Thermodynamic compatibility and structural characteristics of interpenetrating polymer vibration damping systems for engineering purposes

This article is devoted to the study of thermodynamic compatibility and structural characteristics of interpenetrating polymer systems (IPS) based on thermosetting and thermoplastic polymers for the production of vibration-damping and sound-absorbing composite polymer materials for machine-building...

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Main Authors: Negmatov Soyibjon, Abed Nodira, Ulmasov Tulkin, Khaminov Burkhon
Format: Article
Language:English
Published: EDP Sciences 2023-01-01
Series:E3S Web of Conferences
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2023/38/e3sconf_conmechydro23_05095.pdf
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author Negmatov Soyibjon
Abed Nodira
Ulmasov Tulkin
Khaminov Burkhon
author_facet Negmatov Soyibjon
Abed Nodira
Ulmasov Tulkin
Khaminov Burkhon
author_sort Negmatov Soyibjon
collection DOAJ
description This article is devoted to the study of thermodynamic compatibility and structural characteristics of interpenetrating polymer systems (IPS) based on thermosetting and thermoplastic polymers for the production of vibration-damping and sound-absorbing composite polymer materials for machine-building purposes. IPS based on epoxy polymer and polyurethane is calculated according to the well-known Flory-Scott theory at a temperature of 373 K to obtain thermodynamic compatibility of the components of the mixture. Studies have established that between the macromolecules of homopolymers that make up the system, a donor-acceptor mechanism of covalent bonding occurs due to an unshared electron of the nitrogen atom and a cross-linked structure of interpenetrating polymer systems is formed, due to the thermodynamic compatibility of the components. The studies determined that at a temperature of 330 K, the coefficient of mechanical losses has a maximum corresponding to the relaxation process associated with the segmental mobility of the chain and the dynamic modulus of elasticity of the composition monotonically decreases with increasing temperature. The maximum vibration-absorbing properties based on epoxy and polyurethane polymers can be obtained at their ratio of 65:35.
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spelling doaj.art-8c303663b3e242ea8c7df4f794a8d50e2023-07-21T09:40:42ZengEDP SciencesE3S Web of Conferences2267-12422023-01-014010509510.1051/e3sconf/202340105095e3sconf_conmechydro23_05095Thermodynamic compatibility and structural characteristics of interpenetrating polymer vibration damping systems for engineering purposesNegmatov Soyibjon0Abed Nodira1Ulmasov Tulkin2Khaminov Burkhon3Tashkent State Technical University named after Islam KarimovTashkent State Technical University named after Islam KarimovTashkent State Technical University named after Islam KarimovTashkent State Technical University named after Islam Karimov Kokand BranchThis article is devoted to the study of thermodynamic compatibility and structural characteristics of interpenetrating polymer systems (IPS) based on thermosetting and thermoplastic polymers for the production of vibration-damping and sound-absorbing composite polymer materials for machine-building purposes. IPS based on epoxy polymer and polyurethane is calculated according to the well-known Flory-Scott theory at a temperature of 373 K to obtain thermodynamic compatibility of the components of the mixture. Studies have established that between the macromolecules of homopolymers that make up the system, a donor-acceptor mechanism of covalent bonding occurs due to an unshared electron of the nitrogen atom and a cross-linked structure of interpenetrating polymer systems is formed, due to the thermodynamic compatibility of the components. The studies determined that at a temperature of 330 K, the coefficient of mechanical losses has a maximum corresponding to the relaxation process associated with the segmental mobility of the chain and the dynamic modulus of elasticity of the composition monotonically decreases with increasing temperature. The maximum vibration-absorbing properties based on epoxy and polyurethane polymers can be obtained at their ratio of 65:35.https://www.e3s-conferences.org/articles/e3sconf/pdf/2023/38/e3sconf_conmechydro23_05095.pdf
spellingShingle Negmatov Soyibjon
Abed Nodira
Ulmasov Tulkin
Khaminov Burkhon
Thermodynamic compatibility and structural characteristics of interpenetrating polymer vibration damping systems for engineering purposes
E3S Web of Conferences
title Thermodynamic compatibility and structural characteristics of interpenetrating polymer vibration damping systems for engineering purposes
title_full Thermodynamic compatibility and structural characteristics of interpenetrating polymer vibration damping systems for engineering purposes
title_fullStr Thermodynamic compatibility and structural characteristics of interpenetrating polymer vibration damping systems for engineering purposes
title_full_unstemmed Thermodynamic compatibility and structural characteristics of interpenetrating polymer vibration damping systems for engineering purposes
title_short Thermodynamic compatibility and structural characteristics of interpenetrating polymer vibration damping systems for engineering purposes
title_sort thermodynamic compatibility and structural characteristics of interpenetrating polymer vibration damping systems for engineering purposes
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2023/38/e3sconf_conmechydro23_05095.pdf
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AT abednodira thermodynamiccompatibilityandstructuralcharacteristicsofinterpenetratingpolymervibrationdampingsystemsforengineeringpurposes
AT ulmasovtulkin thermodynamiccompatibilityandstructuralcharacteristicsofinterpenetratingpolymervibrationdampingsystemsforengineeringpurposes
AT khaminovburkhon thermodynamiccompatibilityandstructuralcharacteristicsofinterpenetratingpolymervibrationdampingsystemsforengineeringpurposes