Chemistry, Processing, Properties, and Applications of Rubber Foams.
applications
characterization
curing
foam
morphology
rubber
Journal
Polymers
ISSN: 2073-4360
Titre abrégé: Polymers (Basel)
Pays: Switzerland
ID NLM: 101545357
Informations de publication
Date de publication:
13 May 2021
13 May 2021
Historique:
received:
25
04
2021
revised:
08
05
2021
accepted:
08
05
2021
entrez:
2
6
2021
pubmed:
3
6
2021
medline:
3
6
2021
Statut:
epublish
Résumé
With the ever-increasing development in science and technology, as well as social awareness, more requirements are imposed on the production and property of all materials, especially polymeric foams. In particular, rubber foams, compared to thermoplastic foams in general, have higher flexibility, resistance to abrasion, energy absorption capabilities, strength-to-weight ratio and tensile strength leading to their widespread use in several applications such as thermal insulation, energy absorption, pressure sensors, absorbents, etc. To control the rubber foams microstructure leading to excellent physical and mechanical properties, two types of parameters play important roles. The first category is related to formulation including the rubber (type and grade), as well as the type and content of accelerators, fillers, and foaming agents. The second category is associated to processing parameters such as the processing method (injection, extrusion, compression, etc.), as well as different conditions related to foaming (temperature, pressure and number of stage) and curing (temperature, time and precuring time). This review presents the different parameters involved and discusses their effect on the morphological, physical, and mechanical properties of rubber foams. Although several studies have been published on rubber foams, very few papers reviewed the subject and compared the results available. In this review, the most recent works on rubber foams have been collected to provide a general overview on different types of rubber foams from their preparation to their final application. Detailed information on formulation, curing and foaming chemistry, production methods, morphology, properties, and applications is presented and discussed.
Identifiants
pubmed: 34068238
pii: polym13101565
doi: 10.3390/polym13101565
pmc: PMC8153173
pii:
doi:
Types de publication
Journal Article
Review
Langues
eng
Références
Polymers (Basel). 2019 Dec 03;11(12):
pubmed: 31816975
Polymers (Basel). 2020 Aug 29;12(9):
pubmed: 32872461
ACS Appl Mater Interfaces. 2018 Feb 14;10(6):5185-5195
pubmed: 29363302
Polymers (Basel). 2019 Jun 01;11(6):
pubmed: 31159423
Materials (Basel). 2021 Jan 03;14(1):
pubmed: 33401620
Carbohydr Polym. 2019 Aug 15;218:103-111
pubmed: 31221311
Nat Mater. 2015 Jan;14(1):23-36
pubmed: 25344782
Polymers (Basel). 2018 May 21;10(5):
pubmed: 30966588
Adv Mater. 2013 Dec 10;25(46):6692-8
pubmed: 24027108
Polymers (Basel). 2020 Sep 04;12(9):
pubmed: 32899685
J Acoust Soc Am. 2007 Nov;122(5):2653-60
pubmed: 18189557
Sci Rep. 2016 Nov 14;6:36931
pubmed: 27841307
Polymers (Basel). 2019 Dec 02;11(12):
pubmed: 31810168
Annu Rev Phys Chem. 1995;46:489-524
pubmed: 24341941
Polymers (Basel). 2020 Oct 03;12(10):
pubmed: 33023049
ACS Appl Mater Interfaces. 2018 Sep 12;10(36):30752-30761
pubmed: 30124039
Materials (Basel). 2018 Sep 27;11(10):
pubmed: 30262722
Nanoscale. 2017 Nov 16;9(44):17396-17404
pubmed: 29099142
Sensors (Basel). 2016 Dec 16;16(12):
pubmed: 27999251