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Efficiency of two-stage heating of water on CHP plant with turbines of type T-250/300-240

https://doi.org/10.24223/1999-5555-2019-12-3-213-219

Abstract

During non-heating and transition period, most of cogeneration turbines operate with a lower heat extraction section actuated only due to a number of restrictions on the maximum and minimum pressure levels in the upper and lower heat extraction sections at operation of the turbine. For turbines of model T-250/300-240, the minimum permissible level of steam pressure in the upper heat extraction section, according to manufacturer data, is set to 0.06 MPa. During the non-heating and transition period, the supply water temperature is usually set in the range of 70–75°С. In order to maintain that temperature of supply water, the steam pressure in the upper heat extraction section should be below the minimum permissible level. As a result, the turbine operates with only the low-pressure heat extraction section actuated, which ensures operation without restrictions, but with a lower efficiency. The authors have introduced a set of measures, which enable to avoid those restrictions and implement two-stage heating of supply water. In this case, on connection of the upper heating extraction section, the pressure in the same is maintained at the minimum permissible level. Heat output characteristics are provided by having some of supply water delivered bypassing the group of network heaters. This operational mode enables to increase the turbine actual heat drop, to reduce the cooling steam flow into the low-pressure section and, accordingly, into the condenser, and to reduce temperature drops in network water heaters. Results of the research of operational modes for turbines of type T-250/300-240 in the non-heating and transition period with one and two-stage heating are provided. The economic efficiency of proposed operational modes was researched, which shows the effectiveness of those modes during non-heating and transition period. The limits of the efficiency of using these modes are determined.

About the Authors

E. T. Ilin
National Research University "Moscow Power Engineering Institute"
Russian Federation
Department TPP


S. P. Pechenkin
National Research University "Moscow Power Engineering Institute"
Russian Federation


A. V. Svetushkov
National Research University "Moscow Power Engineering Institute"
Russian Federation


J. A. Kozlova
National Research University "Moscow Power Engineering Institute"
Russian Federation


References

1. Instruction manual for turbine type T-250/300-240. TMT-110650-2. Ekaterinburg 2017;: 187. (In Russ.)

2. Sokolov E. J. Central heating and heating networks. 7th edition. M.: Publishing house of MPEI. 2001;: 472. (In Russ.)

3. Ilin Е. Т., Pechenkin S. P., Krylenko M. A. Stage heating network of water with the use of partial bypass line heaters//Energy saving and Water treatment. 2014; (3); 27–30. (In Russ.)

4. Factory specifications «Underheating temperature graph of network heater model HNH-5000-2.5(3)-8» Instruction manual of network heating system for turbine type T-250/300-240 2017. (In Russ.)

5. Building codes and regulations: BC&R 23.01.99 – 85. Construction climatology [Text]: regulative technical material. Moscow. 2012: 109. (In Russ.)

6. Operation schedule of the heating system for CHP plant with turbine model Т-250/300-240 PSC «Mosenergo» 2017. (In Russ.)

7. JSC «Administrator of trading system of energy market» [Online resourse]: Wholesale market of electric energy and power URL: https:// www.atsenergo.ru/ (reference date: 01.05.2017). (In Russ.)

8. LLC «Gazprom mezhregiongaz Moscow» [Online resourse]: Natural gas tariffs for industrial companies URL: http://gazmsk.ru/pages/110_0. htm (reference date: 01.05.2017). (In Russ.)


Review

For citations:


Ilin E.T., Pechenkin S.P., Svetushkov A.V., Kozlova J.A. Efficiency of two-stage heating of water on CHP plant with turbines of type T-250/300-240. Safety and Reliability of Power Industry. 2019;12(3):213-219. (In Russ.) https://doi.org/10.24223/1999-5555-2019-12-3-213-219

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ISSN 1999-5555 (Print)
ISSN 2542-2057 (Online)