1. Review of cylinder block/valve plate interface in axial piston pumps: Theoretical models, experimental investigations, and optimal design
- Author
-
Qun Chao, Jiang'ao Zhao, Fu Yongling, Ji-ming Ma, Yan Wang, and Jian Fu
- Subjects
Optimal design ,0209 industrial biotechnology ,Computer science ,Interface (computing) ,Cylinder block/valve plate interface ,Aerospace Engineering ,Mechanical engineering ,02 engineering and technology ,01 natural sciences ,010305 fluids & plasmas ,law.invention ,Piston ,020901 industrial engineering & automation ,law ,0103 physical sciences ,Cylinder block ,Theoretical model ,Hydraulic machinery ,Optimization methods ,Motor vehicles. Aeronautics. Astronautics ,Piston pump ,Mechanical Engineering ,TL1-4050 ,Axial piston pump ,Test rig ,Service life ,Lubrication - Abstract
Axial piston pumps have been widely used in aircraft hydraulic systems to supply the system with pressurized fluid. The continuous improvement of the aircraft performance has put forward the demand on aviation piston pumps for high power density, safety, and reliability. The lubricating interfaces in axial piston machines are the key design issue that greatly determines the pump performance and service life. The cylinder block/valve plate interface is one of these critical lubricating interfaces and has received considerable attention from many researchers in the last half century. This study aims to review the state‐of‐the‐art literature on the cylinder block/valve plate interface comprehensively and systematically. First, we introduce various theoretical models developed to investigate the lubrication behaviors of the interface and compare them in terms of their assumptions and limitations. Second, the experimental studies on the cylinder block/valve plate interface are presented comprehensively, where the involved test rigs are divided into three types according to their fidelity levels and measurement functionality. Third, we summarize some typical approaches of structure optimization, surface shaping, and surface strengthening, which help improve the load-carrying and anti-wear capacities of the interface under severe operating conditions. Finally, the challenges and future trends of the cylinder block/valve plate interface research are discussed briefly.
- Published
- 2021