变刚度对磁流变弹性体径向脉冲测量影响的研究

Kyle A. Weaver, D. Shumway, Tae-Heon Yang, Young-Min Kim, J. Koo
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摘要

目前的可穿戴技术努力在可穿戴设备中加入更多的医疗功能,以跟踪健康状况并提供及时治疗的信息。除了跟踪穿戴者的身体活动和基本生命体征外,可穿戴医疗设备的进步还希望持续监测健康参数,如心血管指标。为了正确监测心血管健康,可穿戴设备应该实时准确地测量血压。然而,目前市场上的设备还没有经过临床水平连续监测血压的验证。为了开发此类应用的可穿戴医疗设备,必须通过考虑各种参数(例如不同皮肤特性的影响)来验证它们。皮肤位于血管和可穿戴设备之间,会影响设备的传感器读数。本研究的主要目的是研究皮肤特性对径向脉冲测量的影响。为此,使用磁流变弹性体(MRE)制造了一系列具有不同性能的人工静脉插入皮肤样品,这种材料的机械性能可以通过外部磁场改变。样品包括用于模拟皮肤结构的层和用于脉冲通过的硅静脉。请注意,它们并不打算代表真实的人体皮肤-静脉特性,而是为了进行研究而创建的一系列刚度特性。实验使用凸轮系统能够产生真实的人体脉冲波形通过样品。在压痕测试过程中,使用动态机械分析仪(DMA)对样品进行压缩,以记录经历的表面压力,从而研究脉冲模式。不同的样品被用来探测基础树脂硬度、铁含量和磁场的影响。当DMA缩进样品以记录通过样品的脉冲压力时,在凸轮模拟器中集成的压力传感器用于对静脉内部脉冲压力进行基准测试。测试结果表明,蒙皮的特性会影响脉冲行为,特别是传感器和DMA记录的脉冲压力之比。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of Variable Stiffness Effects on Radial Pulse Measurements Using Magneto-Rheological Elastomers
Current wearable technologies strive to incorporate more medical functionalities in wearable devices for tracking health conditions and providing information for timely medical treatments. Beyond tracking of a wearer’s physical activities and basic vital signs, the advancement of wearable healthcare devices aspires to continuously monitor health parameters, such as cardiovascular indicators. To properly monitor cardiovascular health, the wearables should accurately measure blood pressure in real-time. However, current devices on the market are not validated for continuous monitoring of blood pressure at a clinical level. To develop wearable healthcare devices such applications, they must be validated by considering various parameters, such as the effects of varying skin properties. Being located between the blood vessel and the wearable device, the skin can affect the sensor readings of the device. The primary goal of this study is to investigate the effect of skin property on the radial pulse measurements. To this end, a range of artificial vein-inserted skin samples with varying properties is fabricated using Magneto-Rheological Elastomers (MRE), materials whose mechanical properties can be altered by external magnetic fields. The samples include layers to simulate the structure of skin and a silicone vein for the pulse to pass through. Note that they are not intended to represent real human skin-vein properties but created to vary a range of stiffness properties to carry out the study. Experiments are performed using a cam system capable of generating realistic human pulse waveforms to pass through the samples. During the indentation testing, the sample is compressed using a dynamic mechanical analyzer (DMA) to record experienced surface pressure, allowing the pulse patterns to be studied. Various samples are used to probe the effects of base resin hardness, iron content, and magnetic field. A pressure sensor incorporated in the cam simulator is used to benchmark the internal pulse pressure of the vein while the DMA indents the sample in order to note the pulse pressures being passed through the sample. Test results show that the properties of the skin influence the resulting pulse behaviors, particularly the ratio of the recorded pulse pressures from the sensor and the DMA.
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