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1.
Med Biol Eng Comput ; 60(5): 1497-1510, 2022 May.
Artículo en Inglés | MEDLINE | ID: mdl-35314956

RESUMEN

Any mechanical instability associated with total hip replacement (THR) excites elastic waves with different frequencies and propagates through the surrounding biological layers. Using the acoustic emission (AE) technique as a THR monitoring tool provides valuable information on structural degradations associated with these implants. However, several factors can compromise the reliability of the signals detected by AE sensors, such as attenuation of the detected signal due to the presence of biological layers in the human body between prosthesis (THR) and AE sensor. The main objective of this study is to develop a numerical model of THR that evaluates the impact of biological layer thicknesses on AE signal propagation. Adipose tissue thickness, which varies the most between patients, was modeled at two different thicknesses 40 mm and 70 mm, while the muscle and skin thicknesses were kept to a constant value. The proposed models were tested at different micromotions of 2 µm, 15-20 µm at modular junctions, and different frequencies of 10-60 kHz. Attenuation of signal is observed to be more with an increase in the selected boundary conditions along with an increase in distance the signals propagate through. Thereby, the numerical observations drawn on each interface helped to simulate the effect of tissue thicknesses and their impact on the attenuation of elastic wave propagation to the AE receiver sensor.


Asunto(s)
Artroplastia de Reemplazo de Cadera , Acústica , Artroplastia de Reemplazo de Cadera/métodos , Humanos , Prótesis e Implantes , Reproducibilidad de los Resultados
2.
Med Biol Eng Comput ; 58(8): 1637-1650, 2020 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-32533510

RESUMEN

Nowadays, acoustic emission (AE) has its applications in various areas, including mechanical, civil, underwater acoustics, and biomedical engineering. It is a non-destructive evaluation (NDE) and a non-intrusive method to detect active damage mechanisms such as crack growth, delamination, and processes such as friction, continuous wear, etc. The application of AE in orthopedics, especially in hip implant monitoring, is an emerging research field. This article presents a thorough literature review associated with the implementation of acoustic emission as a diagnostic tool for total hip replacement (THR) implants. Structural health monitoring of an implant via acoustic emission and vibration analysis is an evolving research area in the field of biomedical engineering. A review of the literature reveals a lack of reliable, non-invasive, and non-traumatic early warning methods to evaluate implant loosening that can help to identify patients at risk for osteolysis prior to implant failure. Developing an intelligent acoustic emission technique with excellent condition monitoring capabilities will be an achievement of great importance that fills the gaps or drawbacks associated with osteolysis/implant failure. Graphical abstract.


Asunto(s)
Artroplastia de Reemplazo de Cadera/métodos , Monitoreo Fisiológico/métodos , Procedimientos Ortopédicos/métodos , Acústica , Animales , Fenómenos Biomecánicos/fisiología , Fricción/fisiología , Prótesis de Cadera , Humanos , Ensayo de Materiales/métodos , Falla de Prótesis , Vibración
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