## Abstract Degradation of three types of model hydroxyapatite (HA) scaffolds was studied after __in vitro__ degradation in a sodium acetate buffer (pH 4). Degradation was evaluated using compression testing, scanning electron microscopy (SEM), inductively coupled plasma (ICP) analysis, and weight
Effect of porosity on the fluid flow characteristics and mechanical properties of tantalum scaffolds
โ Scribed by Daniel A. Shimko; Valerie Franz Shimko; Edward A. Sander; Kyle F. Dickson; Eric A. Nauman
- Publisher
- John Wiley and Sons
- Year
- 2005
- Tongue
- English
- Weight
- 424 KB
- Volume
- 73B
- Category
- Article
- ISSN
- 1552-4973
No coin nor oath required. For personal study only.
โฆ Synopsis
Abstract
In many cases of traumatic bone injury, bone grafting is required. The primary source of graft material is either autograft or allograft. The use of both material sources are well established, however, both suffer limitations. In response, many grafting alternatives are being explored. This article specifically focuses on a porous tantalum metal grafting material (Trabecular Metalโข) marketed by Zimmer. Twentyโone cylindrical scaffolds were manufactured (66% to 88% porous) and tested for porosity, intrinsic permeability, tangent elastic modulus, and for yield stress and strain behavior. Scaffold microstructural geometries were also measured. Tantalum scaffold intrinsic permeability ranged from 2.1 ร 10^โ10^ to 4.8 ร 10^โ10^ m^2^ and tangent elastic modulus ranged from 373 MPa to 2.2 GPa. Both intrinsic permeability and tangent elastic modulus closely matched porosityโmatched cancellous bone specimens from a variety of species and anatomic locations. Scaffold yield stress ranged from 4 to 12.7 MPa and was comparable to bovine and human cancellous bone. Yield strain was unaffected by scaffold porosity (average = 0.010 mm/mm). Understanding these structureโfunction relationships will help complete the basic physical characterization of this new material and will aid in the development of realistic mathematical models, ultimately enhancing future implant designs utilizing this material. ยฉ 2005 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater
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