Finite Element Modelling of Car Seat with Hyperelastic and Viscoelastic Foam Material Properties to Assess Vertical Vibration in Terms of Acceleration — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Finite Element Modelling of Car Seat with Hyperelastic and Viscoelastic Foam Material Properties to Assess Vertical Vibration in Terms of Acceleration
School of Architecture, Computing and Engineering, University of East London (Docklands Campus), London, UK
,
School of Architecture, Computing and Engineering, University of East London (Docklands Campus), London, UK
1 School of Architecture, Computing and Engineering, University of East London (Docklands Campus), London, UK
2 School of Architecture, Computing and Engineering, University of East London (Docklands Campus), London, UK
Primary objective of automobile seats is to offer adequate level of safety and comfort to the seated human occupant, primarily against vibration. Ideally, any sort of automotive seat is constructed by mechanical framework, cushion, backrest and headrest. The frame structures are made of metallic alloys, while the cushion, backrest and headrest are made of polyurethane foam material. During the design phase of automotive seat, the greatest challenge is to assign realistic material properties to foam material; as it is non-linear in nature and exhibit hysteresis at low level stress. In this research paper, a car seat has been modelled in finite element environment by implementing both hyperelastic and viscoelastic material properties to polyurethane foam. The car seat has been excited with the loads due to car acceleration and human object and the effects of vibration in terms of vertical acceleration at different locations have been measured. The aims of this simulation study are to establish a car seat with the foam material properties as accurately as possible and provide a finite element set up of car seat to monitor the vertical acceleration responses in a reasonable way. The RMS acceleration values for headrest, backrest and cushion have been found to be 0.91 mm/sec 2 , 0.54 mm/sec 2 and 0.47 mm/sec 2 , respectively, which showed that the car seat foam can effectively be modelled through combined hyperelastic and viscoelastic material formulations. The simulation outputs have been validated through real life testing data, which clearly indicates that this computerized simulation technique is capable of anticipating the acceleration responses at different car seat segments in a justified way.
Haan, R. (2002) FE Model of a Car Seat. Netherlands Organisation for Applied Scientific Research, 9-12.
Singh, R., Davies, P. and Bajaj, A.K. (2003) Identification of Nonlinear and Viscoelastic Properties of Flexible Polyurethane Foam. Nonlinear Dynamics, 34, 319-346. https://doi.org/10.1023/B:NODY.0000013511.07097.87
Dorugade, D.V., Rakheja, S. and Boileau, P.E. (2019) Modeling and Validation of Static and Dynamic Seat Cushion Characteristics. 12th European LS-DYNA Conference, Koblenz, Germany, 14-16 May 2019.
Zhao, L.Q., Xia, Q.S. and Wu, X.T. (1994) Study of Sitting Comfort of Automotive Seats. SAEConference 1994, SAE No. 945243.
Park, S. and Kim, C. (1997) The Evaluation of Seating Comfort by Objective Measurements. SAE970595. https://doi.org/10.4271/970595
Xu, W., Zeng, Y. and Ye, J. (2019) Study on Virtual Simulation Method of Driver Seat Comfort. Proceedings of 2nd International Conference on Frontiers of Materials Synthesis and Processing, 493, 1-6. https://doi.org/10.1088/1757-899X/493/1/012096
Warner, C.Y., Stother, C.E., James, M.B. and Decker, R.L. (1991) Occupant Protection Inrear-End Collisions: II. The Role of Seat Back Deformation in Injury Reduction. Proceedings of the 35th Stapp Car Crash Conference 1991, San Diego, CA, 18-20 November 1991, 379-390.
Qiu, D., He, Y. and Yu, Z. (2019) Investigation on Compression Mechanical Properties of Rigid Polyurethane Foam Treated under Random Vibration Condition: An Experimental and Numerical Simulation Study. Materials, 12, 1-17. https://doi.org/10.3390/ma12203385
Rusch, K.C. (1965) Dynamic Behaviour of Flexible Open-Cell Foams. Ph.D. Thesis, University of Akron, Akron, OH.
Zhang, J., Kikuchi, N., Li, V., Yee, A. and Nusholtz, G. (1998) Constitutive Modeling of Polymeric Foam Material Subjected to Dynamic Crash Loading. International Journal of Impact Engineering, 21, 734-743. https://doi.org/10.1016/S0734-743X(97)00087-0
Choi, H.Y., Lee, W.R., Park, J.C. and Yang, K.Y. (2018) Riding Comfort Simulation with Air Ride Seat for Heavy Duty Vehicle. Proceedings of the 2nd Japanese Modelica Conference, Tokyo, Japan, 17-18 May 2018.
Dahil, L., Karabulut, A., Baspinar, M.S. and Mutlu, I. (2016) Investigation of Vibration Damping in the Passenger Seat. The Online Journal of Science and Technology, 6, 52-57. https://doi.org/10.17932/IAU.IJEMME.m.21460604.2016.5/1.1117-1122
Camprubí, N. and Rueda, F. (2007) Comfort Evaluation of Foam Seats Using Realistic Simulation. Advanced Design & Analysis Division.
Grujicic, M., Bell, W.C., Arakere, G. and Haque, I. (2009) Finite Element Analysis of the Effect of Up-Armouring on the off-Road Braking and Sharp-Turn Performance of a High-Mobility Multi-Purpose Wheeled Vehicle. Proceedings of the Institution of Mechanical Engineers Part D-Journal of Automobile Engineering, 223, 1419-1434. https://doi.org/10.1243/09544070JAUTO1187
Gordon, C.C., Churchill, T., Clauser, C.E., Bradtrniller, B., McConville, J.T., Tebbetts, I. and Walker, R.A. (1989)1988 Anthropometric Survey of U.S. Army Personnel: Methods and Summary Statistics. Final Report (NATICWR-891027), U.S. Army Natick Research, Development and Engineering Center, Natick, MA.
Grandjean, E. (1980) Sitting Posture of Car Drivers from the Point of View of Ergonomics. In: Oborne, D.J. and Levis, J.A., Eds., Human Factors in Transport Research. User Factors: Comfort, the Environment and Behaviour, Academic Press, New York, 205-213.
Keegan, J.J. (1964) The Medical Problem of Lumbar Spine Flattening in Automobile Seats. SAE Technical Paper 838A. Society of Automotive Engineers, Inc., New York. https://doi.org/10.4271/640788
Chaffm, D.B. and Anderson, G.B. (1991) Occupational Biomechanics. 2nd Edition, Wiley-Interscience, New York.
Reed, M.P., Schneider, L.W. and Ricci, L.L. (1994) Survey of Auto Seat Design Recommendations for Improved Comfort. UMTRI, 5-10.
Ogden, R.W. (1972) Large Deformation Isotropic Elasticity-On the Correlation of Theory and Experiment for Incompressible Rubberlike Solids. Proceedings of the Royal Society of London Series A, 326, 565-584. https://doi.org/10.1098/rspa.1972.0026
Mills, N.J. (2007) Polymer Foams Handbook: Engineering and Biomechanics Applications and Design Guide. Butterworth-Heinemann, Waltham, MA.
Ju, M.L., Jmal, H., Dupuis, R. and Aubry, E. (2014) Visco-Hyperelastic Constitutive Model for Modelling the Quasi-Static Behavior of Polyurethane Foam in Large Deformation. Polymer Engineering and Science, 55, 1795-1804. https://doi.org/10.1002/pen.24018
Schrodt, M., Benderoth, G., Kuhhorn, A. and Silber. G. (2005) Hyperelastic Description of Polymer Soft Foams at Finite Deformations. Technische Mechanik, 25, 162-173.
Ju, M.L., Jmal, H., Dupuis, R. and Aubry, E. (2013) Visco-Hyperelastic Model for Polyurethane Foam: Comparison among Polynomial, Reduced Polynomial, and Ogden Models. In: 21ème Congrès Français de Mécanique, Laboratoire MIPS, Mulhouse, France, 26 au 30 août. https://doi.org/10.4028/www.scientific.net/AMR.856.169
Arvidson, J.M., Sparks, L.L. and Guobang, C. (1983) National Bureau of Standards. Tensile, Compressive and Shear Properties of a 65-kg/m3 Polyurethane Foam at Low Temperatures. https://doi.org/10.6028/NBS.IR.83-1684
Jarfelt, U. and Ramnäs, O. (2006) Thermal Conductivity of Polyurethane Foam Best Performance. Proceedings of the 10th International Symposium on District Heating and Cooling, Hannover, Germany, 3-5 September 2006, 1-12.
Lakes, R.S. and Lowe, A. (2000) Negative Poisson’s Ratio Foam as Seat Cushion Material. Cellular Polymers, 19, 157-167.
Wardell, G. (2007) Jaguar XK Coupe Review. The Auto Channel.
Mehar, A., Chandra, S. and Velmurugan, S. (2013) Speed and Acceleration Characteristics of Different Types of Vehicles on Multi-Lane Highways. European Transport\Trasporti Europei, 55, 1-12.
Brooks, R.M. (2012) Acceleration Characteristics of Vehicles in Rural Pennsylvania. International Journal of Recent Research and Applied Studies, 12, 449-453.
Hinz, B. and Seidel, H. (1987) The Non-Linearity of the Human Body’s Dynamic Response during Sinusoidal Whole Body Vibration. Industrial Health, 25, 169-181. https://doi.org/10.2486/indhealth.25.169
Panjabi, M.M., Andersson, G.B.J., Jorneus, L., Hult, E. and Mattsson, L. (1986) In Vivo Measurement of Spinal Column Vibrations. Journal of Bone and Joint Surgery, 68, 695-702. https://doi.org/10.2106/00004623-198668050-00009
Mansfield, N.J. and Griffin, M.J. (2000) Non-Linearity in Apparent Mass and Transmissibility during Exposure to Whole-Body Vertical Vibration. Journal of Biomechanics, 33, 933-941. https://doi.org/10.1016/S0021-9290(00)00052-X
Kitazaki, S. and Griffin, M.J. (1998) Resonance Behaviour of the Seated Human Body and Effects of Posture. Journal of Biomechanics, 31, 143-149. https://doi.org/10.1016/S0021-9290(97)00126-7
Zimmermann, C.L. and Cook, T.M. (1997) Effects of Vibration Frequency and Postural Changes on Human Responses to Seated Whole-Body Vibration Exposure. International Archives of Occupational and Environmental Health, 69, 165-179. https://doi.org/10.1007/s004200050133
Griffin, M.J. (1990) Handbook of Human Vibration. Academic Press, London.
Pope, M.H., Broman, H. and Hanson, T. (1990) Factors Affecting the Dynamic Response of the Seated Subject. Journal of Spinal Disorders, 3, 135-142. https://doi.org/10.1097/00002517-199006000-00004