An intelligent micro-fluidic system for drug delivery

F. Tay, W. O. Choong, Haifeng Liu, G. L. Xu
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引用次数: 5

Abstract

This paper describes the development and characterization of a micro-fluidic system which comprises of a micro-pump, passive micro-valve and its control circuit. Some applications for such a system include micro-coolant systems, micro-chemical analysis systems and fluid handling systems. Micro-fluidic systems are generally application specific and the focus of the proposed system is for drug delivery. The micro-pump is of the reciprocating membrane type and is based on piezoelectric actuation. It can be manufactured using MEMS fabrication technology such as silicon micro-machining. The pump utilizes check valves made of photosensitive polyimide as the rectifying unit and a O10 mm piezoelectric diaphragm as the actuator unit. The theoretical analysis for the actuator and valve characteristics is presented in this paper. The resulting effects on the flow characteristics and performance are also presented. Results obtained from experiments are also described. Based on these characteristics, a controller circuit is designed and fabricated. The controller uses a single-chip-computer as the processor unit. A liquid crystal display (LCD) is used to display the pump status and settings. The driver is powered by dry cells and it can provide a 200 V square wave input for the pump by utilizing a built-in transformer and regulator circuit. There are two modes of control, namely, frequency and voltage driving to control the pump performance characteristics such as flow rate and pump head. For this system, a maximum pump head and pump rate of 3.28 mH/sub 2/O and 900 /spl mu/L/min respectively are obtained.
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一种智能微流体给药系统
本文介绍了一种由微泵、无源微阀及其控制电路组成的微流体系统的研制和特性。这种系统的一些应用包括微冷却剂系统、微化学分析系统和流体处理系统。微流体系统通常是特定应用的,所提出的系统的重点是药物输送。该微型泵为往复膜式,基于压电驱动。可采用硅微加工等MEMS制造技术制造。该泵采用光敏聚酰亚胺制成的止回阀作为整流单元,O10毫米压电隔膜作为致动器单元。本文对执行机构和阀门的特性进行了理论分析。分析了其对流动特性和性能的影响。文中还叙述了实验结果。根据这些特点,设计并制作了控制电路。该控制器采用单片机作为处理器单元。液晶显示器(LCD)用于显示泵的状态和设置。驱动器由干电池供电,利用内置的变压器和调节电路,可以为泵提供200v的方波输入。有两种控制方式,即频率和电压驱动,以控制泵的流量和泵扬程等性能特性。该系统的最大泵扬程和泵流量分别为3.28 mH/sub 2/O和900 /spl mu/L/min。
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