Development of complex method of intellectual control in cogeneration systems

Authors

DOI:

https://doi.org/10.15587/2312-8372.2014.31735

Keywords:

intelligent control, decision making, cogeneration system

Abstract

It is developed a complex method for controlling the operation of the cogeneration system using such dynamic subsystems as: electric accumulator battery, heat electric accumulator; electric accumulator battery, heat pump, which uses a recover heat as a low-grade energy source, which changes as the production of energy and its consumption as a part of a cogeneration unit; biogas plant, heat pump, which uses the fermented wort as a low-potential power source, electric accumulator battery and heat electric accumulator. Predictive information obtaining for decision-making under conditions of not matching production and consumption of electric power and heat can reduce the cost of energy production and emissions of carbon dioxide by 15 %. Biogas saving, for example, by fermentation of 60.2 t/day with increasing marketability of raw biogas unit at 10-15 % is 49400 m3/year.

Author Biography

Євгенія Євстафіївна Чайковська, Odessa National Polytechnic University, ave. Shevchenko 1, Odessa, Ukraine, 65044

Ph.D., Senior Researcher, Associate Professor

Department of Theoretical, General and Alternative energy

References

  1. Bilieka, B. D., Sergienko, R. V., Kabkov, V. Y. (2010). Efficiency cogeneration and combined-heat pump systems with gas piston and turbine engine. Aerospace equipment and technolog, 7 (74), 25–29.
  2. Horobetc, V. G., Drahanov, B. H. (2010). Exergy efficiency analysis of power systems for integrated production of electricity and heat using renewable energy. Renewable Energy, 3 (22), 5–12.
  3. Kolesnichenko, N. V., Vodolazkaya, M. Y. (2011). The use of the storage tank to control pressure mini-CHP. Scientific works of Donetsk National Technical University, 10 (180), 67–72.
  4. Balasanian, H. A., Mazurenko, A. S. (2006). Optimization of parameters of the thermal circuit of the integrated system of energy consumption. Proceedings of the Odessa Polytechnic University, 1 (25), 59–65.
  5. Ratuhniak, G. S., Dgedgula, V. V., Anohina, K. V. (2010). Simulation of unsteady heat transfer modes in biogas reactors. Bulletin of the Khmelnitsky National University, 2, 142–145.
  6. Ratuhniak, G. S., Dgedgula, V. V. (2006). Automatic control systems bioconversion. Bulletin of the Vinnytsia Polytechnical Institute, 6, 116–121.
  7. Mazurenko, A. S., Denisova, A. E., Klimchuk, A. A., Ngo Min Hieu, Kotov, P. A. (2014). Exergy characteristics of biogas power plants. Eastern-European Journal Of Enterprise Technologies, 1(8(67)), 7-12. Available: http://journals.uran.ua/eejet/article/view/20021/19032
  8. Chaikovskaya, E. E. (2014). Development of a method for maintaining energy production and consumption ratio. Technology Audit And Production Reserves, 5(3(19)), 31-34. doi:10.15587/2312-8372.2014.27944
  9. Chaikovskaya, E. E. (2014). Maintaining the relation between production and consumption of electricity and heat at decision-making level. Eastern-European Journal Of Enterprise Technologies, 3(8(69)), 4-9. doi:10.15587/1729-4061.2014.24883
  10. Chaikovskaya, E. E. (2014). Technological system of production and consumption of biogas. Eastern-European Journal Of Enterprise Technologies, 4(8(70)), 50-57. doi:10.15587/1729-4061.2014.26267

Published

2014-12-23

How to Cite

Чайковська, Є. Є. (2014). Development of complex method of intellectual control in cogeneration systems. Technology Audit and Production Reserves, 6(5(20), 36–39. https://doi.org/10.15587/2312-8372.2014.31735

Issue

Section

Power and energy saving