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Comparative numerical study of thermal features analysis between oldroyd-b copper and molybdenum disulfide nanoparticles in engine-oil-based nanofluids flow

  • Faisal Shahzad
  • , Wasim Jamshed
  • , Rabha W. Ibrahim
  • , Kottakkaran Sooppy Nisar
  • , Muhammad Amer Qureshi
  • , Syed M. Hussain
  • , Siti Suzilliana Putri Mohamed Isa
  • , Mohamed R. Eid
  • , Abdel Haleem Abdel-Aty
  • , I. S. Yahia
  • Capital University of Science & Technology
  • IEEE
  • Prince Sattam Bin Abdulaziz University
  • King Fahd University of Petroleum and Minerals
  • Islamic University of Madinah
  • Universiti Putra Malaysia
  • New Valley University
  • Northern Borders University
  • University of Bisha
  • Al-Azhar University
  • King Khalid University
  • Ain Shams University

Research output: Contribution to journalArticlepeer-review

30 Scopus citations

Abstract

Apart from the Buongiorno model, no effort was ably accomplished in the literature to investigate the effect of nanomaterials on the Oldroyd-B fluid model caused by an extendable sheet. This article introduces an innovative idea regarding the enforcement of the Tiwari and Das fluid model on the Oldroyd-B fluid (OBF) model by considering engine oil as a conventional base fluid. Tiwari and Das’s model takes into account the volume fraction of nanoparticles for heat transport enhancement compared to the Buongiorno model that depends significantly on thermophoresis and Brownian diffusion impacts for heat transport analysis. In this paper, the thermal characteristics of an Oldroyd-B nanofluid are reported. Firstly, the transformation technique is applied on partial differential equations from boundary-layer formulas to produce nonlinear ordinary differential equations. Subsequently, the Keller-box numerical system is utilized to obtain final numerical solutions. Copper engine oil (Cu–EO) and molybdenum disulfide engine oil (MoS2–EO) nanofluids are considered. From the whole numerical findings and under the same condition, the thermodynamic performance of MoS2–EO nanofluid is higher than that of Cu–EO nanofluid. The thermal efficiency of Cu–EO over MoS2–EO is observed between 1.9% and 43%. In addition, the role of the porous.

Original languageEnglish
Article number1196
JournalCoatings
Volume11
Issue number10
DOIs
StatePublished - 1 Oct 2021
Externally publishedYes

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