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N.M. Garz on-Barrero et al. / International Biodeterioration & Biodegradation 115 (2016) 266e276 275
elevated degrees of mold colonization in natural weathering for 12 Garzon, N., Sartori, D., Zuantetti, I., Barbirato, G.H.A., Ramos, R.D., Fiorelli, J.,
Santos, S.F., Savastano Junior, H., 2012. Durability evaluation of agroindustrial
months and in accelerated tests (ASTM D3273-12, 2012) indicating
waste based particle boards using accelerated aging cycling tests. Key Eng.
that the accelerated method was able to reproduce the effects seen Mater. 517, 628e634.
in the field. Natural exposure showed that the molds were pre- Gobakken, L.R., Westin, M., 2008. Surface mould growth on five modified wood
dominant in both of the materials evaluated, not having a signifi- substrates coated with three different coating systems when exposed outdoor.
Int. Biodeterior. Biodegrad. 62, 397e402.
cant difference in the degree of colonization between sugarcane Hanada, E.R., Campos, S.C., Abreu, S.L.R., Pfenning, L., 2003. Wood mold and stain
bagasse particle boards (BCP) and commercial wood particle boards fungi in stored logs of six timber industries in Manaus, Amazonas State, Brazil.
(MDP). The surface treatment with castor oil based polyurethane Acta Amaz. 33, 483e488 (In Portuguese).
Hayashi, T., Miyatake, A., Harada, M., 2002. Outdoor exposure tests of structural
resin used in both materials decreased the percentage of the mold
laminated veneer lumber. J Wood Sci. 48, 69e74.
colonization area after 12 months of natural exposure and in the Hernberg, S., Sripaiboonkij, P., Quansah, R., Jaakkola, J.K., Jaakkola, M.S., 2014. Indoor
accelerated test as confirmed by the statistical proportional chan- molds and lung function in healthy adults. Resp. Med. 108, 677e684.
Hofsetz, K., Silva, M.A., 2012. Brazilian sugarcane bagasse: energy and non-energy
ces model. The treatment with castor oil based polyurethane resin
consumption. Biomass Bioenergy 46, 564e573.
surface coating decreased mold colonization in both materials, it Hosseinaei, O., Wang, S., Taylor, A.M., Kim, J.W., 2012. Effect of hemicellulose
also helped to avoid the same magnitude of loss on mechanical extraction on water absorption and mold susceptibility of woodeplastic com-
posites. Int. Biodeterior. Biodegrad. 71, 29e35.
performance in relation to the respective non-coated materials,
Jaakkola, M.S., Quansah, R., Hugg, T.T., Heikkinen, S.A.M., Jaakkola, J.J., 2013. Asso-
after natural and accelerated tests for mold colonization. Finally, ciation of indoor dampness and molds with rhinitis risk: a systematic review
the particle boards fabricated with sugarcane bagasse and castor oil and meta-analysis. J. Allergy Clin. Immunol. 132, 1099e1110.
resin presented similar mold colonization compared to the com- Johansson, P., Ekstrand-Tobin, A., Svensson, T., Bok, G., 2012. Laboratory study to
determine the critical moisture level for mould growth on building materials.
mercial wood particle boards, both in coated and non-coated Int. Biodeterior. Biodegrad. 73, 23e32.
conditions. Kartal, N., 2007. Mold resistance of heat-treated wood. Document No IRG/WP
07e40358. In: The International Research Group on Wood Preservation. Swe-
den, Stockholm.
Acknowledgements Kartal, S.N., Terzi, E., Yoshimura, T., Arango, R., Clausen, C.A., Green III, F., 2012.
Preliminary evaluation of storax and its constituents: fungal decay, mold and
The authors thank the support of FAPESP (thematic project, termite resistance. Int. Biodeterior. Biodegrad. 70, 47e54.
Korai, H., Adachi, K., Saotome, H., 2013. Deterioration of wood-based boards sub-
process 2012/51467-3), CNPq (grant n.135519/2011-0), and CAPES jected to outdoor exposure in Tsukuba. J Wood Sci. 59, 24e34.
for the scholarship offered to the first author. Additionally, the Lisø, K.R., Hygen, H.O., Kvande, T., Thue, J.V., 2006. Decay potential in wood struc-
authors thank the Laboratory for Trees, Woods, and Furniture of the tures using climate data. Build. Res. Inf. 34 (6), 546e551.
Loh, Y.R., Sujan, D., Rahman, M.E., Das, C.A., 2013. Sugarcane bagasse: the future
Technology Research Institute (IPT), the Multipurpose Laboratory of
composite material: a literature review. Resour. Conserv. Recycl. 75, 14e22.
the Department of Food Engineering from the College of Animal Maloney, T.M., 1996. The family of wood composite materials. For. Prod. J. 46, 19e26.
Science and Food Engineering (FZEA/USP), and the Microstructure Martins, M.F., Oliveira, L.S., Lopes, M.C., 2003. Risk Estimation of the Wood Decay
without Contact with the Soil to Pelotas - Brazil. http://dx.doi.org/10.12702/
and Material Ecoefficiency Laboratory of the Department of Civil
VIII.SimposFloresta.2014.11-14-1 (In Portuguese).
Construction Engineering at the Polytechnic School of the Univer- McCullagh, P., 1980. Regression methods for ordinal data. J. R. Stat. Soc. Ser. B Stat.
sity of S~ ao Paulo. Methodol. 42, 109e142.
Mendes, R.F., Mendes, L.M., Guimar~ aes, J.B., Santos, R.C., Silva, A.A., 2012. Associa-
tion effect for sugarcane bagasse, the type and adhesive content in the pro-
References duction of agglomerated boards. Sci. For. 22, 161e170 (In Portuguese).
Molenberg, G., Verbeke, G., 2005. Models for Discrete Longitudinal Data. Springer-
Agresti, A., 2012. Categorical Data Analysis, thi rd ed. Wiley, New York. Verlag, New York, New York.
American Society for Testing and Materials (ASTM), 1994. ASTM D 1435 e 94. Naumann, A., Stephan, I., Noll, M., 2012. Material resistance of weathered woode-
Standard Practice for Outdoor Weathering of Plastics, Philadelphia. plastic composites against fungal decay. Int. Biodeterior. Biodegrad. 75, 28e32.
American Society for Testing and Materials (ASTM), 2012. ASTM D 3273-12 Resis- Nielsen, K.F.G., Holm, U.P., Nielsen, P.A., 2004. Mould growth on building materials
tance to Growth of Mold on the Surface of Interior Coatings in an Environ- under low water activities. Influence of humidity and temperature on fungal
mental Chamber. Pennsylvania. growth and secondary metabolism. Int. Biodeterior. Biodegrad. 54, 325e336.
American Society for Testing and Materials (ASTM), 2006. ASTMD 1037e2006. Nieuwenhuijzen, E.J., Sailer, M.F., Samson, R.A., Adan, O.C.G., 2013. Detection of
Standard Test Method for Properties of Wood-based Fiber and Particle Panel Aureobasidium as the Dominant Fungus on Coated Wood. IRG/WP/13e10796.
Materials. Pennsylvania. The International Research Group on Wood Preservation, Stockholm.
Associaç~ ao Brasileira de Normas T ecnicas (ABNT), 2006. NBR 14810-3- Wood par- Petri c, M., Kri cej, B., Pavli c, M., Rapp, A., 2007. Natural Weathering of Coated Oil
ticle boards Part 3: Test methods. Requirements and test methods. Rio de Heat Treated Wood. IRG/WP 07e30440. The International Research Group on
Janeiro. (In Portuguese). Wood Preservation, Stockholm.
Belini, U.L., Leite, M.K., Tomazello, F.M., Chaix, G., Baudasse, C., Lemenager, N., R Development Core Team, 2011. R: a Language and Environment for Statistical
Thevenon, M.F., 2014. Bio-tests in boards fabricated with eucalyptus and sugane Computing 2.14. Vienna, Austria, 2011. Online at. http://www.R-project.org.
bagasse. Rev. Arvore 38, 361e368 (In Portuguese). Sartori, D.L., Cravo, J.C.M., Barrero, N.G., Fiorelli, J., Savastano Junior, H., 2012.
Bok, G., Johansson, P., Ekstrand, A.T., Bardage, S., 2013. Critical Moisture Levels and Reforested wood and particle boards for rural facilities. Floresta Ambiente 19,
Mould Resistance of Five Different Wood Treatments. IRG/WP 13e30632. The 171e178 (In Portuguese).
International Research Group on Wood Preservation, Stockholm. Scheffer, T.C.A., 1971. Climate index for estimating potential for decay in wood
Cangemi, J.M., Santos, A.M., Claro Neto, S., 2010. The green revolution of castor oil structures above ground. For. Prod. J. 21 (10), 25e31.
seeds. Quím. Nova na Esc. 32, 3e8 (In Portuguese). Scheffer, T.C., 1991. Damage to West Coast Wood Structures by Decay, Fungi, Insects,
Casavecchia, B.H., Souza, A.P., Stangerlin, D.M., 2011. Determination of the potential and Marine Borers. Forest Research Laboratory, Oregon State University, Cor-
fungi attack in the wood for Sinop-MAT Brazil. In: Proceedings of the Brazilian vallis, p. 32. Special Publication 22.
Congress Agrometeorology. Guarapari, Brazil, pp. 1e5 (In Portuguese). Sedlbauer, K., 2001. Prediction of Mould Fungus Formation on the Surface of and
Christensen, R.H., 2011. Analysis of Ordinal Data with Cumulative Link Models inside Building Components. Frauenhofer Institute for Building Physics, Stutt-
Estimation with the R-package Ordinal. Online at. http://www.R-project.org. gart. Ph D Thesis.
Clausen, C.A., West, M., 2005. Test method for assessing resistance of pine lumber Shirakawa, M.A., Selmo, S.M., Cincitto, M.A., Gaylarde, C.C., Brazolin, S., Gambale, W.,
and waferboard to mold. For. Prod. J. 55, 164e166. 2002. Susceptibility of phosphogypsym to fungal growth and the effect of
Companhia nacional de abastecimento (CONAB), 2015. Following Brazilian Crop of various biocides. Int. Biodeterior. Biodegrad. 49, 293e298.
Sugarcane, V. 1 e Season 2014/15, N. 4 e 4th Collection, Brasília, pp. 1e29. Shirakawa, M.A., Beech, I.B., Tapper, R., Cincotto, M.A., Gambale, W., 2003. The
Online at. http://www.conab.gov.br/OlalaCMS/uploads/arquivos/15_04_13_08_ development of a method to evaluate bioreceptivity of indoor mortar plastering
45_51_boletim_cana_portugues_-_4o_lev_-_14-15.pdf (In Portuguese). to fungal growth. Int. Biodeterior. Biodegrad. 51, 83e92.
Faruk, O., Bledzki, A.K., Fink, H.P., Sain, M., 2012. Biocomposites reinforced with Silva, D.A.L., Ometto, A.R., Garcia, R.P., Freire, F.M.C.S., Varanda, L.D., Christoforo, A.L.,
natural fibers: 2000-2010. Prog. Polym. Sci. 37, 1552e1596. 2015. Life Cycle assessment of wood- based composites: state-of-the-art and
Fojutowski, A., Kropacz, A., Noskowiak, A., 2009. The Resistance of Thermo-oil opportunities for reducing environmental impacts. In: Lahr, F.A.R.,
Modified Wood against Decay and Mould Fungi. IRG/WP/09e40448. The In- Savastano Jr., H., Fiorelli, J. (Eds.), Non-conventional Building Materials Based on
ternational Research Group on Wood Preservation, Beijing. Agro-industrial Wastes. Tiliform, pp. 143e178. Bauru, SP.
Food and agriculture organization of the United Nations (FAO), 2014. Global Forest Silva, V.L.M.M., Gomes, W.C.O., Alsina, L.S., 2007. Use of sugar cane bagasse as
Products Facts and Figures. Online at. http://www.fao.org/forestry/statistics/en. biomass adsorbent in the adsorption of organic pollutants. Rev. Eletr^ onica