Length-based hydrodynamic fractionation of highly networked fibers in a mini-channel

Author:

Schmid Thomas1,Redlinger-Pohn Jakob D.1,Radl Stefan1

Affiliation:

1. Institute of Process and Particle Engineering (IPPT) , Graz University of Technology , Inffeldgasse 13/III , Graz , Austria

Abstract

Abstract Fractionation of cellulose fibers is performed within a circular mini-channel (diameter 7 mm) to realize a novel fractionation principle. We show that fractionation within a single-floc regime relies on the formation of a rigid network in cases where the crowding number is chosen to be greater than 60. Fractionation is performed for channel Reynolds numbers R e > Re\mathrm{>} 10,000, and unlike the situation in larger channels, fractionation is found to be relatively independent of R e Re . Experiments show a high dependency of the radial aperture velocity and aperture width on fractionation performance associated with fibers that are longer than 200 µm. By contrast, fibers shorter than 200 µm are only influenced by the volumetric flow rate through the aperture. Our results suggest that fibers smaller than 200 µm are mobile in the near wall region. Fibers longer than 200 µm are, dependent on their length, drawn out of the network by hydrodynamic forces acting on them as a result of the radial fluid velocity caused by the accept flow through the aperture. Our results support a novel fractionation hypothesis that is in contrast to previous findings, which were based on dilute flows and were demonstrated in channels having a larger size.

Publisher

Walter de Gruyter GmbH

Subject

General Materials Science,Forestry

Reference40 articles.

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2. Bergström, R. Fibre Flow Mechanisms. Royal Institute of Technology, Stockholm, 2005.

3. Cotas, C., Branco, B., Asendrych, D., Garcia, F., Faia, P., Rasteiro, M.G. (2017) Experimental study and computational fluid dynamics modeling of pulp suspensions flow in a pipe. J. Fluids Eng. 139(7):071303.

4. DIN 66142-3:1982-09 (n. d.) Representing and characterizing the separation of disperse materials; Selection and determination of parameters for industrial separation processes.

5. Duffy, G.G. (2003) A new method of fibre fractionation. In: Appita Annu. Conf. Exhib., Melbourne. pp. 453–458.

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