Measurement of stiffness and damping coefficient of rubber tractor tires using dynamic cleat test based on point contact model
Abstract
Keywords: ride vibration, rubber tractor tire, stiffness, damping coefficient, cleat test, point contact model
DOI: 10.25165/j.ijabe.20211401.5799
Citation: Yoo H, Oh J, Chung W-J, Han H-W, Kim J-T, Park Y-J, et al. Measurement of stiffness and damping coefficient of rubber tractor tires using dynamic cleat test based on point contact model. Int J Agric & Biol Eng, 2021; 14(1): 157–164.
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Chung W J, Oh J S, Park Y, Kim D C, Park Y J. Optimization of the suspension design to reduce the ride vibration of 90 kW-class tractor cabin. J Kor Soc Manuf Proc Eng, 2017; 16(5): 91–98. (in Korean)
Choi K, Oh J, Ahn D, Park Y J, Park S U, Kim H S. Experimental study of the dynamic characteristics of rubber mounts for agricultural tractor cabin. J Biosyst Eng, 2018; 43(4): 255–262.
Kim B S, Hong D P, Chi C H. An experimental study on the measurement of radial directional natural frequency in a passenger car tire roboting under the load. Trans the Kor Soc Mech Eng A, 1996; 20(1): 1–13. (in Korean).
Sleeper R K, Dreher R C. Tire stiffness and damping determined from static and free-vibration tests. NASA Technical Paper 1671, 1980; L-13500.
Kising A, Göhlich H. Ackerschlepper-Reifendynamik Teil 2: Dynamische Federungs-und Dämpfungswerte (Tractor tyre dynamics part 2: Dynamic spring rate and damping values). Grundlagen der Landtechnik, 1988; 38(4): 101–106. (in German)
Lines J A, Young N A. A machine for measuring the suspension characteristics of agricultural tyres. J Terramech, 1989; 26(3-4): 201–210.
Lines J A, Murphy K. The stiffness of agricultural tractor tyres. J Terramech, 1991; 28(1): 49–64.
Lines J A, Murphy K. The radial damping of agricultural tractor tyres. J Terramech, 1991; 28(2-3): 229–241.
Cuong D M, Zhu S, Ngoc N T. Study on the variation characteristics of vertical equivalent damping ratio of tire–soil system using semi-empirical model. J Terramech, 2014; 51: 67–80.
Zheng E, Zhong X, Zhu R, Xue J, Cui S, Gao H, et al. Investigation into the vibration characteristics of agricultural wheeled tractor-implement system with hydro-pneumatic suspension on the front axle. Journal of Terramechanics, 2019; 186: 14–33.
Witzel P. The Hohenheim tyre model: A validated approach for the simulation of high volume tyres – Part I: Model structure and parameterization. Journal of Terramech, 2018; 75: 3–14.
Captain K M, Boghani A B, Wormley D N. Analytical tire models for dynamic vehicle simulation. Vehicle System Dynamics, 1979; 8(1): 1–32.
Inman D J. Engineering Vibration, 4th ed. Upper Saddle River, NJ, USA: Prentice Hall Inc., 2013; pp.21–26, 58–61.
ASTM D5992-96. Standard guide for dynamic testing of vulcanized rubber and rubber-like materials using vibratory methods. West Conshohocken, PA, USA: American Society for Testing and Materials International, 2018. doi: 10.1520/D5992-96R18.
Diani J, Fayolle B, Filormini P. A review on the Mullins effect. European Polymer Journal, 2009; 45(3): 601–612.
Amin A F M S, Lion A, Sekita S, Okui Y. Nonlinear dependence of viscosity in modeling the rate-dependent response of natural and high damping rubbers in compression and shear: Experimental identification and numerical verification. Int J Plast, 2006; 22(9): 1610–1657.
Brinkmann C. Experimental investigations on tractor tire vibration properties. Doctoral dissertation. Stuttgart, Baden-Württemberg, Germany: University of Stuttgart, 2017; 178p.
MATLAB. Signal Processing Toolbox. Ver. R2019b Update 1 (9.7.0.1216025). Natick, MA, USA: Mathworks Inc, 1984.
Nang N V, Matsuo T, Koumoto T, Inaba S. Static and dynamic vertical properties of agricultural tires. Bulletin of the Faculty of Agriculture-Saga University (Japan), 2009; 94: 37–49.
Bernard J, Vanderploeg M, Jane R. Tire models for the determination of vehicle structural loads. Vehicle System Dynamics, 1981; 10(2-3): 168–173.
Crolla D A, Horton D N L, Stayner R M. Effect of tyre modelling on tractor ride vibration predictions. J Agr Eng Res, 1990; 47: 55–77.
Lines J A. The suspension characteristics of agricultural tractor tyres. Doctoral dissertation. Cranfield, Bedfordshire, England, UK: Silsoe College, Cranfield Institute of Technology, 1991; 128p.
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