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Experimental research of a rod glued along wood fibres

https://doi.org/10.22227/1997-0935.2023.12.1915-1925

Abstract

Introduction. The objects of the research are experimental specimens of glued laminated wood with a steel rod glued along the wood fibres in each of them. The subject of the research is the values of resistance of wood to pulling out or push-through of the rod glued along the fibres, as well as the compliance of the joint. The goal of the research is to calculate the resistance according to the test results and compare the obtained value with normative data. The relevance of the research is due to the widespread application in construction of glued wood structures and joints on glued rods. The obtained data can be used in calculation models and in the calculation of nodes.

Materials and methods. Experiment and calculation methods are used in the research.

Results. The results of five specimens were used to obtain the values of total deformations for each stage of loading. It occurred due to chipping of the wooden element along the fibres at the border of the adhesive joint and the wood. Wood resistance and compliance values for each specimen were calculated and tabulated. The normative value of wood resistance was obtained. It exceeded the value specified in the normative document data. A numerical normative value of compliance was also obtained.

Conclusions. The excess of the resistance obtained from the experiment over the value in the normative document indicates its applicability with provided safety factor. In the calculation of unique structures according to special technical specifications, it is possible to use an increased resistance value obtained as the result of the experiment. The compliance of a rigid joint on rods glued along the fibres is small. In wooden structures it is not possible to avoid it completely.

About the Authors

F. S. Shkoliar
Peter the Great St. Petersburg Polytechnic University (SPbPU)
Russian Federation

Filipp S. Shkoliar — Candidate of Technical Sciences, senior lecturer

29 Polytechnic st., St. Petersburg, 195251

ResearcherID: GLR-0652-2022



A. G. Nikitin
Peter the Great St. Petersburg Polytechnic University (SPbPU)
Russian Federation

Aleksandr G. Nikitin — student

29 Polytechnic st., St. Petersburg, 195251

ResearcherID: HLW-6315-2023;



A. I. Zatsepina
Peter the Great St. Petersburg Polytechnic University (SPbPU)
Russian Federation

Aleksandra I. Zatsepina — Visiting lecturer

29 Polytechnic st., St. Petersburg, 195251

ResearcherID: ACI-5248-2022



References

1. Modern problems of improvement and development of metal, wooden, plastic structures in construction and transport : materials of the III International scientific and technical conference. Samara, 2005. (rus.).

2. Modern building structures made of metal, wood and plastics : materials of the 12th International Symposium. Odessa, 2007. (rus.).

3. Naychuk A.Ya., Chornoliz V.S., Ivanyuk A.N. Numerical studies of the strength of wooden beams with through cracks reinforced by inclined stuck-in rods. Resource-saving materials, structures, buildings and structures : collection of scientific works. 2008; 16(2):278-281. (rus.).

4. Orlovich R.B., Gil Z., Dmitriev P.A. Trends in the development of connections of wooden structures in foreign construction. News of Higher Educational Institutions. Construction. 2004; 11:4-9. EDN PIKRGX. (rus.).

5. Zolotov M.S. Investigation of stress-strain state of anchor joint on epoxy glue : autoref. dis. … candidate of technical sciences. Kharkov, 1971. (rus.).

6. Zubarev G.N., Boitemirov F.A., Golovina V.M. Test of a wooden arch with joints on glued rods. News of Higher Educational Institutions. Construction and Architecture. 1983; 12:15-21. (rus.).

7. Ivanov J.M. Long-term bearing capacity of wooden structures. News of Higher Educational Institutions. Construction and Architecture. 1972; 11:6-12. (rus.).

8. Ivanov Yu.M., Linkov I.M., Sorotkin V.M. Study of the influence of reinforcement on the strength and rigidity of wooden bent elements. Development and study of glued wooden and plywood reinforced structures. 1972; 24:13-30. (rus.).

9. Kovalchuk L.M. Gluing wood materials with plastics and metals. Moscow, Forestry industry, 1968; 239. (rus.).

10. Kalugin A.V. Glued timber structures in modern construction. Industrial and Civil Engineering. 2011; 7-2:32-37. EDN NXOUFJ. (rus.).

11. Zubarev G.N., Loginova M.P., Golovina V.M. Testing and calculation of connections of wooden structures : collection of scientific works. Moscow, TsNIISK named after V.A. Kucherenko, 1981. (rus.).

12. Turkovsky S.B., Sayapin V.V. Research of assembly joints of glued wooden structures. Moscow, TsNIISK named after V.A. Kucherenko, 1981. (rus.).

13. Turkovsky S.B., Pogoreltsev A.A. Development of wooden structures of “TSNIISK-system” based on inclined stuck-in rods. Industrial and Civil Engineering. 2007; 3:6-7. EDN HZIVXP. (rus.).

14. Pospelov N.D., Tumas E.V. About new adhesive joints of bearing elements of wooden bridge spans. Balashikha, SoyuzdorNII, 1970. (rus.).

15. Vdovin V.M., Ishmaeva D.D. Experimental studies of rigid nodes of beam structures made of glued wooden elements. Regional Architecture and Engineering. 2014; 2:130-136. EDN SFPAAL. (rus.).

16. Turkovsky S.B., Pogoreltsev A.A., Preobra-zhenskaya I.P. Glued wooden structures with nodes on glued rods in modern construction (TsNIISK-system). Moscow, Stroymaterialy Publ., 2013; 300. (rus.).

17. Schmidt A.B., Dmitriev P.A. Atlas of building structures made of glued wood and water-resistant plywood : manual. Moscow, ASV publishing house, 2002; 291. (rus.).

18. Shchelokova T. A research of stress/strain condition of reinforced timber structures with natural weakenings. MATEC Web of Conferences. 2018; 193:03051. DOI: 10.1051/matecconf/201819303051

19. Mirski R., Kuliński M., Dziurka D., Thomas M., Antonowicz R. Strength properties of structural glulam elements from pine (Pinus sylvestris L.) timber reinforced in the tensile zone with steel and basalt rods. Materials. 2021; 14(10):2574. DOI: 10.3390/ma14102574

20. Totsuka M., Jockwer R., Kawahara H., Aoki K., Inayama M. Experimental study of compressive properties parallel to grain of glulam. Journal of Wood Science. 2022; 68(1). DOI: 10.1186/s10086-022-02040-7

21. Jockwer R., Caprio D., Jorissen A. Evaluation of parameters influencing the load-deformation behaviour of connections with laterally loaded dowel-type fasteners. Wood Material Science & Engineering. 2022; 17(1):6-19. DOI: 10.1080/ 17480272. 2021.1955297

22. Akter S. T., Serrano E., Bader T. K. Numerical modelling of wood under combined loading of compression perpendicular to the grain and rolling shear. Engineering Structures. 2021; 224:112800. DOI: 10.1016/j.engstruct.2021.112800

23. Jockwer R., Dietsch P. Review of design approaches and test results on brittle failure modes of connections loaded at an angle to the grain. Engineering Structures. 2018; 171:362-372. DOI: 10.1016/j.engstruct.2018.05.061

24. Cabrero J.M., Yurrita M. Performance assessment of existing models to predict brittle failure modes of steel-to-timber connections loaded parallel-to-grain with dowel-type fasteners. Engineering Structures. 2018; 171:895-910. DOI: 10.1016/j.engstruct.2018.03.037

25. Bader T.K., Schweigler M., Serrano E., Dorn M., Enquist B., Hochreiner G. Integrative experimental characterization and engineering modeling of single-dowel connections in LVL. Construction and Building Materials. 2016; 107:235-246. DOI: 10.1016/j.conbuildmat.2016.01.009

26. Schweigler M., Bader T.K., Hochreiner G., Lemaître R. Parameterization equations for the nonlinear connection slip applied to the anisotropic embedment behavior of wood. Composites Part B: Engineering. 2018; 142:142-158. DOI: 10.1016/j.compositesb.2018.01.003

27. Blaß H.J., Colling F. Load-carrying capacity of dowelled connections. INTER Meeting. 2015; 48-7-3:115-129. URL: https://www.hs-augsburg.de/homes/colling/holzbau-colling/pdf/2015-INTER.pdf

28. Steilner M., Blaß H.J. A method to determine the plastic bending angle of dowel-type fasteners. Materials and Joints in Timber Structures. 2014; 301-306. DOI: 10.1007/978-94-007-7811-5_28

29. Franke S., Magnière N. The embedment failure of European beech compared to spruce wood and standards. Materials and Joints in Timber Structures. 2014; 221-229. DOI: 10.1007/978-94-007-7811-5_21

30. Franke S., Magnière N. Discussion of testing and evaluation methods for the embedment behaviour of connections. INTER Meeting. 2014; 47-7-1:93-102.


Review

For citations:


Shkoliar F.S., Nikitin A.G., Zatsepina A.I. Experimental research of a rod glued along wood fibres. Vestnik MGSU. 2023;18(12):1915-1925. (In Russ.) https://doi.org/10.22227/1997-0935.2023.12.1915-1925

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ISSN 1997-0935 (Print)
ISSN 2304-6600 (Online)