Startseite Wood-cement inhibition revisited and development of new wood-cement inhibitory and compatibility indices based on twelve wood species
Artikel
Lizenziert
Nicht lizenziert Erfordert eine Authentifizierung

Wood-cement inhibition revisited and development of new wood-cement inhibitory and compatibility indices based on twelve wood species

  • M’Hamed Hachmi EMAIL logo , Mourad Guelzim , Abdelillah Hakam und Abdessadek Sesbou
Veröffentlicht/Copyright: 28. Juli 2017
Veröffentlichen auch Sie bei De Gruyter Brill

Abstract

A new approach is presented in terms of the analysis of wood-cement (WC) compatibility, which is based on a similarity coefficient (CS) that reflects the degree of resemblance between the curves of the “WC hydration temperature vs. time (24 h)” based on 15 g WC mixture and that of neat cement (C). This approach classifies clearly the compatibilities of different wood species on a scale of 0–100%, on which the most incompatible species have CS-values <5% and the upper compatibility class CS data around 95%, which is close to that of C, and which cannot be exceeded. The CS-value is well suited for modelling the inhibitory behaviour of all woods. In the discussion, the CS-approach is compared with other inhibitory indices proposed in the literature.

Acknowledgments

This project was conducted within the framework of a cooperative research agreement between the Faculty of Sciences of Rabat, Laboratory of Wood Sciences and the National Forestry School of Engineers of Salé. The samples used in this study were collected in collaboration with the external services of the High Commissariat for Water and Forests of Morocco.

References

Aigbomian, E.P., Fan, M. (2013) Development of Wood-Crete building materials from sawdust and waste paper. Constr. Build. Mater. 40:361–366.10.1016/j.conbuildmat.2012.11.018Suche in Google Scholar

Alberto, M.M.M. (2001) Feasibility of wood-cement composites for the construction of houses in Mozambique (In French). Nancy 1. Thesis.Suche in Google Scholar

Arséne, M.-A., Bilba, K., Savastano Junior, H., Ghavami, K. (2013) Treatments of non-wood plant fibres used as reinforcement in composite materials. Mat. Res. 16:903–923.10.1590/S1516-14392013005000084Suche in Google Scholar

Blankenhorn, P., Labosky, P.J., Dicola, M., Stover, L. (1994) Compressive strength of hardwood-cement composites. Forest Prod. J. 44:59.Suche in Google Scholar

de Fátima Júlio, M., Soares, A., Ilharco, L.M., Flores-Colen, I., De Brito, J. (2016) Silica-based aerogels as aggregates for cement-based thermal renders. Cem. Concr. Compos. 72:309–318.10.1016/j.cemconcomp.2016.06.013Suche in Google Scholar

Fabiyi, J.S. (2013) Suitability of portland cement and rice husk ash pozzolan systems for cement bonded composites production. J. Mater. Environ. Sci. 4:848–854.Suche in Google Scholar

Ferraz, J.M., Del Menezzi, C.H., Souza, M.R., Okino, E.Y., Martins, S.A. (2012) Compatibility of pretreated coir fibres (Cocos nucifera L.) with portland cement to produce mineral composites. Int. J. Polym. Sci. 2012:290571.10.1155/2012/290571Suche in Google Scholar

Fujii, T., Miyatake, A. (2003) SEM-EDXA study on the interface between wood and cement in cement strand slab. Bulletin of FFPRI 2:93–109.Suche in Google Scholar

Govin, A., Peschard, A., Guyonnet, R. (2006) Modification of cement hydration at early ages by natural and heated wood. Cem. Concr. Compos. 28:12–20.10.1016/j.cemconcomp.2005.09.002Suche in Google Scholar

Hachmi, M., Moslemi, A. (1989) Correlation between wood-cement compatibility and wood extractives. Forest Prod. J. 39:55–58.Suche in Google Scholar

Hachmi, M., Moslemi, A., Campbell, A. (1990) A new technique to classify the compatibility of wood with cement. Wood Sci. Technol. 4:345–354.10.1007/BF00227055Suche in Google Scholar

Hachmi, M., Sesbou, A., Zoulalian, A., Mougel, E., Akaaboune, H., Zoukaghe, K. (2009) Behavior of different Moroccan biomasses in the manufacture of wood-cement/gypsum composites (In French). Mediterranean forest 30:257–266.Suche in Google Scholar

Hofstrand, A., Moslemi, A., Garcia, J.F. (1984) Curing characteristics of wood particles from nine northern Rocky Mountain species mixed with Portland cement. Forest Prod. J. 34:57–61.Suche in Google Scholar

Karade, S. (2010) Cement-bonded composites from lignocellulosic wastes. Constr. Build. Mater. 24:1323–1330.10.1016/j.conbuildmat.2010.02.003Suche in Google Scholar

Karade, S.R., Irle, M., Maher, K. (2003) Assessment of wood- cement compatibility: a new approach. Holzforschung 57:672–680.10.1515/HF.2003.101Suche in Google Scholar

Kochova, K., Schollbach, K., Brouwers, H. Use of alternative fibres in Wood Wool cement boards and their influence on cement hydration. 9th International Conference on Building Materials (Ibausil 2015), 2015 Bauhaus University Weimar. pp. 2-1375–2-1382.Suche in Google Scholar

Lee, A.W., Hong, Z., Phillips, D.R., Hse, C.-Y. (1987) Effect of cement/wood ratios and wood storage conditions on hydration temperature, hydration time, and compressive strength of wood-cement mixtures. Wood Fiber Sci. 19:262–268.Suche in Google Scholar

Mohamed, T.E., Abdelgadir, A.Y., Megahed, M., Nasser, R. (2011) Effect of mixing three lignocellulosic materials with different cement ratios on the properties of cement bonded particleboard. J. Sci. Technol. 12:03.Suche in Google Scholar

Moslemi, A., Lim, Y. (1984) Compatibility of southern hardwoods with portland cement. Forest Prod. J. 34:22–26.Suche in Google Scholar

Neville, A.M. (2000) Properties of concrete (In French). Eyrolles, Paris.Suche in Google Scholar

Olorunnisola, A.O. (2008) Effects of pre-treatment of rattan (Laccosperma secundiflorum) on the hydration of Portland cement and the development of a new compatibility index. Cement Concrete Comp. 30:37–43.10.1016/j.cemconcomp.2007.08.002Suche in Google Scholar

Pasca, S.A., Hartley, I.D., Reid, M.E., Thring, R.W. (2010) Evaluation of compatibility between beetle-killed lodgepole pine (Pinus contorta var. latifolia) wood with portland cement. Materials 3:5311–5319.10.3390/ma3125311Suche in Google Scholar PubMed PubMed Central

Pereira, C., Jorge, F.C., Irle, M., Ferreira, J.M. (2006) Characterizing the setting of cement when mixed with cork, blue gum, or maritime pine, grown in Portugal I: temperature profiles and compatibility indices. J. Wood Sci. 52:311–317.10.1007/s10086-005-0774-zSuche in Google Scholar

Sadiku, N.A., Sanusi, A. (2014) Wood pre-treatment influence on the hydration of Portland cement in combination with some tropical wood species. Pro Ligno 10:3–10.Suche in Google Scholar

Sandermann, W., Kohler, R. (1964) Studies on mineral-bonded wood materials. IV. A short test of the aptitudes of woods for cement-bonded materials. Holzforschung 18:53–59.10.1515/hfsg.1964.18.1-2.53Suche in Google Scholar

Sauvat, N., Sell, R., Mougel, E., Zoulalian, A. (1999) A study of ordinary portland cement hydration with wood by isothermal calorimetry. Holzforschung 53:104–108.10.1515/HF.1999.016Suche in Google Scholar

Setiadji, R., Husin, A.A. (2012) Utilization of Eucalyptus oil refineries waste for cement particle board. IJSCET 3:1–10.Suche in Google Scholar

Simatupang, M. (1979) Water requirement for the production of cement bonded particle board. Holz Roh- Werkst. 37:379–382.10.1007/BF02610947Suche in Google Scholar

Tchehouali, A., Aina, M., Houanou, K., Foudjet, A., Thimus, J.-F. (2013) The most suitable species of six West African hardwood species for wood–cement composites. Res. J. Recent Sci. 2:59–65.Suche in Google Scholar

Vaickelionis, G., Vaickelioniene, R. (2006) Cement hydration in the presence of wood extractives and pozzolan mineral additives. Ceramics Silikaty 50:115.Suche in Google Scholar

Weatherwax, R., Tarkow, H. (1964) Effect of wood on setting of Portland cement. Forest Prod. J. 14:567–570.Suche in Google Scholar

Wei, Y.M., Fujii, T., Hiramatsu, Y., Miyatake, A., Yoshinaga, S., Fujii, T., Tomita, B. (2004) A preliminary investigation on microstructural characteristics of interfacial zone between cement and exploded wood fiber strand by using SEM-EDS. J. Wood Sci. 50:327–336.10.1007/s10086-003-0576-0Suche in Google Scholar

Received: 2017-2-6
Accepted: 2017-6-27
Published Online: 2017-7-28
Published in Print: 2017-11-27

©2017 Walter de Gruyter GmbH, Berlin/Boston

Heruntergeladen am 30.9.2025 von https://www.degruyterbrill.com/document/doi/10.1515/hf-2017-0022/html
Button zum nach oben scrollen