Heat transfer and friction loss of flowing kenaf core non-wood pulp fibre suspensions to curb reject papers

The heat and momentum transfer of crop pulp fibre suspensions were studied in a single pipe heat exchanger test loop. The data were produced at the pre-selected temperature, concentrations, and a range of flow rates. It was found that at the low fibre concentrations, the magnitude of heat transfer c...

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Main Authors: Ahmed, Syed Muzamil, Kazi, S. N., Khan, Ghullamullah, Ahmed, Waqar, Mohd Zubir, Mohd Nashrul
Format: Article
Published: Springer Verlag (Germany) 2023
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Online Access:http://eprints.um.edu.my/39472/
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Institution: Universiti Malaya
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spelling my.um.eprints.394722024-11-04T01:01:31Z http://eprints.um.edu.my/39472/ Heat transfer and friction loss of flowing kenaf core non-wood pulp fibre suspensions to curb reject papers Ahmed, Syed Muzamil Kazi, S. N. Khan, Ghullamullah Ahmed, Waqar Mohd Zubir, Mohd Nashrul T Technology (General) TJ Mechanical engineering and machinery The heat and momentum transfer of crop pulp fibre suspensions were studied in a single pipe heat exchanger test loop. The data were produced at the pre-selected temperature, concentrations, and a range of flow rates. It was found that at the low fibre concentrations, the magnitude of heat transfer coefficient was higher than those of water data at the corresponding experimental conditions. However, the values progressively decreased below the water data at higher concentrations. The heat transfer data were affected by the variation of fibre characteristics, such as fibre flexibility, fibre length, fibre mechanical and chemical treatment, and the pulping methods used to liberate the fibres. The reduction of heat transfer coefficient was obtained with the enhancement of fibre flexibility observed by previous researchers for wood pulp fibres. In the present study, the characteristics of fibres and paper are correlated with heat and momentum transfer of suspensions of the fibres. Deviations in fibre properties can be monitored from the measurement of heat transfer coefficient or frictional pressure loss, and they can be adjusted by altering the degree of fibre refining treatment. Thus, the papers made from the fibre suspensions via in-situ monitoring could be uniform, consistent, and remain within the product specification. This could curb the rejected papers and ultimately reduce production costs and energy consumption. Springer Verlag (Germany) 2023-04 Article PeerReviewed Ahmed, Syed Muzamil and Kazi, S. N. and Khan, Ghullamullah and Ahmed, Waqar and Mohd Zubir, Mohd Nashrul (2023) Heat transfer and friction loss of flowing kenaf core non-wood pulp fibre suspensions to curb reject papers. Heat and Mass Transfer, 59 (4). pp. 551-566. ISSN 0947-7411, DOI https://doi.org/10.1007/s00231-022-03281-4 <https://doi.org/10.1007/s00231-022-03281-4>. 10.1007/s00231-022-03281-4
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic T Technology (General)
TJ Mechanical engineering and machinery
spellingShingle T Technology (General)
TJ Mechanical engineering and machinery
Ahmed, Syed Muzamil
Kazi, S. N.
Khan, Ghullamullah
Ahmed, Waqar
Mohd Zubir, Mohd Nashrul
Heat transfer and friction loss of flowing kenaf core non-wood pulp fibre suspensions to curb reject papers
description The heat and momentum transfer of crop pulp fibre suspensions were studied in a single pipe heat exchanger test loop. The data were produced at the pre-selected temperature, concentrations, and a range of flow rates. It was found that at the low fibre concentrations, the magnitude of heat transfer coefficient was higher than those of water data at the corresponding experimental conditions. However, the values progressively decreased below the water data at higher concentrations. The heat transfer data were affected by the variation of fibre characteristics, such as fibre flexibility, fibre length, fibre mechanical and chemical treatment, and the pulping methods used to liberate the fibres. The reduction of heat transfer coefficient was obtained with the enhancement of fibre flexibility observed by previous researchers for wood pulp fibres. In the present study, the characteristics of fibres and paper are correlated with heat and momentum transfer of suspensions of the fibres. Deviations in fibre properties can be monitored from the measurement of heat transfer coefficient or frictional pressure loss, and they can be adjusted by altering the degree of fibre refining treatment. Thus, the papers made from the fibre suspensions via in-situ monitoring could be uniform, consistent, and remain within the product specification. This could curb the rejected papers and ultimately reduce production costs and energy consumption.
format Article
author Ahmed, Syed Muzamil
Kazi, S. N.
Khan, Ghullamullah
Ahmed, Waqar
Mohd Zubir, Mohd Nashrul
author_facet Ahmed, Syed Muzamil
Kazi, S. N.
Khan, Ghullamullah
Ahmed, Waqar
Mohd Zubir, Mohd Nashrul
author_sort Ahmed, Syed Muzamil
title Heat transfer and friction loss of flowing kenaf core non-wood pulp fibre suspensions to curb reject papers
title_short Heat transfer and friction loss of flowing kenaf core non-wood pulp fibre suspensions to curb reject papers
title_full Heat transfer and friction loss of flowing kenaf core non-wood pulp fibre suspensions to curb reject papers
title_fullStr Heat transfer and friction loss of flowing kenaf core non-wood pulp fibre suspensions to curb reject papers
title_full_unstemmed Heat transfer and friction loss of flowing kenaf core non-wood pulp fibre suspensions to curb reject papers
title_sort heat transfer and friction loss of flowing kenaf core non-wood pulp fibre suspensions to curb reject papers
publisher Springer Verlag (Germany)
publishDate 2023
url http://eprints.um.edu.my/39472/
_version_ 1814933228360826880