Manufacturing Technology 2019, 19(5):786-791 | DOI: 10.21062/ujep/372.2019/a/1213-2489/MT/19/5/786

Influence of Preformed Adherent Angle and Reinforcing Glass Fibre on tensile strength of Hybrid Adhesive Bond

Viktor Kolář1, Miroslav Müller1, Martin Tichý1, Anna Rudawska2, Monika Hromasová1
1 Faculty of Engineering, Czech University of Life Sciences Prague, Kamýcká 129, 165 00 Praha 6 -Suchdol, Czech Republic
2 Politechnika Lubelska, Faculty of Mechanical Engineering, Lublin, Poland

Adhesive bonding technology present a perspective method of various materials bonding and replacing conventional bonding e.g. welding. A geometric shape modification of bonding material and an adhesive reinforcing by glass fibres to increase tensile strength of adhesive bond was subject of this research. The bonding material was modified into preformed angles 5°, 10°, 15°, 20° and adhesive bond with 0° was se t as the etalon. The adhesive was modified by glass fibre with weight 80, 110 and 160 g.m-2. The research proved tensile strength increase from 4 to 48% by various preformed adherent angles. The research also proved tensile strength increase from 4,8 to 93,7% by adhesive reinforcing with glass fibres with various weight. Statistical analyse proved significant difference between measured values on significance level 0.05 (p < 0.05) i.e. influence of adhesive bond modification on mechanical properties was proved.

Keywords: Mechanical properties, glass fabric, reinforcing adhesive layer, SEM, preformed angle
Grants and funding:

Grant IGA TF CZU (Research on composite layer interactions at hybrid adhesive bonds, Czech University of Life Sciences Prague no. 2019:31140/1312/313108).

Published: October 1, 2019  Show citation

ACS AIP APA ASA Harvard Chicago IEEE ISO690 MLA NLM Turabian Vancouver
Kolář V, Müller M, Tichý M, Rudawska A, Hromasová M. Influence of Preformed Adherent Angle and Reinforcing Glass Fibre on tensile strength of Hybrid Adhesive Bond. Manufacturing Technology. 2019;19(5):786-791. doi: 10.21062/ujep/372.2019/a/1213-2489/MT/19/5/786.
Download citation

References

  1. BANEA, M. D., ROSIOARA, M., CARBAS, R. J. C. and DA SILVA, L. F. M. (2018). Multi-material adhesive joints for automotive industry. In: Compos. Part B Eng., Vol. 151, pp. 71-77. Go to original source...
  2. KOLÁŘ, V., TICHÝ, M., MÜLLER, M., VALÁŠEK, P. and RUDAWSKA, A. (2019). Research on influence of cyclic degradation process on changes of structural adhesive bonds mechanical properties. In: Agron. Res., Vol. 17, No. S1, pp. 1062-1070.
  3. RUDAWSKA, A., MITURSKA, I., SZABELSKI, J., SKOCZYLAS, A., DROŹDZIEL, P., BOCIĄGA, E., MADLEŇÁK, R., and KASPEREK, D. (2017). Experimental research and statistic analysis of polymer composite adhesive joints strength. In: J. Phys. Conf. Ser., Vol. 842, No. 1, p. 012074. Go to original source...
  4. KATNAM, K. B., COMER, A. J., STANLEY, W. F., BUGGY, M., ELLINGBOE, A. R. and YOUNG, T. M. (2011). Characterising pre-preg and non-crimp-fabric composite single lap bonded joints. In: Int. J. Adhes. Adhes., Vol. 31, No. 7, pp. 679-686. Go to original source...
  5. KAHRAMAN, R., SUNAR, M. and YILBAS, B. (2008). Influence of adhesive thickness and filler content on the mechanical performance of aluminum single-lap joints bonded with aluminum powder filled epoxy adhesive. In: J. Mater. Process. Technol., Vol. 205, No. 1-3, pp. 183-189. Go to original source...
  6. COURT, R. S., SUTCLIFFE, M. P. F. and TAVAKOLI, S. M. (2001). Ageing of adhesively bonded joints-fracture and failure analysis using video imaging techniques. In: Int. J. Adhes. Adhes., Vol. 21, No. 6, pp. 455-463. Go to original source...
  7. MÜLLER, M., VALÁŠEK, P., KOLÁŘ, V., ŠLEGER, V., GÜRDIL, G. A. K., HROMASOVÁ, M., HLOCH, S., MORAVEC, J. and PEXA, M. (2018). Material Utilization of Cotton Post-Harvest Line Residues in Polymeric Composites. In: Polymers (Basel)., Vol. 11, No. 7, pp. 1106. Go to original source...
  8. RUDAWSKA, A., HANIECKA, I., JASZEK, M. and STEFANIUK, D. (2018) The influence of adhesive compounds biochemical modification on the mechanical properties of adhesive joints. In: Polymers (Basel)., Vol. 10, No. 4, pp. 344. Go to original source...
  9. MÜLLER, M., VALÁŠEK, P., and RUDAWSKA, A. (2017). Mechanical properties of adhesive bonds reinforced with biological fabric. In: J. Adhes. Sci. Technol., Vol. 31, No. 17, pp. 1859-1871. Go to original source...
  10. KOLAR, V. and MULLER, M. (2018). Research on Influence of Polyurethane Adhesive Modified by Polyurethane Filler Based on Recyclate. In: Manuf. Technol., Vol. 18, No. 3, pp. 418-423. Go to original source...
  11. MÜLLER, M., (2015). Research on constructional shape of bond at connecting galvanized sheet of metal. In: Manuf. Technol., Vol. 15, No. 3, pp. 392-396. Go to original source...
  12. FESSEL, G., BROUGHTON, J. G., FELLOWS, N. A., DURODOLA, J. F., and HUTCHINSON, A. R. (2007). Evaluation of different lap-shear joint geometries for automotive applications. In: Int. J. Adhes. Adhes., Vol. 27, No. 7, pp. 574-583. Go to original source...
  13. BAHRAMI, B., AYATOLLAHI, M. R., BEIGREZAEE, M. J. and DA SILVA, L. F. M. (2019). Strength improvement in single lap adhesive joints by notching the adherents. In: Int. J. Adhes. Adhes., Vol. 95, pp. 102401. Go to original source...
  14. HE, X. (2011). A review of finite element analysis of adhesively bonded joints. In: Int. J. Adhes. Adhes., Vol. 31, No. 4, pp. 248-264. Go to original source...
  15. YOU, M., LI, Z., LING ZHENG, X., YU, S., YAN LI, G. and XIN SUN, D. (2009). A numerical and experimental study of preformed angle in the lap zone on adhesively bonded steel single lap joint. In: Int. J. Adhes. Adhes., Vol. 29, No. 3, pp. 280-285. Go to original source...
  16. ÁVILA, A. F., BUENO, P. (2003). Stress analysis on a wavy-lap bonded joint for composites. In: Int. J. Adhes. Adhes., Vol. 24, pp. 407-414. Go to original source...
  17. ÁVILA, A. F., BUENO, P. O. (2004). An experimental and numerical study on adhesive joints for composites. In: Compos. Struct., Vol. 64, pp. 531-537.
  18. CAMPILHO, R. D. S. G., DOMINGUES, J. J. M. S. (2009): Numerical prediction on the tensile residual strength of repaired CFRP under different geometric changes. In: Int. J. Adhes. Adhes., Vol. 29, pp. 195-205. Go to original source...
  19. MÜLLER, M., HERÁK, D. (2010). Dimensioning of the bonded lap joint. In: Res. Agri. Eng., Vol. 56, No. 2, pp. 59-68. Go to original source...
  20. GRANT, L.D.R., ADAMS, R.D., DA SILVA, L.F.M. (2009). Experimental and numerical analysis of single-lap joints for the automotive industry. In: Int. J. Adhes. Adhes. Vol. 29. Go to original source...
  21. ZAVRTÁLEK, J., MÜLLER, M. (2016). Research on mechanical properties of adhesive bonds reinforced with fabric with glass fibres. In: Manufacturing Technology, Vol. 16, No. 1, pp. 299-304. Go to original source...
  22. ZAVRTÁLEK, J., MÜLLER, M. and ŠLEGER, V. (2016). Low-cyclic fatigue test of adhesive bond reinforced with glass fibre fabric. In: Agro. Res., Vol. 4, pp. 1138-1146.
  23. MÜLLER, M. (2017). Effect of surface treatment of adhesive bonded sheet of aluminium alloy EN AW 2024 T3 on adhesive bond strength created by means of structural two-component adhesive. In: Manuf. Tech., Vol. 17, No. 5, pp. 791-796. Go to original source...
  24. SANTANA, P. R. T., PANZERA, T. H., FREIRE, R. T. S., and CHRISTOFORO, A. L. (2017). Apparent shear strength of hybrid glass fibre reinforced composite joints. In: Polym. Test., Vol. 64, pp. 307-312. Go to original source...
  25. CAO, Y., CAMERON, J. (2006) Impact properties of silica particle modified glass fiber reinforced epoxy composite. In: J. Reinf. Plastics Compos., Vol. 25, pp. 761-769. Go to original source...
  26. CAO, Y., CAMERON, J. (2006) Flexural and shear properties of silica particle modified glass fiber reinforced epoxy composite. In: J. Reinf. Plastics Compos., Vol. 25, pp. 347-359. Go to original source...

This is an open access article distributed under the terms of the Attribution-NonCommercial 4.0 International License (CC BY-NC 4.0), which permits non-comercial use, distribution, and reproduction in any medium, provided the original publication is properly cited. No use, distribution or reproduction is permitted which does not comply with these terms.