Search results for "Polybutylene"

showing 9 items of 9 documents

Ultrasonic Welding of PBT-GF30 (70% Polybutylene Terephthalate + 30% Fiber Glass) and Expanded Polytetrafluoroethylene (e-PTFE)

2021

The ultrasonic welding of polymeric materials is one of the methods often used in practice. However, each couple of material subjected to ultrasonic welding is characterized by different values of technological parameters. Therefore, the main objective of the research presented in this paper is to optimize the parameters for the ultrasonic welding of two materials, namely PBT-GF30 (70% polybutylene terephthalate + 30% fiber glass) and expanded polytetrafluoroethylene (e-PTFE). In this sense, the research was carried out considering a plate-type part made of PBT-GF30, which had a thickness of 2.1 mm, and a membrane-type part made of e-PTFE, with a thickness of 0.3 mm. The condition imposed o…

0209 industrial biotechnologyMaterials sciencePolymers and PlasticsBar (music)PBT-GF30 (70% polybutylene terephthalate + 30% fiber glass)02 engineering and technologyExpanded polytetrafluoroethyleneWeldingArticleultrasonic weldinglaw.inventionlcsh:QD241-441chemistry.chemical_compound020901 industrial engineering & automationlcsh:Organic chemistrylawparameter optimizationComposite materialHolding timeUltrasonic weldingFiber glassGeneral Chemistry021001 nanoscience & nanotechnologyPolybutylene terephthalatechemistry0210 nano-technologyexpanded polytetrafluoroethylene (e-PTFE)Layer (electronics)Polymers
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Improved Bone Regeneration Using Biodegradable Polybutylene Succinate Artificial Scaffold in a Rabbit Model

2022

The treatment of extensive bone loss represents a great challenge for orthopaedic and reconstructive surgery. Most of the time, those treatments consist of multiple-stage surgeries over a prolonged period, pose significant infectious risks and carry the possibility of rejection. In this study, we investigated if the use of a polybutylene succinate (PBS) micro-fibrillar scaffold may improve bone regeneration in these procedures. In an in vivo rabbit model, the healing of two calvarial bone defects was studied. One defect was left to heal spontaneously while the other was treated with a PBS scaffold. Computed tomography (CT) scans, histological and immunohistochemical analyses were performed …

Biomaterialsbone defectbone regenerationpolybutylene succinatemicrofibrillar scaffoldBiomedical Engineeringrabbitbone reconstructionpolybutylene succinate; microfibrillar scaffold; rabbit; bone reconstruction; bone regeneration; bone defect
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The solidification behavior of a PBT/PET blend over a wide range of cooling rate

2009

In recent years, much attention has been paid to the development of high-performance polyester blends, among which blends of polybutylene terephthalate/polyethylene terephthalate (PBT/PET) are expected to exhibit remarkable properties as far as their crystallization behavior is concerned. Through trial and error, appropriate commercial compositions have been chosen which could not be otherwise explained by a suitable interpretation of the mechanisms determining their solidification behavior. The solidification behavior of a 60/40 w/w PBT/PET blend was studied in a wide range of cooling conditions, according to a continuous cooling transformation (CCT) procedure developed previously, aiming …

Materials sciencePolymers and Plastics02 engineering and technologyContinuous cooling transformation010402 general chemistry01 natural sciencesIndentation hardnesslaw.inventionchemistry.chemical_compoundlawPolymer chemistryMaterials ChemistryPolyethylene terephthalatePhysical and Theoretical ChemistryComposite materialCrystallizationchemistry.chemical_classificationPolymer021001 nanoscience & nanotechnologyCondensed Matter Physics0104 chemical sciencesPolyesterPolybutylene terephthalatechemistryPolymer blend0210 nano-technologyJournal of Polymer Science Part B: Polymer Physics
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Redesign of the Geometry of Parts Produced from PBT Composite to Improve Their Operational Behavior

2021

Parts produced from PBT-GF30 (70% polybutylene terephthalate +30% fiberglass) are very often used in car construction, due to the properties of this material. The current trend is to make parts with a shape designed to be as complex as possible, to take over many functions in operation. During the research, a part that is a component of the structure of car safety systems, and that must be completely reliable in operation, was analyzed. This piece has a complex shape that involves the intersection of several walls. Thus, the research aimed at establishing the optimal radius of connection between the walls (R), the ratio between the thickness of the intersecting walls (K) and the angle of in…

Materials sciencePolymers and Plasticsinjection moldingComposite numberOrganic chemistry02 engineering and technology010402 general chemistry01 natural sciencesDisplacement (vector)Articlechemistry.chemical_compoundQD241-441IntersectionShear stressbusiness.industryProcess (computing)General ChemistryRadiusStructural engineering021001 nanoscience & nanotechnology0104 chemical sciencesartificial agingPolybutylene terephthalatePBT-GF30 (70% polybutylene terephthalate +30% fiberglass)chemistrycomposite central designViscosity (programming)viscosity0210 nano-technologybusinessPolymers
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Effect of ultraviolet and moisture action on biodegradable polymers and their blend

2020

In this work, the suitability of polylactic acid (PLA), polybutylene adipate terephthalate (PBAT) and PBAT/PLA blend samples to outdoor applications were investigated in terms of mechanical, morphological and visual properties in presence of ultraviolet action and water, finding that PLA in particular can be actually considered for such applications.

Materials sciencelcsh:BiotechnologyUltraviolet irradiationPolybutyleneBiomedical EngineeringBiophysicsBioengineeringBiodegradable polymers polylactic acid polybutylene adipate terephthalate ultraviolet irradiation humidity02 engineering and technology010402 general chemistrymedicine.disease_causeBiodegradable polymers01 natural sciencesPolylactic acidBiomaterialschemistry.chemical_compoundPolylactic acidlcsh:TP248.13-248.65AdipatePolybutylene adipate terephthalatemedicineMoistureHumidityGeneral Medicine021001 nanoscience & nanotechnologyBiodegradable polymer0104 chemical sciencesSettore ING-IND/22 - Scienza E Tecnologia Dei MaterialichemistryChemical engineeringUltraviolet irradiation0210 nano-technologyUltravioletJournal of Applied Biomaterials & Functional Materials
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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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Effect of adding new phosphazene compounds to poly(butylene terephthalate)/polyamide blends. I: Preliminary study in a batch mixer

2005

Abstract Poly(butylene terephthalate) (PBT) and a sample of polyamide have been melt processed in the presence of two new phosphazene compounds, namely 2,2-dichloro-4,4,6,6-bis[spiro(2′,2″dioxy-1′,1″biphenyl)]cyclotriphosphazene (2Cl-CP) and 2,2-bis-(2-methoxy-4-methyleneoxy-phenoxy)-4,4,6,6,-bis[spiro(2′,2″dioxy-1′,1″biphenyl)]cyclophosphazene (CP-2EPOX). The blends were prepared by using polyamide 6 (PA6) at 25/75 w/w and 75/25 w/w composition. In order to perform a preliminary analysis on the behaviour of the blends, the materials were prepared in a batch mixer. The materials have been completely characterized from a rheological, morphological, mechanical point of view. The results indic…

PolybutyleneterephthalateReaction mechanismMaterials sciencePolymers and PlasticsCyclophosphazeneCondensed Matter PhysicsViscositychemistry.chemical_compoundSettore ING-IND/22 - Scienza E Tecnologia Dei MaterialichemistryRheologyCompatibilisationPolymer blendsMechanics of MaterialsPhase (matter)PolyamidePolymer chemistryPolyamideMaterials ChemistryCopolymerPolymer blendPhosphazenePolymer Degradation and Stability
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Hydrothermal degradation of biobased poly(butylene succinate)/nanofibrillated cellulose composites

2021

Biobased polymers and composites have gained increased global attention due to their abundance, renewability, and biodegradability. Natural fillers such as cellulose-based fillers improve the mechanical properties of biopolymers, extending their application range, while maintaining the eco-friendly characteristics of the materials. Mowing towards engineering applications, requirements imposed on materials’ durability with regard to their environmental impact and high performance is necessary. Variations of ambient humidity and temperature could essentially reduce the service lifetime of biobased polymer composites. This study is focused on the hydrothermal degradation of poly(butylene succi…

chemistry.chemical_classificationAbsorption of waterMaterials sciencePolymerBiodegradationengineering.materialNanocellulosePolybutylene succinatechemistry.chemical_compoundchemistryengineeringDegradation (geology)BiopolymerCelluloseComposite materialProceedings of 1st Corrosion and Materials Degradation Web Conference
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Influence of plasticizers suggests role of topology in polymer solidification at high cooling rates

2012

Although solidification in processing deter- mines short- and long-term properties, methods for under- standing polymer crystallization mostly rely on real time experiments. Their evidences being drawn on time scales farther apart with respect to those experienced in process- ing. Nor significant outcomes have been so far drawn with approaches mimicking the typical processing times, the Continuous Cooling Transformation methods. Use of these techniques has indeed been limited to a heuristic interpretation of the structure developed under extreme solidification conditions without suggesting alternative routes to the understanding or even clues to the many open questions on polymer crystalliz…

chemistry.chemical_classificationMaterials sciencePolymers and PlasticsCrystallization of polymersNucleationGeneral ChemistryPolymerContinuous cooling transformationTopologySurfaces Coatings and Filmslaw.inventionCrystalchemistry.chemical_compoundPolybutylene terephthalatechemistrylawMaterials ChemistryPolyethylene terephthalateCrystallizationJournal of Applied Polymer Science
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