CLC number: TH137.51
On-line Access: 2024-08-27
Received: 2023-10-17
Revision Accepted: 2024-05-08
Crosschecked: 2016-02-22
Cited: 1
Clicked: 7007
Citations: Bibtex RefMan EndNote GB/T7714
Xiao-ping Ouyang, Xu Fang, Hua-yong Yang. An investigation into the swash plate vibration and pressure pulsation of piston pumps based on full fluid-structure interactions[J]. Journal of Zhejiang University Science A, 2016, 17(3): 202-214.
@article{title="An investigation into the swash plate vibration and pressure pulsation of piston pumps based on full fluid-structure interactions",
author="Xiao-ping Ouyang, Xu Fang, Hua-yong Yang",
journal="Journal of Zhejiang University Science A",
volume="17",
number="3",
pages="202-214",
year="2016",
publisher="Zhejiang University Press & Springer",
doi="10.1631/jzus.A1500286"
}
%0 Journal Article
%T An investigation into the swash plate vibration and pressure pulsation of piston pumps based on full fluid-structure interactions
%A Xiao-ping Ouyang
%A Xu Fang
%A Hua-yong Yang
%J Journal of Zhejiang University SCIENCE A
%V 17
%N 3
%P 202-214
%@ 1673-565X
%D 2016
%I Zhejiang University Press & Springer
%DOI 10.1631/jzus.A1500286
TY - JOUR
T1 - An investigation into the swash plate vibration and pressure pulsation of piston pumps based on full fluid-structure interactions
A1 - Xiao-ping Ouyang
A1 - Xu Fang
A1 - Hua-yong Yang
J0 - Journal of Zhejiang University Science A
VL - 17
IS - 3
SP - 202
EP - 214
%@ 1673-565X
Y1 - 2016
PB - Zhejiang University Press & Springer
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DOI - 10.1631/jzus.A1500286
Abstract: In this paper, dynamic analyses of the swash plate vibration and pressure pulsation of an aircraft piston pump based on fluid-structure interactions (FSIs) are presented. Models of the swash plate piston pumps with three FSIs (named full FSIs and non FSI) are given. The simulation results of the discharge pressures at different rotation speeds in the synthesized pump model and experiments show good agreement. The numerical simulation results of the forces on the swash plate and the flow rate of the outlet chamber are presented and compared. The results of the two models show that the discharge pressure pulsation mostly depends on the kinematic relations of the piston slipper-shoe units (FSI-1), and is almost isolated from the swash plate vibration. The full FSIs simulation shows that the swash plate vibration is strongly influenced by the pressure pulsation through the control actuator mechanism (FSI-2) and the control valve mechanism (FSI-3), but the non FSI model does not show the same result. The full FSIs model is much more accurate in predicting the vibration of the swash plate and the pulsation of the discharge pressure than the non FSI model.
This paper models the full order dynamics of the swashplate type pump, used in aerospace applications. The contribution of the paper appears to be in the fact that a reduced order model (non-FSI) is compared to a full order model (full-FSI) and it is shown that the full order model compares more favorably with the experimental results in which various vibration characteristics have been measured. The message that I take from this paper is that, when seeking to understand the vibration characteristics of the machine it is important to consider the higher-order dynamics.
[1]Abuhaiba, M., Olson, W.W., 2010. Geometric and kinematic modeling of a variable displacement hydraulic bent-axis piston pump. Journal of Computational and Nonlinear Dynamics, 5(4):041010.
[2]Bahr, M.K., Svoboda, J., Bhat, R.B., 2003. Vibration analysis of constant power regulated swash plate axial piston pumps. Journal of Sound and Vibration, 259(5):1225-1236.
[3]Bergada, J.M., Davies, D.L., Kumar, S., et al., 2012. The effect of oil pressure and temperature on barrel film thickness and barrel dynamics of an axial piston pump. Meccanica, 47(3):639-654.
[4]Chen, H.X., Chua, P.S., Lim, G.H., 2006. Dynamic vibration analysis of a swash-plate type water hydraulic motor. Mechanism and Machine Theory, 41(5):487-504.
[5]Huang, J., Yan, Z., Quan, L., et al., 2015. Characteristics of delivery pressure in the axial piston pump with combination of variable displacement and variable speed. Proceedings of the Institution of Mechanical Engineers, Part I: Journal of Systems and Control Engineering, 229(7):599-613.
[6]Johnston, D.N., Drew, J.E., 1996. Measurement of positive displacement pump flow ripple and impedance. Proceedings of the Institution of Mechanical Engineers, Part I: Journal of Systems and Control Engineering, 210(1):65-74.
[7]Koralewski, J., 2011. Influence of hydraulic oil viscosity on the volumetric losses in a variable capacity piston pump. Polish Maritime Research, 18(3):55-65.
[8]Manring, N.D., 2000. The discharge flow ripple of an axial-piston swash-plate type hydrostatic pump. Journal of Dynamic Systems, Measurement, and Control, 122(2):263-268.
[9]Manring, N.D., Mehta, V.S., 2011. Physical limitations for the bandwidth frequency of a pressure controlled, axial-piston pump. Journal of Dynamic Systems, Measurement, and Control, 133(6):061005.
[10]Meher, K.K., Rao, A.R., 2006. Optimal foundation design of a vertical pump assembly. Journal of Sound and Vibration, 291(3-5):1269-1277.
[11]Norhirni, M.Z., Hamdi, M., Musa, S.N., et al., 2011. Load and stress analysis for the swash plate of an axial piston pump/motor. Journal of Dynamic Systems, Measurement, and Control, 133(6):064505.
[12]Wang, L., Johnston, D.N., 2009. Narrow-band fluid borne noise attenuation using time-domain online control algorithms in a simple hydraulic system. 7th International Conference on Fluid Power Transmission and Control (ICFP 2009), University of Bath, UK.
[13]Xu, B., Lee, K.M., Song, Y., et al., 2015a. A numerical and experimental investigation of parametric effect on flow ripple. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 299(16):2939-2951.
[14]Xu, B., Sun, Y.H., Zhang, J.H., et al., 2015b. A new design method for the transition region of the valve plate for an axial piston pump. Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering), 16(3):229-240.
[15]Yang, H.Y., Pan, M., 2015. Engineering research in fluid power: a review. Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering), 16(6):427-442.
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