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Textile-embedded sensors for wearable physiological monitoring systems.

机译:用于可穿戴生理监测系统的纺织品嵌入式传感器。

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摘要

For long-term physiological monitoring inside or outside a hospital setting, a reliable, wearable monitoring system would be a convenient platform if biomedical sensors are securely placed in appropriate positions. An article of clothing is an attractive platform to implement such a wearable system. It is highly desirable that the sensors be designed and integrated into the garment in an unobtrusive way.;The purpose of the dissertation is to develop textile-embedded biomedical sensors that can be integrated into textile substrates in a seamless manner for long-term ECG and respiration monitoring while normal daily activities including walking, jogging, sleeping, sitting, and other exercise are transpiring. These sensors should provide both a comfortable textile interface and robustness against noise and motion artifacts.;For ECG monitoring, we developed textile-embedded active electrodes that transform high input impedance signals to low impedance versions by employing a voltage follower circuit. The fabric active electrodes include a transducer layer on the top of the nonwoven substrates and a circuit layer on the bottom. The transducer area, signal path and power lines are filled with Ag/AgCl ink by screen printing or hand painting. The electrical components and external wires were attached using adhesive conductive inks and protected by another textile covering layer.;For respiration monitoring, we devised a fabric sensor structure based on double nonwoven substrates. Stretchable and non-stretchable segments of nonwoven fabrics are laterally attached by, for example, ultra sonic bonding. The stretchable fabrics are employed in belts around the chest and abdomen and respond to breathing effort by changing the sensor's length in the direction of the strain applied. Rectangular plates for a capacitive sensor or an open-rectangular spiral for an inductive sensor is deposited on the non-stretchable fabric portions of the sensors by printing or painting silver ink. Their relative positions change when the stretchable portion activates. Each plate is initially placed so that the conducting areas overlap minimally. As the stretchable portions of the device are exercised, the two plates slide in opposite directions, changing the effective area and hence the capacitance or inductance values. These capacitance or inductance variations are transformed into voltage outputs by electronic circuits individually designed for each sensor. For single and differential modes of operation in the capacitive sensor, various electrode patterns are suggested. For the inductive sensor, various configurations of spirals are presented to form three different types of planar inductive displacement sensors: a single inductor sensor, a transformer-type differential sensor, and an autotransformer-type differential sensor.;In addition to the design based on double substrates, we demonstrate a respiratory inductive sensor based on a single substrate. To form an inductive sensing area, fine magnet wires are stitched on a stretchable nonwoven substrate. The textile substrates supporting the conducting materials are then laminated to stabilize the geometric structure relationships and mechanically protect the sensor.;Finally, we transform these textile-embedded sensors into a wearable human physiology monitoring system. The various elements of the system are described. Finally, we discuss the possibility of using the system for sleep apnea detection and sleep staging.
机译:对于在医院内或医院外进行长期生理监测,如果将生物医学传感器牢固地放置在适当的位置,则可靠,可穿戴的监测系统将是一个方便的平台。衣服是实现这种可穿戴系统的有吸引力的平台。迫切需要以不显眼的方式设计传感器并将其集成到服装中。论文的目的是开发可嵌入纺织品的生物医学传感器,以无缝方式将其集成到纺织品基材中,以实现长期ECG和在正常的日常活动(包括步行,慢跑,睡觉,坐着和其他运动)进行时进行呼吸监测。这些传感器应既提供舒适的纺织品界面,又具有抵御噪声和运动伪影的鲁棒性。对于ECG监测,我们开发了嵌入纺织品的有源电极,该电极通过采用电压跟随器电路将高输入阻抗信号转换为低阻抗版本。织物活性电极包括在非织造基底的顶部上的换能器层和在底部上的电路层。传感器区域,信号路径和电源线通过丝网印刷或手工涂装以Ag / AgCl墨水填充。电气元件和外部电线使用粘合剂导电油墨连接,并由另一个纺织品覆盖层保护。为了进行呼吸监测,我们设计了一种基于双重非织造基材的织物传感器结构。非织造织物的可拉伸和不可拉伸的片段通过例如超声波粘合而横向地连接。可伸展的织物用于胸部和腹部周围的皮带中,并通过在施加应变的方向上改变传感器的长度来响应呼吸作用。通过印刷或涂银油墨,将用于电容式传感器的矩形板或用于电感式传感器的矩形矩形螺旋形沉积在传感器的不可拉伸织物部分上。当可拉伸部分激活时,它们的相对位置会发生变化。最初放置每个极板,使导电区域重叠最小。在锻炼设备的可拉伸部分时,两块板沿相反方向滑动,从而改变了有效面积,从而改变了电容或电感值。这些电容或电感的变化通过为每个传感器单独设计的电子电路转换为电压输出。对于电容传感器中的单一和差分操作模式,建议使用各种电极模式。对于电感式传感器,提出了各种螺旋结构,以形成三种不同类型的平面电感式位移传感器:单个电感器传感器,变压器型差分传感器和自耦变压器型差分传感器。在双重基材上,我们展示了基于单一基材的呼吸感应传感器。为了形成感应感应区域,将细的电磁线缝在可拉伸的非织造基材上。然后层压支撑导电材料的纺织品基材,以稳定几何结构关系并机械保护传感器。最后,我们将这些嵌入纺织品的传感器转变为可穿戴的人体生理监测系统。描述了系统的各个要素。最后,我们讨论了使用该系统进行睡眠呼吸暂停检测和睡眠分期的可能性。

著录项

  • 作者

    Kang, Tae-Ho.;

  • 作者单位

    North Carolina State University.;

  • 授予单位 North Carolina State University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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