Search results for "smart materials"

showing 10 items of 13 documents

Proactive design and formalization of related spatiotemporal knowledge : application to assembly process and additive manufacturing with smart materi…

2019

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MéréotopologieMatériaux intelligentsProactive designFabrication additiveVoxelOntologyAdditive manufacturing[SPI] Engineering Sciences [physics]Smart materialsOntologie4D printingPLMMereotopologyConception proactiveImpression 4D[SPI.MECA.GEME]Engineering Sciences [physics]/Mechanics [physics.med-ph]/Mechanical engineering [physics.class-ph][SPI]Engineering Sciences [physics]Advanved CADCAO avancéeVoxels[SPI.MECA.GEME] Engineering Sciences [physics]/Mechanics [physics.med-ph]/Mechanical engineering [physics.class-ph]
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Polysaccharides/Halloysite nanotubes for smart bionanocomposite materials.

2020

Biopolymers as alternative to fossils-derived polymers are attracting the interest of researcher in material science. Besides the economic advantages, the sustainability makes polysaccharides ideal candidates to prepare films and formulations. The addition of Halloysite nanotubes as green inorganic fillers was exploited to improve the physico-chemical properties and to introduce smart response abilities to the material. Halloysite is a natural tubular nanomaterial with hollow cavity and large aspect ratio. The effect of polymer charge on the morphology and mesoscopic properties of polysaccharides/halloysite nanocomposites has been highlighted. Different strategies (solvent casting, lyophili…

Materials sciencePolymers and PlasticsSurface PropertiesHalloysite nanotubeNanotechnologyBiocompatible Materials02 engineering and technologyengineering.material010402 general chemistry01 natural sciencesHalloysiteNanomaterialsNanocompositesSustainable materialBiopolymersDrug Delivery SystemsLarge aspect ratioStimuli responsive materialPolysaccharidesMaterials ChemistryPolysaccharidechemistry.chemical_classificationNanocompositeNanocompositeNanotubesTissue EngineeringOrganic ChemistryFood PackagingPolymer021001 nanoscience & nanotechnologyCasting0104 chemical sciencesEconomic advantageSmart MaterialschemistryDrug deliveryengineeringClay0210 nano-technologyCarbohydrate polymers
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Advances in Research for Biomimetic Materials

2018

Smart surfaces and materials can play a significant role in intelligent, adaptive and responsive envelopes because of these intrinsic properties. The environmental question and energy efficiency in which the construction sector is involved, is in a process that can not be interrupted and that puts researchers and designers in front of a scientific and design challenge in which it is necessary to contribute to find different ways of study and experimentation on new materials and constructive languages, ranging from the application, to the structural, design and molecular, to mention the main ones. The development of technologies is helping architects of the “biomimetic current” to recreate c…

Settore ICAR/12 - Tecnologia Dell'ArchitetturaAdaptive Sustainability Biomimetic Envelope Efficiency Smart Materials
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Conception basée sur les origamis pour l'impression 4D de structures déployables

2020

Deployable structures can be deformed between the different configurations through predetermined mechanisms, showing the great potential in many engineering applications. However, their exquisite and intricate mechanisms also bring a great difficulty to the design of its structure. With the growing 4D printing efforts, its self-transforming characteristics under external stimuli provide new possibilities for deploying complex and challenging driving structures. Furthermore, origami-based engineering has provided tremendous technical support for structural conversion, especially from 2D to 3D states, leading to many design studies based on origami-inspired deployable structures. However, the…

[SPI.OTHER]Engineering Sciences [physics]/OtherOrigami-Based designMatériaux intelligentsStructure déployableFabrication additive[SPI.OTHER] Engineering Sciences [physics]/OtherAdditive manufacturingConception des produits[PHYS.MECA.GEME] Physics [physics]/Mechanics [physics]/Mechanical engineering [physics.class-ph]Smart materials[PHYS.MECA.GEME]Physics [physics]/Mechanics [physics]/Mechanical engineering [physics.class-ph]4D PrintingConception à base d'origamiImpression 4DProduct designDeployable structure
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Characterization of Food Packaging Films with Blackcurrant Fruit Waste as a Source of Antioxidant and Color Sensing Intelligent Material

2021

Chitosan and pectin films were enriched with blackcurrant pomace powder (10 and 20% (w/w)), as bio-based material, to minimize food production losses and to increase the functional properties of produced films aimed at food coatings and wrappers. Water vapor permeability of active films increased up to 25%, moisture content for 27% in pectin-based ones, but water solubility was not significantly modified. Mechanical properties (tensile strength, elongation at break and Young’s modulus) were mainly decreased due to the residual insoluble particles present in blackcurrant waste. FTIR analysis showed no significant changes between the film samples. The degradation temperatures, determined by D…

antioxidantPectinChemical Phenomena030309 nutrition & dieteticsPharmaceutical ScienceOrganic chemistryBiocompatible MaterialsPRIRODNE ZNANOSTI. Kemija.AntioxidantsAnalytical ChemistryChitosanchemistry.chemical_compoundQD241-441Drug DiscoveryFood scienceWater contentchemistry.chemical_classificationpectin0303 health sciencesChemistryFood Packaging04 agricultural and veterinary sciencesPolymer040401 food scienceFood packagingSmart MaterialsChemistry (miscellaneous)Molecular MedicineLightnessfood.ingredientNATURAL SCIENCES. Chemistry.Article03 medical and health sciences0404 agricultural biotechnologyfoodintelligent sensingUltimate tensile strengthblackcurrant wasteblackcurrant waste ; chitosan ; pectin ; antioxidant ; intelligent sensing ; color changing ; packaging filmsPhysical and Theoretical ChemistryMechanical Phenomenapackaging filmsWaste ProductsChitosanSpectrum AnalysisPomaceMembranes ArtificialFruitcolor changingchitosan
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Smart materials meet multifunctional biomedical devices:Current and prospective implications for nanomedicine

2017

With the increasing advances in the fabrication and in monitoring approaches of nanotechnology devices, novel materials are being synthesized and tested for the interaction with biological environments. Among them, smart materials in particular provide versatile and dynamically tunable platforms for the investigation and manipulation of several biological activities with very low invasiveness in hardly accessible anatomical districts. In the following, we will briefly recall recent examples of nanotechnology-based materials that can be remotely activated and controlled through different sources of energy, such as electromagnetic fields or ultrasounds, for their relevance to both basic scien…

HistologyComputer scienceMini Reviewlcsh:BiotechnologyBiomedical EngineeringBioengineeringNanotechnology02 engineering and technology010402 general chemistrySmart materialRemote stimulation01 natural sciencesdrug delivery; immune system; remote stimulation; smart materials; tissue engineeringlcsh:TP248.13-248.65Tissue engineeringSmart materialsBioengineering and Biotechnologyremote stimulation021001 nanoscience & nanotechnology0104 chemical sciencesimmune systemTissue targetingImmune systemsmart materialstissue engineeringdrug deliveryDrug deliveryNanomedicine0210 nano-technologyBiotechnology
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Intégration proactive des métiers en conception et formalisation des connaissances spatio-temporelles associées : application à l'assemblage et à la …

2019

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MéréotopologieProactive design[SPI] Engineering Sciences [physics]Additive manufacturingadvanced CADOntologie4D printingconception pour l'X[SPI.MECA] Engineering Sciences [physics]/Mechanics [physics.med-ph]PLM[SPI]Engineering Sciences [physics]CAO avancéeontologies[SPI.MECA.GEME] Engineering Sciences [physics]/Mechanics [physics.med-ph]/Mechanical engineering [physics.class-ph]design for XMatériaux intelligentsFabrication additiveVoxelOntologySmart materials[SPI.MECA]Engineering Sciences [physics]/Mechanics [physics.med-ph]MereotopologyConception proactiveImpression 4D[SPI.MECA.GEME]Engineering Sciences [physics]/Mechanics [physics.med-ph]/Mechanical engineering [physics.class-ph]Advanved CADVoxels
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Smart Materials in Architecture

2016

The project activity presides over the choice of materials and technical capacity within two dimensions of action: the previous knowledge and the tension about the future. That allowed us to identify the succession of the “technological and material” paradigms that have come and gone, featuring the project with the arrival of new materials and production processes. The advent of composite smart materials has challenged all the materials overturning the features.

EngineeringArchitectural engineeringbusiness.industry020209 energyElectrical engineeringArchitecture; Efficiency; Interactivity; Nanotechnology; Smart materials; Engineering (all)New materialsEfficiency02 engineering and technology021001 nanoscience & nanotechnologySmart materialSettore ICAR/12 - Tecnologia Dell'ArchitetturaInteractivityEngineering (all)InteractivityAction (philosophy)Smart materialArchitecture0202 electrical engineering electronic engineering information engineeringNanotechnologyArchitecture0210 nano-technologybusinessInternational Journal of Engineering Research in Africa
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Hyper-reticulated calixarene polymers: a new example of entirely synthetic nanosponge materials

2018

New calixarene-based nanosponges (CaNSs), i.e., hyper-reticulated polymers constituted by calixarene monomer units joined by means of bis(1,2,3-trialzolyl)alkyl linkers, were synthesized, characterized and subjected to preliminary tests to assess their supramolecular absorption abilities towards a set of suitable organic guests, selected as pollutant models. The synthesis was accomplished by means of a CuAAC reaction between a tetrakis(propargyloxy)calix[4]arene and an alkyl diazide. The formation of the polymeric network was assessed by means of FTIR and 13C{1H} CP-MAS solid-state NMR techniques, whereas morphological characterization was provided by SEM microghaphy. The materials were pro…

calixarenesSupramolecular chemistrynanosponges02 engineering and technology010402 general chemistryNanosponge01 natural sciencesFull Research PaperHydrophobic effectlcsh:QD241-441chemistry.chemical_compoundlcsh:Organic chemistrySmart materialCalixarenePolymer chemistryFourier transform infrared spectroscopylcsh:ScienceAlkylSettore CHIM/02 - Chimica Fisicachemistry.chemical_classificationOrganic ChemistrySettore CHIM/06 - Chimica OrganicaSettore CHIM/05 - Scienza E Tecnologia Dei Materiali PolimericiPolymer021001 nanoscience & nanotechnology0104 chemical sciencesChemistryMonomerchemistrySolid-state nuclear magnetic resonancesmart materialsCalixarenesolid-state NMRlcsh:Q0210 nano-technologyBeilstein Journal of Organic Chemistry
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A holistic approach to design for 4D Printing

2019

Invented in 1983, as a rapid prototyping process, additive manufacturing (AM) is nowadays considered as a manufacturing process almost in the same way as conventional processes. For example, parts obtained by AM are found in aircraft structures. This AM evolution is mainly due to the shape complexity allowed by the process. The driving forces behind this evolution include: the development of various techniques on the layer-wise manufacturing principle and the improvement both in quantity and quality of the range of materials that can be processed. Many other AM techniques and materials continue to emerge. In the wake of the AM (usually referred to as 3D printing) another mode of manufacturi…

Matériaux intelligentsFabrication additiveConception pour l’impression 4DAdditive manufacturingDfamDesign for 4D Printing (Df4DP)Voxel-Based modelingSmart materials4D printingImpression 4D[PHYS.MECA.MEMA]Physics [physics]/Mechanics [physics]/Mechanics of materials [physics.class-ph][PHYS.MECA.MEMA] Physics [physics]/Mechanics [physics]/Mechanics of materials [physics.class-ph]Modélisation à base de voxelsConception pour la fabrication additive
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