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Stability analysis for heat transfer flow in micropolar hybrid nanofluids.
Adilla Norzawary, Nur Hazirah; Soid, Siti Khuzaimah; Ishak, Anuar; Anuar Mohamed, Muhammad Khairul; Khan, Umair; Sherif, El-Sayed M; Pop, Ioan.
  • Adilla Norzawary NH; Institute for Mathematical Research, Universiti Putra Malaysia 43400 Serdang Selangor Malaysia nurhazirah.adilla@gmail.com.
  • Soid SK; School of Mathematical Sciences, College of Computing, Informatics and Media, Universiti Teknologi MARA 40450 Shah Alam Selangor Malaysia khuzaimah@tmsk.uitm.edu.my.
  • Ishak A; Department of Mathematical Sciences, Faculty of Science and Technology, Universiti Kebangsaan Malaysia UKM Bangi 43600 Selangor Malaysia anuar_mi@ukm.edu.my umair.khan@lau.edu.lb.
  • Anuar Mohamed MK; Centre for Mathematical Sciences, College of Computing and Applied Sciences, Universiti Malaysia Pahang Gambang 26300 Pahang Malaysia m.k.a.mohamed@gmail.com.
  • Khan U; Department of Mathematical Sciences, Faculty of Science and Technology, Universiti Kebangsaan Malaysia UKM Bangi 43600 Selangor Malaysia anuar_mi@ukm.edu.my umair.khan@lau.edu.lb.
  • Sherif EM; Department of Computer Science and Mathematics, Lebanese American University Byblos Lebanon.
  • Pop I; Department of Mathematics and Social Sciences, Sukkur IBA University Sukkur 65200 Sindh Pakistan.
Nanoscale Adv ; 5(20): 5627-5640, 2023 Oct 10.
Article en En | MEDLINE | ID: mdl-37822899
Objective: hybrid nanofluids have superior thermal efficiency and physical durability in contrast to regular nanofluids. The stagnation point flow of MHD micropolar hybrid nanofluids over a deformable sheet with viscous dissipation is investigated. Methodology: the controlling partial differential equations are converted to nonlinear ordinary differential equations using the transmuted similarity, and are subsequently solved using the bvp4c solver in MATLAB. The hybrid nanofluids consist of aluminum and copper nanoparticles, dispersed in a base fluid of water. Results: multiple solutions are obtained in the given problem for the case of shrinking as well as for the stretching sheet due to the variation in several influential parameters. Non-unique solutions, generally, exist for the case of shrinking sheets. In addition, the first branch solution is physically stable and acceptable according to the stability analysis. The friction factor is higher for the branch of the first solution and lower in the second branch due to the higher magnetic parameters, while the opposite behavior is seen in the case of the local heat transfer rate. Originality: the novelty of this model is that it finds multiple solutions in the presence of Cu and Al2O3 nanoparticles and also performs the stability analysis. In general, non-unique solutions exist for the phenomenon of shrinking sheets.

Texto completo: 1 Banco de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Año: 2023 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Año: 2023 Tipo del documento: Article