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Studies on the Mechanical Stress Behavior of Polytetrafluoroethylene (PTFE) Used in the Construction of Mechanical Ring Elements

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30 apr 2025
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P.J. Rae, D.M. Dattelbaum, Poly(tetrafluoroethylene) properties (PTFE) in compression polymer, 45 (2004), pp. 7615-7625 Search in Google Scholar

P.J. Rae, E.N. Brown, Poly(tetrafluoroethylene) properties (PTFE) in tension polymer, 46 (2005), pp. 8128-8140 Search in Google Scholar

A. Hernández-Jimánez, J. Hernández-Santiago, A. Macias-García, J. Sánchez-González Relaxation mode in PMMA and PTFE assembly by the Maxwell Polym fractional model. Test, 21 (2002), pp. 325-331 Search in Google Scholar

Z. Zhang, X. Chen, Y. Wang, Uniaxial ratchet behavior of polytetrafluoroethylene to polym at elevated temperatures. Test., 29 (2010), pp. 352-357 Search in Google Scholar

Z. Zhang, X. Chen, Multiaxial ratchet behavior of PTFE at room temperature Polym. Test., 28 (2009), pp. 288-295 Search in Google Scholar

E.N. Brown, D.M. Dattelbaum, The Role of the Crystalline Phase on Fracture and Evolution of Polytetrafluoroethylene (PTFE) Polymer Microstructure, 46 (2005), pp. 3056-3068 Search in Google Scholar

C. Ebert, W. Hufenbach, A. Langkamp, M. Gude, Modeling of Strain Behavior Dependent on the Strain Rate of Polypropylene Polym. Test., 30 (2011), pp. 183-187 Search in Google Scholar

J. Richeton, S. Ahzi, K.S. Vecchio, F.C. Jiang, R.R. Adharapurapu, The Influence of Temperature and Strain Rate on the Mechanical Behavior of Three Amorphous Polymers: Characterization and Modeling of Compressive Elastic Stress Int. J. Solids Struct., 43 (2006), pp. 2318-2335 Search in Google Scholar

B. Farrokh, A.S. Khan, A Strain Rate-Dependent Performance Criterion for Isotropic Polymers: Low to High Euro Charge Rates J. Mech. A/Solids, 29 (2010), pp. 274-282 Search in Google Scholar

Erhard Krempl, Fazeel Khan, Rate-Dependent Deformation Behavior (Time): An Overview of Some Properties of Solid Metals and Polymers Int. J. Plasticity, 19 (2003), pp. 1069-1095 Search in Google Scholar

Qin-Zhi Fang, T.J. Wang, H.G. Beom, H.P. Zhao, High Velocity-Dependent Deformation Behavior of PC/ABS Polymer, 50 (2009), pp. 296-304 Search in Google Scholar

M. Wendlandt, T.A. Tervoort, U.W. Suter, The Nonlinear and Velocity-Dependent Work Hardening Behavior of Polymer Glass, 46 (2005), pp. 11786-11797 Search in Google Scholar

J.S. Bergstrom, L.B. Hilbert Jr., A Constitutive Model for Predicting Thermomechanical Behavior at Large Deformation of Mech. Fluoropolymers Mater., 37 (2005), pp. 899-913 Search in Google Scholar

C.Y. Tang, C.P. Tsui, W. Shen, C.C. Li, L.H. Peng, Modeling the Nonlinear Stress-Strain Behavior of HIPS with Crack Damage in the Tensile Load-Discharge Process, Polym. Test., 20 (2001), pp. 15-28 Search in Google Scholar

F. Za'ri, M. Na't-Abdelaziz, J.M. Gloaguen, J.M. Lefebvre, Modeling the Elasto-Viscoplastic Deterioration Behavior of Vitreous Polymers, Int. J. Plasticity, 24 (2008), pp. 945-965 Search in Google Scholar

C. G'Sell, J.M. Hiver, A. Dahoun, Experimental characterization of strain deterioration in solid polymers under stress and its interrelation with shrinkage, Int. J. Solids Struct., 39 (2002), pp. 3857-3872 Search in Google Scholar

E.N. Brown, P.J. Rae, E.B. Orler, Influence of Temperature and Strain Rate on the Constitutive and Harmful Responses of Polychlorinated Trifluoroethylene (PCTFE, Kel-F 81), Polymer, 47 (2006), pp. 7506-7518 Search in Google Scholar

Standard Test Method for Tensile Properties of Plastics. ASTM – D 638–08. Search in Google Scholar

N.K. Naik_, Y. Pearl, Mechanical Behavior of Acrylic Under High-Speed Tensile Load, Polym. Test., 27 (2008), pp. 504-512 Search in Google Scholar

M. Schoßg, C. Bieröel, W. Grellmann, Thomas Mecklenburg, Mechanical Behavior of Glass Fiber Reinforced Thermoplastics Under High Deformation Rates, Polym. Test., 27 (2008), pp. 893-900 Search in Google Scholar

A.D. Mulliken, M.C. Boyce, Mechanics of velocitydependent elastic-plastic deformation of small to tall vitreous polymers, Int. J. Solids Struct., 43 (2006), pp. 1331-1356 Search in Google Scholar

L.C.S. Nunes, Mechanical Characterization of Polytetrafluoroethylene Polymer Using the Full-Field Displacement Method, Opt. Lasers Eng., 49 (2011), pp. 640-646 Search in Google Scholar

H.S. da Costa Mattos, G. Minak, F. Di Gioacchino, A. Soldà, Modeling the superplastic behavior of Mg alloy sheets under stress using a theory of continuous deterioration, Mater. Design, 30 (2009), pp. 1674-1679 Search in Google Scholar

H.S. da Costa Mattos, I.N. Bastos, J.A.C.P. Gomes, A Simple Model for Slow Deformation Rate and Constant Load Corrosion Testing of Austenitic Stainless Steel in an Acidic Aqueous Solution Containing Sodium Chloride, Corros. Sci., 50 (2008), pp. 2858-2866 Search in Google Scholar

H.S. da Costa Mattos, A.H. Monteiro, E.M. Sampaio, Modeling the Strength of Soldered Butt Joints, Compos. B. Eng., 41 (2010), pp. 654-662 Search in Google Scholar

H.S. da Costa-Mattos, F.E.G. Chimisso, Modeling Creep Tests in HMPE Fibers Used in Ultra-Deep Mooring Cables, Int. J. Solids Struct., 48 (2011), pp. 144-152 Search in Google Scholar

K. Levenberg, A Method for Solving Certain Problems in the Smallest Squares, Quart. Appl. Math., 2 (1944), pp. 164-168. Search in Google Scholar

Alexis Negrea, Maria Cristiana Enescu, Elena Valentina Stoian and Ivona Petre, Virtual Studies on the Behavior of Polyurethane on Mechanical Stresses Scientific Bulletin of Valahia University - Materials and Mechanics VOLUME 18 (2022): ISSUE 18 (APRIL 2022) Apr 30, 2022 Search in Google Scholar

M.C.Enescu, Simulation de résistence à la traction et compression dans un composite macromoléculaire, U.P.B. Sci. Bull., Series B, 72, 3, 2010, p.211 Search in Google Scholar

Enescu, M.C., Stoian, E.V., Negrea, A., Petre, I., Rusanescu, C.O., Experimental and virtual studies in mechanical applications of PP-RCT pipes with armored materials Materiale Plastice, 2019, 56(2), pp. 324–329 Search in Google Scholar

M.C. Enescu, D. Ungureanu, E.V. Stoian, Simulation of tensile and compression strength of a Macromolecular composite, The Scientific Bulletin of Valahia University Materials and Mechanics, 1(5), 2007, p.19. Search in Google Scholar