Design and Fabrication of a Novel Window-Type Convection Device

Global warming, climate change, and ever-increasing energy demand are among the pressing challenges currently facing humanity. Particularly, indoor air conditioning, a major source of energy consumption, requires immediate improvement to prevent energy crises. In this study, various airfoil profiles...

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Main Authors: Han-Tang Lin, Yunn-Horng Guu, Wei-Hsuan Hsu
Format: Article
Language:English
Published: MDPI AG 2021-12-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/11/1/267
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spelling doaj-f2d77764842843f7a44502401a2142b32020-12-30T00:05:35ZengMDPI AGApplied Sciences2076-34172021-12-011126726710.3390/app11010267Design and Fabrication of a Novel Window-Type Convection DeviceHan-Tang Lin0Yunn-Horng Guu1Wei-Hsuan Hsu2Department of Mechanical Engineering, National United University, Miaoli 36003, TaiwanDepartment of Mechanical Engineering, National United University, Miaoli 36003, TaiwanDepartment of Mechanical Engineering, National United University, Miaoli 36003, TaiwanGlobal warming, climate change, and ever-increasing energy demand are among the pressing challenges currently facing humanity. Particularly, indoor air conditioning, a major source of energy consumption, requires immediate improvement to prevent energy crises. In this study, various airfoil profiles were applied to create a window-type convection device that entrains air to improve convection between indoor and outdoor airflows and adjust the indoor temperature. How the geometric structure of the convection device affects its air entrainment performance was investigated on the basis of various airfoil profiles and outlet slit sizes of the airflow multiplier. The airfoil profiles were designed according to the 4-digit series developed by the National Advisory Committee for Aeronautics. The results revealed that airfoil thickness, airfoil camber, and air outlet slit size affected the mass flow rate of the convection device. Overall, the mass flow rate at the outlet of the convection device was more than 10 times greater than at the inlet, demonstrating the potential of the device to improve air convection. To validate these simulated results, the wind-deflector plate was processed using the NACA4424 airfoil with a 1.2 mm slit, and various operating voltages were applied to the convection device to measure the resulting wind speeds and calculate the corresponding mass flow rates. The experimental and simulated results were similar, with a mean error of <7%, indicating that the airfoil-shaped wind-deflector plate substantially improved air entrainment of the convection device to the goal of reduced energy consumption and carbon emissions.https://www.mdpi.com/2076-3417/11/1/267airfoil profileconvection deviceairflow multiplicationair convectionair entrainment
collection DOAJ
language English
format Article
sources DOAJ
author Han-Tang Lin
Yunn-Horng Guu
Wei-Hsuan Hsu
spellingShingle Han-Tang Lin
Yunn-Horng Guu
Wei-Hsuan Hsu
Design and Fabrication of a Novel Window-Type Convection Device
Applied Sciences
airfoil profile
convection device
airflow multiplication
air convection
air entrainment
author_facet Han-Tang Lin
Yunn-Horng Guu
Wei-Hsuan Hsu
author_sort Han-Tang Lin
title Design and Fabrication of a Novel Window-Type Convection Device
title_short Design and Fabrication of a Novel Window-Type Convection Device
title_full Design and Fabrication of a Novel Window-Type Convection Device
title_fullStr Design and Fabrication of a Novel Window-Type Convection Device
title_full_unstemmed Design and Fabrication of a Novel Window-Type Convection Device
title_sort design and fabrication of a novel window-type convection device
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2021-12-01
description Global warming, climate change, and ever-increasing energy demand are among the pressing challenges currently facing humanity. Particularly, indoor air conditioning, a major source of energy consumption, requires immediate improvement to prevent energy crises. In this study, various airfoil profiles were applied to create a window-type convection device that entrains air to improve convection between indoor and outdoor airflows and adjust the indoor temperature. How the geometric structure of the convection device affects its air entrainment performance was investigated on the basis of various airfoil profiles and outlet slit sizes of the airflow multiplier. The airfoil profiles were designed according to the 4-digit series developed by the National Advisory Committee for Aeronautics. The results revealed that airfoil thickness, airfoil camber, and air outlet slit size affected the mass flow rate of the convection device. Overall, the mass flow rate at the outlet of the convection device was more than 10 times greater than at the inlet, demonstrating the potential of the device to improve air convection. To validate these simulated results, the wind-deflector plate was processed using the NACA4424 airfoil with a 1.2 mm slit, and various operating voltages were applied to the convection device to measure the resulting wind speeds and calculate the corresponding mass flow rates. The experimental and simulated results were similar, with a mean error of <7%, indicating that the airfoil-shaped wind-deflector plate substantially improved air entrainment of the convection device to the goal of reduced energy consumption and carbon emissions.
topic airfoil profile
convection device
airflow multiplication
air convection
air entrainment
url https://www.mdpi.com/2076-3417/11/1/267
work_keys_str_mv AT hantanglin designandfabricationofanovelwindowtypeconvectiondevice
AT yunnhorngguu designandfabricationofanovelwindowtypeconvectiondevice
AT weihsuanhsu designandfabricationofanovelwindowtypeconvectiondevice
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