Araştırma Makalesi

Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects

Cilt: 7 Sayı: 1 31 Mart 2023
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Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects

Öz

The present work investigates the impacts of the Lorentz forces, porosity factor, viscous dissipation and radiation in thermo-Marangoni convective flow of a nanofluids (comprising two distinct kinds of carbon nanotubes ($CNT_{s}$)), in water ($H_{2}O$). Heat transportation developed by Marangoni forces happens regularly in microgravity situations, heat pipes, and in crystal growth. Therefore, Marangoni convection is considered in the flow model. A nonlinear system is constructed utilizing these assumptions which further converted to ordinary differential equations (ODEs) by accurate similarity transformations. The homotopic scheme is utilized to compute the exact solution for the proposed system. The study reveals that higher estimations of Hartmann number and Marangoni parameter speed up the fluid velocity while the opposite behavior is noted for porosity factor. Further, the rate of heat transfer shows upward trend for the Hartmann number, Marangoni parameter, nanoparticle solid volume fraction, radiation parameter whereas a downward trend is followed by the Brinkman number and porosity factor. It is fascinating to take observe that contemporary analytical outcomes validate the superb convergence with previous investigation.

Anahtar Kelimeler

Kaynakça

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  3. [3] S.U. Choi and J.A. Eastman, Enhancing thermal conductivity of fluids with nanoparticles, Argonne National Lab, (1995).
  4. [4] B. Mahanthesh, Flow and heat transport of nanomaterial with quadratic radiative heat flux and aggregation kinematics of nanoparticles, Int. Commun. Heat Mass Transf., 127 (2021) 105-521.
  5. [5] P. Rana, B. Mahanthesh, J. Mackolil and W. Al-Kouz, Nanofluid flow past a vertical plate with nanoparticle aggregation kinematics, thermal slip and significant buoyancy force effects using modified Buongiorno model, Waves in Random and Complex Media, (2021) 1-25.
  6. [6] K. Swain and B. Mahanthesh, Thermal enhancement of radiating magneto-nanoliquid with nanoparticles aggregation and joule heating: a three-dimensional flow, Arab J. Sci. Eng., 46(6) (2021) 5865-5873.
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Ayrıntılar

Birincil Dil

İngilizce

Konular

Matematik

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

31 Mart 2023

Gönderilme Tarihi

30 Temmuz 2022

Kabul Tarihi

7 Kasım 2022

Yayımlandığı Sayı

Yıl 2023 Cilt: 7 Sayı: 1

Kaynak Göster

APA
Zari, I., Gul, T., Dosmagulova, K., Khan, T. S., & Haq, S. (2023). Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects. Advances in the Theory of Nonlinear Analysis and its Application, 7(1), 61-81. https://doi.org/10.31197/atnaa.1187342
AMA
1.Zari I, Gul T, Dosmagulova K, Khan TS, Haq S. Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects. ATNAA. 2023;7(1):61-81. doi:10.31197/atnaa.1187342
Chicago
Zari, Islam, Taza Gul, Karlygash Dosmagulova, Tahir Saeed Khan, ve Safia Haq. 2023. “Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects”. Advances in the Theory of Nonlinear Analysis and its Application 7 (1): 61-81. https://doi.org/10.31197/atnaa.1187342.
EndNote
Zari I, Gul T, Dosmagulova K, Khan TS, Haq S (01 Mart 2023) Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects. Advances in the Theory of Nonlinear Analysis and its Application 7 1 61–81.
IEEE
[1]I. Zari, T. Gul, K. Dosmagulova, T. S. Khan, ve S. Haq, “Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects”, ATNAA, c. 7, sy 1, ss. 61–81, Mar. 2023, doi: 10.31197/atnaa.1187342.
ISNAD
Zari, Islam - Gul, Taza - Dosmagulova, Karlygash - Khan, Tahir Saeed - Haq, Safia. “Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects”. Advances in the Theory of Nonlinear Analysis and its Application 7/1 (01 Mart 2023): 61-81. https://doi.org/10.31197/atnaa.1187342.
JAMA
1.Zari I, Gul T, Dosmagulova K, Khan TS, Haq S. Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects. ATNAA. 2023;7:61–81.
MLA
Zari, Islam, vd. “Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects”. Advances in the Theory of Nonlinear Analysis and its Application, c. 7, sy 1, Mart 2023, ss. 61-81, doi:10.31197/atnaa.1187342.
Vancouver
1.Islam Zari, Taza Gul, Karlygash Dosmagulova, Tahir Saeed Khan, Safia Haq. Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects. ATNAA. 01 Mart 2023;7(1):61-8. doi:10.31197/atnaa.1187342

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