Noise Reduction of an Axial Piston Pump by Valve Plate Optimization
Tóm tắt
Từ khóa
Tài liệu tham khảo
T Nafz, H Murrenhoff, R Rudik. Noise reduction of hydraulic systems by axial piston pumps with variable reversing valves. Proceedings of the 8th International Fluid Power Conference, Dresden, Germany, 2012: 1–12.
Bin Zhang, Bing Xu, Chun-Lin Xia, et al. Modeling and simulation on axial piston pump based on virtual prototype technology. Chinese Journal of Mechanical Engineering, 2009, 22(1): 84–90.
Ji-En Ma, Bing Xu, Bin Zhang, et al. Study on flow ripple of axial piston pump with CFD simulation using compressible fluid oil. Chinese Journal of Mechanical Engineering, 2010, 23(1): 45–52.
Bing Xu, Yue-Chao Song, Hua-Yong Yang. Pre-compression volume on flow ripple reduction of a piston pump. Chinese Journal of Mechanical Engineering, 2013, 26(6): 1259–1266.
L Ericson. On fluid power pump and motor design - tools for noise reduction. Linköping, Sweden: Linköping University, 2011.
K A Edge, J Darling. The pumping dynamics of swash plate piston pumps. Journal of Dynamic Systems, Measurement, and Control, 1989, 111(2): 307–312.
N D Manring. Valve-plate design for an axial piston pump operating at low displacements. Journal of Mechanical Design - Transactions of the ASME, 2003, 125(1): 200–205.
N P Mandal, R Saha, D Sanyal. Theoretical simulation of ripples for different leading-side groove volumes. Proceedings of the Institution of Mechanical Engineers, Part I: Journal of Systems and Control Engineering, 2008, 222(6): 557–570.
N P Mandal, R Saha, D Sanyal. Effects of flow inertia modelling and valve-plate geometry on swash-plate axial-piston pump performance. Proceedings of the Institution of Mechanical Engineers, Part I: Journal of Systems and Control Engineering, 2011, 226(4): 451–466.
G K Seeniraj, M Ivanysynova. Noise reduction in axial piston machines based on multi-parameter optimization. Proceedings of the 4th FPNI, Sarasota, Florida, USA, June 13-17, 2006: 235–246.
M Ivantysynova, G K Seeniraj. Impact of valve plate design on noise, volumetric efficiency and control effort in an axial piston pump. Proceedings of ASME 2006 International Mechanical Engineering Congress and Exposition, Chicago, Illinois, USA, November 5–10, 2006: 77–84.
G K Seeniraj, M Ivanysynova. Noise reduction in axial piston machines based on multi-parameter optimization. Proceedings of the 5th FPNI PhD Symposium, Cracow, Poland, June 1-5, 2008: 1–10.
G K Seeniraj, M Ivanysynova. Multi-objective optimization tool for noise reduction in axial piston machines. Proceedings of SAE International Commercial Vehicle Engineering Congress & Exhibition, Rosemont, Illinois, USA, October 7-9, 2008: 544–552.
G K Seeniraj, M Ivanysynova. A multi-parameter multi-objective approach to reduce pump noise generation. International Journal of Fluid Power, 2011, 12(1): 7–17.
Jia-Hai Huang, Hu Zhao, Long Quan, et al. Development of an asymmetric axial piston pump for displacement-controlled system. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 2014, 228(8): 1418–1430.
Jia-Hai Huang, Long Quan, Xiao-Gang Zhang. Development of a dual-acting axial piston pump for displacement-controlled system. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture, 2014, 228(4): 606–616.
A Johansson, J O Palmberg. The importance of suction port timing in axial piston pumps. Proceedings of The 9th Scandinavian International Conference on Fluid Power, Linköping, Sweden, June 1-3, 2005: 184–198.
J M Bergada, S Kumar, D L Davies, et al. A complete analysis of axial piston pump leakage and output flow ripples. Applied Mathematical Modelling, 2012, 36(4): 1731–1751.
M Pelosi, M Ivantysynova. Heat transfer and thermal elastic deformation analysis on the piston/cylinder interface of axial piston machines. Journal of Tribology, 2012, 134(4): 1–15.
Bing Xu, Jun-Hui Zhang, Hua-Yong Yang, et al. Investigation on the radial micro-motion about piston of axial piston pump. Chinese Journal of Mechanical Engineering, 2013, 26(2): 325–333.
J M Bergada, J M Haynes, J Watton. Leakage and groove pressure of an axial piston pump slipper with multiple lands. Tribology Transactions, 2008, 51(4): 469–482.
J M Bergada, J Watton, J M Haynes. The hydrostatic/hydrodynamic behaviour of an axial piston pump slipper with multiple lands. Meccanica, 2010, 45(4): 585–602.
J M Bergada, J Watton, S Kumar. Pressure flow, force and torque between the barrel and port plate in an axial piston pump. Journal of Dynamic Systems Measurement and Control, 2008, 130(1): 1–16.
Bing Xu, Jun-Hui Zhang, Hua-Yong Yang. Simulation research on distribution method of axial piston pump utilizing pressure equalization mechanism. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 2013, 227(3): 459–469.
Chang-Bin Guan, Zong-Xia Jiao, Shou-Zhan He. Theoretical study of flow ripple for an aviation axial-piston pump with damping holes in the valve plate. Chinese Journal of Aeronautics, 2014, 27(1): 169–181.
J Ivantysyn, M Ivantysynova. Hydrostatic pumps and motors: principles, design, performance, modelling, analysis, control and testing. New Delhi, India: Tech Books International, 2003.
P Casoli, A Vacca, G Franzoni, et al. Modelling of fluid properties in hydraulic positive displacement machines. Simulation Modelling Practice and Theory, 2006, 14(1): 1059–1072.
A Vacca, R Klop, M Ivantysynova. A numerical approach for the evaluation of the effects of air release and vapour cavitation on effective flow rate of axial piston machines. International Journal of Fluid Power, 2010, 11(1): 33–45.
S A Imagine. HYD advanced fluid properties. Technical bulletin n° 117. 2007.
The International Organization for Standardization. ISO 4412-1:1991, Hydraulic fluid power - Test code for determination of airborne noise levels - Part 1: Pumps. London: British Standards Institution, 1991.
The International Organization for Standardization. ISO 3745: 2012, Acoustics - Determination of sound power levels and sound energy levels of noise sources using sound pressure – Precision methods for anechoic rooms and hemi-anechoic rooms. London: British Standards Institution, 2012.