Literature DB >> 26120277

A Method to Represent Heterogeneous Materials for Rapid Prototyping: The Matryoshka Approach.

Shuangyan Lei1, Matthew C Frank1, Donald D Anderson2, Thomas D Brown2.   

Abstract

PURPOSE: The purpose of this paper is to present a new method for representing heterogeneous materials using nested STL shells, based, in particular, on the density distributions of human bones. DESIGN/METHODOLOGY/APPROACH: Nested STL shells, called Matryoshka models, are described, based on their namesake Russian nesting dolls. In this approach, polygonal models, such as STL shells, are "stacked" inside one another to represent different material regions. The Matryoshka model addresses the challenge of representing different densities and different types of bone when reverse engineering from medical images. The Matryoshka model is generated via an iterative process of thresholding the Hounsfield Unit (HU) data using computed tomography (CT), thereby delineating regions of progressively increasing bone density. These nested shells can represent regions starting with the medullary (bone marrow) canal, up through and including the outer surface of the bone.
FINDINGS: The Matryoshka approach introduced can be used to generate accurate models of heterogeneous materials in an automated fashion, avoiding the challenge of hand-creating an assembly model for input to multi-material additive or subtractive manufacturing. ORIGINALITY/VALUE: This paper presents a new method for describing heterogeneous materials: in this case, the density distribution in a human bone. The authors show how the Matryoshka model can be used to plan harvesting locations for creating custom rapid allograft bone implants from donor bone. An implementation of a proposed harvesting method is demonstrated, followed by a case study using subtractive rapid prototyping to harvest a bone implant from a human tibia surrogate.

Entities:  

Keywords:  Bone implant; Heterogeneous object modeling; Rapid manufacturing; Rapid prototyping

Year:  2014        PMID: 26120277      PMCID: PMC4480776          DOI: 10.1108/RPJ-10-2012-0095

Source DB:  PubMed          Journal:  Rapid Prototyp J        ISSN: 1355-2546            Impact factor:   3.095


  10 in total

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Authors:  Michael J Bosse; Ellen J MacKenzie; James F Kellam; Andrew R Burgess; Lawrence X Webb; Marc F Swiontkowski; Roy W Sanders; Alan L Jones; Mark P McAndrew; Brendan M Patterson; Melissa L McCarthy; Thomas G Travison; Renan C Castillo
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7.  ASB Clinical Biomechanics Award Paper 2010 Virtual pre-operative reconstruction planning for comminuted articular fractures.

Authors:  Thaddeus P Thomas; Donald D Anderson; Andrew R Willis; Pengcheng Liu; J Lawrence Marsh; Thomas D Brown
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Review 8.  A novel surgical technique for the management of massive osseous defects in the hindfoot with bulk allograft.

Authors:  Brian E Clowers; Mark S Myerson
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9.  Porous tantalum structures for bone implants: fabrication, mechanical and in vitro biological properties.

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10.  Electron beam-melted, free-form-fabricated titanium alloy implants: Material surface characterization and early bone response in rabbits.

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  10 in total

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