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A polymer-based microfluidic device with electrolyte-enabled distributed transducers (EEDT) for distributed load detection.

机译:一种基于聚合物的微流体设备,带有电解质启用的分布式传感器(EEDT),用于分布式负载检测。

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摘要

The capability of detecting distributed static and dynamic loads is indispensable in a wide variety of applications, such as examining anatomical structures of biological tissues in tissue health analysis and minimally invasive surgery (MIS) and determining the texture of an object in robotics. This dissertation presents a comprehensive study of a polymer-based microfluidic device with electrolyte-enabled distributed transducers and demonstrates a new concept on using a single microfluidic device for distributed-load detection, which takes advantage of the low-cost microfluidic fabrication technology and the low modulus and biocompatibility of polymer. The core of the device is a single deformable polymer microstructure integrated with electrolyte-enabled transducers. While distributed loads are converted to different levels of deflections by the polymer microstructure, the deflections of the microstructure are translated to resistance changes by the five pairs of distributed transducers underneath the microstructure. Firstly, the design and working principle of the device is described. Then, due to its simple but efficient configuration, a standard fabrication process well developed for polydimethylsiloxane(PDMS)-based microfluidic devices is detailed and employed to fabricate this device. After that, the experimental setups for characterizing the device performance in static, step and sinusoidal inputs are illustrated. The experimental data then are collected and processed by using custom-built electronic circuits and custom LabVIEW/Matlab program to characterize the device performance. Lastly, the performance analysis of the device is conducted to obtain the performance parameters such as device sensitivity and load resolution. In summary, this polymer-based microfluidic device not only demonstrates the new concept and the capability of detecting distributed static and dynamic loads with a single device, with a thorough experimental study on the performance and characterization of this PDMS-based microfluidic device to correlate the device performance to its design parameters, but also the potential application of directly adopting this experimental method to measure the elasticity/viscoelasticity of a soft tissue.
机译:在各种应用中,检测分布的静态和动态负载的能力是必不可少的,例如在组织健康分析和微创手术(MIS)中检查生物组织的解剖结构,并在机器人技术中确定对象的纹理。本文对具有电解质功能的分布式换能器的基于聚合物的微流体装置进行了全面的研究,并展示了使用单个微流体装置进行分布式负载检测的新概念,该技术利用了低成本的微流体制造技术和低廉的制造成本。聚合物的模量和生物相容性。该设备的核心是与电解质启用的传感器集成在一起的单个可变形聚合物微结构。当聚合物的微结构将分布的载荷转换为不同程度的挠度时,微结构下方的五对分布式传感器将微结构的挠度转换为电阻变化。首先,描述该装置的设计和工作原理。然后,由于其简单而有效的配置,详细介绍了针对聚二甲基硅氧烷(PDMS)的微流体器件开发的标准制造工艺,并将其用于制造该器件。此后,说明了用于表征设备在静态,步进和正弦输入中的性能的实验设置。然后,使用定制的电子电路和定制的LabVIEW / Matlab程序收集并处理实验数据,以表征设备性能。最后,对设备进行性能分析以获得性能参数,例如设备灵敏度和负载分辨率。综上所述,这种基于聚合物的微流体设备不仅展示了新的概念以及使用单个设备检测分布的静态和动态载荷的能力,而且还对基于PDMS的微流体设备的性能和特性进行了深入的实验研究,以关联设备性能与其设计参数有关,但直接采用这种实验方法来测量软组织的弹性/粘弹性的潜在应用。

著录项

  • 作者

    Cheng, Peng.;

  • 作者单位

    Old Dominion University.;

  • 授予单位 Old Dominion University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 153 p.
  • 总页数 153
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 古生物学;
  • 关键词

  • 入库时间 2022-08-17 11:41:42

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