High strain rate properties of materials using compressive split hopkinson pressure bar

There is strong demand for materials such as aluminum alloys and magnesium alloys which have great material properties and high cost-performance ratio making them favorable for applications in automotive industry and other industries. And to understand the material behavior under high strain rate co...

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Main Author: Huang, Hua
Other Authors: Shu Dong Wei
Format: Final Year Project
Language:English
Published: 2016
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Online Access:http://hdl.handle.net/10356/67430
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-674302023-03-04T19:44:32Z High strain rate properties of materials using compressive split hopkinson pressure bar Huang, Hua Shu Dong Wei School of Mechanical and Aerospace Engineering DRNTU::Engineering There is strong demand for materials such as aluminum alloys and magnesium alloys which have great material properties and high cost-performance ratio making them favorable for applications in automotive industry and other industries. And to understand the material behavior under high strain rate conditions, the compressive Split Hopkinson Pressure bar technique which is one of the most common ways is used due to its reliability and accuracy after various calibrations. Before experiments, equipment such as pressure bars, strain meter & photodiodes must be set up and calibrated properly. To further enhance accuracy, specimens must be machined and polished with highly precise dimensions. During the compressive experiment, Strain gauges detect the impact and send the strain signals which are received by oscilloscope and converted into data using Excel for analysis of stress, strain and strain rate. After empty run tests, key parameters such as wave velocity, impact velocity and average strain rate were analysed. Comparison with past researches, repeatability tests and other calibrations were done to ensure accuracy with Al6061-T6 being used as calibration material for its material properties being most well-known. Next, AM50 and AZ91D which are magnesium alloys were investigated to find out their dynamic material properties such as relationship between stress and strain, relationship between strain rate and time at varying pressure and varying insertion distance respectively. With data found, relationships among insertion distance, pressure, impact velocity and average strain rate can be established and it can be used to forecast on impact velocity and average strain rate given insertion distance and pressure. Bachelor of Engineering (Mechanical Engineering) 2016-05-16T08:43:48Z 2016-05-16T08:43:48Z 2016 Final Year Project (FYP) http://hdl.handle.net/10356/67430 en Nanyang Technological University 78 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
spellingShingle DRNTU::Engineering
Huang, Hua
High strain rate properties of materials using compressive split hopkinson pressure bar
description There is strong demand for materials such as aluminum alloys and magnesium alloys which have great material properties and high cost-performance ratio making them favorable for applications in automotive industry and other industries. And to understand the material behavior under high strain rate conditions, the compressive Split Hopkinson Pressure bar technique which is one of the most common ways is used due to its reliability and accuracy after various calibrations. Before experiments, equipment such as pressure bars, strain meter & photodiodes must be set up and calibrated properly. To further enhance accuracy, specimens must be machined and polished with highly precise dimensions. During the compressive experiment, Strain gauges detect the impact and send the strain signals which are received by oscilloscope and converted into data using Excel for analysis of stress, strain and strain rate. After empty run tests, key parameters such as wave velocity, impact velocity and average strain rate were analysed. Comparison with past researches, repeatability tests and other calibrations were done to ensure accuracy with Al6061-T6 being used as calibration material for its material properties being most well-known. Next, AM50 and AZ91D which are magnesium alloys were investigated to find out their dynamic material properties such as relationship between stress and strain, relationship between strain rate and time at varying pressure and varying insertion distance respectively. With data found, relationships among insertion distance, pressure, impact velocity and average strain rate can be established and it can be used to forecast on impact velocity and average strain rate given insertion distance and pressure.
author2 Shu Dong Wei
author_facet Shu Dong Wei
Huang, Hua
format Final Year Project
author Huang, Hua
author_sort Huang, Hua
title High strain rate properties of materials using compressive split hopkinson pressure bar
title_short High strain rate properties of materials using compressive split hopkinson pressure bar
title_full High strain rate properties of materials using compressive split hopkinson pressure bar
title_fullStr High strain rate properties of materials using compressive split hopkinson pressure bar
title_full_unstemmed High strain rate properties of materials using compressive split hopkinson pressure bar
title_sort high strain rate properties of materials using compressive split hopkinson pressure bar
publishDate 2016
url http://hdl.handle.net/10356/67430
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