dor_id: 41611

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100.1.#.a: Wei, Shuhuan; Chen, Lingen; Su, Fengrui

524.#.#.a: Wei, Shuhuan, et al. (2010). Constructal complex-objective optimization of electromagnet based on magnetic induction and maximum temperature difference. Revista Mexicana de Física; Vol 56, No 3: 245-0. Recuperado de https://repositorio.unam.mx/contenidos/41611

245.1.0.a: Constructal complex-objective optimization of electromagnet based on magnetic induction and maximum temperature difference

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

561.1.#.a: Facultad de Ciencias, UNAM

264.#.0.c: 2010

264.#.1.c: 2010-01-01

653.#.#.a: Constructal theory; electromagnet; complex-objective optimization

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 2010-01-01, para un uso diferente consultar al responsable jurídico del repositorio por medio de rmf@ciencias.unam.mx

884.#.#.k: https://rmf.smf.mx/ojs/rmf/article/view/3756

001.#.#.#: oai:ojs.rmf.smf.mx:article/3756

041.#.7.h: eng

520.3.#.a: The good performance of an electromagnet requires high magnetic induction and a low temperature. A new complex-objective function reflected magnetic induction and maximum temperature difference is set up, and the electromagnet is optimized using the new complex-objective function. The optimization results show that the performance of the electromagnet is improved as the number of high thermal conductivity cooling discs inserted increases. When the performance of the electromagnet achieves its best level, the solenoid becomes longer and thinner as the number of high thermal conductivity cooling discs increases. Simultaneously, the magnetic induction becomes higher and the maximum temperature difference becomes lower. The optimized performance of the electromagnet also improves as the volume of solenoid increases; simultaneously, the magnetic induction first increases and then decreases, and the maximum temperature difference decreases all along.

773.1.#.t: Revista Mexicana de Física; Vol 56, No 3 (2010): 245-0

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

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handle: 009acf1be3a2474b

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

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

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Artículo

Constructal complex-objective optimization of electromagnet based on magnetic induction and maximum temperature difference

Wei, Shuhuan; Chen, Lingen; Su, Fengrui

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

Wei, Shuhuan, et al. (2010). Constructal complex-objective optimization of electromagnet based on magnetic induction and maximum temperature difference. Revista Mexicana de Física; Vol 56, No 3: 245-0. Recuperado de https://repositorio.unam.mx/contenidos/41611

Descripción del recurso

Autor(es)
Wei, Shuhuan; Chen, Lingen; Su, Fengrui
Tipo
Artículo de Investigación
Área del conocimiento
Físico Matemáticas y Ciencias de la Tierra
Título
Constructal complex-objective optimization of electromagnet based on magnetic induction and maximum temperature difference
Fecha
2010-01-01
Resumen
The good performance of an electromagnet requires high magnetic induction and a low temperature. A new complex-objective function reflected magnetic induction and maximum temperature difference is set up, and the electromagnet is optimized using the new complex-objective function. The optimization results show that the performance of the electromagnet is improved as the number of high thermal conductivity cooling discs inserted increases. When the performance of the electromagnet achieves its best level, the solenoid becomes longer and thinner as the number of high thermal conductivity cooling discs increases. Simultaneously, the magnetic induction becomes higher and the maximum temperature difference becomes lower. The optimized performance of the electromagnet also improves as the volume of solenoid increases; simultaneously, the magnetic induction first increases and then decreases, and the maximum temperature difference decreases all along.
Tema
Constructal theory; electromagnet; complex-objective optimization
Idioma
eng
ISSN
2683-2224 (digital); 0035-001X (impresa)

Enlaces