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The properties of sandwich panels made of standard wood-based panels

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Języki publikacji
EN
Abstrakty
EN
The properties of sandwich panels made of standard wood-based panels. The properties of sandwich panels made of standard wood-based panels were examined. Particleboards, MDF and OSB panels as well as plywood were used as internal and external layers of panels. Two types of adhesives: PUR and PVA were used to bind the layers. The physical and mechanical properties of glued sandwich panels were investigated. It was found out that OSB panels covered with plywood have the highest MOE and MOR values, and the panels with an internal layer composed of MDF have the lowest of WA and TS. It has been shown that regardless of the materials used, a panel glued with PUR achieves higher mechanical properties and the lowest WA and TS values.
Twórcy
autor
  • Institute of Materials Engineering, Kazimierz Wielki University in Bydgoszcz
Bibliografia
  • 1. ECKELMAN C.A., 1978: Strength design of furniture. Casper: Tim Tech Inc., [Online]. Available: http://www.agriculture.purdue.edu/fnr/faculty/Eckelman/pdf/pdm0scan.pdf.
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  • 3. GUNAYDIN G.K., 2019: Effect of coating ratio and weft density on some physical properties of upholstery fabrics, Ind. Tex., 70 (4), 379-385, doi: 10.35530/IT.070.04.1695.
  • 4. ISO 13934-1: 2013 Textiles - Tensile properties of fabrics - Part 1: Determination of maximum force and elongation at maximum force using the strip method.
  • 5. ISO 13935-2: 2014 Textiles - Seam tensile properties of fabrics and made-up textile articles - Part 2: Determination of maximum force to seam rupture using the grab method.
  • 6. ISO 2060: 1994 Textiles - Yarn from packages - Determination of linear density (mass per unit length) by the skein method.
  • 7. ISO 2062: 2009 Textiles - Yarns from packages - determination of single-end breaking force and elongation at break using constant rate and elongation at break using constant rate of extension (CFR) tension.
  • 8. ISO 4915: 1991 Textiles - Stitch types - Classification and terminology.
  • 9. JOŠČÁK P., LANGOVÁ N., 2018: Pevnostné navrhovanie nábytku / Strength design of furniture. Zvolen: Technická Univerzita vo Zvolene.
  • 10. PASAYEV N., KORKMAZ M., BASPINAR D., 2012: Investigation of the techniques decreasing the seam slippage in chenille fabrics (Part I), Textile Research Journal, 82 (9), 855-863, doi: 10.1177/0040517511413320.
  • 11. PAVLINIĆ D. Z., GERŠAK J., DEMŠAR J., BRATKO I., 2006: Predicting Seam Appearance Quality, Textile Research Journal, 76 (3), 235-242, doi: 10.1177/0040517506061533.
  • 12. SHIMAZAKI K., LLOYD D. W., 1990: Opening Behavior of Lockstitch Seams in Woven Fabrics Under Cyclic Loading Conditions, Textile Research Journal, 60 (11), 654-662, doi: 10.1177/004051759006001105.
  • 13. SMARDZEWSKI J., 2015: Furniture design. Basel, Switzerland: Springer International Publishing A.G., [Online]. Available: https://doi.org/10.1007/978-3-319-19533-9.
  • 14. SUKRAN K., 2020: Comparison of sewn fabric bending rigidities obtained by heart loop method: effects of different stitch types and seam directions, Industria Textila, 71 (2), 105-111, doi: 10.35530/IT.071.02.1647.
  • 15. WIADEREK K., 2012: Antropotechniczne modelowanie sztywności siedzisk mebli do wypoczynku / Anthropotechnical modeling of the seat stiffness in furniture for rest, Dysertacja doktorska / PhD thesis, Uniwersytet Przyrodniczy w Poznaniu, Poznań.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-91d02a27-8913-47d1-804f-254779f61ef1
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