Startseite Vibration measurements of paper prints and the data analysis
Artikel
Lizenziert
Nicht lizenziert Erfordert eine Authentifizierung

Vibration measurements of paper prints and the data analysis

  • Arturas Kilikevicius , Mindaugas Jurevicius , Robertas Urbanavicius , Vytautas Turla EMAIL logo , Kristina Kilikeviciene und Antanas Fursenko
Veröffentlicht/Copyright: 31. Januar 2020
Veröffentlichen auch Sie bei De Gruyter Brill

Abstract

This paper discusses about the scatter of the intensity of vibration signals of paper prints and analyses their mechanical parameters applying the theory of covariance functions. It is an important practical problem, before starting printing process of colour prints, expecting the correct position of fixed raster points, to adjust the paper sheet tension between printing machine sections. The results of measuring the intensity of vibration signals at the fixed points were presented on a time scale in the form of arrays (matrices). The estimates of cross-covariance functions between digital arrays result in measuring the intensity of vibrations, and the estimates of auto-covariance functions of single arrays were calculated upon changing the quantization interval on the time scale. Application of normed auto-covariance and cross-covariance functions enables reduction of preprinting experimental measurements, which saves time (what is actual for industry). Tension force depends on the mechanical properties of the paper sheet and print. These characteristics depend on paper type, layers of printing colors and positioning of the coverage. In the calculation, the software Matlab 7 in batch statement environment was applied.

Funding statement: Authors state no funding involved.

  1. Conflict of interest: The authors declare no conflicts of interest.

References

Antoine, J. P. (2000) A grand tour. Rev. Cienc. Mat. 18:113–143.Suche in Google Scholar

Dutkay, D. E., Jorgensen, P. E. T. (2004) Rev. Mat. Iberoam. J. Math. 22:131–180.Suche in Google Scholar

Ekstrom, M., Mcewen, A. (1990) Photogramm. Eng. Remote Sens. 56(4):453.Suche in Google Scholar

Forseth, T., Wiik, K., Helle, T. (1997) Nord. Pulp Pap. Res. J. 1:67–71.10.3183/npprj-1997-12-01-p067-071Suche in Google Scholar

Grigaliuniene, S. Investigation of the properties of paper prints as composite materials, Doctoral dissertation, Technika, Vilnius, (2015).Suche in Google Scholar

Grigaliuniene, S., Turla, V., Ragauskas, P., Kilikevicius, A., Sidaravicius, D. J., Jurkonis, E. (2014) Mechanika 20:476–479.10.5755/j01.mech.20.5.7526Suche in Google Scholar

Heilmann, J., Lindquiat, U. (1998) Significance of Paper Properties on Print Quality in CIJ Printing. In: ISST‘s NIP 14: International Conference on Digital Printing Technologies.10.2352/ISSN.2169-4451.1998.14.1.art00060_2Suche in Google Scholar

Holik, H. Handbook of Paper and Board, 2nd Revised and Enlarged Edition, 2 Volume Set, Wiley-WCH, 2013. ISBN: 978-3-527-33184-0.10.1002/9783527652495Suche in Google Scholar

Horgan, G. (1998) Photogramm. Eng. Remote Sens. 64(12):1171.Suche in Google Scholar

Hunt, B., Ryan, T. W., Gifford, F. A. (1993) Photogramm. Eng. Remote Sens. 59(7):1161.Suche in Google Scholar

Johansson, K., Lundberg, P., Ryberg, R. A Guide to Graphic Print Production. Lohn Wiley & Sons, Hoboken, New Jersey, 2007.Suche in Google Scholar

Kardoulas, N., Bird, A. C., Lawan, A. I. (1996) Photogramm. Eng. Remote Sens. 62(10):1173.Suche in Google Scholar

Kipphan, H. Handbook of Print Media: Technologies and Production Methods. Springer, Berlin, 2001, 1207.10.1007/978-3-540-29900-4Suche in Google Scholar

Kulachenko, A., Gradin, P., Koivurova, H. (2007a) Modeling the dynamical behavior of a paper web. Part I. Comput. Struct. 85:131–147. 10.1016/j.compstruc.2006.09.006.Suche in Google Scholar

Kulachenko, A., Gradin, P., Koivurova, H. (2007b) Modeling the dynamical behavior of a paper web. Part II. Comput. Struct. 85:148–157. 10.1016/j.compstruc.2006.09.007.Suche in Google Scholar

Lamminmäki, T., Kettle, J., Puuko, P., Ketoja, J., Gane, P. (2010) Nord. Pulp Pap. Res. J. 25:380–390.10.3183/npprj-2010-25-03-p380-390Suche in Google Scholar

Niskannen, K. (2008) Paper physics. Finnish Paper Engineers’ Association/Paperi ja Puu Oy 12:106–107.Suche in Google Scholar

Ragauskas, P. Identification of elastic properties of layered composite materials, Doctoral dissertation, Technika, Vilnius (2010).Suche in Google Scholar

Ragauskas, P., Belevičius, R. (2007) Aviation 13(4):109. Vilnius, Lithuania, 1648–7788.10.3846/1648-7788.2009.13.109-115Suche in Google Scholar

Ragauskas, P., Skukis, E. (2007) Mechanika 6(68):39–44.10.5755/j02.mech.36223Suche in Google Scholar

Skeivalas, J. GPS Tinklų Teorija ir Praktika [Theory and Practice of GPS Networks. Technika, Vilnius, 2008.10.3846/1450-MSuche in Google Scholar

Skeivalas, J., Alekniene, E., Gecyte, S. (2010) Geod. Kartogr. 36(4):146–150.10.3846/gc.2010.23Suche in Google Scholar

Skeivalas, J., Kizlaitis, R. (2008) Geod. Kartogr. 34(4):127–133. doi:10.3846/1392-1541.2008.34.127-133.Suche in Google Scholar

Thompson, B. (2004) Printing materials. In: Science and Technology. Pira International, Leatherhead. pp. 326–327.Suche in Google Scholar

Received: 2019-04-01
Accepted: 2019-12-09
Published Online: 2020-01-31
Published in Print: 2020-03-26

© 2020 Walter de Gruyter GmbH, Berlin/Boston

Artikel in diesem Heft

  1. Frontmatter
  2. Review paper
  3. On the development of the refiner mechanical pulping process – a review
  4. Bleaching
  5. Oxalate formation during ClO2 bleaching of bamboo kraft pulp
  6. Mechanical pulping
  7. Defibration mechanisms and energy consumption in the grinding zone – a lab scale equipment and method to evaluate groundwood pulping tools
  8. Paper technology
  9. Insight into fractionation performance of American old corrugated containers pulp in pressure screening
  10. Comprehensive utilization of Ganoderma lucidum residues in papermaking
  11. Effect of turbulence generator structures to the performance of medium-consistency pump at high rotation speed excesses 2000 rpm
  12. Mechanical properties of low-density paper
  13. Determination of relative solids concentration in homogeneous dual component pulp-filler suspension by multi-spectrophotometer
  14. Paper physics
  15. Surface characterization of paper and paperboard using a stylus contact method
  16. Paper chemistry
  17. Filler modified by a sequential encapsulation and preflocculation method and its effect on paper properties
  18. Significant contribution of fibrils on pulp fiber surface to water retention value
  19. Impregnation of paper with cellulose nanofibrils and polyvinyl alcohol to enhance durability
  20. Printing
  21. Vibration measurements of paper prints and the data analysis
  22. Predicting inkjet dot spreading and print through from liquid penetration- and picoliter contact angle measurement
  23. Environmental impact
  24. Hydrophobic cellulose aerogel from waste napkin paper for oil sorption applications
  25. A comparative study of an anaerobic-oxic (AO) system and a sequencing batch biofilm reactor (SBBR) in coating wastewater treatment and their microbial communities
  26. Acknowledgment
  27. Acknowledgment
Heruntergeladen am 8.9.2025 von https://www.degruyterbrill.com/document/doi/10.1515/npprj-2019-0031/html?lang=de
Button zum nach oben scrollen