Design and Mechanical Characterization of a Variable Stiffness ESR Foot Prosthesis

被引:2
作者
Tabucol, Johnnidel [1 ]
Leopaldi, Marco [1 ,2 ]
Brugo, Tommaso Maria [1 ]
Oddsson, Magnus [3 ]
Zucchelli, Andrea [1 ]
机构
[1] Univ Bologna, Dept Ind Engn, I-40134 Bologna, Italy
[2] Univ Bologna, Interdept Ctr Ind Res Adv Mech Engn Applicat & Mat, I-40134 Bologna, Italy
[3] Ossur, IS-110 Reykjavik, Iceland
关键词
Prosthetics; Solid modeling; Foot; Patient rehabilitation; rehabilitation; variable stiffness foot prosthesis; AMPUTEES; WALKING;
D O I
10.1109/ACCESS.2024.3427391
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In this article, MyFlex- epsilon , an ESR foot prosthesis equipped with a light and manually adjustable mechanism that allows for varying its stiffness in the sagittal plane, and a systematic approach to calculate its rotation-stiffness curves are presented. Through a design of experiment conducted numerically using a two-dimensional (2D) finite element (FE) model, calibrated experimentally, a geometric parameter whose variation alters the sagittal plane stiffness of a prosthesis originally designed with invariable stiffness, MyFlex- delta , was determined. After building the mechanism and integrating it into MyFlex- delta to obtain MyFlex- epsilon , the displacement-force curves of the latter through tests equivalent to the static tests specified in ISO 10328 were determined. Based on the experimental results, the 2D FE model of MyFlex- epsilon was built and calibrated to determine its rotation-stiffness curves in the sagittal plane. Comparing the rotation-stiffness curves obtained with the most compliant setting to the stiffest setting, stiffness variations of 119%, 122%, 138%, and 162% at plantarflexion angles of -5 degrees and -2.5 degrees, and dorsiflexion angles of 7.5 degrees and 15 degrees, respectively, were found.
引用
收藏
页码:97544 / 97556
页数:13
相关论文
共 41 条
[1]   Novel Method to Evaluate Angular Stiffness of Prosthetic Feet From Linear Compression Tests [J].
Adamczyk, Peter G. ;
Roland, Michelle ;
Hahn, Michael E. .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2013, 135 (10)
[2]  
[Anonymous], 2017, ANSYS Mechanical APDL Element Reference
[3]   Perceptions and biomechanical effects of varying prosthetic ankle stiffness during uphill walking: A case series [J].
Armannsdottir, Anna Lara ;
Lecomte, Christophe ;
Lemaire, Edward ;
Brynjolfsson, Sigurour ;
Briem, Kristin .
GAIT & POSTURE, 2024, 108 :354-360
[4]   Advancements, Trends and Future Prospects of Lower Limb Prosthesis [J].
Asif, Muhammad ;
Tiwana, Mohsin Islam ;
Khan, Umar Shahbaz ;
Qureshi, Waqar Shahid ;
Iqbal, Javaid ;
Rashid, Nasir ;
Naseer, Noman .
IEEE ACCESS, 2021, 9 :85956-85977
[5]   Understanding patient preference in prosthetic ankle stiffness [J].
Clites, Tyler R. ;
Shepherd, Max K. ;
Ingraham, Kimberly A. ;
Wontorcik, Leslie ;
Rouse, Elliott J. .
JOURNAL OF NEUROENGINEERING AND REHABILITATION, 2021, 18 (01)
[6]  
Clites TR, 2020, P IEEE RAS-EMBS INT, P1073, DOI 10.1109/BioRob49111.2020.9224405
[7]   Epidemiology of Limb Amputations and Prosthetic Use During COVID-19 Pandemic in the Netherlands [J].
Frolke, Jan Paul M. ;
Rommers, G. M. Clemens ;
de Boer, Arjen W. ;
Groenveld, Tjitske D. ;
Leijendekkers, Ruud .
ARCHIVES OF PHYSICAL MEDICINE AND REHABILITATION, 2024, 105 (02) :280-286
[8]   Automated Characterization of Anthropomorphicity of Prosthetic Feet Fitted to Bone-Anchored Transtibial Prosthesis [J].
Frossard, Laurent ;
Leech, Barry ;
Pitkin, Mark .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2019, 66 (12) :3402-3410
[9]   A public dataset of overground and treadmill walking kinematics and kinetics in healthy individuals [J].
Fukuchi, Claudiane A. ;
Fukuchi, Reginaldo K. ;
Duarte, Marcos .
PEERJ, 2018, 6
[10]   Review of secondary physical conditions associated with lower-limb amputation and long-term prosthesis use [J].
Gailey, Robert ;
Allen, Kerry ;
Castles, Julie ;
Kucharik, Jennifer ;
Roeder, Mariah .
JOURNAL OF REHABILITATION RESEARCH AND DEVELOPMENT, 2008, 45 (01) :15-29