Design and experiment of high accuracy flowmeter for air duct

In HVAC system, air flow measurement is difficult to be measured accurately due to several factors such like air density is lower so that dynamic pressure is small and difficult to be measured. Besides, air turbulence and cross-sectional air velocity distribution in the larger diameter of air duct a...

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Main Author: Qi, ZhongShuo
Other Authors: Cai Wenjian
Format: Final Year Project
Language:English
Published: 2018
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Online Access:http://hdl.handle.net/10356/74610
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-746102023-07-07T17:28:18Z Design and experiment of high accuracy flowmeter for air duct Qi, ZhongShuo Cai Wenjian School of Electrical and Electronic Engineering DRNTU::Engineering::Electrical and electronic engineering::Control and instrumentation::Control engineering In HVAC system, air flow measurement is difficult to be measured accurately due to several factors such like air density is lower so that dynamic pressure is small and difficult to be measured. Besides, air turbulence and cross-sectional air velocity distribution in the larger diameter of air duct also contribute to inaccurate reading. Lastly, the space for installation of air flowmeter is limited in air duct which is hard to achieve fully developed velocity profile to meet the air flow measurement requirement. Because installation for flowmeter must be located at least 10 times diameter of air duct design. So, in order to achieve high accuracy flowmeter reading, laminar flow measurement is introduced and is one of the promising measurement methods for airflow rate. The reason is that current differential pressure sensor suffering from low sensitivity in air duct. This project aims to design Pressure-based laminar flow meter and force based laminar flow meter to improve accuracy of airflow rate. The flowmeter will be designed using mesh filter, force sensor (load cell) and transducer HX711. Experiments will be conducted in existing testing facilities which are consisted of air duct, centrifugal fan, orifice flowmeter, differential pressure sensor, electrical damper and National instrument board. Sample of data sets of flowmeter rate and pressure drop as well as flowmeter rate and force reading will be plotted using matlab program under different damper angle conditions. The deducible relationship from two phase experiment result which is approximately linear relationship. And quantitative analysis of the performance by analysing sample of data set will be done using Matlab. With the high sensitivity force sensor, airflow rate measurement accuracy will improve and the high pressure drop (suitable size of mesh openings) will be reduced to achieve better energy efficiency. Bachelor of Engineering 2018-05-22T05:48:05Z 2018-05-22T05:48:05Z 2018 Final Year Project (FYP) http://hdl.handle.net/10356/74610 en Nanyang Technological University 68 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Electrical and electronic engineering::Control and instrumentation::Control engineering
spellingShingle DRNTU::Engineering::Electrical and electronic engineering::Control and instrumentation::Control engineering
Qi, ZhongShuo
Design and experiment of high accuracy flowmeter for air duct
description In HVAC system, air flow measurement is difficult to be measured accurately due to several factors such like air density is lower so that dynamic pressure is small and difficult to be measured. Besides, air turbulence and cross-sectional air velocity distribution in the larger diameter of air duct also contribute to inaccurate reading. Lastly, the space for installation of air flowmeter is limited in air duct which is hard to achieve fully developed velocity profile to meet the air flow measurement requirement. Because installation for flowmeter must be located at least 10 times diameter of air duct design. So, in order to achieve high accuracy flowmeter reading, laminar flow measurement is introduced and is one of the promising measurement methods for airflow rate. The reason is that current differential pressure sensor suffering from low sensitivity in air duct. This project aims to design Pressure-based laminar flow meter and force based laminar flow meter to improve accuracy of airflow rate. The flowmeter will be designed using mesh filter, force sensor (load cell) and transducer HX711. Experiments will be conducted in existing testing facilities which are consisted of air duct, centrifugal fan, orifice flowmeter, differential pressure sensor, electrical damper and National instrument board. Sample of data sets of flowmeter rate and pressure drop as well as flowmeter rate and force reading will be plotted using matlab program under different damper angle conditions. The deducible relationship from two phase experiment result which is approximately linear relationship. And quantitative analysis of the performance by analysing sample of data set will be done using Matlab. With the high sensitivity force sensor, airflow rate measurement accuracy will improve and the high pressure drop (suitable size of mesh openings) will be reduced to achieve better energy efficiency.
author2 Cai Wenjian
author_facet Cai Wenjian
Qi, ZhongShuo
format Final Year Project
author Qi, ZhongShuo
author_sort Qi, ZhongShuo
title Design and experiment of high accuracy flowmeter for air duct
title_short Design and experiment of high accuracy flowmeter for air duct
title_full Design and experiment of high accuracy flowmeter for air duct
title_fullStr Design and experiment of high accuracy flowmeter for air duct
title_full_unstemmed Design and experiment of high accuracy flowmeter for air duct
title_sort design and experiment of high accuracy flowmeter for air duct
publishDate 2018
url http://hdl.handle.net/10356/74610
_version_ 1772827376888053760