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Proceedings of the National Academy of Sciences of Belarus. Physical-technical series

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Coordination of forces of mechanical and electric subsystems of power plant with free piston engine and electric generator of reciprocating type

https://doi.org/10.29235/1561-8358-2019-64-3-304-320

Abstract

Autonomous power supply system of modern mobile special-purpose equipment requires the development of electromechanical energy converters with high energy and minimum weight- and size indicators. In industrialized countries, the system “free piston engine – reciprocating electric generator of transverse type” is considered as a promising power plant.
The main feature of this kind of power plant is the lack of crank mechanism in the engine design. This allows: increasing the efficiency of the engine up to 50–60 % and overall power by 2.5–3 times while reducing the specific gravity and metal consumption compared to traditional engines; reducing the specific fuel consumption of the engine up to 30 %; increasing the resource to overhaul by 30–50 thousand hours; implementing a modular structure.
The main drawbacks of this kind of power plant are high probability of failure when passing the ignition of the working mixture and instability of work with significant load fluctuations. The noted drawbacks are due to the inconsistency of the forces of the electrical and mechanical subsystems of the power plant throughout the operating cycle. The solution for the problem of matching the forces of the electrical and mechanical subsystems of the power plant in the extreme positions of the piston group of the free piston engine is of particular complexity. In this regard, a method for solving the problem of matching the forces of the mechanical and electrical subsystems of the power plant with a free-piston engine throughout the operating cycle was developed, characterized by the use of an electromechanical reciprocating energy converter with transverse- and longitudinal nonlinear changes in the magnetic flux in the electrical subsystem. Coordination of the forces of mechanical and electrical subsystems of the power plant on the entire operating cycle makes it possible to fulfill the conditions of continuous electromechanical energy conversion at all work cycle and to reduce the specific gravity of the electrical subsystems of the plant while improving efficiency.

About the Author

A. B. Menzhinski
Military Academy of Republic of Belarus
Belarus

Andrei B. Menzhinsky – Senior Lecturer, Chair of Electrical Equipment and Power Supply Systems

220, Nezavisimosti Ave., 220057 Minsk



References

1. Pinskii F. I. Power plants with free piston engine generators. Mobil’naya Tekhnika [Mobile Technology], 2004, no. 2, pp. 13–17 (in Russian).

2. Cawthorne, W. R. Optimization of a Brushless Permanent Magnet Linear Alternator for Use with a Linear Internal Combustion Engine. Morgantown, 1999. 113 р.

3. Temnov E. S. Development of theoretical bases for the calculation and design of small-sized engine-generator sets as a single dynamic system. Tula, 2005. 134 p. (in Russian).

4. Petrichenko D. A., Lezhnev L. J. The electromechanical approach to the management of the extreme positions of the piston free piston generator. Dostijenia vyzovskoi nauki = Achievements of High School Science, 2014, no. 12, pp. 109–117 (in Russian).

5. Tatarnikov А. P. Development of a free-piston power plant based on a two-stroke engine and linear electric machines. Novai nauka: strategii i vektori razvitii = New science: strategies and vectors of development, 2016, no. 5–2, pp. 256–265 (in Russian).

6. Chia-Jui Chiang, Jing-Long Yang, Shao-Ya Lan, Tsung-Wei Shei, Wen-Shu Chiang, Bo-Liang Chen. Dynamic modeling of a SI/HCCI free-piston engine generator with electric mechanical valves. Applied Energy, 2013, vol. 102, pp. 336–346. https://doi.org/10.1016/j.apenergy.2012.07.033

7. Hanipah M. R., Mikalsen R., Roskilly A. P. Recent commercial free-piston engine developments for automotive applications. Applied Thermal Engineering, 2015, vol. 75, pp. 493–503. https://doi.org/10.1016/j.applthermaleng.2014.09.039

8. Li Q. F., Xiao J., Huang Z. Simulation of a two-stroke free-piston engine for electrical power generation. Energy and Fuels, 2008, vol. 22, iss. 5, pp. 3443–3449. https://doi.org/10.1021/ef800217k

9. Mao J., Zuo Z., Li W., Feng H. Multi-dimensional scavenging analysis of a free-piston linear alternator based on numerical simulation. Applied Energy, 2011, vol. 88, iss. 4, pp. 1140–1152. https://doi.org/10.1016/j.apenergy.2010.10.003

10. Ibrahim A. A., Aziz A. R. A., Abi E. Z. B. Z., Zulkifli S. A. The operation of free piston linear generator engine using MOSFET and IGBT drivers. Journal of Applied Sciences, 2011, vol. 11, iss. 10, pp. 1791–1796. https://doi.org/10.3923/jas.2011.1791.1796

11. Mikalsen R., Roskilly A. The control of a free-piston engine generator. Part 2: Engine dynamics and piston motion control. Applied Energy, 2010, vol. 87, iss. 4, pp. 1281–1287. https://doi.org/10.1016/j.apenergy.2009.06.035

12. Kock F., Heron A., Rinderknecht F., Friedrich H. E. The free-piston linear generator potentials and challenges. MTZ Worldwide, 2013, vol. 74, no. 10, pp. 38–43. https://doi.org/10.1007/s38313-013-0099-z

13. Menzhinskii A. B., Malashin A. N., Mityanov I. V. The use of a reciprocating generator of a combined design to increase the effciency and reduce the specifc weight of power plants of autonomous weapons. Vestnik Voennoi akademii Respubliki Belarus’ = Bulletin of the Military Academy of the Republic of Belarus, 2017, no. 4, pp. 62–72 (in Russian).

14. Khiterer M. Ya., Ovchinnikov I. E. Synchronous Electric Reciprocating Machines. St. Petersburg, Korona-print Publ., 2013. 368 p. (in Russian).

15. Menzhinskii A. B., Malashin A. N., Koval J. G., Mathematical model of the generator of the combined design of reciprocating type. Vestnik Gomelskogo technicheskogo universiteta = Bulletin of Gomel State Technical University, 2018, no. 2, pp. 74–85 (in Russian).


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ISSN 1561-8358 (Print)
ISSN 2524-244X (Online)