Back to results
Bibliographic record · Consultation and access
Artículo

Heat and mass transfer analysis of chemically reacted Cu/Al2O3 Casson hybrid nanofluid flow via porous medium under MHD and slip conditions

Al-Atawi Nawal Odah · De Gruyter · 2026

Open access available
Quick overview. Review the resource’s basic details, then access the content using the main button. This page shows only the information needed to identify, cite, and open the work.

Resource access

Open the content from the main option or choose another available source.

DOAJ DOAJ Articles
Entrar por DOAJ
Main access

Open access available

Recurso identificado como acceso abierto, sin confirmar automáticamente si es texto completo directo.
Open resource

Summary

Descripción general del contenido del recurso.

Significant research interest in hybrid nanofluids stems from their extensive applications in areas like industrial cooling and biomedical engineering. The present investigation focuses on a hybrid Casson nanofluid, a non-Newtonian fluid with superior thermal conductivity. The study models its flow as it is propelled by a linearly stretching elastic sheet within a Darcy-law porous medium. The study mixed copper (Cu) and aluminum oxide (Al2O3) nanoparticles to leverage the high thermal conductivity of metals (copper) and the chemical stability of non-metals (aluminum oxide), improving heat transfer. Further, the impact of chemical interactions within the system and the presence of a magnetic field were also factored into this work. Not only this, but slip velocity phenomenon through the model was also taken into consideration. Dimensionless and similarity variables convert the model from its initial form into ODEs, and the shooting technique integrated with a fourth-order Runge–Kutta numerical scheme provides the computational solution. The findings reveal that stronger magnetic fields and higher porosity parameters significantly boost both heat transfer rate and skin friction, while larger slip parameters and Casson fluid characteristics lead to their reduction. Moreover, intensified chemical reactions decrease the nanoparticle concentration in the flow field. These outcomes, validated through comparison with prior studies, demonstrate a novel contribution by highlighting the dual role of magnetic fields and porosity in simultaneously enhancing heat transport and momentum transfer in hybrid Casson nanofluids.

How to cite

Elegí el formato que necesitás y copiá la referencia al portapapeles.

APA 7

Odah, A. A. N. (2026). Heat and mass transfer analysis of chemically reacted Cu/Al2O3 Casson hybrid nanofluid flow via porous medium under MHD and slip conditions. https://doi.org/10.1515/ntrev-2025-0283

MLA

Odah, Al-Atawi Nawal. "Heat and mass transfer analysis of chemically reacted Cu/Al2O3 Casson hybrid nanofluid flow via porous medium under MHD and slip conditions." 2026. https://doi.org/10.1515/ntrev-2025-0283.

Chicago

Odah, Al-Atawi Nawal. 2026. "Heat and mass transfer analysis of chemically reacted Cu/Al2O3 Casson hybrid nanofluid flow via porous medium under MHD and slip conditions.". https://doi.org/10.1515/ntrev-2025-0283.

Harvard

Odah, A. A. N. 2026, Heat and mass transfer analysis of chemically reacted Cu/Al2O3 Casson hybrid nanofluid flow via porous medium under MHD and slip conditions, De Gruyter, available at: https://doi.org/10.1515/ntrev-2025-0283 [Accessed 5 Aug. 2026].

Share and print

Save the record, copy its permanent link, or print it as a PDF.

Export reference

You can export the record in common formats for use in a reference manager.

Resource details

Bibliographic information to help confirm that this is the correct material.

Title
Heat and mass transfer analysis of chemically reacted Cu/Al2O3 Casson hybrid nanofluid flow via porous medium under MHD and slip conditions
Author / contributors
Al-Atawi Nawal Odah
Publisher
De Gruyter
Publication year
2026
ISSN
2191-9097
ISSN
2191-9097
Language
English

Subjects

Explore related resources through these subjects.

Copied