Use of Nanoparticle Enhanced Phase Change Material for Cooling of Surface Acoustic Wave Sensor

The use of resonators, filters, interdigital transducers (IDT) and stable sources in electronic industry is widespread today. One of the most used filters are the surface acoustic wave (SAW) type, which is mostly based on Rayleigh waves propagation on the surface. On the other hand, the use of Phase...

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Main Author: Mohammad Yaghoub Abdollahzadeh Jamalabadi
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Fluids
Subjects:
Online Access:https://www.mdpi.com/2311-5521/6/1/31
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spelling doaj-5ba07daf162344128ebe8fb8ac9d5bc02021-01-09T00:05:54ZengMDPI AGFluids2311-55212021-01-016313110.3390/fluids6010031Use of Nanoparticle Enhanced Phase Change Material for Cooling of Surface Acoustic Wave SensorMohammad Yaghoub Abdollahzadeh Jamalabadi0Ship Engineering Department, School of Mechanical Engineering, Chabahar Maritime University, Chabahar 99717-56499, IranThe use of resonators, filters, interdigital transducers (IDT) and stable sources in electronic industry is widespread today. One of the most used filters are the surface acoustic wave (SAW) type, which is mostly based on Rayleigh waves propagation on the surface. On the other hand, the use of Phase change materials (PCMs) is considered as a heat sink method in the field of thermal cooling of electronic circuits. Recent development in heat transfer is obtained by nanoparticle-enhanced PCM (NEPCM), which is a result of combining nanoparticles with PCMs. Increase of thermal conductivity of NEPCM in comparison with common PCM enhances the heat transfer rate. The aim of the current study is thermal management of SAW for the application of high frequency heating by phase change material. Melting of NEPCMs inside a rectangular cavity next to the SAW cell is used for the cooling purpose. Free convection heat transfer of a NEPCMs in an square cavity is modeled throughout the mass and momentum. Energy governing equations are solved by using the finite element method. Electrohydrodynamic (EHD) forces exist in natural convection heat transfer within the fluid part of the enclosure. The results also show that the NEPCM causes heat transfer improvement up to 10%.https://www.mdpi.com/2311-5521/6/1/31surface acoustic wavesthermal designmicrofluidicheat removalMEMSnanofluids
collection DOAJ
language English
format Article
sources DOAJ
author Mohammad Yaghoub Abdollahzadeh Jamalabadi
spellingShingle Mohammad Yaghoub Abdollahzadeh Jamalabadi
Use of Nanoparticle Enhanced Phase Change Material for Cooling of Surface Acoustic Wave Sensor
Fluids
surface acoustic waves
thermal design
microfluidic
heat removal
MEMS
nanofluids
author_facet Mohammad Yaghoub Abdollahzadeh Jamalabadi
author_sort Mohammad Yaghoub Abdollahzadeh Jamalabadi
title Use of Nanoparticle Enhanced Phase Change Material for Cooling of Surface Acoustic Wave Sensor
title_short Use of Nanoparticle Enhanced Phase Change Material for Cooling of Surface Acoustic Wave Sensor
title_full Use of Nanoparticle Enhanced Phase Change Material for Cooling of Surface Acoustic Wave Sensor
title_fullStr Use of Nanoparticle Enhanced Phase Change Material for Cooling of Surface Acoustic Wave Sensor
title_full_unstemmed Use of Nanoparticle Enhanced Phase Change Material for Cooling of Surface Acoustic Wave Sensor
title_sort use of nanoparticle enhanced phase change material for cooling of surface acoustic wave sensor
publisher MDPI AG
series Fluids
issn 2311-5521
publishDate 2021-01-01
description The use of resonators, filters, interdigital transducers (IDT) and stable sources in electronic industry is widespread today. One of the most used filters are the surface acoustic wave (SAW) type, which is mostly based on Rayleigh waves propagation on the surface. On the other hand, the use of Phase change materials (PCMs) is considered as a heat sink method in the field of thermal cooling of electronic circuits. Recent development in heat transfer is obtained by nanoparticle-enhanced PCM (NEPCM), which is a result of combining nanoparticles with PCMs. Increase of thermal conductivity of NEPCM in comparison with common PCM enhances the heat transfer rate. The aim of the current study is thermal management of SAW for the application of high frequency heating by phase change material. Melting of NEPCMs inside a rectangular cavity next to the SAW cell is used for the cooling purpose. Free convection heat transfer of a NEPCMs in an square cavity is modeled throughout the mass and momentum. Energy governing equations are solved by using the finite element method. Electrohydrodynamic (EHD) forces exist in natural convection heat transfer within the fluid part of the enclosure. The results also show that the NEPCM causes heat transfer improvement up to 10%.
topic surface acoustic waves
thermal design
microfluidic
heat removal
MEMS
nanofluids
url https://www.mdpi.com/2311-5521/6/1/31
work_keys_str_mv AT mohammadyaghoubabdollahzadehjamalabadi useofnanoparticleenhancedphasechangematerialforcoolingofsurfaceacousticwavesensor
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