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Viscoelastic properties of hydroxyl-terminated poly(butadiene) based composite rocket propellants
Author(s) -
Saša Brzić,
Ljiljana Jelisavac,
Jela Galović,
Danica Simić,
J. Petković
Publication year - 2013
Publication title -
hemijska industrija
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.147
H-Index - 19
eISSN - 2217-7426
pISSN - 0367-598X
DOI - 10.2298/hemind130426067b
Subject(s) - propellant , materials science , dynamic mechanical analysis , ammonium perchlorate , glass transition , viscoelasticity , composite material , composite number , dynamic modulus , volume (thermodynamics) , modulus , thermal expansion , polymer chemistry , thermodynamics , polymer , chemistry , organic chemistry , physics
In the present study, the viscoelastic response of three composite solid propellants based on hydroxyl-terminated poly(butadiene), ammonium perchlorate and aluminum has been investigated. The investigation was surveyed by dynamic mechanical analysis over a wide range of temperatures and frequencies. The mechanical properties of these materials are related to the macromolecular structure of the binder as well as to the content and nature of solid fillers. The storage modulus, loss modulus, loss factor and glass transition temperature for each propellant sample have been evaluated. The master curves of storage (log G' vs log ω) and loss modulus (log G'' vs log ω) were generated for each propellant. A comparison of logaT vs temperature curves for all propellants indicate conformance to Williams-Landel-Ferry equation. Choosing the glass transition as the reference temperature, WLF equation constants are determined. Fractional free volume at the glass transition temperature and thermal coefficient of free volume expansion values are in accordance with the consideration that Al is reinforcing filler

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