

Improving the efficiency and reliability of electric power generation at incineration plants
https://doi.org/10.24223/1999-5555-2019-12-4-281-285
Abstract
The article deals with the problem of waste disposal and, accordingly, landfills in the Moscow Region, which have now become the number 1 problem for the environment in Moscow and the Moscow Region. To solve this problem, incineration plants (IP) will be established in the near future. 4 plants will be located in the Moscow Region that will be able to eliminate 2800 thousand tons of waste per year. Burning of waste results in formation of slag making 25% of its volume, which has a very high temperature (1300.1500°C). An arrangement is considered, in which slag is sent to a water bath and heats the water to 50.90°C. This temperature is sufficient to evaporate any low-temperature substance (freons, limiting hydrocarbons, etc.), whereupon the steam of the low-temperature working medium is sent to a turbine, which produces additional electricity. The creation of a low-temperature thermal power plant (TPP) increases the reliability of electricity generation at the IP. The operation of low-temperature TPPs due to the heat of slag is very efficient, their efficiency factor being as high as 40.60%. In addition to the efficiency of TPPs, capital costs for the creation of additional devices at the IP are of great importance. Thermal power plants operating on slag are just such additional devices, so it is necessary to minimize the capital costs of their creation. In addition to equipment for the operation of TPPs, it is necessary to have a working medium in an amount determined by calculations. From the wide variety of working media, which are considered in the article, it is necessary to choose the substance with the lowest cost.
About the Authors
A. V. MartynovRussian Federation
Krasnokazarmennaya str., 14, 111250, Moscow
N. E. Kutko
Russian Federation
Department IHES
Krasnokazarmennaya str., 14, 111250, Moscow
References
1. Lantsev A. S., Promyslov V. V. Record of operation of incineration plant No.2 of Moscow City. Heat Supply News Bulletin 2010; 11(123): 12 – 18.
2. Sokolov Ye. Ya., Brodyanskiy V. M. Energy basics of heat conversion and cooling processes. Energoatomizdat 1981.
3. Shubarov N. S. Comparison of organic and steam Rankine cycles. Young Scientist 2017; 21(155): 160 – 163.
4. Martynov A. V., Nikiforov D. V. Reliability and energy efficiency of installations, apparatuses and systems. Power Reliability and Safety 2009: 4: 50 – 54.
5. Gafurov A. M., Osipov B. M., Gafurov N. M., Gatina R. Z. Prospects of using binary cycles in utilization of low-potential heat at geothermal plants. News of Higher Educational Institutions. Power Generation Problems 2017; 19(5 – 6): 14 – 24.
6. Zhukov A.V., Fedoreyev S.A. et al. Cogeneration plant based on cogeneration gas generator and ORC power and steam-and-power generator operating on biofuel. Industrial Power Generation 2015; 7: 40 – 43.
7. Ryzhenkov V. A., Martynov A. V., Grigoryev S. V., Kutko N. Ye. On efficiency of petrothermal low-temperature TPPs. Heat Supply News Bulletin 2010; 10: 20 – 22.
8. Karabarin D. I., Mikhaylenko S. A. Using low-potential sources of energy based on organic Rankine cycle. Journal of Siberian Federal University. Series: Engineering and Technologies 2018; 11(7): 867 – 876.
9. Gafurov A. M., Gatina A. M., Gafurov N. M. Temperature range of using liquefied С3Н8 gas as a low-boiling working medium. Theory and Practice of Modern Science 2016; 9(15): 115 – 118.
Review
For citations:
Martynov A.V., Kutko N.E. Improving the efficiency and reliability of electric power generation at incineration plants. Safety and Reliability of Power Industry. 2019;12(4):281-285. (In Russ.) https://doi.org/10.24223/1999-5555-2019-12-4-281-285