Research on Deformation of Hydraulic Cylinders Made of Plastics
Abstract
:1. Introduction
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- Computer simulations of stress and strain carried out using FEM;
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- Experimental research of deformations using a special test stand.
2. Computer Simulations Using FEM
2.1. Objects of Research and Their Models
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- The smaller cylinder with a diameter Ø = 30 mm and a stroke S = 200 mm designed for small-sized systems and nominal working pressure p = 6.3 MPa;
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- The larger cylinder with a diameter Ø = 50 mm and a stroke S = 200 mm intended for medium-sized systems (mass) and nominal working pressure p = 6.3 MPa.
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- Hydraulic loads (1) with working pressure acting on the channels in the bottom cap and the bottom chamber (under-piston chamber) in the cylinder’s tube, or on the channels in the gland cap and the gland chamber (over-piston chamber) in the cylinder’s tube;
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- Mechanical loads (2) acting on the piston rod along its axis, in the direction opposite to the movement of piston rod.
2.2. Simulation Results and Discussion
3. Experimental Research
3.1. Research Stand and Method of Testing
3.2. Research Results and Discussion
4. Summary and Conclusions
- Stress values in the key elements of the cylinders made of plastic, which are loaded with pressure p = 6.3 MPa and force F = 4.45 kN (Ø = 30 mm) and F = 12.36 kN (Ø = 50 mm), are lower than the values of allowable stresses. The highest stress values occur in the cylinder tubes and reach values shown in equation (2) for the cylinder of internal diameter Ø = 30 mm and Equation (3) for cylinder of internal diameter Ø = 50 mm.σØ30 = 23.5 MPa < σallow = 30 MPaσØ50 = 20.5 MPa < σallow = 30 MPa
- Local deformations of the cylinder tube causing the increase in its diameter are shown in Equation (4) for cylinder of internal diameter Ø = 30 mm and Equation (5) for cylinder of internal diameter Ø = 50 mm.ΔdØ30 = 0.45 mmΔdØ50 = 0.50 mm
Funding
Acknowledgments
Conflicts of Interest
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No. | Part | Load (MPa), (kN) | Maximum Stress (MPa) | Allowable Stress (MPa) | Maximum Strain (mm) |
---|---|---|---|---|---|
cylinder Ø30 mm, S = 200 mm | |||||
1 | Tube | 6.3 (MPa) 4.45 (kN) | 23.5 | 30 | 0.45 |
2 | Piston | 28.4 | 0.48 | ||
3 | Bottom cap | 15.7 | 0.09 | ||
4 | Gland cap | 16.4 | 0.1 | ||
5 | Tie rods | 20.2 | 0.04 | ||
cylinder Ø50 mm, S = 200 mm | |||||
1 | Tube | 6.3 (MPa) 12.36 (kN) | 20.5 | 30 | 0.50 |
2 | Piston | 27.9 | 0.52 | ||
3 | Bottom cap | 17.5 | 0.27 | ||
4 | Gland cap | 20.,3 | 0.2 | ||
5 | Tie rods | 15.6 | 0.9 |
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Stryczek, P. Research on Deformation of Hydraulic Cylinders Made of Plastics. Energies 2023, 16, 5708. https://doi.org/10.3390/en16155708
Stryczek P. Research on Deformation of Hydraulic Cylinders Made of Plastics. Energies. 2023; 16(15):5708. https://doi.org/10.3390/en16155708
Chicago/Turabian StyleStryczek, Piotr. 2023. "Research on Deformation of Hydraulic Cylinders Made of Plastics" Energies 16, no. 15: 5708. https://doi.org/10.3390/en16155708
APA StyleStryczek, P. (2023). Research on Deformation of Hydraulic Cylinders Made of Plastics. Energies, 16(15), 5708. https://doi.org/10.3390/en16155708