2007
DOI: 10.1002/pen.20819
|View full text |Cite
|
Sign up to set email alerts
|

Influence of nanofillers on thermal insulating properties of polyurethane nanocomposites foams

Abstract: The effect of several nanofillers on thermal insulating properties of polyurethane rigid foams (PUR) was analyzed. The nanofillers used differ for chemical nature and aspect ratio. We used both pristine and organically-modified layered silicates (OMLS) and inorganic spherical nanopowders. The fillers were first dispersed in the polyol component through use of sonication; then doped polyol was mixed with isocyanate. The effect of polyol viscosity and nature (polyether or polyester) on the degree of the dispersi… Show more

Help me understand this report

Search citation statements

Order By: Relevance

Paper Sections

Select...
1
1
1
1

Citation Types

5
100
0
1

Year Published

2009
2009
2020
2020

Publication Types

Select...
8
1

Relationship

0
9

Authors

Journals

citations
Cited by 108 publications
(109 citation statements)
references
References 11 publications
5
100
0
1
Order By: Relevance
“…Nanofiller can have numerous other beneficial effects: nucleating foam bubbles, 47,51,52 decreasing the cell size, [53][54][55] acting as diffusion barriers, 56-58 increasing electrical conductivity, 59,60 stabilizing the foams through interfacial adsorption, 61 stabilizing foam through reduced crystallinity, 62,63 improving fire retartance, 64 reducing thermal conductivity, 65,66 and increasing open cell content. 48 For some of these properties, the questions central to this review may be posed, e.g., how much does thermal conductivity reduce once samples are compared at the same foam density?…”
Section: Resultsmentioning
confidence: 99%
See 1 more Smart Citation
“…Nanofiller can have numerous other beneficial effects: nucleating foam bubbles, 47,51,52 decreasing the cell size, [53][54][55] acting as diffusion barriers, 56-58 increasing electrical conductivity, 59,60 stabilizing the foams through interfacial adsorption, 61 stabilizing foam through reduced crystallinity, 62,63 improving fire retartance, 64 reducing thermal conductivity, 65,66 and increasing open cell content. 48 For some of these properties, the questions central to this review may be posed, e.g., how much does thermal conductivity reduce once samples are compared at the same foam density?…”
Section: Resultsmentioning
confidence: 99%
“…6,25 The solid lines correspond to envelopes of closed and open-celled foams from Gibson and Ashby. 65 improvement can be realized. Since the material comprising the cell walls of the foam is a nanofiller-reinforced composite, this suggests that nanofillers are likely to be more effective at modifying the properties of foams made from low-modulus polymers.…”
Section: Nanofiller Effects In Polymer Foamsmentioning
confidence: 99%
“…With increasing modified nanosilica content, cell density was increased and cell size was reduced. Small amounts of nanoparticles in the polymer may serve as nucleation sites to facilitate the bubble nucleation process and produce a finer cell structure [12]. Also, N f almost was higher in NCAEAP, which showed better dispersion of nanoparticles in the PU matrix because of the stronger interaction.…”
Section: Morphological Studiesmentioning
confidence: 96%
“…Bununla birlikte, NCL oranının % 10 ve % 15'e yükselmesi ile ısı iletim katsayılarında sırasıyla yaklaşık % 2,4 ve % 12,9 oranında artış tespit edilmiştir. % 15 NCL ilaveli poliüretan köpük malzemenin ısı iletim katsayısında dikkate değer artış, bu oranda kil ilavesinin köpük malzemedeki hücre boyutundaki artışa (Şekil 4) ve kapalı hücre sayısındaki azalmaya sebep olması ile açıklanabilir [21,23,32,39]. Poliüretan köpük malzeme içerisine dolgu maddesi olarak ilave edilen kil oranının artmasıyla köpük malzemenin hücre duvarları arasına yerleşen kil nedeniyle hücre duvarları daha zayıf ve ince hale gelerek daha kolay kırılmaktadır.…”
Section: Tablo 1 Köpük Malzemelerin Kompozisyonları (Compositions Ofunclassified