Puncture Reversal of Polyethylene Ionomers - Mechanistic Studies

Ionomers are polymers that contain ionic groups in relatively low concentrations along the polymer backbone. These ionic groups, in the presence of oppositely charged ions, form aggregates that lead to novel physical properties of the polymer. React-A-Seal® and Surlyn® are poly(ethylene-co-methacryl...

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Main Author: Fall, Rebecca Ann
Other Authors: Chemistry
Format: Others
Published: Virginia Tech 2014
Subjects:
Online Access:http://hdl.handle.net/10919/34861
http://scholar.lib.vt.edu/theses/available/etd-08312001-084412/
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-348612020-09-26T05:35:03Z Puncture Reversal of Polyethylene Ionomers - Mechanistic Studies Fall, Rebecca Ann Chemistry Ward, Thomas C. St. Clair, Terry L. Dillard, John G. poly(ethylene-co-methacrylic acid) EMAA Surlyn ionomer Ionomers are polymers that contain ionic groups in relatively low concentrations along the polymer backbone. These ionic groups, in the presence of oppositely charged ions, form aggregates that lead to novel physical properties of the polymer. React-A-Seal® and Surlyn® are poly(ethylene-co-methacrylic acid) (EMAA) ionomer-based materials and Nucrel® is the EMAA acid copolymer neutralized to produce Surlyn®. React-A-Seal® , Surlyn® , and Nucrel® recover into their original shapes following a high impact puncture at velocities ranging from 300 to 1200 ft/s ("self-healing"). This self-healing process may be of great benefit in space applications where structures are exposed to matter impacts. A thermal IR camera indicated a temperature increase to 98°C for Nucrel® 925, Surlyn® 8940, React-A-Seal® , and Surlyn® 8920 after initial penetration. To understand and generalize the observed phenomena, questions concerning the mechanism of the puncture resealing must be answered. One suggestion is that the elastic character of the melt created by the puncture drives the self-healing. This inference is based on the observed temperature rise of ~3°C above the melting temperature of the samples (~95°C) during the impact. With the expectation of gaining additional insight into the self-healing phenomenon, a thermodynamic and viscoelastic investigation was conducted using primarily DSC and DMA. Surlyn® and React-A-Seal® showed the characteristic order-disorder transition at ~52°C that has been reported in literature. Master curves were constructed from the creep isotherms for the four EMAA samples. An aging study was performed to investigate the irreproducibility and ®tailing effect” observed in the creep data. The aging study indicated that, with increased aging time and temperature, changes in the polyethylene matrix lead to complexities in morphology resulting in changes in the magnitude and shape of the creep curves. As a result of the thermodynamic, viscoelastic, and high-speed impact experiments it has been theorized that self-healing can occur in Nucrel® 925, Surlyn® 8940, React-A-Seal® , and Surlyn® 8920 because of two features, ionic aggregation and complex flow behavior. Master of Science 2014-03-14T20:44:33Z 2014-03-14T20:44:33Z 2001-08-29 2001-08-31 2002-09-03 2001-09-03 Thesis etd-08312001-084412 http://hdl.handle.net/10919/34861 http://scholar.lib.vt.edu/theses/available/etd-08312001-084412/ etd.PDF In Copyright http://rightsstatements.org/vocab/InC/1.0/ application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic poly(ethylene-co-methacrylic acid)
EMAA
Surlyn
ionomer
spellingShingle poly(ethylene-co-methacrylic acid)
EMAA
Surlyn
ionomer
Fall, Rebecca Ann
Puncture Reversal of Polyethylene Ionomers - Mechanistic Studies
description Ionomers are polymers that contain ionic groups in relatively low concentrations along the polymer backbone. These ionic groups, in the presence of oppositely charged ions, form aggregates that lead to novel physical properties of the polymer. React-A-Seal® and Surlyn® are poly(ethylene-co-methacrylic acid) (EMAA) ionomer-based materials and Nucrel® is the EMAA acid copolymer neutralized to produce Surlyn®. React-A-Seal® , Surlyn® , and Nucrel® recover into their original shapes following a high impact puncture at velocities ranging from 300 to 1200 ft/s ("self-healing"). This self-healing process may be of great benefit in space applications where structures are exposed to matter impacts. A thermal IR camera indicated a temperature increase to 98°C for Nucrel® 925, Surlyn® 8940, React-A-Seal® , and Surlyn® 8920 after initial penetration. To understand and generalize the observed phenomena, questions concerning the mechanism of the puncture resealing must be answered. One suggestion is that the elastic character of the melt created by the puncture drives the self-healing. This inference is based on the observed temperature rise of ~3°C above the melting temperature of the samples (~95°C) during the impact. With the expectation of gaining additional insight into the self-healing phenomenon, a thermodynamic and viscoelastic investigation was conducted using primarily DSC and DMA. Surlyn® and React-A-Seal® showed the characteristic order-disorder transition at ~52°C that has been reported in literature. Master curves were constructed from the creep isotherms for the four EMAA samples. An aging study was performed to investigate the irreproducibility and ®tailing effect” observed in the creep data. The aging study indicated that, with increased aging time and temperature, changes in the polyethylene matrix lead to complexities in morphology resulting in changes in the magnitude and shape of the creep curves. As a result of the thermodynamic, viscoelastic, and high-speed impact experiments it has been theorized that self-healing can occur in Nucrel® 925, Surlyn® 8940, React-A-Seal® , and Surlyn® 8920 because of two features, ionic aggregation and complex flow behavior. === Master of Science
author2 Chemistry
author_facet Chemistry
Fall, Rebecca Ann
author Fall, Rebecca Ann
author_sort Fall, Rebecca Ann
title Puncture Reversal of Polyethylene Ionomers - Mechanistic Studies
title_short Puncture Reversal of Polyethylene Ionomers - Mechanistic Studies
title_full Puncture Reversal of Polyethylene Ionomers - Mechanistic Studies
title_fullStr Puncture Reversal of Polyethylene Ionomers - Mechanistic Studies
title_full_unstemmed Puncture Reversal of Polyethylene Ionomers - Mechanistic Studies
title_sort puncture reversal of polyethylene ionomers - mechanistic studies
publisher Virginia Tech
publishDate 2014
url http://hdl.handle.net/10919/34861
http://scholar.lib.vt.edu/theses/available/etd-08312001-084412/
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