Influence of Thermophoresis and Brownian Motion on MHD Hybrid Nanofluid MgO - Ag/H2O Flow along Moving Slim Needle

Authors

  • Chundru Maheswari Department of Mathematics, Narasaraopeta Engineering College, Narasaraopet, Andhra Pradesh, India
  • Mohana Ramana Ravuri Department of Mathematics, Narasaraopeta Engineering College, Narasaraopet, Andhra Pradesh, India
  • G. Balaji Prakash Department of H&BS, Aditya College of Engineering, Surampalem, East Godavari, Andhra Pradesh, India
  • D. Ramesh Department of Engineering Mathematics, College of Engineering, Koneru Lakshmaiah Educational Foundation, Andhra Pradesh, India
  • D. Vijaya Kumar Department of Applied Mathematics, Lakireddy Bali Reddy College of Engineering, Mylavaram, Andhra Pradesh, India

DOI:

https://doi.org/10.37934/araset.36.2.6790

Keywords:

Thermophoresis parameter, Brownian motion, MHD hybrid nanofluid, Thin needle, Shooting method

Abstract

The objective of this paper is to analyze the impact of thermophoresis parameter, Brownian motion, velocity ratio parameter, similarity radius of the slim needle, magnetic parameter, Prandtl number and thermal radiation on the steady state, laminar, MHD hybrid nanofluid composed of MgO-Ag/H2O flowing along a horizontal hot thin needle. To achieve this, the BVP-5C shooting technique is employed through MATLAB to solve the transformed nonlinear ODEs governing the fluid flow. This study investigates the impact of non-dimensional parameters on the flow velocity, temperature and concentration profiles within the hybrid nanofluid. The effects of skin friction, local Nusselt number and Sherwood number are demonstrated through the use of tables. The observation reveals that elevating the thermophoresis parameter results in a simultaneous reduction in the temperature and concentration profiles, while an opposite behavior is observed for Brownian motion. The magnetic parameter and thermal radiation values result in a rising temperature profile, while the trend is reversed for the velocity ratio parameter, Prandtl number and Schmidt number. The Nusselt number demonstrates an upward trend with higher values of thermophoresis parameter, velocity ratio parameter and thermal radiation. Further, Sherwood number experiences an increase with greater values of Brownian motion and magnetic parameter but it displays a contrasting pattern for thermophoresis, velocity ratio parameter and thermal radiation parameter. Validation of this model with existing data has been excellent.

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Author Biographies

Chundru Maheswari, Department of Mathematics, Narasaraopeta Engineering College, Narasaraopet, Andhra Pradesh, India

cmaheswari2014@gmail.com

Mohana Ramana Ravuri, Department of Mathematics, Narasaraopeta Engineering College, Narasaraopet, Andhra Pradesh, India

mohanaramanacrypto@gmail.com

G. Balaji Prakash, Department of H&BS, Aditya College of Engineering, Surampalem, East Godavari, Andhra Pradesh, India

balajiprakashgudala@gmail.com

D. Ramesh, Department of Engineering Mathematics, College of Engineering, Koneru Lakshmaiah Educational Foundation, Andhra Pradesh, India

ram.fuzzy@gmail.com

D. Vijaya Kumar, Department of Applied Mathematics, Lakireddy Bali Reddy College of Engineering, Mylavaram, Andhra Pradesh, India

vijaymym@gmail.com

Published

2023-12-30

Issue

Section

Articles