EXPERIMENTAL INVESTIGATION ON A NOVEL OSSEOINTEGRATED IMPLANT STABILITY ASSESSMENT USING ON VIBRATION ANALYSIS

S. Lu, B. Vien, M. Russ, M. Fitzgerald, W. Chiu
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Abstract

Osseointegrated prostheses are widely used as the treatment for femur amputation. However, this technique requires sufficient implant stability before and during the rehabilitation period to mitigate the risk of implant breakage and loosening. Hence, reliable assessment methods for the osseointegration process are essential to ensure initial and long-term implant stability. This paper aims to investigate a vibration analysis method with a novel implant design, which focuses on the analysis of the dynamic response of the femur-implant system during the simulated osseointegration process. The paper also proposes a concept of using normalized energy difference to formulate an energy index (E-index). A 133mm-long amputated artificial femur model was constrained at the proximal end with a customized clamp. The epoxy adhesives were applied at the interface between the aforementioned femur and implant to simulate the change in stiffness in mimicking the osseointegration process. A two-unidirectionalsensor setup attached to the bottom of the implant was used to record the dynamic response stimulated by an impact hammer. The results show a significant change in magnitude of the cross-spectrum during the osseointegration processes. The resonance modes in cross-spectrum for the frequency above 1000Hz are hard to distinguish suggested that the vibration of the system being hindered by the high dampening effect of the adhesive before the initial bonding of the adhesive at 300s. The plot of E-index shows a clear correlation that the E-index provided a potential quantitative approach for monitoring the stages of osseointegration. These findings highlight the feasibility of using the vibration analysis technique and E-index to quantitatively monitor the osseointegration process for future improvement on the efficiency of human health monitoring and patient rehabilitation.
基于振动分析的新型骨整合种植体稳定性评价实验研究
骨整合假体被广泛应用于股骨截肢的治疗。然而,该技术在康复前和康复期间需要足够的种植体稳定性,以减轻种植体断裂和松动的风险。因此,可靠的骨整合过程评估方法对于确保初始和长期种植体稳定性至关重要。本文旨在研究一种新型种植体设计的振动分析方法,重点分析股骨-种植体系统在模拟骨整合过程中的动态响应。本文还提出了利用归一化能量差来制定能量指数(e指数)的概念。取长133mm的人工股骨截骨模型,近端用定制钳固定。在上述股骨与种植体之间的界面处应用环氧胶粘剂来模拟骨整合过程中刚度的变化。安装在植入物底部的双单向传感器用于记录受冲击锤刺激的动态响应。结果表明,在骨整合过程中,交叉光谱的大小发生了显著变化。1000Hz以上频率的跨谱共振模式难以分辨,说明在300s粘合剂初始粘接之前,粘合剂的高阻尼作用阻碍了系统的振动。E-index图显示了明显的相关性,E-index为监测骨整合阶段提供了一种潜在的定量方法。这些发现强调了利用振动分析技术和E-index定量监测骨整合过程的可行性,为未来提高人体健康监测和患者康复的效率提供了依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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