Polymeric Foams

Advances in nanotechnology have boosted the development of more efficient materials, with emerging sectors (electronics, energy, aerospace, etc.) demanding novel materials to fulfill the complex technical requirements of their products. This is the case of polymeric foams, which may display good str...

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Year of Publication:2019
Language:English
Physical Description:1 electronic resource (322 p.)
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100 1 |a Velasco, José Ignacio  |4 auth 
245 1 0 |a Polymeric Foams 
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520 |a Advances in nanotechnology have boosted the development of more efficient materials, with emerging sectors (electronics, energy, aerospace, etc.) demanding novel materials to fulfill the complex technical requirements of their products. This is the case of polymeric foams, which may display good structural properties alongside functional characteristics through a complex composition and (micro)structure in which a gas phase is combined with rigid ones, mainly based on nanoparticles, dispersed throughout the polymer matrix. In recent years, there has been an important impulse in the development of nanocomposite foams, extending the concept of nanocomposites to the field of cellular materials. This, alongside developments in new advanced foaming technologies which have allowed the generation of foams with micro, sub-micro, and even nanocellular structures, has extended the applications of more traditional foams in terms of weight reduction, damping, and thermal and/or acoustic insulation to novel possibilities, such as electromagnetic interference (EMI) shielding. This Special Issue, which consists of a total of 22 articles, including one review article written by research groups of experts in the field, considers recent research on novel polymer-based foams in all their aspects: design, composition, processing and fabrication, microstructure, characterization and analysis, applications and service behavior, recycling and reuse, etc. 
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653 |a phenolic foams 
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653 |a foam extrusion 
653 |a energy conservation 
653 |a heat transfer 
653 |a heterogeneous nucleation 
653 |a polyurethane foam 
653 |a leaching test 
653 |a functional 
653 |a cellulose foam 
653 |a impact property 
653 |a foam injection molding 
653 |a itaconic acid 
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653 |a phosphorus flame retardants 
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653 |a flame-retardant ABS microcellular foams 
653 |a nanotubes 
653 |a conductivity 
653 |a energy absorption capability 
653 |a intrinsic toughness 
653 |a ternary synergistic effect 
653 |a multilayers 
653 |a absorbent PMI foam 
653 |a semi-rigid polyurethane foams 
653 |a phosphorus 
653 |a EMI 
653 |a supramolecular additives 
653 |a MuCell® injection-molding foaming 
653 |a piezocomposite 
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653 |a scCO2 foaming 
653 |a automobile structural adhesives 
653 |a thermogravimetric analysis 
653 |a rigid polyurethane foam 
653 |a failure mechanism 
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653 |a equation of state 
653 |a cellulose nanofiber 
653 |a epoxy 
653 |a DOPO 
653 |a PUR 
653 |a grey relational analysis 
653 |a activation energies 
653 |a adjacent façade 
653 |a electrical conductivity 
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700 1 |a Antunes, Marcelo  |4 auth 
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