Search results for "thermal degradation"

showing 9 items of 19 documents

Morphology, mechanical properties and thermal degradation kinetics of PMMA-zirconia nanocomposites prepared by melt compounding

2012

Zirconia nanoparticles were synthesized by means of a sol-gel method and embedded in poly(methyl methacrylate) (PMMA) by melt compounding. The zirconia was well dispersed in the PMMA matrix, with only a few clusters, especially for the highest investigated zirconia content. NMR results showed heteronuclear dipolar interactions involving the carbons and the surrounding hydrogen nuclei. The effect of the amount of zirconia, in the range of 1–5!wt%, on the thermomechanical properties and thermal degradation kinetics of PMMA was also investigated by means of dynamic mechanical analysis (DMA), thermogravimetric analyses (TGA), and Fourier-transform infrared spectroscopy (FTIR). The presenc…

MorphologyThermogravimetric analysisMaterials sciencePolymers and PlasticsGeneral Chemical EngineeringNanoparticleInfrared spectroscopylcsh:Chemical technologyNanocompositeslcsh:TA401-492Materials Chemistrylcsh:TP1-1185Cubic zirconiaThermal stabilityPhysical and Theoretical ChemistryFourier transform infrared spectroscopyComposite materialSettore CHIM/02 - Chimica FisicaNanocompositeOrganic ChemistryDynamic mechanical analysisPMMAnanocomposites PMMA zirconia morphology dynamic mechanical analysis thermal degradationThermal degradationZirconialcsh:Materials of engineering and construction. Mechanics of materialsExpress Polymer Letters
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Synthesis, characterization and thermal degradation of 8-hydroxyquinoline–guanidine–formaldehyde terpolymer

2007

Abstract Terpolymer (8-HQGF) has been synthesized using the monomers 8-hydroxyquinoline, guanidine, formaldehyde in 1:1:2 molar proportions. The structure of 8-HQGF terpolymer has been elucidated on the basis of elemental analysis and various physicochemical techniques, i.e. UV–Visible, FTIR–ATR and 1 H NMR spectroscopy. Detailed thermal degradation study of the new terpolymer has been carried out to ascertain its thermal stability. Thermal degradation curve is discussed which shows two decomposition steps (265–475 °C and 540–715 °C). Sharp–Wentworth and Freeman–Carroll methods have been used to calculate activation energies and thermal stability. The activation energy ( E a ) calculated by…

Order of reactionPolymers and PlasticssynthesisFormaldehydeGeneral Physics and Astronomy02 engineering and technologyActivation energy010402 general chemistry7. Clean energy01 natural scienceschemistry.chemical_compoundsymbols.namesakeSharp-Wentworth methodPolymer chemistryMaterials ChemistryThermal stabilitythermal degradationGuanidineSpectroscopyComputingMilieux_MISCELLANEOUSOrganic Chemistry021001 nanoscience & nanotechnology0104 chemical sciencesGibbs free energyFreeman-Carroll method[ CHIM.POLY ] Chemical Sciences/Polymers[CHIM.POLY]Chemical Sciences/Polymerschemistryspectroscopic characterizationProton NMRsymbolsPhysical chemistry0210 nano-technology8-HQGF terpolymer
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Detection of lactobacillic acid in low erucic rapeseed oil--A note of caution when quantifying cyclic fatty acid monomers in vegetable oils.

2010

International audience; The purpose of this work was to identify an unknown component which has been detected during the analysis of cyclic fatty acid monomers (CFAMs) in low erucic acid rapeseed oils (LEAR). A sample of crude LEAR was transformed into fatty acid methyl esters (FAMEs) and hydrogenated using PtO2. The hydrogenated sample was fractionated by reversed-phase high-performance liquid chromatography (RP-HPLC) and the fraction containing the CFAMs transformed into picolinyl esters. Analysing these picolinyl derivatives by gas-liquid chromatography coupled to mass spectrometry (GC-MS) showed that the unknown product observed in LEAR is the 11,12-methylene-octadecanoic acid. This cyc…

RapeseedFraction (chemistry)Mass spectrometry01 natural sciencesBiochemistryHigh-performance liquid chromatographyGas Chromatography-Mass SpectrometryTHERMAL DEGRADATIONFatty Acids Monounsaturated03 medical and health scienceschemistry.chemical_compoundLOW ERUCIC ACID RAPESEED OIL[SDV.IDA]Life Sciences [q-bio]/Food engineering1112-METHYLENE-OCTADECANOIC ACIDOrganic chemistryPlant Oils[SPI.GPROC]Engineering Sciences [physics]/Chemical and Process EngineeringMolecular Biology030304 developmental biologychemistry.chemical_classification0303 health sciencesChromatographyChemistryCYCLIC FATTY ACID MONOMERS010401 analytical chemistryOrganic ChemistryFatty AcidsFatty acidMASS-SPECTROMETRYCell BiologySunflower0104 chemical sciencesErucic acidRapeseed OilQuantitative analysis (chemistry)Chemistry and physics of lipids
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Influence of substrate and temperature on the biodegradation of polyester-based materials: Polylactide and poly(3-hydroxybutyrate-co-3-hydroxyhexanoa…

2020

[EN] The extended use of polymers from renewable resources such as aliphatic polyesters or polyhydroxyalkanoates boosted the necessity to understand their behaviour in an end-of-life scenario. Although they can be degraded in reasonable shorter times than traditional polymers, understanding the degradation mechanisms under dissimilar conditions will contribute to further developments in this field. This work aimed to study the effect of temperature and substrate in the degradation of polylactide (PLA) and poly(3-hydroxybutyrate-co-3-hydroxyhexanoate) (PHBH) in a simulated laboratory scale to ascertain their contribution, separately or in combination. For this purpose, nine parallel degradat…

Solucions polimèriquesMaterials sciencePolymers and PlasticsPoly-3-hydroxybutyratePolyester02 engineering and technology010402 general chemistry01 natural sciences15.- Proteger restaurar y promover la utilización sostenible de los ecosistemas terrestres gestionar de manera sostenible los bosques combatir la desertificación y detener y revertir la degradación de la tierra y frenar la pérdida de diversidad biológicaCIENCIA DE LOS MATERIALES E INGENIERIA METALURGICAMaterials Chemistry03.- Garantizar una vida saludable y promover el bienestar para todos y todas en todas las edades13.- Tomar medidas urgentes para combatir el cambio climático y sus efectosMaterials3-Hydroxyhexanoate11.- Conseguir que las ciudades y los asentamientos humanos sean inclusivos seguros resilientes y sosteniblesSubstrate (chemistry)Biodegradation021001 nanoscience & nanotechnologyCondensed Matter PhysicsBiomaterial0104 chemical sciences02.- Poner fin al hambre conseguir la seguridad alimentaria y una mejor nutrición y promover la agricultura sosteniblePolyesterPHBHChemical engineeringMechanics of MaterialsThermal degradationMAQUINAS Y MOTORES TERMICOSBiodegradationPLAChristian ministry0210 nano-technologySubstrateMATEMATICA APLICADA
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Water absorption and hydrothermal performance of PHBV/sisal biocomposites

2014

[EN] The performance of biocomposites of poly(hydroxybutyrate-co-valerate) (PHBV) and sisal fibre subjected to hydrothermal tests at different temperatures above the glass transition of PHBV (TH ¿ 26, 36 and 46 C) was evaluated in this study. The influences of both the fibre content and presence of coupling agent were focused. The water absorption capability and water diffusion rate were considered for a statistical factorial analysis. Afterwards, the physico-chemical properties of water-saturated biocomposites were assessed by Fourier-Transform Infrared Analysis, Size Exclusion Chromatography, Differential Scanning Calorimetry and Scanning Electron Microscopy. It was found that the water d…

Statistical factorial analysis (SFA)Materials scienceAbsorption of waterBiocompositesPolymers and PlasticsMaterials compostosTermoplàsticsCondensed Matter PhysicsHydrothermal degradationHydrothermal circulationLignocellulosic fibresSisalPoly(hydroxybutyrate-co-valerate) (PHBV)Mechanics of MaterialsMAQUINAS Y MOTORES TERMICOSMaterials ChemistrySisal fibreComposite materialGlass transitioncomputerSISALcomputer.programming_language
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Time-resolved rheology as a tool to monitor the progress of polymer degradation in the melt state – Part II: Thermal and thermo-oxidative degradation…

2015

Abstract Thermal and thermo-oxidative degradation of nanocomposites based on polyamide 11 (PA11) and organo-modified clay (Cloisite® 30B) are studied in the melt state (T = 215 °C) via time-resolved mechanical spectroscopy (TRMS). The goal is assessing the potentiality of rheological analysis for studying polymer degradation in complex systems such as polymer nanocomposites, whose rheological response stems from the combination of the contributions of polymer and nanoparticles. We prove that a thorough analysis grounded on TRMS allows to isolate the effect of degradation of the polymer matrix, whose progress can be hence profitably monitored. Essentially the same degradation mechanisms as i…

chemistry.chemical_classificationMALDI-TOFMaterials scienceNanocompositeNanocompositePolymers and PlasticsPolymer nanocompositeOrganic ChemistryPolymerOxidative-induction timeSettore ING-IND/22 - Scienza E Tecnologia Dei MaterialiPolymer degradationRheologychemistryPolyamideThermal degradationThermo-oxidative degradationMaterials ChemistryDegradation (geology)Composite materialRheologyPolyamide 11Organo-clay
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Time-resolved rheology as a tool to monitor the progress of polymer degradation in the melt state - Part I: Thermal and thermo-oxidative degradation …

2015

Abstract Thermal and thermo-oxidative degradation of polyamide 11 (PA11) in the melt state (T = 215 °C) are studied by resorting to time-resolved mechanical spectroscopy. Such an approach allows to elude the changes in the rheological properties occurring while testing, thus enabling the rigorous study of polymer degradation in the melt state. Different concurrent degradation reactions in oxidative (air) and non-oxidative (N2) environment are promptly guessed by studying the time evolutions of rheological functions. In particular, changes in the zero-frequency complex viscosity reflects changes in the average molecular weight, while the appearance of a yield stress in the complex viscosity …

chemistry.chemical_classificationMaterials sciencePolymers and PlasticsRheometryOrganic ChemistrySize-exclusion chromatographyPolymerSECSettore ING-IND/22 - Scienza E Tecnologia Dei MaterialiPolymer degradationChemical engineeringRheologychemistryMALDI- TOF-MSPolyamideThermal degradationThermo-oxidative degradationMaterials ChemistryOrganic chemistryDegradation (geology)Molar mass distributionRheologyPolyamide 11
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Effect of nanoparticles on the morphology, mechanical properties and thermal degradation kinetics of polymetylmetacrylate and polycarbonate

2013

nanocomposites PMMA polycarbonate zirconia morphology dynamic mechanical analysis thermal degradation
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As the filler influences morphology, mechanical properties and thermal degradation of a polymer

2013

nanocomposites PMMA zirconia morphology dynamic mechanical analysis thermal degradationSettore CHIM/02 - Chimica Fisica
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