Curing of energetic polymer

Hydroxyl Terminated Polybutadiene (HTPB) based polyurethane elastomers are widely used as binders for composite propulsion systems used in modern rockets and missiles. However, the hydroxyl terminated polymer, HTPB, used in the formulation of the propellant is inert, which dilutes energy density...

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Main Author: Ho, Chin Tee.
Other Authors: Ng Siu Choon
Format: Final Year Project
Language:English
Published: 2009
Subjects:
Online Access:http://hdl.handle.net/10356/16368
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-163682023-03-03T15:36:12Z Curing of energetic polymer Ho, Chin Tee. Ng Siu Choon School of Chemical and Biomedical Engineering Energetics Research Institute DRNTU::Engineering::Chemical engineering::Explosives and pyrotechnics Hydroxyl Terminated Polybutadiene (HTPB) based polyurethane elastomers are widely used as binders for composite propulsion systems used in modern rockets and missiles. However, the hydroxyl terminated polymer, HTPB, used in the formulation of the propellant is inert, which dilutes energy density of the composite. In order to overcome this problem, inert binders are being replaced by energetic polymer binders, which releases tremendous amount of energy during thermal decomposition, and contributes to the overall energy output of the formulation. In this study, the curing characteristics and thermal behavior of energetic Glycidyl Azide Polymer (GAP) are compared to the inert HTPB. Both the polymers were cured using the curing agent; Isophorone Diisocyanate(IPDI) in presence of a catalyst (dibutyltin dilaurate) and chain extender (butane 1,4 diol). The curing kinetics of both polymers was investigated by FTIR spectroscopy. The thermal decomposition kinetics of cured HTPB and GAP was treated by Kissinger analysis and the activation energies were computed. It is concluded that the cured GAP-IPDI system exhibits superior energy output as compared to the cured HTPB-IPDI system. The HTPB-IPDI system exhibits higher reaction rate, higher thermal stability andlower glass transition temperature. Bachelor of Engineering (Chemical and Biomolecular Engineering) 2009-05-25T08:32:26Z 2009-05-25T08:32:26Z 2009 2009 Final Year Project (FYP) http://hdl.handle.net/10356/16368 en Nanyang Technological University 57 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::Chemical engineering::Explosives and pyrotechnics
spellingShingle DRNTU::Engineering::Chemical engineering::Explosives and pyrotechnics
Ho, Chin Tee.
Curing of energetic polymer
description Hydroxyl Terminated Polybutadiene (HTPB) based polyurethane elastomers are widely used as binders for composite propulsion systems used in modern rockets and missiles. However, the hydroxyl terminated polymer, HTPB, used in the formulation of the propellant is inert, which dilutes energy density of the composite. In order to overcome this problem, inert binders are being replaced by energetic polymer binders, which releases tremendous amount of energy during thermal decomposition, and contributes to the overall energy output of the formulation. In this study, the curing characteristics and thermal behavior of energetic Glycidyl Azide Polymer (GAP) are compared to the inert HTPB. Both the polymers were cured using the curing agent; Isophorone Diisocyanate(IPDI) in presence of a catalyst (dibutyltin dilaurate) and chain extender (butane 1,4 diol). The curing kinetics of both polymers was investigated by FTIR spectroscopy. The thermal decomposition kinetics of cured HTPB and GAP was treated by Kissinger analysis and the activation energies were computed. It is concluded that the cured GAP-IPDI system exhibits superior energy output as compared to the cured HTPB-IPDI system. The HTPB-IPDI system exhibits higher reaction rate, higher thermal stability andlower glass transition temperature.
author2 Ng Siu Choon
author_facet Ng Siu Choon
Ho, Chin Tee.
format Final Year Project
author Ho, Chin Tee.
author_sort Ho, Chin Tee.
title Curing of energetic polymer
title_short Curing of energetic polymer
title_full Curing of energetic polymer
title_fullStr Curing of energetic polymer
title_full_unstemmed Curing of energetic polymer
title_sort curing of energetic polymer
publishDate 2009
url http://hdl.handle.net/10356/16368
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