Experimental Investigation of Levitation Dynamics in Turbulent Airflow: A Study of Drag Force and Bernoulli’s Principle for Aerodynamic Application

Authors

  • Yuze Song

DOI:

https://doi.org/10.54097/pc7rya93

Keywords:

Bernoulli principle, hydrodynamics, aircraft.

Abstract

This study is based on the study of Bernoulli's principle and repeated experiments to verify and summarize its principle. And speculate on its feasibility analysis in practical life. The main purpose of this study is to verify the correctness and feasibility of Bernoulli's principle. The research method of this study is self-experimentation and theoretical verification. This experiment confirms the correctness of Bernoulli's principle and its feasibility in practical life. The conclusion of this experiment is relatively simple and straightforward, as the experiment is not complicated and has certain limitations, without multiple control groups for comparative studies. The significance of this article lies in the verification of Bernoulli's principle, as well as the future prospects and practical applications of Bernoulli's principle after verification. The study also explores the potential applications of Bernoulli's principle in various fields, such as fluid mechanics, aerodynamics, and engineering design. By analyzing the experimental data, the research aims to provide insights into how Bernoulli's principle can be utilized to improve efficiency and performance in these areas. The article concludes on the importance of empirical research in validating theoretical principles and the value of continuous exploration in scientific discovery.

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References

[1] S. B. Pope, Turbulent Flows. Cambridge, UK: Cambridge University Press, 2000.

[2] L. Quentin and K. Vijay, "The Grasp Multiple Micro UAV Testbed," IEEE Robotics and Automation Magazine, vol. 17, no. 3, pp. 56–55, 2010.

[3] P. Bradshaw, An Introduction to Turbulence and its Measurement. Oxford, UK: Pergamon Press, 1971.

[4] E. F. Toro, Riemann Solvers and Numerical Methods for Fluid Dynamics. Berlin, Germany: Springer-Verlag, 1997.

[5] R. W. Fox, A. T. McDonald, and P. J. Pritchard, Introduction to Fluid Mechanics, 6th ed. Hoboken, NJ, USA: Wiley, 2008.

[6] C. Farhat (Ed.), "International Journal for Numerical Methods in Fluids Homepage," John Wiley & Sons, vol. 54, 2007.

[7] R. R. Kerswell, N. J. Balmforth, and C. P. Caulfield, "Fluid dynamics of finite-length pipelines at moderate Reynolds numbers," Journal of Fluid Mechanics, vol. 384, pp. 271–300, 1999.

[8] D. Liang, Z. Ji, Y. Li, and Z. Zhou, "The effect of the inlet steam superheat degree on the non-equilibrium condensation in steam turbine cascade," AIP Advances, vol. 12, no. 7, pp. 520–530, 2023, doi: 10.1063/5.0204924.

[9] F. M. White, Fluid Mechanics, 8th ed. New York, NY, USA: McGraw-Hill, 2011.

[10] B. R. Munson, D. F. Young, and T. H. Okiishi, Fundamentals of Fluid Mechanics, 6th ed. Hoboken, NJ, USA: Wiley, 2009.

[11] S. Succi, The Lattice Boltzmann Equation for Fluid Dynamics and Beyond. Oxford, UK: Oxford University Press, 2001.

[12] S. Chen and G. D. Doolen, "Lattice Boltzmann method for fluid dynamics and beyond," Annual Review of Fluid Mechanics, vol. 30, pp. 329–364, 1998

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Published

11-07-2025

How to Cite

Song, Y. (2025). Experimental Investigation of Levitation Dynamics in Turbulent Airflow: A Study of Drag Force and Bernoulli’s Principle for Aerodynamic Application. Highlights in Science, Engineering and Technology, 147, 38-43. https://doi.org/10.54097/pc7rya93