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An Updated Telemetry System for Reliable Powering In Vivo Coupled to a Tablet Computer

机译:一种更新的遥测系统,用于可靠地与平板电脑耦合供电

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摘要

Accurate and reliable in vivo measurement systems for orthopedic applications will allow a better understanding of native joint loading, gait patterns, and changes during healing and tissue regeneration. Robust and reliable telemetry units with an implantable transmitter and data acquisition software are necessary to insure long-term measurements. It was the goal of this study to update the current implantable telemetry system. Updates included using a new tablet computer for increased rates of data acquisition and encasing transmitters in a new waterproof casing. Software was developed using Labview on a Windows based Acer Iconia Tab. The Labview program allowed the user to save data to a measurement file and view the data in real time. The increased processing power of the tablet resulted in an increase in data collection rates from 29Hz to 87Hz. Interfacing the tablet computer with the telemetry system required the use of a RS-232 protocol to USB adapter. The newly developed tablet computer system was also used for load measurement collection during the most recent in vivo study. In order to insure transmitter function in vivo it was necessary to characterize the factors affecting transmission in vivo and develop transmitter and power coil designs that operated reliably. In the past implantable transmitters were noted to operate properly during bench top testing, but often failed after being placed in vivo. The two factors studied that limited power transfer to the transmitters were immersion in an aqueous environment and exposure to elevated temperatures. An aqueous environment significantly decreased power transfer by 11.9% (p-value = 0.014) relative to testing on the bench top. Additionally, a temperature increase to 40°C decreased power transfer by 6.2% (p-value = 0.017) when compared to power transfer in room temperature air. A solution that restored transmitter function required encasing transmitters in a new waterproof casing. Different casing designs made of silicone and semi-solid triglycerides were developed and tested on the bench top. Two different casing designs were used during in vivo testing and implanted into test animals. One casing design insured transmission while the other separated in vivo and did not facilitate transmission.
机译:骨科应用的准确而可靠的体内测量系统将使人们更好地了解自然关节负荷,步态模式以及愈合和组织再生过程中的变化。带有可植入发射器和数据采集软件的坚固可靠的遥测单元对于确保长期测量是必要的。这项研究的目的是更新当前的可植入遥测系统。更新内容包括使用新的平板电脑提高数据采集速率,并将变送器装入新的防水外壳中。该软件是使用Labview在基于Windows的Acer Iconia Tab上开发的。 Labview程序允许用户将数据保存到测量文件中并实时查看数据。平板电脑处理能力的提高导致数据收集率从29Hz增加到87Hz。将平板电脑与遥测系统连接需要使用RS-232协议到USB适配器。在最近的体内研究中,新开发的平板计算机系统还用于负荷测量。为了确保变送器在体内的功能,必须表征影响体内传输的因素,并开发可靠运行的变送器和功率线圈设计。过去,人们注意到可植入的发射器在台式测试过程中可以正常工作,但是在植入体内后通常会失败。研究的两个因素是,限制向变送器的功率传输是浸入水性环境中以及暴露于高温下。相对于台式测试,水性环境显着降低了11.9%的功率传输(p值= 0.014)。此外,与室温空气中的功率传输相比,温度升高到40°C会使功率传输降低6.2%(p值= 0.017)。恢复变送器功能的解决方案需要将变送器装入新的防水外壳中。开发了各种由硅树脂和半固态甘油三酸酯制成的套管设计,并在台式机上进行了测试。在体内测试期间使用了两种不同的套管设计并将其植入测试动物中。一种外壳设计确保了传输,而另一种则在体内分离并且不利于传输。

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    Ouellette Jacalyn Lee;

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  • 年度 2013
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