Custom design and biomechanical analysis of 3D-printed PEEK rib prostheses

被引:85
作者
Kang, Jianfeng [1 ]
Wang, Ling [1 ]
Yang, Chuncheng [1 ]
Wang, Lei [2 ]
Yi, Cao [1 ]
He, Jiankang [1 ]
Li, Dichen [1 ]
机构
[1] Xi An Jiao Tong Univ, State Key Lab Mfg Syst Engn, Xian, Shaanxi, Peoples R China
[2] Fourth Mil Med Univ, Tangdu Hosp, Dept Thorac Surg, Xian, Shaanxi, Peoples R China
关键词
Custom design; Biomechanical analysis; Polyether ether ketone (PEEK); Rib prostheses; 3D printing; CHEST-WALL RECONSTRUCTION; TITANIUM RIBS; RESECTION; IMPLANTS; DEFECTS; THICKNESS; MESH;
D O I
10.1007/s10237-018-1015-x
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
A tumour resection normally involves a large tissue resection and bone replacement. Polyether ether ketone (PEEK) has become a suitable candidate for use in various prostheses owing to its lightness in weight, modulus close to that of natural bone, and good biocompatibility, among other factors. This study proposes a new design method for a rib prosthesis using the centroid trajectory of the natural replaced rib, where the strength can be adjusted by monitoring the cross-sectional area, shape, and properties. A custom-designed rib prosthesis was manufactured using fused deposition modelling (FDM) manufacturing technology, and the mechanical behaviour was found to be close to that of a natural rib. A finite element analysis of the designed rib was carried out under similar loading conditions to those used in mechanical testing. The results indicate that the centroid trajectory derived from a natural rib diaphysis can provide reliable guidance for the design of a rib prosthesis. Such methodology not only offers considerable design freedom in terms of shape and required strength, but also benefits the quality of the surface finishing for samples manufactured using the FDM technique. FDM-printed PEEK rib prostheses have been successfully implanted, and good clinical performances have been achieved.
引用
收藏
页码:1083 / 1092
页数:10
相关论文
共 30 条
[1]   An innovative method of reconstruction of large skeletal chest wall defects [J].
Agrawal, K ;
Subbarao, KSVK ;
Nachiappan, M ;
Arumugam, A .
PLASTIC AND RECONSTRUCTIVE SURGERY, 1998, 102 (03) :839-842
[2]   A technique for pediatric chest wall reconstruction using custom-designed titanium implants: description of technique and report of two cases [J].
Anderson, Colin J. ;
Spruiell, Murray D. ;
Wylie, Erin F. ;
McGowan, Caitlin M. ;
Deleyiannis, Frederic W. -B. ;
Donaldson, Nathan J. ;
Heare, Travis C. .
JOURNAL OF CHILDRENS ORTHOPAEDICS, 2016, 10 (01) :49-55
[3]   Dynamic 3D printed titanium copy prosthesis: a novel design for large chest wall resection and reconstruction [J].
Aragon, Javier ;
Perez Mendez, Itzell .
JOURNAL OF THORACIC DISEASE, 2016, 8 (06) :E385-E389
[4]   Tridimensional titanium-printed custom-made prosthesis for sternocostal reconstruction [J].
Aranda, Jose L. ;
Jimenez, Marcelo F. ;
Rodriguez, Maria ;
Varela, Gonzalo .
EUROPEAN JOURNAL OF CARDIO-THORACIC SURGERY, 2015, 48 (04) :E92-E94
[5]   The combination of polytetrafluoroethylene mesh and titanium rib implants: an innovative process for reconstructing large full thickness chest wall defects [J].
Berthet, Jean-Philippe ;
Wihlm, Jean-Marie ;
Canaud, Ludovic ;
Joyeux, Frederique ;
Cosma, Catalin ;
Hireche, Keira ;
Alric, Pierre ;
Marty-Ane, Charles-Henri .
EUROPEAN JOURNAL OF CARDIO-THORACIC SURGERY, 2012, 42 (03) :444-453
[6]   Experience with titanium devices for rib fixation and coverage of chest wall defects [J].
Bille, Andrea ;
Okiror, Lawrence ;
Karenovics, Wolfram ;
Routledge, Tom .
INTERACTIVE CARDIOVASCULAR AND THORACIC SURGERY, 2012, 15 (04) :588-595
[7]   Extruder path generation for Curved Layer Fused Deposition Modeling [J].
Chakraborty, Debapriya ;
Reddy, B. Aneesh ;
Choudhury, A. Roy .
COMPUTER-AIDED DESIGN, 2008, 40 (02) :235-243
[8]   Dimensional accuracy analysis of coupled fused deposition modeling and vapour smoothing operations for biomedical applications [J].
Chohan, Jasgurpreet Singh ;
Singh, Rupinder ;
Boparai, Kamaljit Singh ;
Penna, Rosa ;
Fraternali, Fernando .
COMPOSITES PART B-ENGINEERING, 2017, 117 :138-149
[9]   Titanium: a review on exposure, release, penetration, allergy, epidemiology, and clinical reactivity [J].
Fage, Simon W. ;
Muris, Joris ;
Jakobsen, Stig S. ;
Thyssen, Jacob P. .
CONTACT DERMATITIS, 2016, 74 (06) :323-345
[10]   Topological optimization in hip prosthesis design [J].
Fraldi, M. ;
Esposito, L. ;
Perrella, G. ;
Cutolo, A. ;
Cowin, S. C. .
BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2010, 9 (04) :389-402