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用于药物控制输送应用的封装蠕动式微型泵。

Packaged peristaltic micropump for controlled drug delivery application.

作者信息

Vinayakumar K B, Nadiger Girish, R Shetty Vikas, Dinesh N S, Nayak M M, Rajanna K

机构信息

Department of Instrumentation and Applied Physics, Indian Institute Of Science, Bangalore 560012, India.

Department of Electronic System Engineering, Indian Institute Of Science, Bangalore 560012, India.

出版信息

Rev Sci Instrum. 2017 Jan;88(1):015102. doi: 10.1063/1.4973513.

Abstract

Micropump technology has evolved significantly in the last two decades and is finding a variety of applications ranging from μTAS (micro Total Analysis System) to drug delivery. However, the application area of the micropump is limited owing to: simple pumping mechanism, ease of handling, controlled (microliter to milliliter) delivery, continuous delivery, and accuracy in flow rate. Here, the author presents the design, development, characterization, and precision flow controlling of a DC-motor driven peristaltic pump for controlled drug delivery application. All the micropump components were fabricated using the conventional fabrication technique. The volume flow variation of the pump has been characterized for different viscous fluids. The change in volume flow due to change in back pressure has been presented in detail. The fail-safe mode operation of the pump has been tested and leak rate was measured (∼0.14% leak for an inlet pressure of 140 kPa) for different inlet pressures. The precision volume flow of the pump has been achieved by measuring the pinch cam position and load current. The accuracy in the volume flow has been measured after 300 rotations. Finally, the complete system has been integrated with the necessary electronics and an android application has been developed for the self-administration of bolus and basal delivery of insulin.

摘要

在过去二十年中,微泵技术取得了显著发展,并在从微全分析系统(μTAS)到药物输送等各种应用领域中得到应用。然而,微泵的应用领域受到限制,原因在于:泵送机制简单、易于操作、可控制(微升至毫升)输送、连续输送以及流速精度。在此,作者介绍了一种用于可控药物输送应用的直流电机驱动蠕动泵的设计、开发、特性表征和精确流量控制。所有微泵部件均采用传统制造技术制造。针对不同粘性流体对泵的体积流量变化进行了特性表征。详细介绍了背压变化导致的体积流量变化。对泵的故障安全模式运行进行了测试,并测量了不同入口压力下的泄漏率(入口压力为140 kPa时泄漏率约为0.14%)。通过测量夹送凸轮位置和负载电流实现了泵的精确体积流量控制。在300次旋转后测量了体积流量的精度。最后,完整系统与必要的电子设备进行了集成,并开发了一款安卓应用程序,用于胰岛素推注和基础输送的自我给药。

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