Design and Analysis of a High Force, Low Voltage and High Flow Rate Electro-Thermal Micropump

This paper presents the design and simulation of an improved electro-thermal micromachined pump for drug delivery applications. Thermal actuators, which are a type of Micro Electro Mechanical system (MEMS) device, are highly useful because of their ability to deliver with great force and displacemen...

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Main Authors: Ghader Yosefi, Sattar Mirzakuchaki, Farshid Raissi, Saeid Afrang
Format: Article
Language:English
Published: MDPI AG 2014-12-01
Series:Micromachines
Subjects:
Online Access:http://www.mdpi.com/2072-666X/5/4/1323
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spelling doaj-2dd366623279426eb5648b005b96ba0a2020-11-25T00:46:49ZengMDPI AGMicromachines2072-666X2014-12-01541323134110.3390/mi5041323mi5041323Design and Analysis of a High Force, Low Voltage and High Flow Rate Electro-Thermal MicropumpGhader Yosefi0Sattar Mirzakuchaki1Farshid Raissi2Saeid Afrang3Department of Electrical Electronics Engineering, Science and Research Branch, Islamic Azad University, Tehran 14778-93855, IranDepartment of Electrical Electronics Engineering, Iran University of Science and Technology, Tehran 16846, IranDepartment of Electrical Electronics Engineering, Khaje Nasir Toosi University of Technology, Tehran 19991-43344, IranDepartment of Electrical Electronics Engineering, Urmia University, Urmia 57159, IranThis paper presents the design and simulation of an improved electro-thermal micromachined pump for drug delivery applications. Thermal actuators, which are a type of Micro Electro Mechanical system (MEMS) device, are highly useful because of their ability to deliver with great force and displacement. Thus, our structure is based on a thermal actuator that exploits the Joule heating effect and has been improved using the springy length properties of MEMS chevron beams. The Joule heating effect results in a difference in temperature and therefore displacement in the beams (actuators). Simulation results show that a maximum force of 4.4 mN and a maximum flow rate of 16 μL/min can be obtained by applying an AC voltage as low as 8 V at different frequencies ranging from 1 to 32 Hz. The maximum temperature was a problem at the chevron beams and the center shaft. Thus, to locally increase the temperature of the chevron beams alone and not that of the pumping diaphragm: (1) The air gaps 2 μm underneath and above the device layer were optimized for heat transfer. (2) Release holes and providing fins were created at the center shaft and actuator, respectively, to decrease the temperature by approximately 10 °C. (3) We inserted and used a polymer tube to serve as an insulator and eliminate leakage problems in the fluidic channel.http://www.mdpi.com/2072-666X/5/4/1323MEMS micropumpelectro thermal actuatorjoule heatingpumping forceflow rate
collection DOAJ
language English
format Article
sources DOAJ
author Ghader Yosefi
Sattar Mirzakuchaki
Farshid Raissi
Saeid Afrang
spellingShingle Ghader Yosefi
Sattar Mirzakuchaki
Farshid Raissi
Saeid Afrang
Design and Analysis of a High Force, Low Voltage and High Flow Rate Electro-Thermal Micropump
Micromachines
MEMS micropump
electro thermal actuator
joule heating
pumping force
flow rate
author_facet Ghader Yosefi
Sattar Mirzakuchaki
Farshid Raissi
Saeid Afrang
author_sort Ghader Yosefi
title Design and Analysis of a High Force, Low Voltage and High Flow Rate Electro-Thermal Micropump
title_short Design and Analysis of a High Force, Low Voltage and High Flow Rate Electro-Thermal Micropump
title_full Design and Analysis of a High Force, Low Voltage and High Flow Rate Electro-Thermal Micropump
title_fullStr Design and Analysis of a High Force, Low Voltage and High Flow Rate Electro-Thermal Micropump
title_full_unstemmed Design and Analysis of a High Force, Low Voltage and High Flow Rate Electro-Thermal Micropump
title_sort design and analysis of a high force, low voltage and high flow rate electro-thermal micropump
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2014-12-01
description This paper presents the design and simulation of an improved electro-thermal micromachined pump for drug delivery applications. Thermal actuators, which are a type of Micro Electro Mechanical system (MEMS) device, are highly useful because of their ability to deliver with great force and displacement. Thus, our structure is based on a thermal actuator that exploits the Joule heating effect and has been improved using the springy length properties of MEMS chevron beams. The Joule heating effect results in a difference in temperature and therefore displacement in the beams (actuators). Simulation results show that a maximum force of 4.4 mN and a maximum flow rate of 16 μL/min can be obtained by applying an AC voltage as low as 8 V at different frequencies ranging from 1 to 32 Hz. The maximum temperature was a problem at the chevron beams and the center shaft. Thus, to locally increase the temperature of the chevron beams alone and not that of the pumping diaphragm: (1) The air gaps 2 μm underneath and above the device layer were optimized for heat transfer. (2) Release holes and providing fins were created at the center shaft and actuator, respectively, to decrease the temperature by approximately 10 °C. (3) We inserted and used a polymer tube to serve as an insulator and eliminate leakage problems in the fluidic channel.
topic MEMS micropump
electro thermal actuator
joule heating
pumping force
flow rate
url http://www.mdpi.com/2072-666X/5/4/1323
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