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Dewatering properties of low grammage handsheets of softwood kraft pulps modified to minimize the need for refining
Mittuniversitetet.
Mittuniversitetet.
SCA R&D.
Karlstads universitet, Fakulteten för hälsa, natur- och teknikvetenskap (from 2013), Institutionen för ingenjörs- och kemivetenskaper (from 2013).ORCID-id: 0000-0003-4023-594X
2018 (engelsk)Inngår i: Nordic Pulp & Paper Research Journal, ISSN 0283-2631, E-ISSN 2000-0669, Vol. 33, nr 3, s. 397-403Artikkel i tidsskrift (Fagfellevurdert) Published
Abstract [en]

Previous paper (Rahman et al. 2017) showed that the yield of softwood kraft pulp increased by the addition of either polysulfide or sodium borohydride because of higher hemicellulose retention. An increase in hemicellulose content can make dewatering more difficult as WRV of the pulp increases, but instead, an overall increase in pulp yield could improve dewatering as a sheet of a certain weight will contain fewer fibres, giving a more open sheet structure. It was therefore of interest to measure the dewatering properties of low grammage handsheets (20 g/m2) under conditions mimicking the tissue paper machine dewatering processes, and sheet strength properties, WRV, °SR and fibre dimensions were also studied. The results showed that the positive influence of overall yield increase dominated over the negative influence of an increase in hemicellulose content on the dewatering properties, particularly at lower refining energy levels. Moreover, higher yield and higher hemicellulose content pulps had a higher tensile index at the same dryness. A given tensile index was achieved with less refining energy. The results indicate that increased yield and hemicellulose content by modification of the kraft pulping process will result in a pulp with a potential to improve tissue paper quality.

sted, utgiver, år, opplag, sider
De Gruyter Open Ltd , 2018. Vol. 33, nr 3, s. 397-403
Emneord [en]
dwell time, hemicellulose, refining, solid content, suction box dewatering, tensile index, thermoporosimetry, water retention value, Cellulose, Dewatering, Kraft pulp, Paper products, Papermaking machinery, Sodium Borohydride, Softwoods, Tissue, Water content, Solid contents, Suction box, Pulp refining
HSV kategori
Forskningsprogram
Kemiteknik
Identifikatorer
URN: urn:nbn:se:kau:diva-69226DOI: 10.1515/npprj-2018-3037ISI: 000450923900005Scopus ID: 2-s2.0-85052642839OAI: oai:DiVA.org:kau-69226DiVA, id: diva2:1248351
Tilgjengelig fra: 2018-09-14 Laget: 2018-09-14 Sist oppdatert: 2026-02-12bibliografisk kontrollert
Inngår i avhandling
1. Vacuum Dewatering of Cellulosic Materials: New insights into transport phenomena in the papermaking process
Åpne denne publikasjonen i ny fane eller vindu >>Vacuum Dewatering of Cellulosic Materials: New insights into transport phenomena in the papermaking process
2020 (engelsk)Doktoravhandling, med artikler (Annet vitenskapelig)
Abstract [en]

Working towards sustainable development within the forest industry, the dewatering of pulp and paper must be fully understood along with the dewatering of other cellulose-based materials. Huge amounts of energy are used during paper manufacturing so there is a potential for making the processes more energy-efficient. This thesis attempts to gain understanding of vacuum dewatering in the forming section of the conventional papermaking process and its connection with energy consumption in order to suggest actions that may be taken not only to improve energy efficiency but also facilitate the introduction of new materials into existing processes. 

 

The main objective of this thesis is to develop a deeper understanding of the vacuum dewatering of forest-based cellulosic materials in existing paper manufacturing processes. Aspects of how rewetting, the structure of the forming fabric and additives of cellulosic materials affect vacuum dewatering are discussed in detail throughout. There is also a large section discussing the use of numerical models and software simulations of dewatering in the forming section of a papermaking machine. A brief background of the papermaking process is presented, along with useful numerical models used previously in that particular context. Three sets of experiments, including rewetting, forming fabrics and additions of cellulosic materials, compose the bulk of the thesis’ method along with two sets of simulations regarding fabrics and additives.  

 

This thesis shows how rewetting is both rapid and substantial after high vacuum suction boxes, the way in which the structure of the forming fabrics affects vacuum dewatering and how additions of micro-fibrillated cellulose and dialcohol cellulose affect vacuum dewatering. The results of the simulations and numerical models show how they can be used to explore ways of saving energy in the process as well as to facilitate the introduction of cellulosic additives into existing papermaking processes.

Abstract [en]

The main objective of this thesis is to develop a deeper understanding of the vacuum dewatering of forest-based cellulosic materials in existing paper manufacturing processes. Aspects of how rewetting, the structure of the forming fabric and additives of cellulosic materials affect vacuum dewatering are discussed in detail throughout. There is also a large section discussing the use of numerical models and software simulations of dewatering in the forming section of a papermaking machine. Three sets of experiments, including rewetting, forming fabrics and additions of cellulosic materials, compose the bulk of the thesis’ method along with two sets of simulations regarding fabrics and additives.  

 

This thesis shows how rewetting is both rapid and substantial after high vacuum suction boxes, the way in which the structure of the forming fabrics affects vacuum dewatering and how additions of micro-fibrillated cellulose and dialcohol cellulose affect vacuum dewatering. The results of the simulations and numerical models show how they can be used to explore ways of saving energy in the process as well as to facilitate the introduction of cellulosic additives into existing papermaking processes.

sted, utgiver, år, opplag, sider
Karlstads universitet, 2020. s. 105
Serie
Karlstad University Studies, ISSN 1403-8099 ; 2020:4
Emneord
Vacuum dewatering, numerical model, water removal, air penetration, papermaking, microfibrillated cellulose, dialcohol cellulose, strength additives, retention aids, drainage, water retention value
HSV kategori
Forskningsprogram
Kemiteknik
Identifikatorer
urn:nbn:se:kau:diva-75958 (URN)978-91-7867-076-5 (ISBN)978-91-7867-086-4 (ISBN)
Disputas
2020-02-07, 9C203, Nyquistsalen, 10:15 (engelsk)
Opponent
Veileder
Merknad

Artikel 5 ingick som manuskript i avhandlingen, nu publicerad.

Tilgjengelig fra: 2020-01-16 Laget: 2019-12-13 Sist oppdatert: 2026-02-12bibliografisk kontrollert

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