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首页> 外文期刊>Annals of the American Thoracic Society >Design and Simulation of a Novel Pneumotronic System Aimed to the Investigation of Vascular Phenomena Induced by Limb Compression
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Design and Simulation of a Novel Pneumotronic System Aimed to the Investigation of Vascular Phenomena Induced by Limb Compression

机译:一种新型肺炎肺肺系统的设计与仿真旨在调查肢体压缩血管现象的研究

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摘要

Intermittent Pneumatic Compression (IPC) devices can be used to analyze the mechanisms underlying several vascular phenomena, such as hyperaemia. Commercial devices have limited dynamics and do not allow the delivery of customizable compressive pressure patterns, making the analysis of such phenomena difficult, which may require the application of long stimulations with low amplitude as well as fast compressions with higher pressure level. To overcome these issues, a novel pneumotronic device aimed to the investigation of the physiological effects induced by limb compressions is conceived and presented in this work. The design requirements of the system, capable of delivering customizable compressive patterns in the range 0 mmHg - 200 mmHg, are outlined. The final prototype architecture is described, and a mathematical model of the entire system, also including the interaction between the device and the limb tissues, is proposed. The performance of the device was evaluated in several conditions by means of simulations, whose results were compared to the data collected from experimental trials in order to validate the model. The outcomes of both experimentation and simulation trials proved the effectiveness of the solution proposed. A possible employment of this device for the investigation of the rapid compression-induced hyperaemia is presented. Other potential applications concern the wide range of intermittent-pneumatic compression treatments.
机译:间歇气动压缩(IPC)器件可用于分析几种血管现象的机制,例如高血血。商业设备具有有限的动力学,并且不允许提供可定制的压缩压力模式,使得这种现象的分析困难,这可能需要使用低幅度的长刺激以及具有更高压力水平的快速压缩。为了克服这些问题,旨在调查肢体压缩诱导的生理效应的新型肺炎肺部装置被认为并呈现在这项工作中。概述了系统的设计要求,能够在0mmhg-200mmhg范围内提供可自定义的压缩图案。提出了最终的原型架构,并且提出了整个系统的数学模型,还包括装置和肢体组织之间的相互作用。通过模拟在若干条件下评估设备的性能,其结果与从实验试验中收集的数据进行比较,以便验证模型。两种实验和仿真试验的结果证明了解决方案的有效性。提出了该装置对调查快速压缩诱导的高血血的可能就业。其他潜在应用涉及广泛的间歇性气动压缩处理。

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