THE ROLE OF FLUID MECHANICS IN MODERN MEDICAL DIAGNOSTICS AND TREATMENT TECHNIQUES

Main Article Content

Dr. Satyapal Singh

Keywords

Fluid Mechanics, Medical Diagnostics, Treatment Techniques, Computational Fluid Dynamics, Hemodynamics, Diagnostic Accuracy

Abstract

This study explores the application of fluid mechanics in modern medical diagnostics and treatment techniques, highlighting its significant role in enhancing healthcare outcomes. By comparing various fluid mechanics models such as the Navier-Stokes Equations, CFD Model, Lumped Parameter Model, and Windkessel Model this research evaluates their diagnostic accuracy, time efficiency, and cost efficiency. Additionally, the study assesses innovative treatment methods, including microfluidic devices and stochastic modeling, for their efficacy and efficiency. Findings indicate that fluid mechanics principles substantially improve diagnostic precision and treatment effectiveness, offering valuable insights for optimizing medical procedures. Statistical analyses, including ANOVA and correlation analysis, validate these results, underscoring the importance of fluid mechanics in advancing medical science.


 

Abstract 0 | pdf Downloads 0

References

1. Badur, J., Ochrymiuk, T., Kowalczyk, T., Dudda, W., & Ziółkowski, P. (2022). From fluid mechanics backgrounds to modern field theory. DOI: 10.1007/s00707-022-03260-0.
2. Fluid Mechanics Division. (1986). Fluid Mechanics 1986: Annual Report of Fluid Mechanics Division.
3. Hayat, T., Xinhua, W., Shafiq, A., Uddin, A., & Rasool, G. (2023). Seminar on Fluid mechanics and composite materials. DOI: 10.13140/RG.2.2.22749.79844.
4. Ott, O., Tolppi, S., Figueroa-Cruz, J., Myagmar, K., & Unurbuyan, K. (2024). Leveraging the fundamentals of heat transfer and fluid mechanics in microscale geometries for automated next-generation sequencing library preparation. DOI: 10.1038/s41598-024-63014-x.
5. Rizvi, S. S. H. (2024). Fluid Mechanics: Basic Concepts. DOI: 10.1007/978-3-031-34123-6_5.
6. SathishMurugan, D., Veeramanikandan, M., & Vijayakumar, R. (2024). Fluid Mechanics and Machinery Lab Manual. DOI: 10.9734/bpi/mono/978-81-972870-8-4.
7. Zhang, Y., Xie, Y., Zhao, G., Liang, Z., & Shi, J. (2024). The Important Role of Fluid Mechanics in the Engineering Field. DOI: 10.58531/esmmsi/1/2/2.
8. Zhao, D., Dixson, S. L., & Hall, C. A. (2024). Fluid Mechanics and Thermodynamics of Turbomachinery (8th edition). DOI: 10.1016/C2011-0-05059-7.
9. Anastasios, L., & Kostantinos, L. (2024). On Λ-Fractional Fluid Mechanics. DOI: 10.17352/amp.000114.
10. Durst, F. (2022). Fluid Mechanics: An Introduction to the Theory of Fluid Flows. DOI: 10.1007/978-3-662-63915-3.
11. Ghazanfarian, J. (2024). Applied Continuum Mechanics for Thermo-Fluids. DOI: 10.1201/9781032719405.
12. Morgany, & Perairez, J. (1998). Unstructured Grid Finite Element Methods for Fluid Mechanics.
13. Powers, J. M. (2023). Mechanics of Fluids. DOI: 10.1017/9781009026307.
14. Rodríguez, E. Q. (2024). Exploring a Fluid Dual Vacuum (Bridging Quantum Mechanics and Fluid Dynamics). DOI: 10.13140/RG.2.2.25142.92489.
15. Sobieski, W., & Šarler, B. (2023). Numerical Methods in Fluid Mechanics – An Overview. DOI: 10.31648/ts.9212.
16. Wang, H. (2023). Fluids and Fluid Mechanics. DOI: 10.1017/9781108671149.002