Determining a change in the compressed air temperature during the operation of a rotary piston engine

Authors

DOI:

https://doi.org/10.15587/1729-4061.2020.217239

Keywords:

rotary piston pneumatic motor, storage pressure, Joule-Thomson effect, air heating

Abstract

Experimental studies of change in the air temperature in a power unit with a prototype RPD-4.4/1.75 rotary-piston pneumatic motor were carried out to solve the problem of the negative impact of low temperatures of exhaust air on the pneumatic motor performance.

It has been established that an increase in rpm by 62 % leads to a drop of air temperature after reducer by 33 %. In this case, the maximum temperature drop during throttling is 21 K under conditions of maximum rpm and pressure of 0.8 MPa in the inlet receiver. It was found that under experimental conditions, the average differential Joule-Thomson effect is in the range of 0.8…3.9 K/MPa when throttling in the reducer for the pressure range of 0.4...0.8 MPa in the inlet receiver.

It was found that the temperature drop caused by air expansion in the working cylinder of the pneumatic motor is about 22 K in absence of regulation of the filling degree. At the same time, temperature fluctuations do not exceed 4.5 % depending on the change in the motor rpm and pressure in the inlet receiver.

A maximum temperature decrease in the power unit was obtained experimentally. Under the experimental conditions and depending on the study mode, the temperature drop from the initial storage value is from 35 to 43 K.

It was found that the amount of energy required for heating air at the inlet to the inlet receiver with a pressure of 0.6 MPa in the air storage temperature range of –5...–20 °С is 0.14...1.99 kW. In this case, the ratio Qp/Ne can reach 0.1...0.58, that is, in some operating modes, more than half of the produced power will actually be spent on air heating. Accordingly, the results obtained are useful and necessary when choosing conditions and operating modes of the pneumatic motor

Author Biographies

Oleksandr Mytrofanov, Admiral Makarov National University of Shipbuilding Heroiv Ukrainy ave., 9, Mykolaiv, Ukraine, 54025

PhD, Associate Professor

Department of Internal Combustion Engines, Plants and Technical Exploitation

Arkadii Proskurin, Admiral Makarov National University of Shipbuilding Heroiv Ukrainy ave., 9, Mykolaiv, Ukraine, 54025

PhD, Associate Professor

Department of Internal Combustion Engines, Plants and Technical Exploitation

References

  1. Degtiarev, V. I., Mialkovskii, V. I., Borisenko, K. S. (1979). Shakhtnye pnevmomotory. Moscow: Nedra, 192.
  2. Zinevich, V. D., Iarmolenko, G. Z., Kalita, E. G. (19575). Pnevmaticheskie dvigateli gornykh mashin. Moscow: Nedra, 344.
  3. Zinevich, V. D., Geshlin, L. A. (1982). Porshnevye i shesterennye pnevmodvigateli gornoshakhtnogo oborudovaniia. Moskva: Nedra, 200.
  4. Yuan, Q., Guo, Z., Xie, X., Li, W., Duan, Q., Hao, H. (201). Effects of Low Temperature on Performance of Reciprocating Pneumatic Motor. International Conference on Computer, Mechatronics and Electronic Engineering (CMEE), 672–677. doi: http://doi.org/10.12783/dtcse/cmee2017/20055
  5. Verma, S. S. (2013). Latest Developments of a Compressed Air Vehicle: A Status Report. Global Journal of Researches in Engineering Automotive Engineering, 13 (1), 14–23. Available at: https://globaljournals.org/GJRE_Volume13/2-Latest-Developments-of-a-Compressed-Air.pdf
  6. Szabłowskia, Ł., Milewski, J. (2011). Dynamic analysis of compressed air energy storage in the car. Journal of Power Technologies, 91 (1), 23–36. Available at: http://papers.itc.pw.edu.pl/index.php/JPT/article/view/196
  7. Liu, C., Xu, Y., Hu, S., Chen, H. (2015). Techno-economic analysis of compressed air energy storage power plant. Energy Storage Science and Technology, 4, 158–168. Available at: http://www.energystorage-journal.com/EN/10.3969/j.issn.2095-4239.2015.02.006
  8. Wang, J., Lu, K., Ma, L., Wang, J., Dooner, M., Miao, S. et. al. (2017). Overview of Compressed Air Energy Storage and Technology Development. Energies, 10 (7), 991. doi: http://doi.org/10.3390/en10070991
  9. Diyoke, C., Aneke, M., Wang, M., Wu, C. (2018). Techno-economic analysis of wind power integrated with both compressed air energy storage (CAES) and biomass gasification energy storage (BGES) for power generation. RSC Advances, 8 (39), 22004–22022. doi: http://doi.org/10.1039/c8ra03128b
  10. Budt, M., Wolf, D., Span, R., Yan, J. (2016). A review on compressed air energy storage: Basic principles, past milestones and recent developments. Applied Energy, 170, 250–268. doi: http://doi.org/10.1016/j.apenergy.2016.02.108
  11. Sciacovelli, A., Li, Y., Chen, H., Wu, Y., Wang, J., Garvey, S., Ding, Y. (2017). Dynamic simulation of Adiabatic Compressed Air Energy Storage (A-CAES) plant with integrated thermal storage – Link between components performance and plant performance. Applied Energy, 185, 16–28. doi: http://doi.org/10.1016/j.apenergy.2016.10.058
  12. Guo, Z., Deng, G., Fan, Y., Chen, G. (2016). Performance optimization of adiabatic compressed air energy storage with ejector technology. Applied Thermal Engineering, 94, 193–197. doi: http://doi.org/10.1016/j.applthermaleng.2015.10.047
  13. Voronkov, A. I., Teslenko, E. V., Udovik, T. A. (2016). Opredelenie minimalno neobkhodimogo podogreva szhatogo vozdukha na vkhode v avtomobilnii pnevmodvigatel pri razlichnykh usloviiakh ekspluatatsii. Vestnik KHNADU, 75, 100–108.
  14. Voronkov, A. I., Nikitchenko, I. N. (2016). Influence of compressed heated air on effective performance of the pneumoengine workflow. Internal Combustion Engines, 2, 19–24. doi: http://doi.org/10.20998/0419-8719.2016.2.04
  15. Voronkov, A. I. (2015). Izmenenie po skorostnym kharakteristikam pokazatelei rabochego protsessa pri podogreve szhatogo vozdukha na vkhode v pnevmodvigatel. Vestnik KHNADU, 71, 13–16.
  16. Voronkov, A. I. (2016). Vliianie podogreva szhatogo vozdukha na eksergeticheskii effektivnii KPD i nadezhnost raboty avtomobilnogo pnevmaticheskogo dvigatelia. Vestnik TADI, 2/3, 42–46.
  17. Mytrofanov, O. S., Shabalin, Yu. V., Biriuk, T. F., Yefenina, L. O. (2019). Pat. No. 120489 UA. Porshneva mashyna. MPK: A23C 19/00. No. a201902189; declareted: 10.09.2019; published: 10.12.2019, Bul. No. 23.
  18. Mytrofanov, O. S. (2019). Stand for test and research of rotor-piston engines. Collection of Scientific Publications NUS, 1 (475), 51–57. doi: http://doi.org/10.15589/znp2019.1(475).7
  19. Anurov, S. A. (2017). Kriogennye tekhnologii razdeleniia gazov. Moscow: OOO «AR-Konsalt», 233. Available at: http://co2b.ru/uploads/mon.2017.08.01.pdf
  20. Voronkov, O. I., Nikitchenko, I. M., Teslenko, E. V., Linkov, O. Yu., Nazarov, A. O. (2015). Pat. No. 101604 UA. Kombinovana sylova ustanovka avtotransportnoho zasobu. MPK: 7 V60K 6/00 V60K 5/00 F28C 3/00. No. u201502228; declareted: 13.03.2015; published: 25.09.2015, Bul. No. 18.

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Published

2020-12-31

How to Cite

Mytrofanov, O., & Proskurin, A. (2020). Determining a change in the compressed air temperature during the operation of a rotary piston engine. Eastern-European Journal of Enterprise Technologies, 6(8 (108), 25–31. https://doi.org/10.15587/1729-4061.2020.217239

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Section

Energy-saving technologies and equipment