An image-based methodology to establish correlations between porosity and cutting force in micromilling of porous titanium foams

被引:20
作者
Fakhri, M. Abolghasemi [1 ,2 ]
Bordatchev, E. V. [1 ,2 ]
Tutunea-Fatan, O. R. [1 ]
机构
[1] Univ Western Ontario, Dept Mech & Mat Engn, London, ON N6A 5B9, Canada
[2] Natl Res Council Canada, Ind Mat Inst, Ctr Automot Mat & Mfg, London, ON N6G 4X8, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Porous titanium foam; Optical imaging; Image processing; Porosity; Micromilling; Cutting force; FLANK WEAR MEASUREMENT; COMPUTER VISION; METALLIC FOAMS; PERMEABILITY; FABRICATION;
D O I
10.1007/s00170-011-3647-1
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Porous titanium foam is now a standard material for various dental and orthopedic applications due to its light weight, high strength, and full biocompatibility properties. In practical biomedical applications, outer surface geometry and porosity topology significantly influence the adherence between implant and neighboring bone. New microfabrication technologies, such as micromilling and laser micromachining opened new technological possibilities for shape generation of this class of products. Besides typical geometric alterations, these manufacturing techniques enable a better control of the surface roughness that in turn affects to a large extent the friction between implant and surrounding bone tissue. This paper proposes an image analysis approach for optical investigation of the porosity that is tailored to the specifics of micromilling process, with emphasis on cutting force monitoring. According to this method, the area of porous material removed during micromilling operation is estimated from optical images of the micromachined surface, and then the percentage of solid material cut is calculated for each tool revolution. The employment of the aforementioned methodology in micromilling of the porous titanium foams revealed reasonable statistical correlations between porosity and cutting forces, especially when they were characterized by low-frequency variations. The developed procedure unlocks new opportunities in optimization of the implant surface micro-geometry, to be characterized by an increased roughness with minimal porosity closures in an attempt to maximize implant fixation through an appropriate level of bone ingrowth.
引用
收藏
页码:841 / 851
页数:11
相关论文
共 24 条
[11]   Assessment and visualisation of machine tool wear using computer vision [J].
Kerr, D ;
Pengilley, J ;
Garwood, R .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2006, 28 (7-8) :781-791
[12]   Porous Metals and Metallic Foams: Current Status and Recent Developments [J].
Lefebvre, Louis-Philippe ;
Banhart, John ;
Dunand, David C. .
ADVANCED ENGINEERING MATERIALS, 2008, 10 (09) :775-787
[13]  
Lefebvre LP, 2003, US Patent, Patent No. 6660224
[14]   Image segmentation and analysis for porosity measurement [J].
Malcolm, A. A. ;
Leong, H. Y. ;
Spowage, A. C. ;
Shacklock, A. P. .
JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2007, 192 :391-396
[15]   The effect of microstructure on the permeability of metallic foams [J].
Medraj, Mamoun ;
Baril, Eric ;
Loya, Virendra ;
Lefebvre, Louis-Philippe .
JOURNAL OF MATERIALS SCIENCE, 2007, 42 (12) :4372-4383
[16]   THRESHOLD SELECTION METHOD FROM GRAY-LEVEL HISTOGRAMS [J].
OTSU, N .
IEEE TRANSACTIONS ON SYSTEMS MAN AND CYBERNETICS, 1979, 9 (01) :62-66
[17]   Porosity Measurement Method by X-ray Computed Tomography [J].
Prokop, Josef ;
Sveda, Libor ;
Jancarek, Alexandr ;
Pina, Ladislav .
FRACTOGRAPHY OF ADVANCED CERAMICS III, 2009, 409 :402-405
[18]   Fabrication methods of porous metals for use in orthopaedic applications [J].
Ryan, G ;
Pandit, A ;
Apatsidis, DP .
BIOMATERIALS, 2006, 27 (13) :2651-2670
[19]  
Smith G.T., 1998, Metal powder report, V53, P31, DOI [10.1016/S0026-0657(98)85009-1, DOI 10.1016/S0026-0657(98)85009-1]
[20]   Mechanics considerations for microporous titanium as an orthopedic implant material [J].
Thelen, S ;
Barthelat, F ;
Brinson, LC .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2004, 69A (04) :601-610