Analysis of Membrane Behavior of a Normally Closed Microvalve Using a Fluid-Structure Interaction Model

In this paper, membrane deflection against fluid flow and opening membrane (threshold) pressure were studied using fluid-structure interaction (FSI) analysis, and compared with experimental data obtained by Jaemin et al. In the current analysis, two different models (I-shaped and V-shaped) were used...

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Main Authors: Guru Prasath Natarajan, Sung-Jin Kim, Chang-Wan Kim
Format: Article
Language:English
Published: MDPI AG 2017-12-01
Series:Micromachines
Subjects:
Online Access:https://www.mdpi.com/2072-666X/8/12/355
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author Guru Prasath Natarajan
Sung-Jin Kim
Chang-Wan Kim
author_facet Guru Prasath Natarajan
Sung-Jin Kim
Chang-Wan Kim
author_sort Guru Prasath Natarajan
collection DOAJ
description In this paper, membrane deflection against fluid flow and opening membrane (threshold) pressure were studied using fluid-structure interaction (FSI) analysis, and compared with experimental data obtained by Jaemin et al. In the current analysis, two different models (I-shaped and V-shaped) were used to perform the FSI simulation. In microvalve modeling, in order to reduce external actuator usage, interconnections are made between two similar microvalves. This typical interconnection creates a pressure distribution in a local environment. Furthermore, to differentiate the volume factor in a microvalve, a length/width (L/W) ratio term was used. Compared with higher- and lower-L/W-ratio models, the higher-L/W model eventually initiates more deflection in a low-pressure regime than the lower-L/W-ratio model. FSI simulations were performed for 4 μL/min, 6 μL/min, 8 μL/min, 10 μL/min, and 12 μL/min flow rates against membrane behavior, and performance evaluations of the microvalves were conducted. It was observed during an FSI simulation that the gate pressure applied to the lower surface deflects the membrane upward, thereby making contact with the wall. Two important parameters (material properties of the structural membrane and the inlet region height) were selected for analysis to evaluate changes in microvalve performance. These results are presented in the current study.
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spelling doaj.art-aebe519da7014683b0b999c4937ef5112022-12-21T21:43:30ZengMDPI AGMicromachines2072-666X2017-12-0181235510.3390/mi8120355mi8120355Analysis of Membrane Behavior of a Normally Closed Microvalve Using a Fluid-Structure Interaction ModelGuru Prasath Natarajan0Sung-Jin Kim1Chang-Wan Kim2Department of Mechanical Engineering, Konkuk University, Seoul 05029, KoreaDepartment of Mechanical Engineering, Konkuk University, Seoul 05029, KoreaDepartment of Mechanical Engineering, Konkuk University, Seoul 05029, KoreaIn this paper, membrane deflection against fluid flow and opening membrane (threshold) pressure were studied using fluid-structure interaction (FSI) analysis, and compared with experimental data obtained by Jaemin et al. In the current analysis, two different models (I-shaped and V-shaped) were used to perform the FSI simulation. In microvalve modeling, in order to reduce external actuator usage, interconnections are made between two similar microvalves. This typical interconnection creates a pressure distribution in a local environment. Furthermore, to differentiate the volume factor in a microvalve, a length/width (L/W) ratio term was used. Compared with higher- and lower-L/W-ratio models, the higher-L/W model eventually initiates more deflection in a low-pressure regime than the lower-L/W-ratio model. FSI simulations were performed for 4 μL/min, 6 μL/min, 8 μL/min, 10 μL/min, and 12 μL/min flow rates against membrane behavior, and performance evaluations of the microvalves were conducted. It was observed during an FSI simulation that the gate pressure applied to the lower surface deflects the membrane upward, thereby making contact with the wall. Two important parameters (material properties of the structural membrane and the inlet region height) were selected for analysis to evaluate changes in microvalve performance. These results are presented in the current study.https://www.mdpi.com/2072-666X/8/12/355microvalvefluid-structure interactionopening threshold pressuremembrane behavior
spellingShingle Guru Prasath Natarajan
Sung-Jin Kim
Chang-Wan Kim
Analysis of Membrane Behavior of a Normally Closed Microvalve Using a Fluid-Structure Interaction Model
Micromachines
microvalve
fluid-structure interaction
opening threshold pressure
membrane behavior
title Analysis of Membrane Behavior of a Normally Closed Microvalve Using a Fluid-Structure Interaction Model
title_full Analysis of Membrane Behavior of a Normally Closed Microvalve Using a Fluid-Structure Interaction Model
title_fullStr Analysis of Membrane Behavior of a Normally Closed Microvalve Using a Fluid-Structure Interaction Model
title_full_unstemmed Analysis of Membrane Behavior of a Normally Closed Microvalve Using a Fluid-Structure Interaction Model
title_short Analysis of Membrane Behavior of a Normally Closed Microvalve Using a Fluid-Structure Interaction Model
title_sort analysis of membrane behavior of a normally closed microvalve using a fluid structure interaction model
topic microvalve
fluid-structure interaction
opening threshold pressure
membrane behavior
url https://www.mdpi.com/2072-666X/8/12/355
work_keys_str_mv AT guruprasathnatarajan analysisofmembranebehaviorofanormallyclosedmicrovalveusingafluidstructureinteractionmodel
AT sungjinkim analysisofmembranebehaviorofanormallyclosedmicrovalveusingafluidstructureinteractionmodel
AT changwankim analysisofmembranebehaviorofanormallyclosedmicrovalveusingafluidstructureinteractionmodel