Statistical analysis of periodic MHD chemically radiative casson flow over an inclined cylinder with entropy optimization

Statistical analysis (SA) stands as an indispensable tool in materials science and engineering, aiding in the understanding and optimization of heat and mass transport processes. This study delves into the interplay between periodic magneto-hydrodynamics (MHD) and chemical reactions concerning entro...

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Main Authors: Md. Yousuf Ali, Mizanur Rahman
Format: Article
Language:English
Published: Elsevier 2024-11-01
Series:Heliyon
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Online Access:http://www.sciencedirect.com/science/article/pii/S2405844024160525
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author Md. Yousuf Ali
Mizanur Rahman
author_facet Md. Yousuf Ali
Mizanur Rahman
author_sort Md. Yousuf Ali
collection DOAJ
description Statistical analysis (SA) stands as an indispensable tool in materials science and engineering, aiding in the understanding and optimization of heat and mass transport processes. This study delves into the interplay between periodic magneto-hydrodynamics (MHD) and chemical reactions concerning entropy generation over an inclined porous cylinder (IPC). We employ a statistical approach, amalgamating the robust 6th order Runge-Kutta (R-K) integration algorithm with the Nachtsheim-Swigert (N-S) shooting iteration method, subsequent to converting the governing equations into Ordinary Differential Equation (ODE) form. The primary objective of this study is to analyze the behavior of entropy generation, unveiling the intricate relationship between entropy dynamics, radiative periodic MHD on IPC, and chemical processes. The numerical findings encapsulate the dynamics of temperature, velocity, and entropy generation, visually portrayed across various dimensionless parameters. The primary findings of this investigation indicate that Casson fluid flow generates 18.99 % more entropy in comparison to Newtonian fluid flow. Furthermore, entropy is 9.87 % larger in an inclined cylinder than in a level cylinder. In contrast, entropy production falls by 3.34 % in the presence of periodic MHD as opposed to non-periodic MHD. Regression study reveals a genuine and significant interaction between variables inside the entropy-generating systems, as well, with a correlation value (R2) of 99.82 % at a 95 % confidence level. The correlation study shows that there is a significant 98.13 % relationship between entropy generation and chemical processes. Understanding the heightened entropy associated with Casson fluid flow benefits tissue engineering, drug delivery systems, and renewable energy. Increased entropy in inclined cylinders aids in optimizing drainage systems, pipeline design, and aerodynamic efficiency in aerospace engineering.
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spelling doaj-art-b8382952d88e438eb136d4a93569e1c22025-08-20T02:07:31ZengElsevierHeliyon2405-84402024-11-011022e4002110.1016/j.heliyon.2024.e40021Statistical analysis of periodic MHD chemically radiative casson flow over an inclined cylinder with entropy optimizationMd. Yousuf Ali0Mizanur Rahman1Corresponding author.; Multidisciplinary Action Research (MARS) Lab, Department of Computer Science and Engineering, Daffodil International University, Dhaka, BangladeshMultidisciplinary Action Research (MARS) Lab, Department of Computer Science and Engineering, Daffodil International University, Dhaka, BangladeshStatistical analysis (SA) stands as an indispensable tool in materials science and engineering, aiding in the understanding and optimization of heat and mass transport processes. This study delves into the interplay between periodic magneto-hydrodynamics (MHD) and chemical reactions concerning entropy generation over an inclined porous cylinder (IPC). We employ a statistical approach, amalgamating the robust 6th order Runge-Kutta (R-K) integration algorithm with the Nachtsheim-Swigert (N-S) shooting iteration method, subsequent to converting the governing equations into Ordinary Differential Equation (ODE) form. The primary objective of this study is to analyze the behavior of entropy generation, unveiling the intricate relationship between entropy dynamics, radiative periodic MHD on IPC, and chemical processes. The numerical findings encapsulate the dynamics of temperature, velocity, and entropy generation, visually portrayed across various dimensionless parameters. The primary findings of this investigation indicate that Casson fluid flow generates 18.99 % more entropy in comparison to Newtonian fluid flow. Furthermore, entropy is 9.87 % larger in an inclined cylinder than in a level cylinder. In contrast, entropy production falls by 3.34 % in the presence of periodic MHD as opposed to non-periodic MHD. Regression study reveals a genuine and significant interaction between variables inside the entropy-generating systems, as well, with a correlation value (R2) of 99.82 % at a 95 % confidence level. The correlation study shows that there is a significant 98.13 % relationship between entropy generation and chemical processes. Understanding the heightened entropy associated with Casson fluid flow benefits tissue engineering, drug delivery systems, and renewable energy. Increased entropy in inclined cylinders aids in optimizing drainage systems, pipeline design, and aerodynamic efficiency in aerospace engineering.http://www.sciencedirect.com/science/article/pii/S2405844024160525Entropy generationPeriodic MHDCasson fluidThermal radiationChemical reactionStatistical analysis
spellingShingle Md. Yousuf Ali
Mizanur Rahman
Statistical analysis of periodic MHD chemically radiative casson flow over an inclined cylinder with entropy optimization
Heliyon
Entropy generation
Periodic MHD
Casson fluid
Thermal radiation
Chemical reaction
Statistical analysis
title Statistical analysis of periodic MHD chemically radiative casson flow over an inclined cylinder with entropy optimization
title_full Statistical analysis of periodic MHD chemically radiative casson flow over an inclined cylinder with entropy optimization
title_fullStr Statistical analysis of periodic MHD chemically radiative casson flow over an inclined cylinder with entropy optimization
title_full_unstemmed Statistical analysis of periodic MHD chemically radiative casson flow over an inclined cylinder with entropy optimization
title_short Statistical analysis of periodic MHD chemically radiative casson flow over an inclined cylinder with entropy optimization
title_sort statistical analysis of periodic mhd chemically radiative casson flow over an inclined cylinder with entropy optimization
topic Entropy generation
Periodic MHD
Casson fluid
Thermal radiation
Chemical reaction
Statistical analysis
url http://www.sciencedirect.com/science/article/pii/S2405844024160525
work_keys_str_mv AT mdyousufali statisticalanalysisofperiodicmhdchemicallyradiativecassonflowoveraninclinedcylinderwithentropyoptimization
AT mizanurrahman statisticalanalysisofperiodicmhdchemicallyradiativecassonflowoveraninclinedcylinderwithentropyoptimization