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Visualisation research of the flow processes in the outlet chamber–outlet bridge–inlet chamber zone of the gear pumps

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper is a presentation of the theoretical analysis and visual experimental investigation on flow processes in the inlet chamber, outlet bridge and inlet chamber of the gear pump, commonly known as the trapped volume. In order to achieve that, the size and location of the considered chambers and bridge were determined, and next, the theoretical analysis was carried out. In order to verify the theoretical consideration, an experimental gear pump with transparent (plexi) bodies was designed and built. The pump was tested on a dedicated test stand. The visualisation research conducted for different values of the operational parameters (inlet pressure, temperature, rotational speed) proved the previously carried out theoretical analysis to be correct and, simultaneously, showed that there are areas in the gear pump where the flow processes are seriously disturbed. In order to eliminate the disadvantageous phenomena and processes observed in the pump, a new type of relief grooves was added to the design of the considered area (the solution was developed originally by the authors of this paper), which was consequently theoretically and experimentally examined. The results of both types of the research proved definitely that the application of the relief grooves resulted in a considerable reduction of the negative phenomena and processes in the considered area of the gear pump.
Rocznik
Strony
95--108
Opis fizyczny
Bibliogr. 20 poz., rys., wykr.
Twórcy
autor
  • Wrocław University of Technology, Wrocław, Poland
autor
  • Wrocław University of Technology, Wrocław, Poland
autor
  • National Technical University of Ukraine, “Kiev Polytechnic Institute”, Kiev, Ukraine
autor
  • National Technical University of Ukraine, “Kiev Polytechnic Institute”, Kiev, Ukraine
autor
  • Samara State Aerospace University, Samara, Russia
autor
  • Samara State Aerospace University, Samara, Russia
autor
  • Samara State Aerospace University, Samara, Russia
Bibliografia
  • [1] F.M. Judin, Pompy zębate, PWT, Warszawa, 1958.
  • [2] T.M. Baszta, Hydraulika w budowie maszyn, WNT, Warszawa, 1966.
  • [3] S. Stryczek, Napęd hydrostatyczny, WNT, Warszawa, 1995.
  • [4] W. Gutbrod, Förderstrom von Aussen- und Innenzahnra- dpumpen und seine Ungleichförmigkeit, Ölhydraulik und Pneumatik, 2/1975, 1975.
  • [5] W. Kollek, J. Stryczek, Wpływ zasklepienia cieczy we wrębach międzyzębnych na hałaśliwość pracy pomp zębatych, Sterowanie i Napęd Hydrauliczny, Nr 5/1980, 1980.
  • [6] W. Wustmann, S. Helduser, W. Wimmer, CFD-simulation of the reversing process in external gear pumps, in: 6th International Fluid Power Conference, Dresden, (2008), pp. 455–468.
  • [7] P. Casoli, A. Vacca, G. Franzoni, M. Guidettin, Effects of some relevant design parameters of external gear pumps operating: numerical predictions and experimental investigations, in: 6th International Fluid Power Conference, Dresden, (April 2008), pp. 469–483.
  • [8] B. Zardin, M. Borghi, Modeling and simulation of external gear pumps and motors, in: 5th FPNI PhD Symposium, Cracow, Poland, (July 2008), pp. 323–341.
  • [9] W. Fiebig, Simulation of the trapped volume pressure in external gear pumps, Meždunarodnyj naučno-tehničeskij forum, posvaŝënnyj 100-letiju OAO ‘‘Kuznecov’’ i 70-letiju SGAU: sbornik trudov v 3-h tomah, Samara, 5–7 sentâbrâ 2012 goda. T. 2, Meždunarodnaâ naučno-tehničeskaâ konferenciâ s učastiem molodyh učënyh ‘‘Dinamika i vibroakustika mašin/pod red. E.V. Šahmatova, Samarskij gosudarstvennyj aerokosmičeskij universitet, Samara, 2012210–211.
  • [10] L.B. Rodionow, Razrabotka metoda rascota i uludsenije dinamiceskih charakteristik shestieriennych nasosov, (Ph.D. dissertation), Samarskij Gosuderstiennyj Aerokosmiczeskij Universitiet, Samara, 2009.
  • [11] G. Bielov, Razrabotka metodik rascieta nasosow i kompresorow obiemnogo tipa, obiespieciwajuszczich sniżenje ich dinamicieskoj nagrużennosti, 2012 Samara.
  • [12] A.H. Krjuczkov, Snizenje kolebanij i shuma v gidromechani-ceskich i gazowych sistiemach, (Habilitation dissertation), Samarskij Gosudarstviennyj Aerokosmiczeskij Universitiet, Samara, 2006.
  • [13] E.V. Shakhmatov, Vibroakustika mashin, LAP Lambert Academic Publishing GmbH & Co. KG, Germany, 2012.
  • [14] P. Antoniak, Application of the PIV method to optimization of the internal channels of gerotor pumps, in: 7th International Fluid Power Conference, vol. 2, Aachen, Germany, (2010), pp. 501–510.
  • [15] N. Erturk, A. Vernet, J.A. Ferre, R. Castilla, E. Codina, Analysis of the turbulent flow of an external gear pump by time resolved particle image velocimetry, in: 14th Symp. on Applications of Laser Techniques of Fluid Mechanics, Lisbon, Portugal, (July 2008), pp. 1–12.
  • [16] O. Jakhno, A. Koval, L. Pishchenko, W. Paskalov, H. Jaske, Kawitacja b pierierabotkie niefty, metodik rascieta nasosow i kompresorow obiemnogo tipa, obiespieciwajuszczich sniżenje ich dinamicieskoj nagrużennosti, CBIT, Kiev, 1999.
  • [17] O. Jachno, D. Kostůk, J. Stryczek, P. Antoniak, Vliânie kavitacii na veličiny pul'sacij podači šecterennogo nasosa, Visnik Nacional'nogo Tehničnogo Universitetu Ukrai#ni ‘‘Kii#vs'kij Politehničnij Institut’’, Mašinobuduvannâ 64 (2012) 132–135.
  • [18] N.D. Manring, S.B. Kasaragadda, The theoretical flow ripple of an external gear pump, Transactions of the ASME, Journal of Dynamic Systems, Measurement, and Control (Melbourne, Australia) (2003) 396–404.
  • [19] R. Maiti, Active contact stresses at epitrochoid generated ROTOR-STATOR set of fixed axis or equivalent system 'ROPIMA' type hydrostatic units, ASME Journal of Engineering for Industry 113 (4) (2001) 465–473.
  • [20] K. Biernacki, J. Stryczek, Analysis of stress and deformation in plastic gears used in gerotor pumps, The Journal of Strain Analysis for Engineering Design 45 (October (7)) (2010) 465–479.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f1374436-4f8a-47f1-8b06-5c7d9b80af87
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