Development of a Hip Joint Socket by Finite-Element-Based Analysis for Mechanical Assessment

Author:

González Ana Karen1ORCID,Rodríguez-Reséndiz Juvenal1ORCID,Gonzalez-Durán José Eli Eduardo2ORCID,Olivares Ramírez Juan Manuel3ORCID,Estévez-Bén Adyr A.14ORCID

Affiliation:

1. Engineering Faculty, Universidad Autónoma de Querétaro, Querétaro 76010, Mexico

2. Electronics Engineering Department, Instituto Tecnológico Superior del Sur de Guanajuato, Guanajuato 38980, Mexico

3. Department of Renewable Energy, Universidad Tecnológica de San Juan del Río, Querétaro 76800, Mexico

4. Chemistry Faculty, Universidad Autónoma de Querétaro, Querétaro 76010, Mexico

Abstract

This article evaluates a hip joint socket design by finite element method (FEM). The study was based on the needs and characteristics of a patient with an oncological amputation; however, the solution and the presented method may be generalized for patients with similar conditions. The research aimed to solve a generalized problem, taking a typical case from the study area as a reference. Data were collected on the use of the current improving prosthesis—specifically in interaction with its socket—to obtain information on the new approach design: this step constituted the work’s starting point, where the problems to be solved in conventional designs were revealed. Currently, the development of this type of support does not consider the functionality and comfort of the patient. Research has reported that 58% of patients with sockets have rejected their use, because they do not fit comfortably and functionally; therefore, patients’ low acceptance or rejection of the use of the prosthesis socket has been documented. In this study, different designs were evaluated, based on the FEM as scientific support for the results obtained, for the development of a new ergonomic fit with a 60% increase in patient compliance, that had correct gait performance when correcting postures, improved fit–user interaction, and that presented an esthetic fit that met the usability factor. The validation of the results was carried out through the physical construction of the prototype. The research showed how the finite element method improved the design, analyzing the structural behavioral, and that it could reduce cost and time instead of generating several prototypes.

Publisher

MDPI AG

Subject

Bioengineering

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