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使用结构动力学测量检测假体窝局部压痕的概念验证。

Proof of Concept for the Detection of Local Pressure Marks in Prosthesis Sockets Using Structural Dynamics Measurement.

机构信息

Fraunhofer Institute for Machine Tools and Forming Technology, 09126 Chemnitz, Germany.

Professorship Adaptronics and Lightweight Design, Faculty of Mechanical Engineering, Chemnitz University of Technology, 09111 Chemnitz, Germany.

出版信息

Sensors (Basel). 2021 May 31;21(11):3821. doi: 10.3390/s21113821.

Abstract

The wear comfort of a prosthesis is of great importance for amputee patients. The wear comfort can be affected by changes in the interface between the residual limb and prosthesis socket, which can be caused by time-dependent volume fluctuations of the tissue, leading to unwanted local pressure marks. The basis to ensure time-independent wear comfort of a prosthesis is to identify these changes. Common techniques for identifying these variations have a negative impact on the sensitive interface between the residual limb and prosthesis. The following paper contains a proof of concept for the detection of local pressure marks without affecting the described interface using structural dynamics measurements, exemplarily shown at a prosthetic socket for transfemoral amputees in a test bench scenario. The dynamical behaviour of the investigated system is analysed in the form of frequency response functions acquired for different pressure locations and preloads using an impact hammer for excitation and a triaxial acceleration sensor. The frequency response functions show major changes for the various boundary conditions with respect to their frequency-dependent compositions. The results demonstrate how the utilised method enables the identification of changes in local pressure marks regarding the variation of position and magnitude.

摘要

假肢的穿着舒适度对于截肢患者来说非常重要。穿着舒适度可能会受到残肢和假肢接受腔之间界面变化的影响,这些变化可能是由于组织的体积随时间波动引起的,从而导致不必要的局部压痕。确保假肢穿着舒适度不随时间变化的基础是识别这些变化。常见的识别这些变化的技术会对残肢和假肢之间敏感的界面产生负面影响。本文提出了一种使用结构动力学测量来检测局部压痕而不影响所描述的界面的概念验证,该方法在一个测试台场景中,以用于股骨截肢者的假肢接受腔为例进行了示例展示。通过使用冲击锤作为激励源和三轴加速度传感器,针对不同的压力位置和预载情况获取频率响应函数,对所研究系统的动力学行为进行了分析。频率响应函数显示了不同边界条件在其频率相关组成方面的主要变化。结果表明,所使用的方法如何能够根据位置和幅度的变化来识别局部压痕的变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a2a5/8198458/5063fc9e0a9b/sensors-21-03821-g001.jpg

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