Perspectives of Application of Rapid Internal Combustion Engine in Drive of Mobile Technique: Energy Efficiency of a Heat-Engine

Authors

DOI:

https://doi.org/10.20535/2521-1943.2020.89.204951

Keywords:

rapid internal combustion engine, efficiency, working volume (capacity), mobile machinery, energy effectiveness, environmental friendliness

Abstract

Otto-engine has won the technical competition with Diesel-engine. However its positions are treated as unstable and the ways of its improvement have been developed. The presented work substantiates that the majority of the atypical internal combustion engines’ designs, the so called  Z-, Scuderi-, Zajac-, DIRO-engines, quintuple Schmitz-engine, etc., do not introduce considerable changes in the technology of transforming the heat into the mechanic work. Thus, there is little reason to expect any considerable advancement in the increase of the effectiveness of energy transformations. Nevertheless, in other terms the innovations are substantial: Z-engine unconditionally outweighs the conventional one in its mass and dimension parameters; the fuel mixture of DIRO-engine has the capacity to burn longer and more effectively; Zajac-engine implements the effective process of continual external combustion, etc.

The general theory, reconsidering the effect of the above mentioned ideas, in its turn acknowledges the efficiency of controlling the structure of working cycles in a way it unconditionally acknowledges the efficiency of cylinders cutoff or controlling the frequency of working cycles in the engine under the changeable load. It is strongly believed that the substantial effectiveness can be expected from advancing the technology of volumetric ignition by compression of ideal homogenized working mixture, the technology known as Homogeneous Charge Compression Ignition. It extremely reinforces the effect of rapid internal combustion distinctive of the Otto-engine. Thus, the possibility to improve the Otto-engine is considered to be absolutely real, and can be employed in the gear of machinery with the high level of autonomy.

Author Biographies

P. Hashchuk, Lviv State University of Life Safety, Lviv

завідувач кафедри експлуатації транспортних засобів та пожежно-рятувальної техніки, доктор технічних наук, професор

S. Nikipchuk, Lviv Polytechnic National University, Lviv

старший викладач кафедри "Експлуатація та ремон автомобільної техніки" Національного університету "Львівська політехніка"

References

  1. Tiainen, J., Saarinen, A., Grönlund, T. and Larmi, M. (2003), “Novel Two-Stroke Engine Concept, Feasibility Study”, SAE Technical Paper Series, no. 2003-01-3211, pp. 1–15. https://doi.org/10.4271/2003-01-3211
  2. Janhunen, T.T. (2012), “HCCI-Combustion in the Z Engine”, SAE Technical Paper Series, №2012-01-1573, pp. 1–16. https://doi.org/10.4271/2012-01-1132
  3. Musu, E., Rossi, R., Gentili, R. and Reitz, R.D., (2010), “Clean Diesel Combustion by means of the HCPC Concept”, SAE paper, №2010-01-1256, SAE Int. J. Engines, vol. 3, no. 1, pp. 964–981. https://doi.org/10.4271/2010-01-1256
  4. Newman, L.G., (2004), Five stroke internal combustion engine, U.S., Pat. 6,776,144.
  5. Schmitz, G., (2003), Five-stroke internal combustion engine, U.S., Pat. 6,553,977.
  6. Palanivendhan, M., Modi, H. and Bansal, G., (2016), “Five Stroke Internal Combustion Engine”, International Journal of Control Theory and Applications, vol. 9, no. 13, pp. 5855–5862.
  7. Kéromnès, A., Delaporte, B., Schmitz, G. and Moyne, L. Le., (2014), Development and validation of a 5 stroke engine for range extenders application”, Energy Conversion and Management, vol. 82, pp. 259—267. https://doi.org/10.1016/j.enconman.2014.03.025" target="_blank">https://doi.org/10.1016/j.enconman.2014.03.025
  8. Noga, M. and Sendyka, B. (2014), “Determination of the Theoretical and Total Efficiency of the Five-Stroke SI Engine”, International Journal of Automotive Technology, vol. 15, no. 7, pp. 1083—1089. http://dx.doi.org/10.1007/s12239-014-0112-9
  9. Noga, M. and Sendyka, B. (2013), “New Design of the five-stroke engine”, Journal of KONES Powertrain and Transport, vol. 20, no. 1, pp. 239–246. http://dx.doi.org/10.5604/12314005.1136161
  10. Griffin, S. (1889), Method of operating gas engines, U.S., Pat. 412,883. https://patents.google.com/patent/US412883
  11. Crower, B. (2007), Method and apparatus for operating an internal combustion engine, U.S., Pat. 2007/0,022,977.
  12. Makheeja, D. (2015), “A Review: Six Stroke Internal Combustion Engine”, Journal of Mechanical and Civil Engineering (IOSR-JMCE), vol. 12, no. 4, pp. 7–11.
  13. Kandari, S. and Gupta, I. (2013), “Six Stroke Engine”, International Journal of Engineering Research & Technology (IJERT), vol. 2, no. 10, pp. 884–889.
  14. Mohandas, G. and Desai-Patil, V. (2015), “Review of Six Stroke Engine and Proposal for Alternative Fuels”, SSRG International Journal of Mechanical Engineering (SSRG-IJME), vol. 2, no. 10, pp. 19–24. DOI: 10.14445/23488360/IJME-V2I10P104
  15. Conklin, J. C. and Szybist, J. P. (2010), “A highly efficient six stroke internal combustion engine cycle with water injection for in-cylinder exhaust heat recovery”, Energy, vol. 35, no. 4, pp. 1658–1664. https://doi.org/10.1016/j.energy.2009.12.012" target="_blank">https://doi.org/10.1016/j.energy.2009.12.012
  16. Karmalkar, С. and Raut, V. (2014), “Analyzing the implementation of six stroke engine in a Hybrid Car”, International Journal of Mechanical Engineering and Applications, vol. 2, no.1, pp. 1–4. DOI: 10.11648/j.ijmea.20140201.11
  17. Bajulaz, R. (1985), Method for the transformation of thermal energy into mechanical energy by means of a combustion engine as well as this new engine, U.S., Pat. 06,442,799.
  18. Bajulaz, R. (1989), Internal Combustion Engine, U.S., Patent 4,809,511. https://patents.google.com/patent/US4809511A/en
  19. Osborne, R., Stokes, J., Ceccarini, D., Jackson, N., Lake, T., Joyce, M., Visser, S., Miche, N., Begg, S., Heikal, M., Kalian N., Zhao, H. and Ma T. (2008), “The 2/4SIGHT Project – Development of a Multi-Cylinder Two-Stroke/Four-Stroke Switching Gasoline Engine”, Proceedings JSAE Annual Congress, no. 79-08, pp. 11–16.
  20. Rebhan, M. and Stokes, J. (2009), “Two-stroke/four-stroke multi-cylinder gasoline engine for downsizing applications”, MTZ Worldwide, vol. 70, no. 4, pp. 40–45. https://link.springer.com/article/10.1007/BF03226944
  21. Rueter, D. (2019), “2-Stroke Scavenging in Conventional and Minimally-Modified 4-Stroke Engines for Heavy Duty Applications at Low to Medium Speeds”, Inventions, vol. 4, no. 44, pp. 1–13. DOI: 10.3390/inventions4030044
  22. Hashchuk, P. M. (1992), Energeticheskaya effektivnost' avtomobilya [Automotive Energy Efficiency], Svit, Lviv, Ukraine. http://hdl.handle.net/123456789/3806
  23. Hashchuk, P. M. (2004), Energhija ta uporjadkovanyj rukh [Energy and orderly movement], Ukrajinsjki tekhnologhiji, Lviv, Ukraine. http://hdl.handle.net/123456789/3790

Published

2020-09-01

How to Cite

[1]
P. Hashchuk and S. Nikipchuk, “Perspectives of Application of Rapid Internal Combustion Engine in Drive of Mobile Technique: Energy Efficiency of a Heat-Engine”, Mech. Adv. Technol., no. 2(89), Sep. 2020.

Issue

Section

Mechanics