Analysis of Elastohydrodynamic Lubrication (EHL) Characteristics of Port Plate Pair of a Piston Pump
Abstract
:1. Introduction
2. Establishment and Solution of the Port Plate Pair Mathematical Model
2.1. Model Calculation of the Port Plate Pair
2.2. Model Calculation of the EHL
2.3. Mesh Generation
2.4. Program Block Diagram
3. Oil Film Clearance and Pressure Distribution under the EHL Characteristics
3.1. Distribution of the Oil Film Thickness
3.2. Oil Film Pressure Distribution
3.3. Elastic Deformation Distribution of Oil Film
3.4. Oil Film EHL Distribution
3.5. Analysis of EHL Characteristics
- (1)
- Wedge oil film thickness varies with the inclination angle of the cylinder. It is thicker on the top and thinner on the bottom. Oil film pressure distribution in the sealing zone is nonlinear, resulting in dynamic changes in the oil film; oil film thickness in the low-pressure zone is thick. As the oil inlet and outlet of the valve plate are in a state of high pressure and low pressure, the cylinder block will be subjected to unloading torque, resulting in a slight inclination.
- (2)
- The elastic deformation is mainly concentrated in the anticlockwise transition of the high-pressure oil outlet. Therefore, the elastic deformation of the cylinder block/valve plate significantly influences the overall performance of fluid oil film.
4. Calculation of the EHL Characteristics of Two Pairs of Port Plate Pair
4.1. Influence of the Velocity on EHL Characteristics
4.2. Influence of Cylinder Block Inclination on the EHL Characteristics
4.3. Influence of Initial Oil Film Thickness on the EHL Characteristics
4.4. Influence of the Oil Film Viscosity on Elastohydrodynamic Characteristics
4.5. Influence of the Sealing Belt Width on EHL Characteristics
4.6. Comparison of the Operating Parameters on EHL Characteristics
- (1)
- The velocity of rotation: The tilt-gap dynamic pressure effect is evident when the cylinder block rotates at a high velocity. Dynamical pressure effects can only be formed when the two elements forming the seal gap form a relative motion and increase with increasing velocity.
- (2)
- The angle of inclination: The angle of inclination can change the oil film clearance. Dynamical pressure effects are evident as the tilt angle increases. The minimum film thickness is inversely proportional to the angle.
- (3)
- Initial oil film thickness: The initial oil film thickness between the cylinder and the valve plate can affect the oil film’s overall distribution and average stiffness. As the oil film becomes thinner, the pressure rises rapidly. The smaller the oil film gap, the larger the oil film squeeze, leading to more significant elastic deformation. The improper setting will fail to form a stable dynamic pressure effect, resulting in oil film rupture or leakage.
- (4)
- The lubricating oil viscosity: The dynamic pressure effect is evident as the viscosity increases. The greater the viscosity, the greater the shear force, higher pressure, and surface friction are formed, and the elastic deformation becomes more extensive and more profound.
- (5)
- Sealing belt width: The width of the valve plate’s inner and outer sealing belt can change the oil leakage speed, and the pressure gradient decreases along the width direction.
5. Lubricating Characteristics of the Port Plate Pair
5.1. Calculation of Mechanical Lubrication Characteristics
5.2. Calculation of Leakage Amount
6. Oil Film Lubrication Characteristics Experiment of Port Plate Pair
6.1. Experiment on Measuring the Oil Film Thickness of Port Plate Pair
6.2. Experiment of Friction Coefficient
6.3. Leakage and Torque Experiments
7. Conclusions
- (1)
- The pressure field can be changed by the transient deformation change caused by pressure. The simulation results show that transient deformation extrusion pressure affects the overall fluid film thickness. Furthermore, the wedge gap between the cylinder block and the valve plate produces mixed friction.
- (2)
- The simulation results show that the fluid film of design 2 (as shown in Table 2) has better stability, thinner fluid film, and more minor deformation, which ensures the whole film’s hydrodynamic lubrication and improves the sealing performance. For the cylinder body/valve plate interface performance to be stable and reliable, it is necessary to conduct the structural design and material properties.
- (3)
- The deformation due to fluid pressure significantly impacts the modeling leakage and the friction coefficient, especially when the deformation magnitude becomes comparable to the oil film clearance. Due to the reduction in static pressure bearing capacity, friction force, and friction coefficient caused by elastic deformation, a large amount of hydrodynamic pressure production is needed. The EHL effect is evident at the convergence of oil film.
- (4)
- Under high load and high speed, the rotation of the cylinder block affects the oil pressure field of port plate pairs. The local pressure peak affects the elastic deformation of the cylinder body/valve plate, which improves the EHL effect. In addition, because of the EHL effect, the back edge of the valve plate is lifted off the cylinder block, effectively maintaining the film thickness.
- (5)
- The oil film elastic deformation is related to the structural parameters of the piston pump, working conditions parameters of the piston pump and lubrication parameters of the oil film. However, further simulations and experimental verification are required to provide a theoretical basis for a high-speed and high-pressure piston pump. The calculated friction coefficient and offset load torque showed good qualitative and quantitative agreement with the measurements. A discrepancy between experimental and simulation results could have been caused by the restrictions imposed by the conditions used in the experiment since the pump can only change the speed, lubricating oil viscosity, and inlet pressure during the experiment.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
Symbol | Name | Symbol | Name |
h | Oil film thickness (m). | P | Working pressure (Pa). |
Initial oil film thickness. | Standard atmospheric pressure | ||
Oil film thickness without deformation. | η | Lubricating oil viscosity (Pa·s). | |
v | Elastic deformation (μm). | Initial oil film viscosity. | |
Elastic deformation displacement caused by pressure. | θ | Circumferential angle(°). | |
. | δ | Deformation displacement. | |
Ω | Solution domain. | Elastic deformation at node (k, l). | |
. | |||
The amount of deformation produced on the node k, l. | Deformation displacement of valve plate (μm). | ||
Inner diameter (interior sealing belt). | Deformation displacement of cylinder block (μm). | ||
Outer diameter (interior sealing belt). | ω | Velocity of rotation. | |
Inner diameter (outer sealing belt). | φ | Tilt angle | |
Outer diameter (outer sealing belt). | B | Sealing belt width (m). | |
Comprehensive elastic modulus (Pa). | Poisson’s ratio for valve plate. | ||
Elastic modulus of valve plate (Pa). | Poisson’s ratio for cylinder block. | ||
Elastic modulus of cylinder block (Pa). | f | Friction coefficient. | |
F | Carrying capacity (N). | Q | Leakage (L/min). |
T | Offset load torque (N · m). | Friction force (N). |
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Parameters | p | ω | φ | h0 | η0 |
---|---|---|---|---|---|
Numerical | 35 MPa | 3500 rpm | 0.004° | 32.5 μm | 0.0365 pa·s |
Parameters | R1 | R2 | R3 | R4 | B |
Numerical | 0.0298 m | 0.0339 m | 0.0379 m | 0.0419 m | 0.0121 m |
Component | Materials | Poisson’s Ratio (V) | Elastic Modulus (E) |
---|---|---|---|
Cylinder block-1 | Nodular cast iron (QT 500) | 0.24 | 168 GPa |
Cylinder block-2 | Manganese brass (HMn60-3-1-0.75) | 0.35 | 110 GPa |
Valve plate-1 | Cast copper alloy (LBC3) | 0.3 | 103 GPa |
Valve plate-2 | Nitriding steel (38CrMoAl) | 0.3 | 210 GPa |
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Wang, Z.; Han, B.; Sun, L. Analysis of Elastohydrodynamic Lubrication (EHL) Characteristics of Port Plate Pair of a Piston Pump. Machines 2022, 10, 1109. https://doi.org/10.3390/machines10121109
Wang Z, Han B, Sun L. Analysis of Elastohydrodynamic Lubrication (EHL) Characteristics of Port Plate Pair of a Piston Pump. Machines. 2022; 10(12):1109. https://doi.org/10.3390/machines10121109
Chicago/Turabian StyleWang, Zhaoqiang, Bo Han, and Lingtao Sun. 2022. "Analysis of Elastohydrodynamic Lubrication (EHL) Characteristics of Port Plate Pair of a Piston Pump" Machines 10, no. 12: 1109. https://doi.org/10.3390/machines10121109
APA StyleWang, Z., Han, B., & Sun, L. (2022). Analysis of Elastohydrodynamic Lubrication (EHL) Characteristics of Port Plate Pair of a Piston Pump. Machines, 10(12), 1109. https://doi.org/10.3390/machines10121109