Design of a 3D-printed hand prosthesis featuring articulated bio-inspired fingers

被引:29
作者
Cuellar, Juan Sebastian [1 ]
Plettenburg, Dick [1 ]
Zadpoor, Amir A. [1 ]
Breedveld, Paul [1 ]
Smit, Gerwin [1 ]
机构
[1] Delft Univ Technol, Fac Mech Maritime & Mat Engn, Dept Biomech Engn, Mekelweg 2, NL-2600 AA Delft, Netherlands
关键词
3D printing; hand prostheses; bio-inspired design; mechanical design; biomedical devices;
D O I
10.1177/0954411920980889
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Various upper-limb prostheses have been designed for 3D printing but only a few of them are based on bio-inspired design principles and many anatomical details are not typically incorporated even though 3D printing offers advantages that facilitate the application of such design principles. We therefore aimed to apply a bio-inspired approach to the design and fabrication of articulated fingers for a new type of 3D printed hand prosthesis that is body-powered and complies with basic user requirements. We first studied the biological structure of human fingers and their movement control mechanisms in order to devise the transmission and actuation system. A number of working principles were established and various simplifications were made to fabricate the hand prosthesis using a fused deposition modelling (FDM) 3D printer with dual material extrusion. We then evaluated the mechanical performance of the prosthetic device by measuring its ability to exert pinch forces and the energy dissipated during each operational cycle. We fabricated our prototypes using three polymeric materials including PLA, TPU, and Nylon. The total weight of the prosthesis was 92 g with a total material cost of 12 US dollars. The energy dissipated during each cycle was 0.380 Nm with a pinch force of approximate to 16 N corresponding to an input force of 100 N. The hand is actuated by a conventional pulling cable used in BP prostheses. It is connected to a shoulder strap at one end and to the coupling of the whiffle tree mechanism at the other end. The whiffle tree mechanism distributes the force to the four tendons, which bend all fingers simultaneously when pulled. The design described in this manuscript demonstrates several bio-inspired design features and is capable of performing different grasping patterns due to the adaptive grasping provided by the articulated fingers. The pinch force obtained is superior to other fully 3D printed body-powered hand prostheses, but still below that of conventional body powered hand prostheses. We present a 3D printed bio-inspired prosthetic hand that is body-powered and includes all of the following characteristics: adaptive grasping, articulated fingers, and minimized post-printing assembly. Additionally, the low cost and low weight make this prosthetic hand a worthy option mainly in locations where state-of-the-art prosthetic workshops are absent.
引用
收藏
页码:336 / 345
页数:10
相关论文
共 38 条
[1]  
Alkhatib F, 2019, INT C REHAB ROBOT, P784, DOI [10.1109/ICORR.2019.8779372, 10.1109/icorr.2019.8779372]
[2]   Data for benchmarking low-cost, 3D printed prosthetic hands [J].
Alkhatib, Farah ;
Cabibihan, John-John ;
Mandi, Elsadig .
DATA IN BRIEF, 2019, 25
[3]   Development and Control of a Multifunctional Prosthetic Hand with Shape Memory Alloy Actuators [J].
Andrianesis, Konstantinos ;
Tzes, Anthony .
JOURNAL OF INTELLIGENT & ROBOTIC SYSTEMS, 2015, 78 (02) :257-289
[4]   Design and Development of a Multifingered Prosthetic Hand [J].
Bahari, M. Saiful ;
Jaffar, Ahmed ;
Low, Cheng Yee ;
Jaafar, Roseleena ;
Roese, Kolja ;
Yussof, Hanafiah .
INTERNATIONAL JOURNAL OF SOCIAL ROBOTICS, 2012, 4 (01) :59-66
[5]  
BASF, 2017, THERM POL EL EL MAT
[6]   Mechanical design and performance specifications of anthropomorphic prosthetic hands: A review [J].
Belter, Joseph T. ;
Segil, Jacob L. ;
Dollar, Aaron M. ;
Weir, Richard F. .
JOURNAL OF REHABILITATION RESEARCH AND DEVELOPMENT, 2013, 50 (05) :599-617
[7]   Structure-function relationships in tendons: a review [J].
Benjamin, M. ;
Kaiser, E. ;
Milz, S. .
JOURNAL OF ANATOMY, 2008, 212 (03) :211-228
[8]  
Chandler R., 1975, Investigation of Inertial Properties of the Human Body, P171
[9]   Ten guidelines for the design of non-assembly mechanisms: The case of 3D-printed prosthetic hands [J].
Cuellar, Juan Sebastian ;
Smit, Gerwin ;
Zadpoor, Amir A. ;
Breedveld, Paul .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART H-JOURNAL OF ENGINEERING IN MEDICINE, 2018, 232 (09) :962-971
[10]   Additive manufacturing of non-assembly mechanisms [J].
Cuellar, Juan Sebastian ;
Smit, Gerwin ;
Plettenburg, Dick ;
Zadpoor, Amir .
ADDITIVE MANUFACTURING, 2018, 21 :150-158