Development of the mathematical model for heat recovery system for mobile compressor stations based on refrigeration machine
https://doi.org/10.25206/2588-0373-2024-8-1-42-48
EDN: QWDNJM
Abstract
The article presents a mathematical model of a mobile compressor station with a heat recovery system based on a refrigeration machine. The study outlines the heat recovery system scheme, based on which the mathematical model is developed. The model includes known thermodynamic relations for the heat load on heat exchangers, power consumed by the compressor, and the coefficient of performance of the refrigeration machine. The presented model allows for determining the efficiency of the system and conducting calculations of the equipment and units comprising it.
About the Authors
G. I. ChernovRussian Federation
Chernov German Igorevich, Candidate of Technical Sciences, Associate Professor, Associate Professor of Refrigeration and Compressor Equipment and Technology Department,
11, Mira Ave., Omsk, 644050.
AuthorID (RSCI): 176943;
AuthorID (SCOPUS): 56503369900.
V. S. Evdokimov
Russian Federation
Evdokimov Vladimir Sergeyevich, Senior Lecturer of Refrigeration and Compressor Equipment and Technology Department,
11, Mira Ave., Omsk, 644050.
AuthorID (RSCI): 700336;
AuthorID (SCOPUS): 56503145300.
A. M. Kalashnikov
Russian Federation
Kalashnikov Aleksander Mikhailovich, Senior Lecturer of Refrigeration and Compressor Equipment and Technology Department,
11, Mira Ave., Omsk, 644050.
AuthorID (RSCI): 888551.
V. I. Kabelskiy
Russian Federation
Kabelskiy Vyacheslav Ivanovich, Graduate Student of Refrigeration and Compressor Equipment and Technology Department,
11, Mira Ave., Omsk, 644050.
A. O. Zhukov
Russian Federation
Zhukov Alexander Olegovich, Doctor of Technical Sciences, Professor, Deputy Director for Research,
33, bld. 4, Talalikhina St., Moscow, 109316.
AuthorID (RSCI): 667117;
AuthorID (SCOPUS): 55943600000;
ResearcherID: C-2231-2014
V. A. Futin
Russian Federation
Futin Victor Aleksandrovich, Doctor of Technical Sciences, Professor of Heat and Power Engineering Department, Institute for Aviation, Land Transportation and Power Engineering,
10, K. Marх St., Kazan, Tatarstan, 420111.
AuthorID (RSCI): 713366;
AuthorID (SCOPUS): 23027608200.
References
1. Lukanin V. N., Morozov K. A. Dvigateli vnutrennego sgoraniya: teoriya rabochikh protsessov [Internal combustion engines: theory of work processes]. Moscow, 2007. 479 p. ISBN 978-5-06-0041. (In Russ.).
2. Seliverstov V. M. Utilizatsiya tepla v sudovykh dizel’nykh ustanovkakh [Heat recovery in marine diesel plants]. Saint Petersburg, 1973. 254 p. (In Russ.).
3. Plastinin P. I. Porshnevyye kompressory V. 2 t. Т. 2. Teoriya i raschet [Piston compressors. In 2 vols. Vol. 2. Theory and calculation]. 3rd ed. Moscow, 2006. 456 p. ISBN 5-10-003551-X. (In Russ.).
4. Yusha V. L. Termodinamicheskiy analiz effektivnosti mobil’nykh kompressornykh ustanovok s rekuperatsiyey teplovykh poter’ [Thermodynamic analysis of the efficiency of mobile compressor units with heat loss recovery]. Omsk, 2014. 102 p. ISBN 978-5-8149-1918-2. (In Russ.).
5. Yusha V. L., Chernov G. I. Effectiveness analysis of using the Rankine cycle and cycle of refrigeration machine for recuperation of heat losses in mobile compressor unite // 8th Int. Conf. on Compressors and Coolants. Smolenice – Slovak Republic, 2013. P. 45. URL: https://szchkt.org/compressors/Contents/2013/proceedings.pdf (accessed: 16.12.2023). (In Engl.).
6. Yusha V. L., Chernov G. I. Analiz termodinamicheskoy effektivnosti primeneniya tsikla Renkina v sisteme rekuperatsii teplovykh poter’ kompressornoy ustanovki s privodnym dvigatelem vnutrennego sgoraniya [The analysis of the thermodynamic efficiency of the rankine cycle in recuperation system of heat losses in compressor unit driven by the internal combustion engine] // Omskiy nauchnyy vestnik. Omsk Scientific Bulletin. 2013. No. 2 (120). P. 254–261. EDN: RNEINJ. (In Russ.).
7. Tsai B.-J., Wang Y. L. A novel Swiss-Roll recuperator for the microturbine engine // Applied Thermal Engineering. 2009. Vol. 29, no. 2–3. Р. 216–223. DOI: 10.1016/j.applthermaleng.2008.02.028. (In Engl.).
8. Xia C., Zhang Z., Huang G. [et al.]. Study on the new hybrid thermodynamic cycle for an improved micro swing engine with heat recovery process // Applied Thermal Engineering. 2018. Vol. 129. P. 1135–1149. DOI: 10.1016/j.applthermaleng.2017.10.123. (In Engl.).
9. Negash A., Kim Y. M., Shin D. G. [et al.]. Optimization of organic Rankine cycle used for waste heat recovery of construction equipment engine with additional waste heat of hydraulic oil cooler // Energy. 2018. Vol. 143. P. 797–811. DOI: 10.1016/j.energy.2017.11.004. (In Engl.).
10. Sadeghi S., Ghandehariun S., Naterer G. F. Exergoeconomic and multi-objective optimization of a solar thermochemical hydrogen production plant with heat recovery // Energy Conversion and Management. 2020. Vol. 225. P. 113441. DOI: 10.1016/j.enconman.2020.113441. (In Engl.).
11. Elmas E. T. Design and production of high temperature heat pipe heat recovery units // Journal of Molecular Structure. 2020. Vol. 1212. P. 127927. DOI: 10.1016/j.molstruc.2020.127927. (In Engl.).
12. Quoilin S., Zhang X., Xiang N. [et al.]. Performance comparison of cement production before and after implementing heat recovery power generation based on emergy analysis and economic evaluation: A case from China // Journal of Cleaner Production. 2021. Vol. 290. P. 125901. DOI: 10.1016/j.jclepro.2021.125901. (In Engl.).
13. Cioccolanti L., Renzi M., Comodi G. [et al.]. District heating potential in the case of low-grade waste heat recovery from energy intensive industries // Applied Thermal Engineering. 2021. Vol. 191. P. 116851. DOI: 10.1016/j.applthermaleng.2021.116851. (In Engl.).
14. Aboelazayem O., Gadalla M., Alhajri I. [et al.]. Advanced process integration for supercritical production of biodiesel: Residual waste heat recovery via organic Rankine cycle (ORC) // Renewable Energy. 2020. Vol. 164. P. 433–443. DOI: 10.1016/j.renene.2020.09.058. (In Engl.).
15. Kumar А., Rakshit D. A critical review on waste heat recovery utilization with special focus on Organic Rankine Cycle applications // Cleaner Engineering and Technology. 2021. Vol. 5. P. 100292. DOI: 10.1016/j.clet.2021.100292. (In Engl.).
16. Wang F., Wang L., Zhang H. [et al.]. Design and optimization of hydrogen production by solid oxide electrolyzer with marine engine waste heat recovery and ORC cycle // Energy Conversion and Management. 2021. Vol. 229. P. 113775. DOI: 10.1016/j.enconman.2020.113775. (In Engl.).
17. Arkharov A. M. Teplotekhnika [Thermal engineering]. Moscow, 2004. 712 p. ISBN 5-7038-2439-7. (In Russ.).
Review
For citations:
Chernov G.I., Evdokimov V.S., Kalashnikov A.M., Kabelskiy V.I., Zhukov A.O., Futin V.A. Development of the mathematical model for heat recovery system for mobile compressor stations based on refrigeration machine. Omsk Scientific Bulletin. Series Aviation-Rocket and Power Engineering. 2024;8(1):42-48. (In Russ.) https://doi.org/10.25206/2588-0373-2024-8-1-42-48. EDN: QWDNJM
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