LAPSE:2023.1721
Published Article

LAPSE:2023.1721
Hindered Settling of Fiber Particles in Viscous Fluids
February 21, 2023
Abstract
In the current literature, information can mainly be found about free and hindered settling of isometric particles in Newtonian and non-Newtonian fluids. These conclusions cannot be used to describe the sedimentation of non-isometric particle in non-Newtonian fluids. For this reason, we have carried out systematic experiments and calculated the correlation of the hindered settling velocity of a cloud of non-isometric particles in high-viscosity and pseudoplastic liquid. The experiments were performed in transparent model fluids, namely, glycerine (a Newtonian fluid) and an aqueous solution of carboxylmethylcelulose CMC (a non-Newtonian pseudo-plastic liquid). These fluids have similar rheological properties, for example, the fresh fine-grained cementitious composites HPC/UHPC. The experiments were carried out with steel fibers with a ratio of d/l = 0.3/20. The settling velocity was determined for fiber volumes from 1% to 5%. While it is known from previous studies that for spherical particles the hindered settling velocity is proportional to the porosity of a suspension cloud on exponent 4.8, which was confirmed by our verification experiment, for the studied fiber particles it is proportional to the porosity on exponent 22.1. This great increase in the exponent is an effect of both the shape of the particles and, in particular, a mutual influence that arises from their interweaving and connection in the suspension.
In the current literature, information can mainly be found about free and hindered settling of isometric particles in Newtonian and non-Newtonian fluids. These conclusions cannot be used to describe the sedimentation of non-isometric particle in non-Newtonian fluids. For this reason, we have carried out systematic experiments and calculated the correlation of the hindered settling velocity of a cloud of non-isometric particles in high-viscosity and pseudoplastic liquid. The experiments were performed in transparent model fluids, namely, glycerine (a Newtonian fluid) and an aqueous solution of carboxylmethylcelulose CMC (a non-Newtonian pseudo-plastic liquid). These fluids have similar rheological properties, for example, the fresh fine-grained cementitious composites HPC/UHPC. The experiments were carried out with steel fibers with a ratio of d/l = 0.3/20. The settling velocity was determined for fiber volumes from 1% to 5%. While it is known from previous studies that for spherical particles the hindered settling velocity is proportional to the porosity of a suspension cloud on exponent 4.8, which was confirmed by our verification experiment, for the studied fiber particles it is proportional to the porosity on exponent 22.1. This great increase in the exponent is an effect of both the shape of the particles and, in particular, a mutual influence that arises from their interweaving and connection in the suspension.
Record ID
Keywords
hindered settling velocity, HPC/UHPC composites, non-isometric particles, non-Newtonian fluids, steel fiber, viscoplastic fluids
Subject
Suggested Citation
Jirout T, Jiroutová D. Hindered Settling of Fiber Particles in Viscous Fluids. (2023). LAPSE:2023.1721
Author Affiliations
Jirout T: Department of Process Engineering, Faculty of Mechanical Engineering, Czech Technical University in Prague, 166 07 Prague 6, Czech Republic [ORCID]
Jiroutová D: Department of Experimental Methods, Klokner Institute, Czech Technical University in Prague, 166 08 Prague 6, Czech Republic [ORCID]
Jiroutová D: Department of Experimental Methods, Klokner Institute, Czech Technical University in Prague, 166 08 Prague 6, Czech Republic [ORCID]
Journal Name
Processes
Volume
10
Issue
9
First Page
1701
Year
2022
Publication Date
2022-08-26
ISSN
2227-9717
Version Comments
Original Submission
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PII: pr10091701, Publication Type: Journal Article
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LAPSE:2023.1721
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https://doi.org/10.3390/pr10091701
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Feb 21, 2023
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