dor_id: 45852

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351.#.#.b: Journal of Applied Research and Technology

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856.4.0.u: https://jart.icat.unam.mx/index.php/jart/article/view/38/37

100.1.#.a: Conteh, Michael A.; Nsofor, Emmanuel C.

524.#.#.a: Conteh, Michael A., et al. (2016). Composite flywheel material design for high-speed energy storage. Journal of Applied Research and Technology; Vol. 14 Núm. 3. Recuperado de https://repositorio.unam.mx/contenidos/45852

245.1.0.a: Composite flywheel material design for high-speed energy storage

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

561.1.#.a: Instituto de Ciencias Aplicadas y Tecnología, UNAM

264.#.0.c: 2016

264.#.1.c: 2016-06-01

653.#.#.a: Flywheel; Energy storage; High-speed; Composites; Energy-density

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-SA 4.0 Internacional, https://creativecommons.org/licenses/by-nc-sa/4.0/legalcode.es, para un uso diferente consultar al responsable jurídico del repositorio por medio del correo electrónico gabriel.ascanio@icat.unam.mx

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041.#.7.h: eng

520.3.#.a: Lamina and laminate mechanical properties of materials suitable for flywheel high-speed energy storage were investigated. Low density, low modulus and high strength composite material properties were implemented for the constant stress portion of the flywheel while higher density, higher modulus and strength were implemented for the constant thickness portion of the flywheel. Design and stress analysis were used to determine the maximum energy densities and shape factors for the flywheel. Analytical studies along with the use of the CADEC-online software were used to evaluate the lamina and laminate properties. This study found that a hybrid composite of M46J/epoxy–T1000G/epoxy for the flywheel exhibits a higher energy density when compared to known existing flywheel hybrid composite materials such as boron/epoxy–graphite/epoxy. Results from this study will contribute to further development of the flywheel that has recently re-emerged as a promising application for energy storage due to significant improvements in composite materials and technology.

773.1.#.t: Journal of Applied Research and Technology; Vol. 14 Núm. 3

773.1.#.o: https://jart.icat.unam.mx/index.php/jart

022.#.#.a: ISSN electrónico: 2448-6736; ISSN: 1665-6423

310.#.#.a: Bimestral

264.#.1.b: Instituto de Ciencias Aplicadas y Tecnología, UNAM

doi: https://doi.org/10.22201/icat.16656423.2016.14.3.38

harvesting_date: 2023-11-08 13:10:00.0

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Artículo

Composite flywheel material design for high-speed energy storage

Conteh, Michael A.; Nsofor, Emmanuel C.

Instituto de Ciencias Aplicadas y Tecnología, UNAM, publicado en Journal of Applied Research and Technology, y cosechado de Revistas UNAM

Licencia de uso

Procedencia del contenido

Cita

Conteh, Michael A., et al. (2016). Composite flywheel material design for high-speed energy storage. Journal of Applied Research and Technology; Vol. 14 Núm. 3. Recuperado de https://repositorio.unam.mx/contenidos/45852

Descripción del recurso

Autor(es)
Conteh, Michael A.; Nsofor, Emmanuel C.
Tipo
Artículo de Investigación
Área del conocimiento
Ingenierías
Título
Composite flywheel material design for high-speed energy storage
Fecha
2016-06-01
Resumen
Lamina and laminate mechanical properties of materials suitable for flywheel high-speed energy storage were investigated. Low density, low modulus and high strength composite material properties were implemented for the constant stress portion of the flywheel while higher density, higher modulus and strength were implemented for the constant thickness portion of the flywheel. Design and stress analysis were used to determine the maximum energy densities and shape factors for the flywheel. Analytical studies along with the use of the CADEC-online software were used to evaluate the lamina and laminate properties. This study found that a hybrid composite of M46J/epoxy–T1000G/epoxy for the flywheel exhibits a higher energy density when compared to known existing flywheel hybrid composite materials such as boron/epoxy–graphite/epoxy. Results from this study will contribute to further development of the flywheel that has recently re-emerged as a promising application for energy storage due to significant improvements in composite materials and technology.
Tema
Flywheel; Energy storage; High-speed; Composites; Energy-density
Idioma
eng
ISSN
ISSN electrónico: 2448-6736; ISSN: 1665-6423

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