Jang Ling-Sheng, Li Yuan-Jie, Lin Sung-Ju, Hsu Yi-Chu, Yao Wu-Sung, Tsai Mi-Ching, Hou Ching-Cheng
Department of Electrical Engineering and Center for Micro/Nano Science and Technology, National Cheng Kung University, Tainan, 701, Taiwan.
Biomed Microdevices. 2007 Apr;9(2):185-94. doi: 10.1007/s10544-006-9020-8.
Despite significant efforts to develop micropumps, cumbersome driving equipment means that the design of portable micropumps remains a challenge. This study presents a stand-alone micropump system, which includes a peristaltic micropump based on piezoelectric actuation and a driving circuit. This battery-based driving circuit comprises a 12 V battery, an ATmega 8535 microprocessor, a 12 V-to-180 V DC to DC converter using transformerless technology, three differential amplifiers, an IC 7805, a phase controller, an A/D converter, a keyboard and an LCD module. The system can produce step-function signals with voltages of up to 228 V(pp) and frequencies ranging from 10 Hz to 100 kHz, as the inputs for the pump. It is portable and programmable with the package size of 22 x 12.8 x 9 cm. Additionally, this proposed system is used to design the driving signals of the pump which are 3-, 4, and 6-phase actuation sequences. This work performs the circuit testing and fluid pumping, and demonstrates the effects of actuation sequences on pump performance in terms of the dynamic behavior of the diaphragm, flow rates, back pressure and power consumption of the system. The experimental results show that the pump excited by the 6-phase sequence results in better performance compared with the 3- and 4-phase sequences, and produces a maximum flow rate of 36.8 microl/min and a maximum back pressure of 520 Pa with deionized water at 100 V (pp) and 700 Hz.
尽管在开发微型泵方面付出了巨大努力,但笨重的驱动设备意味着便携式微型泵的设计仍然是一项挑战。本研究提出了一种独立的微型泵系统,该系统包括一个基于压电驱动的蠕动微型泵和一个驱动电路。这个基于电池的驱动电路包括一个12V电池、一个ATmega 8535微处理器、一个采用无变压器技术的12V至180V直流-直流转换器、三个差分放大器、一个IC 7805、一个相位控制器、一个A/D转换器、一个键盘和一个LCD模块。该系统可以产生高达228V(峰-峰值)的电压和10Hz至100kHz频率的阶跃函数信号,作为泵的输入。它便于携带且可编程,封装尺寸为22×12.8×9厘米。此外,该系统用于设计泵的驱动信号,这些信号为三相、四相和六相驱动序列。这项工作进行了电路测试和流体泵送,并从隔膜的动态行为、流速、背压和系统功耗方面展示了驱动序列对泵性能的影响。实验结果表明,与三相和四相序列相比,由六相序列驱动的泵性能更好,在100V(峰-峰值)和700Hz的电压下,使用去离子水时可产生最大流速36.8微升/分钟和最大背压520帕。