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Performance of aircraft pneumatic tyres in soft soil

Published online by Cambridge University Press:  04 July 2016

D. H. Shanks
Affiliation:
Division of Mechanical Engineering, CSIRO, Victoria, Australia
R. V. Barrett
Affiliation:
Department of Aeronautical Engineering, University of Bristol

Extract

This paper is concerned with the rolling resistance, or drag, of an unpowered pneumatic-tyred wheel rolling at high velocities in soft soil. Its application is to undercarriage design for aircraft intended to operate from unsurfaced airfields, and to the inverse problem of predicting the performance of existing aircraft in such conditions.

Type
Research Article
Copyright
Copyright © Royal Aeronautical Society 1981 

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Footnotes

*

Formerly Research Assistant, Department of Aeronautical Engineering, University of Bristol.

References

1. Turnage, G. W. Performance of soils under tire loads. US Army Engineer Waterways Experiment Station, Tech Rept 3-666, 1972.Google Scholar
2. Dwyer, M. J., Evernden, D. W. and McAllister, M. Handbook of agricultural tyre performance. National Institute of Agricultural Engineering, Report 18,1976.Google Scholar
3. Richmond, L. D., Brueske, N. W. and De Bord, K. J. et al. Aircraft dynamic loads from substandard landing sites. Air Force Flight Dynamics Laboratory, Rept AFFDL-TR-67-145, 1968.Google Scholar
4. Crenshaw, B. M.,Butterworth, C. K. and Truesdale, W. B. Aircraft landing gear dynamic loads from operation on clay and sandy soil. Air Force Flight Dynamics Laboratory, Rept AFFDL-TR-69-51,1971.Google Scholar
5. Walton, D. An investigation of the soft ground rolling resistance of aircraft landing gear using model techniques. PhD thesis, University of Bristol, 1974.Google Scholar
6. Turnage, G. W. Behaviour of fine-grained soils under high speed tire loads. US Army Engineer Waterways Experiment Station, Tech Rept 3-652,1975.Google Scholar
7. Bekker, M. G. Theory of land locomotion. University of Michigan Press, 1956.Google Scholar
8. Yong, R. N., Fattah, E. A. and Boonsinsuk, P. Analysis and prediction of tyre-soil interaction and performance using finite elements. Journal of Terramechanics, 15, (1), 1978.Google Scholar
9. Rula, A. A. and Nuttall, C. J. An analysis of ground mobility models (ANAMOB). US Army Engineer Waterways Experiment Station, Tech Rept M-71-4, 1971.Google Scholar
10. Turnage, G. W. Influence of viscous-type and inertial forces on the penetration resistance of saturated fine-grained soils. Journal of Terramechanics, 10, (2), 1973.Google Scholar
11. Shanks, D. H. Performance of aircraft pneumatic tyres in soft soil. PhD thesis, University of Bristol, 1976. (Unpublished.)Google Scholar
12. Freitag, D. R. A dimensional analysis of the performance of pneumatic tires on soft soils. US Army Engineer Waterways Ixperiment Station, Tech Rept 3-688,1965.Google Scholar
13. Serota, S. and Jangle, A. A direct reading pocket shear vane. ASCE, Civil Engineering, January 1972.Google Scholar
14. Smith, J. L. Strength-moisture-density relations of fine-grained soils in vehicle mobility research. US Army Engineer Waterways Experiment Station, Tech Rept 3-639,1964.Google Scholar
15. Kline, S. J. and Mcclintock, F. A. Describing uncertainties in single-sample experiments. Mechanical Engineering, 75, (1) 1953.Google Scholar
16. Reece, A. R. Machines and soil. Journal of Terramechanics, 6, (3), 1969.10.1016/0022-4898(69)90126-8Google Scholar
17. Reiner, M. Deformation and flow. Lewis, London, 1949.Google Scholar
18. Freitag, D. R., Schafer, R. L. and Wismer, R. D. Similitude studies of soil-machine systems. Trans ASAE, p 201,1970.10.13031/2013.38570Google Scholar