Nebosky, PS.; Schmid, SR.; Sellés Cantó, MÁ. (2011). The Springback Characteristics of a Porous Tantalum Sheet-Metal. Journal of Manufacturing Science and Engineering. 133(6):610221-610229. https://doi.org/10.1115/1.4005356
Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/28089
Título:
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The Springback Characteristics of a Porous Tantalum Sheet-Metal
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Autor:
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Nebosky, Paul S.
Schmid, Steven R.
Sellés Cantó, Miguel Ángel
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Entidad UPV:
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Universitat Politècnica de València. Departamento de Ingeniería Mecánica y de Materiales - Departament d'Enginyeria Mecànica i de Materials
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Fecha difusión:
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Resumen:
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[EN] This study examines the elastic recovery (springback) of a porous tantalum foam after sheet forming operations. The foam and sheet-like form is applicable to bone ingrowth surfaces on orthopedic implants and is desirable ...[+]
[EN] This study examines the elastic recovery (springback) of a porous tantalum foam after sheet forming operations. The foam and sheet-like form is applicable to bone ingrowth surfaces on orthopedic implants and is desirable due to its combination of high strength, low relative density, and excellent osteoconductive properties. Forming of the foam improves nestability during manufacture and is essential to have the material achieve the desired shape. Experimentally, bending about a single axis using a wiping die is studied by observing cracking and measuring springback. Die radius and clearance strongly affect the springback properties, while punch speed, embossing, die radius, and clearance all influence cracking. To study the effect of the foam microstructure, bending also is examined numerically. A horizontal hexagonal mesh comprised of beam elements is employed, which allows for the densification that occurs during forming. The flow strength of individual tantalum struts is directly measured in an atomic force microscope. The numerical results show that as the hexagonal cells are elongated along the sheet length, elastic springback decreases. By changing the material properties of the struts, the models can be modified for use with other open-cell metallic foams. © 2011 American Society of Mechanical Engineers.
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Palabras clave:
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Atomic force microscopes
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Beam elements
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Bone ingrowth
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Die radius
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Elastic recovery
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Flow strength
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Foam microstructure
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Hexagonal cells
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Hexagonal meshes
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High strength
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Material property
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Metallic foam
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Numerical results
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Open-cell
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Orthopedic implant
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Osteoconductive properties
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Punch speed
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Relative density
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Sheet forming
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Sheet-like
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Single-axis
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Spring-back
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Atomic force microscopy
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Forming
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Metal recovery
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Struts
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Tantalum
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Sheet metal
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Derechos de uso:
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Cerrado |
Fuente:
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Journal of Manufacturing Science and Engineering. (issn:
1087-1357
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DOI:
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10.1115/1.4005356
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Editorial:
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American Society of Mechanical Engineers (ASME)
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Versión del editor:
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http://manufacturingscience.asmedigitalcollection.asme.org/article.aspx?articleid=1460680&issueno=6#
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Agradecimientos:
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The authors would like to thank the financial support of the Trabecular Metal Division of Zimmer Holdings, LLC. The authors would also like to thank the personal support of Dr. Robert Pogge, Mr. Robert Cohen and Dr. Michael ...[+]
The authors would like to thank the financial support of the Trabecular Metal Division of Zimmer Holdings, LLC. The authors would also like to thank the personal support of Dr. Robert Pogge, Mr. Robert Cohen and Dr. Michael Hawkins for this research.
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Tipo:
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Artículo
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