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The Experimental Identification of the Dynamic Coefficients of two Hydrodynamic Journal Bearings Operating at Constant Rotational Speed and Under Nonlinear Conditions


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1. Arora, V., Van Der Hoogt, P.J.M., Aarts, R.G.K.M., De Boer, A.: Identification of stiffness and damping characteristics of axial air-foil bearings. International Journal of Mechanics and Materials in Design. 2011, 7(3), pp. 231-243.Search in Google Scholar

2. Bagiński, P., Żywica, G.: Analysis of dynamic compliance of the supporting structure for the prototype of organic Rankine cycle micro-turbine with a capacity of 100 kWe. Journal of Vibroengineering. 2016, 18(5), pp. 3153-3163.10.21595/jve.2016.17098Open DOISearch in Google Scholar

3. Błaszczyk, A., Głuch, J., Gardzilewicz, A.: Operating and economic conditions of cooling water control for marine steam turbine condensers. Polish Maritime Research. 2012, 18(3), pp. 48-54.Search in Google Scholar

4. Breńkacz, Ł.: Identification of stiffness, damping and mass coefficients of rotor-bearing system using impulse response method. Journal of Vibroengineering. 2015, 17(5), pp. 2272-2282.Search in Google Scholar

5. Breńkacz, Ł., Żywica, G.: The Sensitivity Analysis of the Method for Identification of Bearing Dynamic Coefficients. In J. Awrejcewicz (Ed.), Dynamical Systems: Modelling: Łódź Poland, December 7-10, 2015. Cham: Springer International Publishing 2016, pp. 81-96.10.1007/978-3-319-42402-6_8Search in Google Scholar

6. Chatterton, S., Pennacchi, P., Dang, P.V., Vania, A.: Identification Dynamic Force Coefficients of a Five-Pad Tilting-Pad Journal Bearing. In Proceedings of the 9th IFToMM International Conference on Rotor Dynamics. 2015, pp. 931-941.10.1007/978-3-319-06590-8_76Search in Google Scholar

7. Dang, P.V., Chatterton, S., Pennacchi, P., Vania, A.: Effect of the load direction on non-nominal five-pad tilting-pad journal bearings. Tribology International. 2016, 98, pp. 197-211.10.1016/j.triboint.2016.02.028Open DOISearch in Google Scholar

8. Delgado, A.: Experimental identification of dynamic force coefficients for a 110 mm compliantly damped hybrid gas bearing. Journal of Engineering for Gas Turbines and Power. 2015, 137(7), pp. 72502-72502-8.Search in Google Scholar

9. Dimond, T.W., Sheth, P.N., Allaire, P.E., He, M.: Identification methods and test results for tilting pad and fixed geometry journal bearing dynamic coefficients -A review. Shock and Vibration. 2009, 16(1), pp. 13-43.10.1155/2009/708363Open DOISearch in Google Scholar

10. Dzida, M., Girtler, J., Dzida, S.: On the possible increasing of efficiency of ship power plant with the system combined of marine Diesel engine, gas turbine and steam turbine in case of main engine cooperation with the gas turbine fed in series and the steam turbine. Polish Maritime Research. 2009, 16(3), pp. 26-31.Search in Google Scholar

11. Jin, J., Wang, Z., Cao, L.: Numerical analysis on the influence of the twisted blade on the aerodynamic performance of thrbine. 2016, 23, pp. 86-90.Search in Google Scholar

12. Kiciński, J.: Dynamics of rotors and slide bearings (in Polish).Gdańsk: IMP PAN, Maszyny Przepływowe 2005.Search in Google Scholar

13. Kiciński, J., Żywica, G.: Steam Microturbines in Distributed Cogeneration. Springer monograph 2014.10.1007/978-3-319-12018-8Search in Google Scholar

14. Kowalczyk, T., Głuch, J., Ziółkowski, P.: Analysis of possible application of high-temperature nuclear reactors to contemporary large-output steam power plants on ships. Polish Maritime Research. 2016, 2(90), pp. 32-41.Search in Google Scholar

15. Kozanecki, Z., Kiciński, J., Żywica, G.: Numerical Model of the High Speed Rotors Supported on Variable Geometry Bearings. In IUTAM Bookseries. 2011, Vol. 1011, pp. 217-227.Search in Google Scholar

16. Litwin, W.: Influence of local bush wear on water lubricated sliding bearing load carrying capacity. Tribology International. 2016, 103, pp. 352-358.Search in Google Scholar

17. Litwin, W., Olszewski, A.: Water-lubricated sintered bronze journal bearings-theoretical and experimental research. Tribology Transactions. 2014, 57(1), pp. 114-122.Search in Google Scholar

18. Paszota, Z.: Losses and energy efficiency of drive motors and systems. Replacement of the Sankey diagram of power decrease in the direction of power flow by a diagram of power increase opposite to the direction of power flow opens a new perspective of research of driv. 2013, 20(1), pp. 3-10.Search in Google Scholar

19. Qiu, Z.L., Tieu, A.K.: Identification of sixteen force coefficients of two journal bearings from impulse responses. Wear. 1997, 212(2), pp. 206-212.Search in Google Scholar

20. Rao, K.R., Kim, D.N., Hwang, J.J.: Fast Fourier Transform - Algorithms and Applications. (Springer, Ed.). Dordrecht 2010.10.1007/978-1-4020-6629-0Search in Google Scholar

21. Tiwari, R., Lees, A.W., Friswell, M.I.: Identification of dynamic bearing parameters: a review. The Shock and Vibration Digest. 2004, 36(2), pp. 99-124.10.1177/0583102404040173Open DOISearch in Google Scholar

22. Yari, E., Ghassemi, H.: Boundary element method applied to added mass coefficient calculation of the skewed marine propellers. 2016, 23(2), pp. 25-31.Search in Google Scholar

23. Zywica, G., Kicinski, J., Baginski, P.: The static and dynamic numerical analysis of the foil bearing structure. Journal of Vibrational Engineering and Technologies. 2016, 4(3), pp. 213-220.Search in Google Scholar

eISSN:
2083-7429
Sprache:
Englisch
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4 Hefte pro Jahr
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Technik, Einführungen und Gesamtdarstellungen, andere, Geowissenschaften, Atmosphärenkunde und Klimatologie, Biologie