T. Hassan, L. McKinney, R. Sandler, A. Kassab, C. Price, F. Moslehy, H. Mansy
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引用次数: 1
摘要
声在人体内的传播受声路沿线的组织组成和周围结构的影响。因此,声传输可能与涉及结构改变的病理有关。先前的研究利用声音传播来检测各种肺部、胃肠道、血管、心脏疾病和髋关节发育不良(DDH)[1][2][3][4][5][6]。本研究的目的是设计和测试一个可靠的系统,能够提供足够的声刺激,并同时测量多个皮肤表面位置的传输信号。研究目标包括确定:(1)在测点处达到目标信噪比(>20 dB)和激励点与测点之间达到目标相干度(>0.8)所需的静态负载;(2)励磁器对静负载变化的灵敏度;(3)励磁器输入最大功率及相应加速度。这些结果将有助于指导最佳激励器的选择:(1)能够承受足够的静载荷(~500g),这将提供与骨骼的耦合以达到目标信噪比和相干性;(2)对负荷的敏感性低(负荷变化的可变性低~100克);(3)能够提供足够的声激发能量,维持目标信噪比和相干性;(4)以合理的成本(~< 500美元)提供;(5)确保患者舒适(接触面积约2 cm 2无受试者不适报告)。
A System for Measuring Sound Transmission Through Joints
Sound transmission in the human body can be affected by the tissue composition along the sound path and surrounding structures. Therefore, acoustic transmission may correlate with pathologies involving structural changes. Previous studies utilized sound transmission to detect a variety of pulmonary, gastrointestinal, vascular, cardiac conditions, and developmental dysplasia of the hip (DDH) [1] [2] [3] [4] [5] [6] . The objective of this study is to design and test a reliable system capable of providing adequate acoustic stimulus, and simultaneously measure transmitted signals at multiple skin surface locations. The study objectives include determining: (1) the static load needed to reach a target SNR (>20 dB) at the measurement points and a target coherence (>0.8) between excitation and measurement points; (2) the exciter sensitivity to static load changes; and (3) the exciter input maximum power and corresponding acceleration. These results will help guide the choice of optimal exciter that: (1) can withstand sufficient static load (~500g), which would provide coupling to the bone to reach a target SNR and coherence; (2) has low sensitivity to load (low variability for a load change ~100 gm); (3) can provide sufficient acoustic excitation energy to maintain the target SNR and coherence; (4) be available at a reasonable cost (~<$500); (5) ensures patient comfort (with no subject discomfort reported for a contact area of ~ 2 cm 2 ).