Full-Field Strain and Temperature Measurement of Epoxy Resin PR-520 Subjected to Tensile, Compressive, and Torsional Loading at Various Strain Rates

Bibliographic Details
Main Author: Konieczny, Mark J.
Language:English
Published: The Ohio State University / OhioLINK 2019
Subjects:
Online Access:http://rave.ohiolink.edu/etdc/view?acc_num=osu1556880386878411
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spelling ndltd-OhioLink-oai-etd.ohiolink.edu-osu15568803868784112021-08-03T07:11:00Z Full-Field Strain and Temperature Measurement of Epoxy Resin PR-520 Subjected to Tensile, Compressive, and Torsional Loading at Various Strain Rates Konieczny, Mark J. Mechanical Engineering Aerospace Engineering Thermo-mechanical Response Infrared Thermography Polymers Composites With aircraft and aircraft engine manufacturers’ goal to create lighter more efficient components, there has been a trend of replacing traditional aircraft materials such as aluminum and titanium with various composites. The high strength to weight ratio, and application specific manufacturing of composites, make them excellent candidates for components such as fan blades, engine cases, fuselages, and even parts of wings. However, from the rigorous testing that must be passed to certify airworthiness, comes a need for computational modeling of these composite components to greatly reduce the costs incurred from manufacturing to final testing. Some of the most costly testing comes from the blade out engine test to prove that a fan blade dislodged from the rotor will be contained by the engine case. When attempting to model an impact situation, where the force is applied transversely to the case, it becomes necessary to know the properties of the polymer matrix, because it is the primary factor affecting the strain rate dependency and failure of the composite as a whole. The purpose of this study is to simultaneously measure the full field thermal and full field deformation response of epoxy resin PR-520 in tension, compression, and torsion tests conducted at strain rates of approximately 0.01 s-1, 1.0 s-1, and 350 s-1. 2-D and 3-D digital image correlation is used for full-field measurement of deformation, and high-speed infrared thermography is used for simultaneous full-field temperature measurements. The testing is conducted on several test apparatus, a servo-hydraulic load frame for the low and intermediate rate tests, and a tension, compression, and torsion Split-Hopkinson bar for the high rate tests, respectively. The results show a coupling between temperature change and strain in the test specimens, with cooling occurring during elastic deformation, and heating occurring during plastic deformation. The results also show a dependence of both thermal and mechanical response, on strain rate. However, the magnitude of these results is highly dependent on the loading mechanism with compression and shear showing more plastic deformation and temperature rise. The data generated in these tests can be used to modify the constitutive equations for the matrix material to allow better prediction of characteristics such as failure strain and failure stress, yield strain and yield stress, and fatigue in full composite models. 2019 English text The Ohio State University / OhioLINK http://rave.ohiolink.edu/etdc/view?acc_num=osu1556880386878411 http://rave.ohiolink.edu/etdc/view?acc_num=osu1556880386878411 unrestricted This thesis or dissertation is protected by copyright: some rights reserved. It is licensed for use under a Creative Commons license. Specific terms and permissions are available from this document's record in the OhioLINK ETD Center.
collection NDLTD
language English
sources NDLTD
topic Mechanical Engineering
Aerospace Engineering
Thermo-mechanical Response
Infrared Thermography
Polymers
Composites

spellingShingle Mechanical Engineering
Aerospace Engineering
Thermo-mechanical Response
Infrared Thermography
Polymers
Composites

Konieczny, Mark J.
Full-Field Strain and Temperature Measurement of Epoxy Resin PR-520 Subjected to Tensile, Compressive, and Torsional Loading at Various Strain Rates
author Konieczny, Mark J.
author_facet Konieczny, Mark J.
author_sort Konieczny, Mark J.
title Full-Field Strain and Temperature Measurement of Epoxy Resin PR-520 Subjected to Tensile, Compressive, and Torsional Loading at Various Strain Rates
title_short Full-Field Strain and Temperature Measurement of Epoxy Resin PR-520 Subjected to Tensile, Compressive, and Torsional Loading at Various Strain Rates
title_full Full-Field Strain and Temperature Measurement of Epoxy Resin PR-520 Subjected to Tensile, Compressive, and Torsional Loading at Various Strain Rates
title_fullStr Full-Field Strain and Temperature Measurement of Epoxy Resin PR-520 Subjected to Tensile, Compressive, and Torsional Loading at Various Strain Rates
title_full_unstemmed Full-Field Strain and Temperature Measurement of Epoxy Resin PR-520 Subjected to Tensile, Compressive, and Torsional Loading at Various Strain Rates
title_sort full-field strain and temperature measurement of epoxy resin pr-520 subjected to tensile, compressive, and torsional loading at various strain rates
publisher The Ohio State University / OhioLINK
publishDate 2019
url http://rave.ohiolink.edu/etdc/view?acc_num=osu1556880386878411
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