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HERO ID
6593635
Reference Type
Journal Article
Title
Effect of electric double layer on viscoelastic behavior of highly concentrated suspension
Author(s)
Horigome, S; Yada, M; ,
Year
2000
Is Peer Reviewed?
1
Journal
Nihon Reoroji Gakkaishi
ISSN:
0387-1533
Publisher
SOC RHEOLOGY, JAPAN
Location
KYOTO
Volume
28
Issue
3
Page Numbers
113-117
Language
Chinese
DOI
10.1678/rheology.28.113
Web of Science Id
WOS:000090027100003
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-0039847388&doi=10.1678%2frheology.28.113&partnerID=40&md5=944600b9fb41d38c4fbef0a81dc34ee6
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Abstract
Experimental results on rheological behaviors of highly concentrated suspensions are presented. Suspensions of acryl-styrene copolymer particles with radius 45 nm dispersed in water were used as samples. Rheological properties were measured at particle volume fractions phi ranging from 0.177 to 0476. The rheological data were rescaled using the effective volume fraction phi (eff) calculated from the effective radius estimated as a sum of the Debye length and the particle radius. In the range of phi (eff) lower than the random close packing volume fraction(0.63), rheological behaviors of suspensions gave good agreement with those of ideal suspensions of rigid spheres. This shows that the Brownian contribution is the origin of the linear viscoelastic behavior in lower phi (eff) range. In the range of phi (eff) higher than 0.63, the longest relaxation time and the activation energy rapidly increased with an increase in phi (eff) and the vertical shift factor diverged from estimated values of ideal suspensions. These results suggest that restraint of neighboring particles affects the Brownian motion, and furthermore, repulsive force induced by overlapping of electric double layers affects the viscoelastic behavior.
Keywords
Brownian motion; Concentrated suspension; Electric double layer; Linear viscoelasticity; Peclet time
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