Influence of the Lubrication Oil Temperature on the Disengaging Dynamic Characteristics of a Cu-Based Wet Multi-Disc Clutch
Abstract
:1. Introduction
2. Numerical Model
2.1. Axial Kinetic Model
2.2. Lubrication Model
2.3. Contact Model
2.4. Sliding Model
2.5. Thermal Model
2.6. Spline Resistance Model
2.7. Piston Impact Model
3. Numerical Simulation
4. Results and Discussion
4.1. Disengaging Duration
4.2. Disengaging Uniformity
4.3. Lubrication Status
4.4. Friction Torque
5. Conclusions
- The friction pair gaps first increased slowly, then increased rapidly, finally stabilized after fluctuation during the disengaging process. When the first friction pair gap stabilized, the disengaging process was completed. The increase of ATF temperature (from 60 °C to 140 °C) significantly shortened the disengaging duration (shortened by 55.1% from 0.245 s to 0.11 s), but its influence became weaker and weaker.
- The disengaged friction pair gaps decreased from the first friction pair to the sixth friction pair in sequence. With the increase of ATF temperature, the NUC first decreased then increased slightly, indicating that the disengaging uniformity first increased then decreased slightly. The disengaged friction pair gaps were distributed most uniformly when the ATF temperature was 80 °C.
- The disengaging process of a wet multi-disc clutch included the boundary, mixed, and hydrodynamic lubrication stages in sequence. The increase of ATF temperature accelerated the change of lubrication status between friction pairs, shortened the duration of the boundary lubrication stage slightly, and lessened the duration of the mixed and hydrodynamic lubrication stages significantly in the disengaging process.
- The contact torque decreased in the disengaging process, and the increase of ATF temperature significantly promoted its decrease (promoted by 91.2%). The hydrodynamic torque first increased sharply, then decreased significantly, and finally increased slowly after fluctuation during the disengaging process, and was dramatically reduced by the increase of ATF temperature (reduced by 94.7%).
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
ATF | lubrication oil | inner radius of friction pair (m) | |
CFD | computational fluid dynamics | outer radius of friction pair (m) | |
NUC | non-uniformity coefficient | temperature (°C) | |
non-groove area ratio | linear velocity difference (m/s) | ||
damping coefficient (N·s/m) | displacement (m) | ||
thickness of friction material (m) | velocity (m/s) | ||
recovery coefficient | acceleration (m/s2) | ||
Young’s modulus (Pa) | number of friction pairs | ||
nominal oil film thickness (m) | asperity radius (m) | ||
film thickness ratio | gap (m) | ||
thickness of friction disc (m) | angular speed difference (rad/s) | ||
thickness of separator disc (m) | local relative indentation (m) | ||
inertia of driven end (kg·m2) | initial indentation velocity (m/s) | ||
stiffness of impact (N/m) | dynamic viscosity (Pa·s) | ||
contact coefficient | coefficient of friction | ||
weight of piston (kg) | spline friction coefficient | ||
weight of separator disc (kg) | roughness (m) | ||
weight of friction disc (kg) | pressure flow factor | ||
resistance torque (N·m) | shear stress factors | ||
impact coefficient | permeability (m2) | ||
asperity density (/m2) | plastic deformation coefficient | ||
applied pressure (Pa) | density (kg/m3) |
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Parameter | Value | Parameter | Value | Parameter | Value |
---|---|---|---|---|---|
0.68 | /(kg) | 3 | /(m) | 8 × 10−4 | |
/(N·s/m) | 0.0714 | /(kg) | 0.45 | 0.1 | |
/(m) | 6 × 10−4 | /(kg) | 0.6 | /(m) | 8.4 × 10−6 |
/(Pa) | 4.84 × 109 | /(N·m) | 240 | /(m2) | 2 × 10−12 |
/(m) | 2 × 10−3 | /(m−2) | 7 × 107 | 1.2332 | |
/(m) | 3.2 × 10−3 | /(m) | 0.086 | /(kg/m3) | 875 |
/(kg·m2) | 2 | /(m) | 0.124 |
Number | T1 | T2 | T3 | T4 | T5 |
---|---|---|---|---|---|
T/(°C) | 60 | 80 | 100 | 120 | 140 |
δ1/(mm) | 1.6330 | 1.5822 | 1.5950 | 1.6034 | 1.6006 |
δ2/(mm) | 0.3852 | 0.3962 | 0.3926 | 0.3926 | 0.3956 |
δ3/(mm) | 0.3094 | 0.3200 | 0.3173 | 0.3162 | 0.3179 |
δ4/(mm) | 0.2467 | 0.2572 | 0.2548 | 0.2527 | 0.2526 |
δ5/(mm) | 0.2237 | 0.2338 | 0.2321 | 0.2298 | 0.2293 |
δ6/(mm) | 0.1968 | 0.2069 | 0.2057 | 0.2035 | 0.2025 |
NUC | 0.5825 | 0.5761 | 0.5774 | 0.5784 | 0.5782 |
t1/(s) | 1.575 | 1.568 | 1.563 | 1.560 | 1.558 |
t2/(s) | 1.674 | 1.631 | 1.610 | 1.599 | 1.591 |
t3/(s) | 1.745 | 1.674 | 1.640 | 1.621 | 1.610 |
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Zheng, L.; Ma, B.; Chen, M.; Yu, L.; Wang, Q. Influence of the Lubrication Oil Temperature on the Disengaging Dynamic Characteristics of a Cu-Based Wet Multi-Disc Clutch. Appl. Sci. 2021, 11, 11299. https://doi.org/10.3390/app112311299
Zheng L, Ma B, Chen M, Yu L, Wang Q. Influence of the Lubrication Oil Temperature on the Disengaging Dynamic Characteristics of a Cu-Based Wet Multi-Disc Clutch. Applied Sciences. 2021; 11(23):11299. https://doi.org/10.3390/app112311299
Chicago/Turabian StyleZheng, Liangjie, Biao Ma, Man Chen, Liang Yu, and Qian Wang. 2021. "Influence of the Lubrication Oil Temperature on the Disengaging Dynamic Characteristics of a Cu-Based Wet Multi-Disc Clutch" Applied Sciences 11, no. 23: 11299. https://doi.org/10.3390/app112311299
APA StyleZheng, L., Ma, B., Chen, M., Yu, L., & Wang, Q. (2021). Influence of the Lubrication Oil Temperature on the Disengaging Dynamic Characteristics of a Cu-Based Wet Multi-Disc Clutch. Applied Sciences, 11(23), 11299. https://doi.org/10.3390/app112311299