dor_id: 4108235

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100.1.#.a: Ghaffari, Abuzar; Javed, T.; Mustafa.

524.#.#.a: Ghaffari, Abuzar, et al. (2018). Non-linear radiation influence on oblique stagnation point flow of Maxwell fluid. Revista Mexicana de Física; Vol 64, No 4 Jul-Aug: 420-428. Recuperado de https://repositorio.unam.mx/contenidos/4108235

245.1.0.a: Non-linear radiation influence on oblique stagnation point flow of Maxwell fluid

502.#.#.c: Universidad Nacional Autónoma de México

561.1.#.a: Facultad de Ciencias, UNAM

264.#.0.c: 2018

264.#.1.c: 2018-06-28

653.#.#.a: Maxwell fluid, Oblique stagnation point, Thermal radiation, Parallel shooting method

506.1.#.a: La titularidad de los derechos patrimoniales de esta obra pertenece a las instituciones editoras. Su uso se rige por una licencia Creative Commons BY-NC-ND 4.0 Internacional, https://creativecommons.org/licenses/by-nc-nd/4.0/legalcode.es, fecha de asignación de la licencia 2018-06-28, para un uso diferente consultar al responsable jurídico del repositorio por medio de rmf@ciencias.unam.mx

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001.#.#.#: oai:ojs.rmf.smf.mx:article/34

041.#.7.h: eng

520.3.#.a: Non-linear thermal radiation effects on non-aligned stagnation point flow of Maxwell fluid have been carried out in the present investigation. It is observed that the non-linear radiation augments the temperature and heat transfer rate. This physical phenomenon is translated into a system of partial differential equations (PDEs). After useful transformation, these non-linear constitutive equations are transformed into a system of ordinary differential equations (ODEs) and interpreted numerically by means of parallel shooting technique. Effects of pertinent parameters on flow and heat transfer are elaborated through tables and graphs. It is observed that radiation and surface heating enhance the rate of heat transfer, however Prandtl number has inverse relation with thermal boundary layer thickness. It has been observed that for increasing Prandtl number, heat transfer rate enhances. The detailed discussion of heat transfer rate is also presented in this study. Flow pattern is judged through streamlines graphs. It is also observed that oblique stagnation point flow behaves like orthogonal stagnation point flow, when free stream velocity is very large as compared to stretching velocity.

773.1.#.t: Revista Mexicana de Física; Vol 64, No 4 Jul-Aug (2018): 420-428

773.1.#.o: https://rmf.smf.mx/ojs/rmf/index

046.#.#.j: 2020-11-25 00:00:00.000000

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doi: https://doi.org/10.31349/RevMexFis.64.420

handle: 009768d1ef3c9bd0

harvesting_date: 2020-09-23 00:00:00.0

856.#.0.q: application/pdf

last_modified: 2020-11-27 00:00:00

license_url: https://creativecommons.org/licenses/by-nc-nd/4.0/legalcode.es

license_type: by-nc-nd

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Artículo

Non-linear radiation influence on oblique stagnation point flow of Maxwell fluid

Ghaffari, Abuzar; Javed, T.; Mustafa.

Facultad de Ciencias, UNAM, publicado en Revista Mexicana de Física, y cosechado de Revistas UNAM

Licencia de uso

Procedencia del contenido

Entidad o dependencia
Facultad de Ciencias, UNAM
Revista
Repositorio
Contacto
Revistas UNAM. Dirección General de Publicaciones y Fomento Editorial, UNAM en revistas@unam.mx

Cita

Ghaffari, Abuzar, et al. (2018). Non-linear radiation influence on oblique stagnation point flow of Maxwell fluid. Revista Mexicana de Física; Vol 64, No 4 Jul-Aug: 420-428. Recuperado de https://repositorio.unam.mx/contenidos/4108235

Descripción del recurso

Autor(es)
Ghaffari, Abuzar; Javed, T.; Mustafa.
Tipo
Artículo de Investigación
Área del conocimiento
Físico Matemáticas y Ciencias de la Tierra
Título
Non-linear radiation influence on oblique stagnation point flow of Maxwell fluid
Fecha
2018-06-28
Resumen
Non-linear thermal radiation effects on non-aligned stagnation point flow of Maxwell fluid have been carried out in the present investigation. It is observed that the non-linear radiation augments the temperature and heat transfer rate. This physical phenomenon is translated into a system of partial differential equations (PDEs). After useful transformation, these non-linear constitutive equations are transformed into a system of ordinary differential equations (ODEs) and interpreted numerically by means of parallel shooting technique. Effects of pertinent parameters on flow and heat transfer are elaborated through tables and graphs. It is observed that radiation and surface heating enhance the rate of heat transfer, however Prandtl number has inverse relation with thermal boundary layer thickness. It has been observed that for increasing Prandtl number, heat transfer rate enhances. The detailed discussion of heat transfer rate is also presented in this study. Flow pattern is judged through streamlines graphs. It is also observed that oblique stagnation point flow behaves like orthogonal stagnation point flow, when free stream velocity is very large as compared to stretching velocity.
Tema
Maxwell fluid, Oblique stagnation point, Thermal radiation, Parallel shooting method
Idioma
eng
ISSN
2683-2224 (digital); 0035-001X (impresa)

Enlaces