Search results for "density polyethylene"

showing 10 items of 140 documents

One-step reactive processing of low density polyethylene and octavinyl polyhedral oligomeric silsesquioxane

2015

Polyhedral oligomeric silsesquioxane (POSS) are an innovative class of organosilicon compounds suitable for formulation of advanced organic-inorganic hybrid materials. Nanocomposites based POSS found application mostly in high-temperature resistance and fire-resistance materials. POSS are characterized by a three dimensional cage-like structure, made of Si-O bonds, with different organic groups directly linked to the Si atoms of the cage structure. The organic groups can be designed to facilitate the dispersion of the nanoparticle itself in the polymer matrix or also to react with the polymer chain. This work focuses on the possibility to obtain crosslinking of polyethylene using octavinyl-…

One-step reactive processing low density polyethylene octavinyl polyhedral oligomeric silsesquioxane
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Stabilisation of LDPE cross-linked in the presence of peroxidesII. FTIR study of chemical changes taking place in the LDPE–dicumyl peroxide–Irganox 1…

2000

Abstract The chemical changes taking place in the systems: LDPE–Irganox 1081, LDPE–dicumyl peroxide and LDPE–Irganox 1081–dicumyl peroxide, after homogenisation (in a rolling mill at 130°C) and after homogenisation and cross-linking (at 180°C and 5.0 MPa for 20 min) were investigated by FTIR. It was found that the OH groups in Irganox 1081 were in a bound form, and were most probably linked to the sulphur co-ordination centre. Further, the presence of dicumyl peroxide without Irganox 1081 in LDPE resulted in the formation of hydroperoxide groups at a temperature of 130°C, which were replaced by free hydroxy and carbonyl groups of a ketonic type after cross-linking. Simultaneous addition of …

Organic peroxidePolymers and PlasticsPotassium bromideConcentration effectPolyethyleneCondensed Matter PhysicsPeroxideLow-density polyethylenechemistry.chemical_compoundchemistryMechanics of MaterialsPolymer chemistryMaterials ChemistryOrganic chemistryPartial oxidationFourier transform infrared spectroscopyPolymer Degradation and Stability
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Resource or waste? A perspective of plastics degradation in soil with a focus on end-of-life options.

2018

‘Capable-of-being-shaped’ synthetic compounds are prevailing today over horn, bone, leather, wood, stone, metal, glass, or ceramic in products that were previously left to natural materials. Plastic is, in fact, economical, simple, adaptable, and waterproof. Also, it is durable and resilient to natural degradation (although microbial species capable of degrading plastics do exist). In becoming a waste, plastic accumulation adversely affects ecosystems. The majority of plastic debris pollutes waters, accumulating in oceans. And, the behaviour and the quantity of plastic, which has become waste, are rather well documented in the water, in fact. This review collects existing information on pla…

PLA polylactic acidPS polystyreneETS European Emissions Trading schemePOM polyoxymethyleneHMC heat melt compactor technology02 engineering and technology010501 environmental sciencesNHV net habitable volumeLDPE low-density polyethylene01 natural sciencesPC polycarbonateResin identification codeLCP liquid crystal polymerslcsh:Social sciences (General)PAC pro-oxidant additive containingPET polyethylene terephthalateEPR Extended Producers ResponsibilityMultidisciplinaryWaste managementNatural materials021001 nanoscience & nanotechnologyPU or PUR polyurethaneSettore AGR/02 - Agronomia E Coltivazioni ErbaceeEPS expandable polystyreneRIC resin identification codeSettore AGR/14 - PedologiaPVDF polydifluoroethylenelcsh:H1-990210 nano-technologyBiogeoscienceGPPS Polystyrene (General Purpose)PVC polyvinyl chlorideResource (biology)Polymethyl methacrylatePA polyamidePBT polybutylene terephthalatePSU polyarylsulfonePTFE polytetrafluoroethylenePMMA polymethyl methacrylatePHA polyhydroxyalkanoateMicrobiologyPEEK polyaryletheretherketoneArticleEnvironmental scienceEnvironmental science Biogeoscience Industry MicrobiologyPPA polyphthalamideTPE thermoplastic polyester elastomerNatural degradationIndustryPPS polyphenylene sulphidelcsh:Science (General)ABS acrylonitrile-butadiene-styrene0105 earth and related environmental sciencesbusiness.industryPP polypropyleneHDPE high-density polyethyleneBPA bisphenol AHBCD hexabromocyclododecaneFuture studyAgricultureDOM dissolved organic matterDegradation (geology)Environmental sciencebusinesslcsh:Q1-390Heliyon
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Oxazoline functionalization of polyethylenes and their blends with polyamides and polyesters

2001

The compatibilization of blends of polyamide-6 (PA6) with linear low density polyethylene (LLDPE) and of poly(ethylene terephthalate) (PET) with high density polyethylene (HDPE), by functionalization of the polyethylenes with oxazoline groups was investigated. Chemical modification of LLDPE and HDPE was carried out by melt free radical grafting with ricinoloxazoline maleinate. Blends preparation was made either with a two-steps procedure comprising functionalization and blending, and in a single step in which the chemical modification of polyethylene with the oxazoline monomer was realized in situ, during blending. The characterization of the products was carried out by FTIR spectroscopy an…

POLYOLEFINSMaterials sciencePolymers and PlasticsPP/PBTeducationELASTOMERSchemistry.chemical_compoundPOLYMER BLENDSPolymer chemistryMaterials ChemistryPOLYPROPYLENEOrganic Chemistrytechnology industry and agriculturefood and beveragesChemical modificationCompatibilizationPolyethyleneCondensed Matter PhysicsLinear low-density polyethylenePolyesterREACTIVE COMPATIBILIZATIONSettore ING-IND/22 - Scienza E Tecnologia Dei MaterialichemistryChemical engineeringSurface modificationHigh-density polyethylenePolymer blendMacromolecular Symposia
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Activity and Thermal Stability of Cobalt(II)-Based Olefin Polymerization Catalysts Adorned with Sterically Hindered Dibenzocycloheptyl Groups.

2019

Five examples of unsymmetrical 2-(2,4-bis(dibenzocycloheptyl)-6-methylphenyl- imino)ethyl)-6-(1-(arylyimino)ethyl)pyridine derivatives (aryl = 2,6-Me2C6H3 in L1

Photochemistry2Pharmaceutical Sciencechemistry.chemical_elementCatalysisArticlethermal stabilityAnalytical ChemistryPolymerizationlcsh:QD241-441chemistry.chemical_compoundDibenzocycloheptyl grouplcsh:Organic chemistryDrug DiscoveryPolymer chemistryPyridine26-bis(imino)pyridylcobalt(II) chloride precatalystsThermal stabilityPhysical and Theoretical ChemistryMolecular StructureOrganic ChemistryCobaltPolyethyleneSquare pyramidal molecular geometryLinear low-density polyethylene6-bis(imino)pyridylcobalt(II) chloride precatalystschemistryPolymerizationhigh molecular-weight saturated/unsaturated polyethyleneChemistry (miscellaneous)PolyethyleneMolecular MedicineMolar mass distributionCobaltMolecules (Basel, Switzerland)
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Preparation and Characterization of Polyolefin-Based Nanocomposite Blown Films for Agricultural Applications

2009

These kinds of filmshave,asaprimaryaim,tocreateafavorablemicro-climateto accelerate the plant growth.Thematerialsfortheseapplicationsmustpossessseveralspecificandpeculiarcharacteristics,suchastheabilitytobeshaped into films (even with wide dimensions and largethickness ranges), good deformability and tear resistancetogetherwithasufficientrigidity,transparencyforUVandIR radiation in particular regions of the spectrum, a goodresistance to photo-oxidative phenomena and for someapplications to provide a barrier for certain gases.Moreover, an important property requested for thematerials used for greenhouse covering is the capabilityto diffuse the light. In fact, according to some studies,diffused l…

Plant growthFabricationNanocompositeMaterials sciencePolymers and PlasticsGeneral Chemical EngineeringOrganic ChemistryPolyolefinCharacterization (materials science)chemistry.chemical_compoundLow-density polyethylenechemistryMaterials ChemistryWettingComposite materialMacromolecular Materials and Engineering
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High crystallinity polyethylene obtained in biphasic polymerization using pyridinium chloroaluminate ionic liquid

2014

A series of N-n-alkylpyridinium chloroaluminate ionic liquids [C n -py][AlCl4] (where n-alkyl = n-butyl, n-hexyl, and n-octyl) was applied as a medium of the Cp2TiCl2 catalyst, activated by AlEtCl2 or AlEt2Cl, to evaluate the influence of the studied ionic liquids on the performance of the biphasic ionic liquid/hexane ethylene polymerization and the properties of the produced polyethylene (PE). The best results were obtained using N-n-butylpyridinium chloroaluminate. The polyethylene obtained in the biphasic polymerization have the high crystallinity, which was confirmed by DSC, WAXS and PALS methods, as well as the bulk density comparable to commercial HDPE. These unique properties results…

Polyethylene . Biphasic process . Ionic liquid . Metallocene catalystMaterials sciencePolymers and PlasticsOrganic Chemistrytechnology industry and agriculturePost-metallocene catalystPolyethyleneCrystallinitychemistry.chemical_compoundPolymerizationChemical engineeringchemistryPhase (matter)Polymer chemistryIonic liquidMaterials ChemistryCoordination polymerizationHigh-density polyethyleneJournal of Polymer Research
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Durability of Basalt/Hemp Hybrid Thermoplastic Composites

2019

The Achilles heel of thermoplastic natural fibre composites is their limited durability. The environmental degradation of the mechanical properties of hemp and hemp/basalt hybrid-reinforced high-density polyethylene (HDPE) composites has been investigated with a special focus on the effects of water ageing and accelerated ageing, including hygrothermal and UV radiation. Modification of the matrix was carried out using a maleic anhydride high-density polyethylene copolymer (MAPE) as a compatibilizer. Hybridization of hemp fibres with basalt fibres and the incorporation of MAPE were found to significantly decrease the water uptake (up to 75%) and increase the retention of mechanical propertie…

Polymer-matrix composites (PMCs)Materials scienceThermoplasticPolymers and Plasticspolymer-matrix composites; hybrid; environmental degradation; natural fibres; durability; basalt fibres; hemp fibresNatural Fibersenvironmental degradation02 engineering and technologyHemp fibers010402 general chemistrypolymer-matrix composites01 natural sciencesArticlelaw.inventionlcsh:QD241-441chemistry.chemical_compoundDifferential scanning calorimetrylcsh:Organic chemistryhemp fibreslawnatural fibresUltimate tensile strengthComposite materialCrystallizationchemistry.chemical_classificationPolymer-matrix compositehybridChemistry (all)Maleic anhydrideGeneral ChemistryPolyethylene021001 nanoscience & nanotechnologyDurabilityHybrid0104 chemical sciencesEnvironmental degradationSettore ING-IND/22 - Scienza E Tecnologia Dei MaterialichemistryNatural fibre13. Climate actionBasalt fiber reinforced polymersdurabilityHigh-density polyethylenebasalt fibres0210 nano-technologyHemp fibreBasalt fibrePolymers
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1989

A commercial low density polyethylene was irradiated by gamma irradiation at room temperature with different integrated doses and dose rates. The modifications induced in the material were studied by means of solubility and swelling measurements and related to structural modifications by calorimetric measurements. Results indicate that crosslinking prevails with respect to degradation at high dose rates and that the ageing phenomena occur essentially in the amorphous phase. Ein kommerzielles Polyethylen niedriger Dichte wurde bei unterschiedlicher integrierter Dosis und unterschiedlicher Dosisleistung bei Zimmertemperatur mit Gammastrahlung behandelt. Die Veranderungen des Materials wurden …

Polymers and PlasticsChemistryGeneral Chemical EngineeringRadiation inducedLow-density polyethylenePhase (matter)Polymer chemistrymedicineDegradation (geology)IrradiationSolubilitySwellingmedicine.symptomDose rateNuclear chemistryActa Polymerica
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Necking behavior of low-density polyethylene-isotactic polypropylene blends: A morphological investigation

1984

The tensile behavior of low-density polyethylene-isotactic polypropylene blends was investigated at room temperature. Neck formation and propagation along the whole length of the samples were observed for the whole range of composition. This behavior, which is not indicated by most data available in the literature, was examined in relation to sample morphology by scanning electron microscopy. The results of this investigation indicated some differences between the morphology of these materials and the morphology of blends which do not undergo necking propagation.

PolypropyleneMaterials scienceMorphology (linguistics)Polymers and PlasticsScanning electron microscopeGeneral Chemistrychemistry.chemical_compoundLow-density polyethyleneTensile behaviorchemistryTacticityMaterials ChemistryComposite materialNeckingTensile testingPolymer Engineering and Science
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