References
- J. Lindemuth, The effect of air resistance on falling balls, Am. J. Phys. 39, 757–9, (1971)
- A. Vial: Fall with linear drag and Wien’s displacement law: approximate solution and Lambert function, Eur. J. Phys. 33, 751, (2012)
- A. Houari, Determining the drag coefficient of rotational symmetric objects falling through liquids, Eur. J. Phys. 33, 947, (2012)
- R. Cross, C. Lindsey, Measuring the Drag Force on a Falling Ball, The Physics Teacher 52, 169, (2014)
- A. Morrison, An Introduction to Fluid Mechanics, Cambridge University Press, New York, (2013)
- P. Timmerman, J. P. van der Weele, On the rise and fall of a ball with linear or quadratic drag, American Journal of Physics 67, (1999), pp. 538-546
- H. Stöcker, Taschenbuch der Physik, Verlag Harri Deutsch, Frankfurt am Main, (1998)
- F. M. White: Fluid Mechanics, McGraw-Hill, Seventh Edition, (2011)
- L. Fischer, T. Günther, L. Herzig, T. Jarzina, F. Klinker, S. Knipper, F. G. Schürmann, M. Wollek, Approximation of D.I.Y. Water Rocket Dynamics Including Air Drag, International Journal of Scientific Research in Mathematical and Statistical Sciences, (2019), Vol.6, Issue 6, pp. 1-13.
- I. N. Bronstein, Taschenbuch der Mathematik. B.G.Teubner Stuttgart-Leipzig, (1996)
- A. Vodopivec: wxMaxima 18.02.0. http://andrejv.github.io/wxmaxima/
- R. Mehta, F. Alam, A. Subic, Review of tennis ball aerodynamics, Sports Technology. 1:1, (2008), pp. 7-16
