Research on Dynamic Sealing Performance of Combined Sealing Structure under Extreme Working Conditions
Abstract
:1. Introduction
2. Combined Seal Structure and Material Parameters
2.1. Structure Parameters
2.2. Combined Seal Structure Operating State
2.3. Material Parameters
3. Finite Element Analysis
3.1. Finite Element Model
3.2. Loads and Boundary Conditions
- The piston is fully constrained in displacement throughout all stages;
- Installation stage of 15 °C: The steel shell is displaced in the negative Y-axis direction to reach the initial installation position, completing the installation pre-compression of the O–ring;
- Inflation stage of 15 °C: The steel shell is displaced in the negative Y-axis direction to reach the lower position, then 70 MPa gas pressure is applied to the upper half of the exposed O–ring;
- Inflation stage of 130 °C: The steel shell is displaced in the negative Y-axis direction to reach the lower position, then 87.5 MPa gas pressure is applied to the upper half of the exposed O–ring;
- Deflation stage of 15 °C: The steel shell is displaced in the positive Y-axis direction to reach the upper position, then 70 MPa gas pressure is applied to the lower half of the exposed O–ring;
- Deflation stage of −60 °C: The steel shell is displaced in the positive Y-axis direction to reach the upper position, then 56 MPa gas pressure is applied to the lower half of the exposed O–ring.
4. Results and Discussion
4.1. Simulation Results
4.1.1. Installation Status Results
4.1.2. Results under Normal Temperature Conditions
4.1.3. Results under Extreme Temperature Conditions
4.2. Discussion
4.2.1. Effect of Gas Pressure
4.2.2. Influence of Gasket Surface Friction Coefficient
4.2.3. Effect of Gasket Fillet
4.2.4. Effect of Gasket Thickness
5. Conclusions
- (1)
- In this study, a finite element model of the axial propulsion combined seal structure is established. Compressive stress–strain curves of EPDM at −60 °C, 15 °C, and 130 °C are obtained through uniaxial compression tests, and material parameters for the EPDM constitutive model at three temperatures are determined through fitting. The numerical simulations of the combined sealing structure provide valuable insights, revealing that the stress concentration of the O–ring is similar in both the inflation and deflation states at 15 °C and 70 MPa, but the sealing performance of the O–ring in the inflation state is better than that in the deflation stage.
- (2)
- The investigation into the sealing performance of the combined sealing structure under extreme working conditions reveals significant findings. Compared with the inflation state at 15 °C and 70 MPa, the maximum von Mises stress is reduced by 65% at 130 °C and 87.5 MPa, the maximum contact pressure of contact surfaces I and II is reduced by 40%, and the effective sealing lengths of contact surfaces I and II are both reduced by approximately 20%. Conversely, the von Mises stress is increased by 7 times in the deflation state at −60 °C and 56 MPa, and the maximum contact pressure on contact surfaces I and II is increased by a remarkable 7 times, with the effective sealing length of contact surface I doubling.
- (3)
- The investigation into the influence of gas pressure on the sealing performance of the combined sealing structure at 15 °C reveals significant findings. The von Mises stress of the O–ring increases significantly in both the inflation and deflation state, but the increase is more rapid in the deflation state. Interestingly, the increase in gas pressure (10–100 MPa) has a negligible influence on the sealing performance of contact surface I in the deflation state, while significantly improving the sealing performance of the other three conditions (contact surface I inflation, contact surface II inflation, and contact II deflation).
- (4)
- The investigation into the influence of gasket parameters on the sealing performance of the combined sealing structure at 15 °C and 70 MPa reveals significant findings. Increasing the gasket thickness can effectively reduce the stress concentration of the O–ring, but excessive gasket thickness (more than 0.9 mm in this study) will aggravate the stress concentration. The maximum contact pressure of contact surface I in the deflation state is significantly improved, while the effect of gasket thickness on the sealing performance of contact surface II in the deflation state is negligible. Based on the influence of gasket thickness on von Mises stress and contact pressure, the optimal range is determined to be between 0.85 mm and 1.05 mm. Within this range, the stress concentration of the O–ring is lighter, resulting in better sealing performance for the combined sealing structure. In addition, the friction coefficient of the gasket surface and the fillet of gasket have negligible influence on the structural performance of the combined sealing structure.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Symbol | Parameter | Dimensions and Data |
---|---|---|
Z | introductory length | 1.14 mm |
θ | introductory angle | 20° |
R1 | inner fillet | 0.8 mm |
R2 | outside fillet | 0.3 mm |
R0 | fillet of gasket | 0.2 mm |
R3 | fillet of piston | 0.3 mm |
R | O–ring radius | 0.76 mm |
L | groove depth | 1.2 mm |
H | groove length | 3 mm |
h | thickness of gasket | 0.8 mm |
Temperature (°C) | C10 (MPa) | C01 (MPa) | C11 (MPa) |
---|---|---|---|
15 | −70.564 | 79.393 | 91.083 |
130 | 7.9559 | −4.3776 | 8.8346 |
−60 | 124.78 | −123.26 | 1226.8 |
Name | Material | Elastic Modulus | Poisson’s Ratio |
---|---|---|---|
Gasket | polyethylene | 1.1 GPa | 0.42 |
Steel shell | 316 stainless steel | 195 GPa | 0.25 |
Piston | 316 stainless steel | 195 GPa | 0.25 |
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Zheng, S.; Xiao, X.; Ma, X.; Li, Z.; Liu, Y.; Li, J.; Wang, D.; Li, X. Research on Dynamic Sealing Performance of Combined Sealing Structure under Extreme Working Conditions. Appl. Sci. 2023, 13, 10100. https://doi.org/10.3390/app131810100
Zheng S, Xiao X, Ma X, Li Z, Liu Y, Li J, Wang D, Li X. Research on Dynamic Sealing Performance of Combined Sealing Structure under Extreme Working Conditions. Applied Sciences. 2023; 13(18):10100. https://doi.org/10.3390/app131810100
Chicago/Turabian StyleZheng, Shengpeng, Xiaoping Xiao, Xin Ma, Zisheng Li, Yitao Liu, Jiepu Li, Dongyu Wang, and Xiang Li. 2023. "Research on Dynamic Sealing Performance of Combined Sealing Structure under Extreme Working Conditions" Applied Sciences 13, no. 18: 10100. https://doi.org/10.3390/app131810100
APA StyleZheng, S., Xiao, X., Ma, X., Li, Z., Liu, Y., Li, J., Wang, D., & Li, X. (2023). Research on Dynamic Sealing Performance of Combined Sealing Structure under Extreme Working Conditions. Applied Sciences, 13(18), 10100. https://doi.org/10.3390/app131810100