Improvement of the Thermal Behaviour of Epoxy/Fe Nanoparticle Composites by the Addition of Flame Retardants; Journal of Inorganic and Organometallic Polymers and Materials; Vol. 35, iss. 12
| Parent link: | Journal of Inorganic and Organometallic Polymers and Materials.— .— Berlin: Springer Nature Vol. 35, iss. 12.— 2025.— P. 9707-9718 |
|---|---|
| Outros autores: | Nazarenko O. B. Olga Bronislavovna, Putkhenpurakalchira M. V. Maniyan Visakkh, Amelkovich Yu. A. Yuliya Alexandrovna, Ayrilmis N. Nadir, Shahavi M. H. Mohammad Hassan, Nagarajan R. Rajini |
| Summary: | Title screen The use of nanoparticles as fillers is considered a promising direction for improving the thermal stability and reducing the flammability of polymers. However, nanoparticles can provide a sufficient flame retardant effect only in combination with other flame retardants. In this study, to improve the thermal stability of epoxy composites, the Fe-nanoparticles were added in the epoxy resin alone and in combination with aluminium trihydroxide (ATH) and melamine polyphosphate (MPP) chemicals. Thermal characterization of the epoxy composites was carried out by using thermogravimetric analysis (TG) and differential scanning calorimetry (DSC) under air atmosphere. The results of thermal analysis revealed that the separate addition of Fe-nanoparticles decreased the maximum degradation rate while the combination of the Fe-nanoparticles with the ATH and MPP increased the midpoint temperature at which a loss of 50 wt% of the mass of the epoxy specimens, as well as to a decrease in the maximum decomposition rate of the epoxy composites when heated. The limiting oxygen index (LOI) value of the epoxy composite increased from 19 to 28 with the addition of 15% ATH, 27% with the addition of 15% MPP, and 23% with the addition of Fe-nanoparticles. In conclusion, the MPP showed better performance than the AHT in improving the thermal stability and flame retardancy of epoxy composites Текстовый файл AM_Agreement |
| Idioma: | inglés |
| Publicado: |
2025
|
| Subjects: | |
| Acceso en liña: | https://doi.org/10.1007/s10904-025-03682-y |
| Formato: | Electrónico Capítulo de libro |
| KOHA link: | https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=683649 |
Títulos similares
Comparative study of the effect of flame retardants on the ignition temperature of epoxy composites; Eurasian Physical Technical Journal; Vol. 18, No. 2
Publicado: (2021)
Publicado: (2021)
Study on the interfacial interactions of sulfated alumina with epoxy polymer; Ceramics International; Vol. 45, iss. 7
Publicado: (2019)
Publicado: (2019)
Heat-Induced Strength Behavior of “Steel - Wood” Composite Modified by Flame Retardant; Solid State Phenomena; Vol. 328
por: Torosyan V. F. Vera Fedorovna
Publicado: (2022)
por: Torosyan V. F. Vera Fedorovna
Publicado: (2022)
Способы огнезащиты железнодорожных конструкций; Прогрессивные технологии и экономика в машиностроении
por: Петренкова А. Т.
Publicado: (2023)
por: Петренкова А. Т.
Publicado: (2023)
Thermooxidative Degradation of Composites Based on Epoxy Resin and Metal Nanopowders; Materials Science Forum; Vol. 942 : Modern Problems in Materials Processing, Manufacturing, Testing and Quality Assurance
por: Lipchansky D. S. Dmitry Sergeevich
Publicado: (2019)
por: Lipchansky D. S. Dmitry Sergeevich
Publicado: (2019)
Combined effect of zeolite and boric acid on thermal behavior of epoxy composites; Journal of Thermal Analysis and Calorimetry; Vol. 128, iss. 1
por: Nazarenko O. B. Olga Bronislavovna
Publicado: (2017)
por: Nazarenko O. B. Olga Bronislavovna
Publicado: (2017)
Effect of zeolite modification on mechanical properties of epoxy composites; 11th International Forum on Strategic Technology (IFOST 2016); Pt. 1
Publicado: (2016)
Publicado: (2016)
Enhancement of mechanical and electrical properties of epoxy-based composites filled with intact or oxidized carbon nanotubes; Composites: Mechanics, Computations, Applications: An International Journal; Vol. 10, iss. 3
Publicado: (2019)
Publicado: (2019)
Антипирены для обработки древесины; Прогрессивные технологии и экономика в машиностроении
por: Эшмухамедова М. Р.
Publicado: (2021)
por: Эшмухамедова М. Р.
Publicado: (2021)
Влияние полифосфата меламина на термическую стойкость эпоксидной смолы; Ресурсосберегающие технологии в контроле, управлении качеством и безопасности
por: Вернер Н. Д. Наталья Дмитриевна
Publicado: (2023)
por: Вернер Н. Д. Наталья Дмитриевна
Publicado: (2023)
Polymer Green Flame Retardants
Publicado: (Amsterdam, Elsevier, 2014)
Publicado: (Amsterdam, Elsevier, 2014)
Исследование температуры воспламенения эпоксидных композитов, наполненных нанопорошком алюминия; Ресурсосберегающие технологии в контроле, управлении качеством и безопасности
Publicado: (2024)
Publicado: (2024)
Применение негорючих отделочных материалов в общеобразовательной организации; Прогрессивные технологии и экономика в машиностроении
por: Мацуева Т. А.
Publicado: (2023)
por: Мацуева Т. А.
Publicado: (2023)
Обеспечение безопасности в образовательных учреждениях в случае возникновения чрезвычайной ситуации; Безопасность жизнедеятельности; № 9 (165)
por: Гришагин В. М. Виктор Михайлович
Publicado: (2014)
por: Гришагин В. М. Виктор Михайлович
Publicado: (2014)
Разработка огнестойких эпоксидных композиционных материалов, наполненных нанопорошком железа и борной кислотой; Инновационные технологии в машиностроении
por: Назаренко О. Б. Ольга Брониславовна
Publicado: (2020)
por: Назаренко О. Б. Ольга Брониславовна
Publicado: (2020)
Effect of zeolite and boric acid on epoxy-based composites; Polymers for Advanced Technologies; Vol. 27, iss. 8
Publicado: (2016)
Publicado: (2016)
Modification of Aliphatic Petroleum Resin by Peracetic Acid; Procedia Chemistry; Vol. 10 : Chemistry and Chemical Engineering in XXI century
Publicado: (2014)
Publicado: (2014)
«Smart» materials based on epoxy vitrimers; Химия и химическая технология в XXI веке; Т. 2
por: Manapova E. E.
Publicado: (2025)
por: Manapova E. E.
Publicado: (2025)
Puffing/micro-explosion in composite fuel/water droplets heated in flames; Combustion and Flame; Vol. 233
Publicado: (2021)
Publicado: (2021)
Модифицированные полиэтиленполиамином и эпоксидной смолой цеолиты для извлечения ионов свинца из сточных вод; Известия Томского политехнического университета [Известия ТПУ]. Инжиниринг георесурсов; Т. 332, № 1
por: Камбарова Э. А. Эльмира Абдувалиевна
Publicado: (2021)
por: Камбарова Э. А. Эльмира Абдувалиевна
Publicado: (2021)
Physicochemical features of the effect of special water-based fire retardants on forest materials; Fire Safety Journal; Vol. 123
Publicado: (2021)
Publicado: (2021)
Новый меняющий цвет сорбционный материал для эффективного удаления тяжелых металлов из сточных вод; Известия Томского политехнического университета [Известия ТПУ]. Инжиниринг георесурсов; Т. 335, № 3
Publicado: (2024)
Publicado: (2024)
IR thermography study of flow structure and parameters in diffusion flames; Infrared Physics and Technology; Vol. 117
Publicado: (2021)
Publicado: (2021)
Интерпретация текста учебно-методическое пособие
por: Федянина Л. И.
Publicado: (Кемерово, КемГУ, 2017)
por: Федянина Л. И.
Publicado: (Кемерово, КемГУ, 2017)
Thermal Stability and Flammability of Epoxy Composites Filled with Multi-Walled Carbon Nanotubes, Boric Acid, and Sodium Bicarbonate; Polymers; Vol. 13, iss. 4
Publicado: (2021)
Publicado: (2021)
Structural-phase state and mechanical properties of submicrocrystalline titanium alloy Ti-6Al-4V obtained with use of reversible hydrogen alloying; Bulletin of the Tomsk Polytechnic University; Vol. 311, № 2
por: Grabovetskaya G. P. Galina Petrovna
Publicado: (2007)
por: Grabovetskaya G. P. Galina Petrovna
Publicado: (2007)
Mechanical and thermal properties of Moringa oleifera cellulose-based epoxy nanocomposites; Journal of Composite Materials; Vol. 53, iss. 5
Publicado: (2019)
Publicado: (2019)
Development of salt deposit and corrosion retardant in aqueous environment on the basis of organic phosphonate for the water recycling systems of chemical and by-product coking industrial enterprise; Bulletin of the Tomsk Polytechnic University; Vol. 310, № 1
por: Ushakov V. Ya. Vasily Yakovlevich
Publicado: (2007)
por: Ushakov V. Ya. Vasily Yakovlevich
Publicado: (2007)
Flame propagation behavior of aluminum nanopowder in bulk layer; Journal of Loss Prevention in the Process Industries; Vol. 69
Publicado: (2021)
Publicado: (2021)
Evaluating characteristics of turbulent flames by using IR thermography and PIV; Infrared Physics & Technology; Vol. 92
Publicado: (2018)
Publicado: (2018)
Oxidation regularities of the electroexplosive metal nanopowders during heating in air after microwave irradiation; Journal of Thermal Analysis and Calorimetry; Vol. 150, iss. 4
Publicado: (2025)
Publicado: (2025)
Prospects of using nanopowders as flame retardant additives; Advanced Materials Research; Vol. 872
Publicado: (2014)
Publicado: (2014)
Epoxy Composites Filled with Sodium Bicarbonate: Thermal and Mechanical Properties; Key Engineering Materials; Vol. 781 : Radiation-Thermal Effects and Processes in Inorganic Materials
por: Murashkina Yu. Yuliya
Publicado: (2018)
por: Murashkina Yu. Yuliya
Publicado: (2018)
An Enhanced Evolutionary Software Defect Prediction Method Using Island Moth Flame Optimization; Mathematics; Vol. 9, iss. 15
Publicado: (2021)
Publicado: (2021)
Dynamics of destruction of epoxy composites filled with ultra-dispersed diamond under impact conditions; Mechanics of Advanced Materials and Structures; Vol. 27, No. 9
Publicado: (2020)
Publicado: (2020)
MTV-MFO: Multi-Trial Vector-Based Moth-Flame Optimization Algorithm; Symmetry; Vol. 13, iss. 12
Publicado: (2021)
Publicado: (2021)
High Physicochemical Persistence of Aluminum Nanoparticles in Synthetic Body Fluids; Advanced Materials Research; Vol. 872 : Russian-German Forum on Nanotechnology
Publicado: (2014)
Publicado: (2014)
Thermal Behavior and Flammability of Epoxy Composites Based on Multi-Walled Carbon Nanotubes and Expanded Graphite: A Comparative Study; Applied Sciences; Vol. 10, iss. 19
Publicado: (2020)
Publicado: (2020)
Comparative study of active infrared thermography, ultrasonic laser vibrometry and laser ultrasonics in application to the inspection of graphite/epoxy composite parts; Quantitative InfraRed Thermography Journal; Vol. XX
Publicado: (2019)
Publicado: (2019)
How to improve efficiency of using water when extinguishing fires through the explosive breakup of drops in a flame: Laboratory and field tests; International Journal of Thermal Sciences; Vol. 121
por: Kuznetsov G. V. Geny Vladimirovich
Publicado: (2017)
por: Kuznetsov G. V. Geny Vladimirovich
Publicado: (2017)
Títulos similares
-
Comparative study of the effect of flame retardants on the ignition temperature of epoxy composites; Eurasian Physical Technical Journal; Vol. 18, No. 2
Publicado: (2021) -
Study on the interfacial interactions of sulfated alumina with epoxy polymer; Ceramics International; Vol. 45, iss. 7
Publicado: (2019) -
Heat-Induced Strength Behavior of “Steel - Wood” Composite Modified by Flame Retardant; Solid State Phenomena; Vol. 328
por: Torosyan V. F. Vera Fedorovna
Publicado: (2022) -
Способы огнезащиты железнодорожных конструкций; Прогрессивные технологии и экономика в машиностроении
por: Петренкова А. Т.
Publicado: (2023) -
Thermooxidative Degradation of Composites Based on Epoxy Resin and Metal Nanopowders; Materials Science Forum; Vol. 942 : Modern Problems in Materials Processing, Manufacturing, Testing and Quality Assurance
por: Lipchansky D. S. Dmitry Sergeevich
Publicado: (2019)