PROVIDING ELECTRICAL POWER INCREASE BY STIMULATING TEMPERATURE DIFFERENCE AT LOW TEMPERATURES IN STIRLING MOTORS

In this research, the variation of electrical power according to the temperature in Stirling motors was analyzed. The performance characteristics of a low power Beta type Stirling motor were determined in the situation of working gas becoming air gas in this research, Results were compared and are presented graphically. Performance tests of a Stirling motor heated by thermal specifications of the sun were made at heater temperatures of 673 K, 773 K and 873 K. Also, an electrical power increase was provided by raising the temperature difference between the hot edge of the displacer and cooler temperatures.

___

  • [1] Cengiz M. S. Mamiş M. S. Kaynaklı M. The Temperature-Pressure-Frequency Relationship Between Electrical Power Generating in Stirling Engines, 2017, 9(2), pp. 60-64.
  • [2] Mills D. Advences in solar thermal electricity technology. Sol. Energy 2004; 76: 19-31.
  • [3] Tursunbaev, I.A., Analytic Model of Solar Power Plant with a Stirling Engine, Geliotekhn., 2007, no. 1, pp. 21–26 [Appl. Sol. Energy (Engl. Transl.), 2007, vol. 43, no. 1, p. 13].
  • [4] Minassians, A. D. and Sanders, S. R., “Multi- Phase Stirling Engines,” 6th International Energy Conversion Engineering Conference and Exhibit (IECEC), July 28-30 2008.
  • [5] Makoto, T., Iwao, Y., and Fumitake, C., “Flow and Heat Transfer Characteristics of the Stirling Engine Regenerator in an Oscillating Flow,” JSME international journal, Vol. 33, No. 2, 05-15 1990, pp. 283–289.
  • [6] Teruyuki, A. et al. Development of a Linear generator for a Free Piston Stirling Engine, Proceedings of the 9th Japan Society of Mechanical Engineers Stirling Cycle Symposium, Mitaka, 20-21 October, 2005. Tokyo; The Japan Society of Mechanical Engineers, pp 33- 34.
  • [7] Teruyuki, A. et al. Development of a Cogeneration StirlingEngine for Household Use, Proceedings of the 10th Japan Society of Mechanical Engineers Stirling Cycle Symposium, Yokohama, 20-21 October, 2006. Tokyo; The Japan Society of Mechanical Engineers, pp 103-104. (in Japanese)
  • [8] Cengiz, M.S., Eren, M., Cengiz, Ç., Yıldırım, S., Yapıcı, İ., Yurci, Y., Atiç, S., Palta, O., 2017. Numerical analysis of warming and warming problem in LED lamps. Imeset International Conference, 13-14, Baku.
  • [9] Kongtragool B, Wongwises S. Optimum absorber temperature of a once-reflecting full conical concentrator of a low-temperature differential Stirling engine. Renewable Energy 2006;31:345–59.
  • [10] Stirling Engine Society, SESUSA. (2006). Ideal Isothermal Analysis. http://www.sesusa.org/DrIz/isothermal/isothermal.html.
  • [11] B. Kongtragool, S. Wongwises A review of solar-powered Stirling engines and low temperature differential Stirling engines, Renewables and Suistainable Energy Reviews, 7 (2003), pp. 131–154
  • [12] Cengiz Ç. 2016. Electricity Generation from Solar World, International Conference on Natural Science and Engineering, pp. 2259-2264, March 19-20, Kilis, Turkey
  • [13] Costea M., Feidt M., Petrescu S., Synthesis on Stirling Engine Optimization. Vol. Thermodynamic Optimization of Complex Energy Systems, edited by Bejan A., Mamut E., NATO Science Series, 3. High Technologies, vol. 69, Kluwer Academic Publishers, Dordrecht / Boston / London, 1999, p 403-410.
  • [14] Feidt M., Le SaosK., Costea M., Petrescu M., Optimal Allocation of Heat Exchanger Inventory Associated with Fixed Power Output or Fixed Heat Transfer Rate Input. Int. J. Applied Thermodynamics, Vol. 5, (No. 1), pp. 25-36, 2002, ISSN 1301-9724.
  • [15] Thombare DG, Verma SK. Technological development in the Stirling cycle engines. Ren. Sustain. Energy Rev 2008; 12: 1-38.
  • [16] Akyol, ŞM, Kılıç M. Güneş enerjisi kaynaklı bir stirling motorun matlab simulink ile modellemesi. Uludağ U. Müh-Mim. Fak. Der 2012; 17: 51-62.
  • [17] Karabulut H, Aksoy F, Öztürk F. Thermodynamic analysis of a Beta type Stirling engine with a displacer driving mechanism by means of a lever. Ren. Energy 2009; 34: 202-208.
  • [18] Efe SB. 2015. Harmonic Filter Application for an Industrial Installation, IEEE The 13th International Conference on Engineering of Modern Electric Systems, 11-12 June, Oradea, Romania.
  • [19] Ertugrul ÖF. 2016. Forecasting electricity load by a novel recurrent extreme learning machines approach. International Journal of Electrical Power & Energy Systems, 78, pp 429–435.
  • [20] Efe SB., 2016. Effects of Faults on Power-Flow Analysis for Microgrids, 8th International Ege Energy Symposium and Exhibition, Afyon, 11-13 May.
  • [21] Cengiz Ç. 2016. A Research on Smart Grids in Turkey, International Conference on Natural Science and Engineering, pp. 2273-2277, March 19-20, Kilis, Turkey
  • [22] Adiabatic Simulation of Stirling Engines v.1.x. 2014.
  • [23] Zirkonyum, 2016. https://tr.wikipedia.org/wiki/Zirkonyum.
  • [24] Demir, 2016. https://tr.wikipedia.org/wiki/Demir.
  • [25] ANSYS Products 13.5 http://www.ansys.com/en-IN.