<p>The advanced heat transfer properties of various nanofluids are beneficial for the production processes in the current need of science and technology. The significant contribution of enhanced thermal properties is due to the involvement of the particle concentrations, shape and size of the nanoparticles. The recent investigation based on the utility of the magnetic nanoparticles such as Fe<sub>3</sub>O<sub>4</sub> combined with titanium oxide (TiO<sub>2</sub>) in the base liquid ethylene glycol hybridized fluid movement via an expanding/contracting slandering surface. The flow over the elongating surface packed with permeable medium enriches the flow characteristic. The flow characteristic is enhanced for the interpretation of both the Joule and Darcy dissipation and the impact of multiple slip that is assumed as surface condition. The mathematical model equipped with the aforementioned assumptions gets converted into dimensionless form by the utilization of similarity rules and the proposed model is tackled numerically using shooting-based Runge–Kutta technique. Further, the detailed discussion on the physical properties of several factors is presented briefly via a validation with earlier investigation.</p>

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Multiple slip effects with Hall current on the three-dimensional hybrid nanofluid flow combining dissipative heat impact over a slandering surface

  • Subhajit Panda,
  • Folarin Oluwaseun,
  • Titilayo M. Agbaje,
  • Rupa Baithalu,
  • S. R. Mishra

摘要

The advanced heat transfer properties of various nanofluids are beneficial for the production processes in the current need of science and technology. The significant contribution of enhanced thermal properties is due to the involvement of the particle concentrations, shape and size of the nanoparticles. The recent investigation based on the utility of the magnetic nanoparticles such as Fe3O4 combined with titanium oxide (TiO2) in the base liquid ethylene glycol hybridized fluid movement via an expanding/contracting slandering surface. The flow over the elongating surface packed with permeable medium enriches the flow characteristic. The flow characteristic is enhanced for the interpretation of both the Joule and Darcy dissipation and the impact of multiple slip that is assumed as surface condition. The mathematical model equipped with the aforementioned assumptions gets converted into dimensionless form by the utilization of similarity rules and the proposed model is tackled numerically using shooting-based Runge–Kutta technique. Further, the detailed discussion on the physical properties of several factors is presented briefly via a validation with earlier investigation.