2015. Performance analysis, model development and validation with experimental data of an ICE-based micro-CCHP system. Appl. Therm. Eng., 76: 233-244.
CrossRef  |  

Samoylov, D.V., 2006. Calculation of solar heat gain to the earth’s surface. Recommended Pract., 20: 3-13.

Santo, D.B.D.E., 2014. An energy and exergy analysis of a high-efficiency engine trigeneration system for a hospital: A case study methodology based on annual energy demand profiles. Energy Build., 76: 185-198.
CrossRef  |  

Santo, D.E., 2012. Energy and exergy efficiency of a building internal combustion engine trigeneration system under two different operational strategies. Energy Build., 53: 28-38.
Direct Link  |  

Stoyak, V., S. Kumyzbayeva, A. Apsemetov and M. Ibragimova, 2016. Combined power supply of decentralized energy consumers in conditions of extreme continental climate. Energy Procedia, 95: 159-166.
Direct Link  |  

Unal, A.N., I. Ersoz and G. Kayakutlu, 2016. Operational optimization in simple tri-generation systems. Appl. Therm. Eng., 107: 175-183.
Direct Link  |  

Vasilyev, G.P. and N.V. Shilkin, 2016. Use of low-potential thermal energy of the earth in heat pump systems. The group of companies INSOLAR, Moscow, Russia.

Wang, Y., Y. Huang, A.P. Roskilly, Y. Ding and N. Hewitt, 2010. Trigeneration running with raw jatropha oil. Fuel Process. Technol., 91: 348-353.
Direct Link  |  

Design and power by Medwell Web Development Team. © Medwell Publishing 2024 All Rights Reserved