Use of 3D scanning technique to determine tire deformation in static conditions

Published: 31 March 2022
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This paper presents an innovative digital method to analyze agricultural tire profiles based on pictures. This method can conclude that vertical load and inflation pressure changes cause tire deformation. The first stage in this method is 3D scanning; the vertical cross-section is created from the obtained picture of the tested tire. From this cross-section, the deflection of the tire can be determined. Then, the horizontal cross-section is formed:  this operation determines the tire’s contact area at the highest vertical deformation. Obtained results can be helpful to make the tire deformation characteristic. The contact pressure values can be determined (even through laboratory testing, without research in field conditions). The knowledge about contact pressure allows taking some actions to reduce soil compaction. In the description of the method, the radial tire was used, but the structure and equipment of the test bench allow the use of cross-ply tires with different dimensions.

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Alontseva D.L., Ghassemieh E., Krasavin A.L., Kadyroldina A.T. 2020. Development of 3D scanning system for robotic plasma processing of medical products with complex geometries. J. Electron. Sci. Technol. 100057.
Ani O.A., Uzoejinwa B.B., Ezeama A.O., Onwualu A.P., Ugwu S.N., Ohagwu C.J. 2018. Overview of soil-machine interaction studies in soil bins. Soil Till. Res. 175:13-27.
Anifantis A.S., Cutini M., Bietresato M. 2020. An experimental-numerical approach for modelling the mechanical behaviour of a pneumatic tyre for agricultural machines. Appl. Sci. 10:3481.
Arvidsson J., Keller T. 2007. Soil stress as affected by wheel load and tire inflation pressure. Soil Till. Res. 96:284-91.
Błaszkiewicz Z. 1990. A method for the determination of the contact area between a tire and the ground. J. Terramechan. 27:263-82.
Brennnensthul M. 2016. Co warto wiedzieć o oponach? AgroProfil 6/2016.
Da Silva Guimarães Júnnyor W., Diserens E., De Maria I.C., Junior C.F.A., Farhate C.V.V., de Souza Z.M. 2019. Prediction of soil stresses and compaction due to agricultural machines in sugarcane cultivation systems with and without crop rotation. Sci.Total Environ. 681:424-34.
Derafshpour S., Valizadeh M., Mardani A., Saray M.T. 2019. A novel system developed based on image processing techniques for dynamical measurement of tire-surface contact area. Measurement. 139:270-6.
Diserens E. 2009. Calculating the contact area of trailer tyres in the field. Soil Till. Res. 103:302-9.
Diserens E., Défossez P., Duboisset A., Alaoui A. 2011. Prediction of the contact area of agricultural traction tires on firm soil. Biosyst. Engine. 110:73-82.
Farhadi P., Golmohammadi A., Sharifi A., Shahgholi G. 2018. Potential of three-dimensional footprint mold in investigating the effect of tractor tire contact volume changes on rolling resistance. J. Terramechan. 78:63-72.
Grečenko A. 1995. Tyre footprint area on hard ground computed from catalogue values. J. Terramechan. 32:325-33.
Jurga J. 2008. Wpływ głębokości koleiny i ciśnienia powietrza w ogumieniu na naciski jednostkowe kół ciągników na glebę. Inżynieria Rolnicza 4:347-51.
Keller T., Sandin M., Colombi T., Horn R., Or D. 2019. Historical increase in agricultural machinery weights enhanced soil stress levels and adversely affected soil functioning. Soil Till. Res. 194: 104293.
Kowalski B. 2006. Rolnictwo na kołach. Farmer 21/2006.
Kumar S., Pandey K.P., Kumar R., Kuma A. 2018. Effect of ballasting on performance characteristics of bias and radial ply tyres with zero sinkage. Measurement 121:218-24.
Lazarević D., Nedić B., Jović S., Šarkoćević Ž., Blagojević M. 2019. Optical inspection of cutting parts by 3D scanning. Physica A Stat. Mechan. Appl. 121583.
Lindemuth B.E. 2006. An overview of tire technology. The Pneumatic Tire, U.S. Department of Transportation, 3-7.
Misiewicz P.A., Richards T.E. ,Blackburn K., Godwin R.J. 2016. Comparison of methods for estimating the carcass stiffness of agricultural tyres on hard surfaces. Biosyst. Engine. 147:183-92.
Sivarajan S., Maharlooei M., Bajwa S.G., Nowatzki J. 2018. Impact of soil compaction due to wheel traffic on corn and soybean growth, development and yield. Soil Till. Res. 175:234-43.
Song H.S., Sim K.S., Park T.W. 2018. Optimal tread design for agricultural lug tires determined through failure analysis. J. Agric. Engine. 49:64-70.
Stawicki T. 2018. Limit wear of working parts of subsoil shanks with regard to their design solutions. J. Res. Appl. Agric. Engine. 63:115-20.
Taghavifar H., Mardani A. 2013. Investigating the effect of velocity, inflation pressure, and vertical load on rolling resistance of a radial ply tire. J. Terramechan. 50:99-106.
Wulfsohn D., Upadhyaya S.K. 1992. Determination of dynamic three-dimensional soil-tire contact profile. J. Terramechan. 29:433-64.
Zhang J., Huang J., Fu C., Huang L., Ye H. 2020. Characterization of steel reinforcement corrosion in concrete using 3D laser scanning techniques. Constr. Build. Mat. 270:121402.

How to Cite

Ptak, W., Czarnecki, J. and Brennensthul, M. (2022) “Use of 3D scanning technique to determine tire deformation in static conditions”, Journal of Agricultural Engineering, 53(1). doi: 10.4081/jae.2022.1221.

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