Research Article

High Efficiency Dust Removal Prototype for Tissue Paper Conversion Lines

Volume: 11 Number: 3 December 31, 2025

High Efficiency Dust Removal Prototype for Tissue Paper Conversion Lines

Abstract

This study introduces an innovative prototype designed to mitigate dust emissions in tissue paper manufacturing, addressing key challenges in product quality, worker health, and environmental sustainability. The system integrates static charge neutralization, mechanical vibration, and vacuum extraction to effectively capture airborne particles. Experimental validation was performed in a controlled 55 m³ environment (4 × 4.3 × 3.2 m) with a line speed of 250 m/min and a web width of 350 mm. Comparative trials under active and inactive conditions utilized a laser particle sensor and precision balance to quantify ambient dust concentrations and product mass variations. Results show an 86.6% reduction in airborne dust (from 783 to 105 µg/m³), and a weight loss of 1.41 g per 100-unit pack due to dust removal. Over an 8-hour shift, a total of 418.7 g of dust is extracted from the tissue—93.7 g captured in the filter and 325 g in the cyclone. These findings highlight improvements in production hygiene, reduced respiratory risks for workers, and enhanced sustainability through waste minimization. The prototype facilitates compliance with occupational health and safety standards and demonstrates scalability across various tissue production lines, including recycled and virgin fibre applications.

Keywords

Supporting Institution

TUBITAK TEYDEB-1501

Project Number

3210074

Ethical Statement

"The authors of this article declare that the materials and methods used in this study do not require ethics committee approval and/or legal-special permission."

Thanks

We would like to thank TÜBİTAK for their support to project number 3210074 within the scope of TEYDEB 1501 Industrial R&D support program. We would also like to thank ICM Machinery and Engineering Limited Company for their support within the scope of the studies carried out.

References

  1. [1] T. De Assis, J. Pawlak, L. Pal, H. Jameel, R. Venditti et al., and W. Gonzalez, “Comparison of wood and non-wood market pulps for tissue paper application,” Bioresources, vol. 14, no. 3, pp. 6781–6810, 2019.
  2. [2] J. C. Vieira, P. T. Fiadeiro, and A. P. Costa, “Converting operations impact on tissue paper product properties – a review,” Bioresources, vol. 18, no. 1, 2023. doi: 10.15376/BIORES.18.1.VIEIRA
  3. [3] R. Frazier, “Methods of dust assessment and control in the paper industry and a proposed methodology for evaluation of dust in hygiene tissue papers,” Ph.D. dissertation, North Carolina State Univ., North Carolina, USA, 2022.
  4. [4] “Tissue & Hygiene Paper - Worldwide | Market Forecast,” Statista.com, 2025. [Online]. Available: https://www.statista.com/outlook/cmo/tissue-hygiene-paper/worldwide. [Accessed: Jul. 10, 2025].
  5. [5] C. Campbell, T. De Assis, L. Pawlowska, and C. Nurse, “Kemira’s new generation field test dust and lint particle analyser,” Tissue World Magazine, no. 4, pp. 25-26, July/August 2020.
  6. [6] R. P. Linder, G.S. Furman, R.M. Lowe, D. Castro, R. Anthony et al., and M.A. Billings, “Tissue dust reduction,” US Patent 10648133B2, May 15, 2017.
  7. [7] R. Wathén, “Studies on fiber strength and its effect on paper properties,” Ph.D. dissertation, Aalto Univ. School of Chemical Engineering, Finland, 2006.
  8. [8] E. Andersson, G. Sällsten, S. Lohman, R. Neitzel, and K. Torén, “Lung function and paper dust exposure among workers in a soft tissue paper mill,” Int. Arch. Occup. Environ. Health, vol. 93, no. 1, pp. 105–110, Jan. 2020. doi: 10.1007/S00420-019-01469-6

Details

Primary Language

English

Subjects

Machine Design and Machine Equipment

Journal Section

Research Article

Publication Date

December 31, 2025

Submission Date

July 2, 2025

Acceptance Date

September 4, 2025

Published in Issue

Year 2025 Volume: 11 Number: 3

APA
Sarı, C., & Kibar, A. (2025). High Efficiency Dust Removal Prototype for Tissue Paper Conversion Lines. Gazi Journal of Engineering Sciences, 11(3), 398-413. https://izlik.org/JA89NA63YB
AMA
1.Sarı C, Kibar A. High Efficiency Dust Removal Prototype for Tissue Paper Conversion Lines. GJES. 2025;11(3):398-413. https://izlik.org/JA89NA63YB
Chicago
Sarı, Cem, and Ali Kibar. 2025. “High Efficiency Dust Removal Prototype for Tissue Paper Conversion Lines”. Gazi Journal of Engineering Sciences 11 (3): 398-413. https://izlik.org/JA89NA63YB.
EndNote
Sarı C, Kibar A (December 1, 2025) High Efficiency Dust Removal Prototype for Tissue Paper Conversion Lines. Gazi Journal of Engineering Sciences 11 3 398–413.
IEEE
[1]C. Sarı and A. Kibar, “High Efficiency Dust Removal Prototype for Tissue Paper Conversion Lines”, GJES, vol. 11, no. 3, pp. 398–413, Dec. 2025, [Online]. Available: https://izlik.org/JA89NA63YB
ISNAD
Sarı, Cem - Kibar, Ali. “High Efficiency Dust Removal Prototype for Tissue Paper Conversion Lines”. Gazi Journal of Engineering Sciences 11/3 (December 1, 2025): 398-413. https://izlik.org/JA89NA63YB.
JAMA
1.Sarı C, Kibar A. High Efficiency Dust Removal Prototype for Tissue Paper Conversion Lines. GJES. 2025;11:398–413.
MLA
Sarı, Cem, and Ali Kibar. “High Efficiency Dust Removal Prototype for Tissue Paper Conversion Lines”. Gazi Journal of Engineering Sciences, vol. 11, no. 3, Dec. 2025, pp. 398-13, https://izlik.org/JA89NA63YB.
Vancouver
1.Cem Sarı, Ali Kibar. High Efficiency Dust Removal Prototype for Tissue Paper Conversion Lines. GJES [Internet]. 2025 Dec. 1;11(3):398-413. Available from: https://izlik.org/JA89NA63YB

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