Investigating tool engagement in groundwood pulping: finite element modelling and in-situ observations at the microscale

Author:

Carlsson Jenny1ORCID,Heldin Magnus1,Isaksson Per1,Wiklund Urban1

Affiliation:

1. The Ångström Laboratory, Department of Engineering Sciences , Uppsala University , Box 534, SE-751 21 Uppsala , Sweden

Abstract

Abstract With industrial groundwood pulping processes relying on carefully designed grit surfaces being developed for commercial use, it is increasingly important to understand the mechanisms occurring in the contact between wood and tool. We present a methodology to experimentally and numerically analyse the effect of different tool geometries on the groundwood pulping defibration process. Using a combination of high-resolution experimental and numerical methods, including finite element (FE) models, digital volume correlation (DVC) of synchrotron radiation-based X-ray computed tomography (CT) of initial grinding and lab-scale grinding experiments, this paper aims to study such mechanisms. Three different asperity geometries were studied in FE simulations and in grinding of wood from Norway spruce. We found a good correlation between strains obtained from FE models and strains calculated using DVC from stacks of CT images of initial grinding. We also correlate the strains obtained from numerical models to the integrity of the separated fibres in lab-scale grinding experiments. In conclusion, we found that, by modifying the asperity geometries, it is, to some extent, possible to control the underlying mechanisms, enabling development of better tools in terms of efficiency, quality of the fibres and stability of the groundwood pulping process.

Publisher

Walter de Gruyter GmbH

Subject

Biomaterials

Reference37 articles.

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2. Atack , D., May, W.D. (1958) Frictional mechanisms in the grinding process. Pulp Pap. Mag. Can. Convention issue 265–271.

3. Atack, D., May, W.D. (1962) Mechanical pulping studies with a model steel wheel. Pulp Paper Mag. Can. 63:T10–T20.

4. Beath, L.R. (1958) The varying angle between surface and wood – a case of wide, uncontrolled freeness variation in ground wood production. Pulp Paper Mag. Can. 59:123–133.

5. Björkqvist, T., Tienari, M., Lucander, M. (2007) Simulation of fatigue related variables in wood grinding. Proc. Int. Mech. Pulp. Conf., Minneapolis, MN.

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