Natural aging of wood in historic wooden buildings: Literature review
Year 2025,
Volume: 12 Issue: 2, 161 - 169
Demet Sürücü
,
Mualla Balaban Uçar
Abstract
Wood has been used for centuries as the only renewable construction material, standing out with its high strength relative to its weight, workability, durability, and natural aesthetic qualities such as color and texture. The objective of this study is to examine the process of natural aging in wood by reviewing existing literature and to identify how this aging process influences the material’s chemical, physical, and mechanical properties. Nowadays, the scarcity of data on naturally aged wood and the common attempt to overcome this limitation by using accelerated aging samples highlight the importance of this study. In recent years, researchers working to protect our planet have increasingly focused on the preservation, recycling, and reuse of wood, which is recognized as a sustainable building material. Reviewing the natural aging of wood based on scientific data will help extend its service life and encourage new research.
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Biggs, D., Liebhart, R., Gönen, S., 2016. Conserving the Tomb Chamber Complex in the Midas Mound at Gordion in Turkey. Şu eserde: Structural Analysis of Historical Constructions: Anamnesis, Diagnosis, Therapy, Controls. Proceedings of the 10th Intl. Conference on Structural Analysis of Historical Constructions, SAHC. Leuven, Belgium, 13-15 September
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Bradbury, G., Potts, B. M., Beadle, C. L., Dutkowski, G., Hamilton, M., 2011. Genetic and environmental variation in heartwood colour of Australian blackwood (Acacia melanoxylon R.Br.). Holzforschung, 65(3): 349-359
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Brischke, C., Welzbacher, C. R., Brandt, K., Rapp, A. O., 2007. Quality control of thermally modified timber: Interrelationship between heat treatment intensities and CIE L*a*b* color data on homogenized wood samples. Holzforschung 61(1): 19-22
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Chang, H. T., Chang, S. T., 2001. Correlation between softwood discoloration induced by accelerated lightfastness testing and by indoor exposure. Polymer Degradation and Stabillty 72(2): 361-365
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Chowdhury, K. A., Preston, R. D., White, R. K., 1967. Structural changes in some ancient Indian timbers. Proceedings of the Royal Society B, 168(1011): 148-157.
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Follrich, J., Teischinger, A., Müller, U., 2010. Artificial ageing of softwood joints and its effect on internal bond strength with special consideration of flat-to-end grain joints. Eurepean Journal of Wood and Wood Products 69(4): 597-604
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Froidevaux, J., Volkmer, T., Ganne-Chédeville, C., Gril, J., Navi, P., 2012. Viscoelastic behavior of aged and non-aged spruce wood in the radial direction. Wood Material Science & Engineering 7(1): 1-12
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Ganne-Chédeville, C., Jääskeläinen, A.S., Froidevaux, J., Hughes, M., Navi, P., 2011. Natural and artificial ageing of spruce wood as observed by FTIR-ATR and UVRR spectroscopy. Holzforschung 66(2): 163-170
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Gawron, J., Szczesna, M., Zielenkiewicz, T., Golofit, T., 2012. Cellulose crystallinity index examination in oak wood originated from antique woodwork. Drewno 55(188): 109-114
-
George, B., Suttie, E., Merlin, A., Deglise, X., 2005. Photodegradation and photo stabilisation of wood- The state of the art. Polymer Degradation and Stability 88(2): 268-274
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Giachi, G., Bettazzi, F., Chimichi, S., Staccioli, G., 2003. Chemical characterisation of degraded wood in ships discovered in a recent excavation of the Etruscan and Roman harbour of Pisa. Journal of Cultural Heritage, 4(2): 75-83. doi.org/10.1016/S1292074(03)00018-9
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Ghavidel, A., Hofmann, T., Bak, M., Sandu, I., Vasilache, V., 2020. Comparative archaeometric characterization of recent and historical oak (Quercus spp.) wood. Wood Science and Technology, 54(1): 1121-1137. Doi.org/10.1007/s00226-020-01202-4
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Hedges, J. I, 1989, The chemistry of archaeological wood. Şu eserde: Rowell, R., Barbour, R.J. (Eds.). Chemistry, and Preservation, 225: 111-140
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Kačík, F., Šmíra, P., Kačíková, D., Reinprecht, L., Nasswettrova, A., 2013. Chemical changes in fir wood from old buildings due to aging. Cellulose Chemistry and Technology, 48 (1-2): 79-88
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Tarihi ahşap yapılarda ahşabın doğal yaşlanması: Kaynakların incelenmesi
Year 2025,
Volume: 12 Issue: 2, 161 - 169
Demet Sürücü
,
Mualla Balaban Uçar
Abstract
Ahşap, yenilenebilir tek yapı malzemesi olması nedeniyle yüzyıllar boyu kullanılmış, ağırlığına oranla taşıma gücünün yüksek olması, kolay işlenebilmesi, dayanıklılığı, doğal renkleri, dokusu gibi birçok özelliği ile ön plana çıkmıştır. Çalışmada amaç ahşabın doğal yaşlanmasına ait literatürdeki verileri inceleyerek yaşlanma sürecini tanımlamak ve yaşlanmanın ahşabın kimyasal, fiziksel ve mekanik özellikleri üzerine etkilerini ortaya koymaktır. Günümüzde doğal yaşlanmış ahşaba ait verilerin oldukça sınırlı olması ve genelde hızlandırılmış yaşlanmış örneklerle bu eksikliğin giderilmeye çalışılması bu çalışmanın önemini ortaya koymaktadır. Sürdürülebilir bir yapı malzemesi olan ahşabın yerinde korunması, geri dönüşümü ve/veya yeniden kullanımı da gezegenimizi korumak için çalışan araştırmacıların son yıllarda yoğunlaştığı konulardır. Bilimsel verilere dayanarak ahşabın doğal yaşlanmasının gözden geçirilmesi, ahşabın kullanım ömrünü uzatmaya yardımcı olacak ve yeni araştırmaları teşvik edecektir.
Thanks
Bu çalışma İÜ Cerrhapaşa, Lisasnsütü Eğitim Enstitüsü, Orman Endüstri Mühendsiliği Programı öğrencisi Demet SÜRÜCÜ'nün Prof.Dr. Mualla BALABAN UÇAR danışmanlığında yürüttüğü İstanbul'un Tarihi Ahşap Yapılarında Doğal Yaşlanmanın Kimyasal Etkileri başlıklı tez çalışmasında türetilmişitr. Tez İzleme Komitesi Üyeleri Prof.Dr. Meltem Vatan'a ve Prof.Dr. Coşkun Köse'ye teşekkürlerimi ve şükranlarımı iletirim.
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Barham, L., Duller, G., Candy, I., Scott, C., Cartwright, C. R., Peterson, J. R., Kabukcu, C., Chapot, M.S., Melia, F., Rots, V., George., 2023. Evidence for the earliest structural use of wood at least 476,000 years ago. Nature, 622(7981): 1-5. Doi.org/10.1038/s41586-023-06557-9
-
Bekhta, P., Niemz, P., 2003. Effect of high temperature on the change in color, dimensional stability and mechanical properties of spruce wood. Holzforschung/Cellulose-Hemicelluloses-Lignin-Wood Extractives 57(5): 539-546
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Biggs, D., Liebhart, R., Gönen, S., 2016. Conserving the Tomb Chamber Complex in the Midas Mound at Gordion in Turkey. Şu eserde: Structural Analysis of Historical Constructions: Anamnesis, Diagnosis, Therapy, Controls. Proceedings of the 10th Intl. Conference on Structural Analysis of Historical Constructions, SAHC. Leuven, Belgium, 13-15 September
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Borgin, K., Faix, O., Schweers, W., 1975a. Effect of aging on lignins of wood. Wood Science and Technology, 9(3): 207-211
Borgin, K., Parameswaran, N., Liese, W., 1975b. Effect of aging on ultrastructure of wood. Wood Science and Technology, 9(2): 87-98
-
Bradbury, G., Potts, B. M., Beadle, C. L., Dutkowski, G., Hamilton, M., 2011. Genetic and environmental variation in heartwood colour of Australian blackwood (Acacia melanoxylon R.Br.). Holzforschung, 65(3): 349-359
-
Brischke, C., Welzbacher, C. R., Brandt, K., Rapp, A. O., 2007. Quality control of thermally modified timber: Interrelationship between heat treatment intensities and CIE L*a*b* color data on homogenized wood samples. Holzforschung 61(1): 19-22
-
Chang, H. T., Chang, S. T., 2001. Correlation between softwood discoloration induced by accelerated lightfastness testing and by indoor exposure. Polymer Degradation and Stabillty 72(2): 361-365
-
Chowdhury, K. A., Preston, R. D., White, R. K., 1967. Structural changes in some ancient Indian timbers. Proceedings of the Royal Society B, 168(1011): 148-157.
-
Derkyi, N. S. A., Bailleres, H., Chaix, G., Thevenon, M. F., Oteng-Amoako, A. A., Adu-Bredu, S., 2009. Colour variation in teak (Tectona grandis) wood from plantations across the ecological zones of Ghana. Ghana Journal of Forestry, 25(1): 40-50. Doi:10.4314/gjf.v25i1.60698
-
Deppe, H. J., Rühl, H., 1993. Evaluation of historical construction timber. 1. density and compression strength. Holz als Roh- und Werkstoff 51(6): 379-383
-
Erhardt, W. D., Mecklenburg, M. F., Tumosa, C. S., Olstad, T. M., 1996. New vs Old Wood: Differences and Similarities in Physical, Mmechanical, and Chemical Properties. Intl. Council of Museums-Committee for Conservation 11th Triennial Meeting. J. Bridgeland. London, James&James: 903-910
-
Esteban, L. G., Fernández, F. G., Casasús, A. G., De Palacios, De P., P., Gril, J., 2006. Comparison of the hygroscopic behaviour of 205-year-old and recently cut juvenile wood from Pinus sylvestris L. Annals of Forest Science 63(3): 309-317. Doi.org/10.1051/forest:2006010
-
Feist, W. C., Hon, D. N. S., 1984. Chemistry of weathering and protection. Şu eserde: Rowell, R.M. (Ed.). The Chemistry of Solid Wood. American Chemical Society. Advances in Chemistry 207: 401-451. Doi: 10.1021/ba1984-0207.ch011
-
Feist, W. C., 1990. Outdoor wood weathering. Şu eserde: Rowell, R. M., Barbour, R. J. (Eds.). ArchaeologicaL Wood: Properties, Chemistry, and Preservation Advances in Chemistry Series 225: 263298. Doi.org/10.1021/ba-1990-0225.ch011
-
Fengel, D., 1991. Aging and fossilization of wood and its components. Wood Science and Technology, 25(3): 153
177. Doi.org/10.1007/bf00223468
-
Fridley, K. J., Mitchell, J. B., Hunt, M. O., Senft, J. F., 1996. Effect of 85 years of service on mechanical properties of timber roof members. Part 1: Experimental observations Forest Products Journal 46(5): 72-78.
-
Follrich, J., Teischinger, A., Müller, U., 2010. Artificial ageing of softwood joints and its effect on internal bond strength with special consideration of flat-to-end grain joints. Eurepean Journal of Wood and Wood Products 69(4): 597-604
-
Froidevaux, J., Volkmer, T., Ganne-Chédeville, C., Gril, J., Navi, P., 2012. Viscoelastic behavior of aged and non-aged spruce wood in the radial direction. Wood Material Science & Engineering 7(1): 1-12
-
Ganne-Chédeville, C., Jääskeläinen, A.S., Froidevaux, J., Hughes, M., Navi, P., 2011. Natural and artificial ageing of spruce wood as observed by FTIR-ATR and UVRR spectroscopy. Holzforschung 66(2): 163-170
-
Gawron, J., Szczesna, M., Zielenkiewicz, T., Golofit, T., 2012. Cellulose crystallinity index examination in oak wood originated from antique woodwork. Drewno 55(188): 109-114
-
George, B., Suttie, E., Merlin, A., Deglise, X., 2005. Photodegradation and photo stabilisation of wood- The state of the art. Polymer Degradation and Stability 88(2): 268-274
-
Giachi, G., Bettazzi, F., Chimichi, S., Staccioli, G., 2003. Chemical characterisation of degraded wood in ships discovered in a recent excavation of the Etruscan and Roman harbour of Pisa. Journal of Cultural Heritage, 4(2): 75-83. doi.org/10.1016/S1292074(03)00018-9
-
Ghavidel, A., Hofmann, T., Bak, M., Sandu, I., Vasilache, V., 2020. Comparative archaeometric characterization of recent and historical oak (Quercus spp.) wood. Wood Science and Technology, 54(1): 1121-1137. Doi.org/10.1007/s00226-020-01202-4
-
Holz, D., 1981. Zum Alterungsverhalten des Werkstoffes Holz- einige Ansichten, Untersuchungen, Ergebnisse. Holztechnologie 22(2): 80-85
-
Hon, D. N. S., Chang, S. T., Feist, W. C., 1985. Protection of wood surfaces against photooxidation. Journal of Applied Polymer Science 30(4): 1429-1448
-
Hedges, J. I, 1989, The chemistry of archaeological wood. Şu eserde: Rowell, R., Barbour, R.J. (Eds.). Chemistry, and Preservation, 225: 111-140
-
Horie, H., 2002. Strength deterioration of recycled lumber collected from demolished wooden buildings in Hokkaido. Mokuzai Gakkaishi 48(4): 280-287
-
Kačík, F., Šmíra, P., Kačíková, D., Reinprecht, L., Nasswettrova, A., 2013. Chemical changes in fir wood from old buildings due to aging. Cellulose Chemistry and Technology, 48 (1-2): 79-88
-
Kawai, S., Sugiyama, J., Yokoama, M., Matuso, M., Sonderegger, W., Alter, P., Niemz, P., 2008a. Investigations on selected properties of tonal wood of spruce from Grisons. Holz als Roh- und Werkstoff 66(5): 345-3542008. Research on the aging of wood in Rish. Şu eserde: Wood Science for Preservation of Cultural Heritage: Mechanical and Biological Factors. Proceedings of the Intl. Conference in Braga5-7 Nov, Portugal. s52-56
-
Kohara, J.,1955. Studies on the permanence of wood (X): Colorimetry on the old timbers by the trichromatic colorimeter. Journal of the Japanese Forestry Society 37(2): 63-66
-
Kohara, J., Okamoto, H.,1955. Studies of Japanese old timbers. Scientific Reports Saikyo University, 7(1a): 9-2Kollmann, F.F., Coté, W.A., 1968. Principles of Wood Science and Technology. Springer Verlag Berlin Heidelberg
-
Kollmann, F., Schmidt, E., 1962. Gefügezerrüttung und Festigkeitseinbusse von dauerbeanspruchtem Nadelholz. Holz als Roh- und Werkstoff 20(9): 333-338.
-
Lang, A., 2004. Charakterisierung de Altholzaufkommens in Deutschland., Universität Hamburg. Doctoral thesis
-
Lavoie, J.M., Stevanovic, T., 2006. Yield and composition of lipophylic extracts of yellow birch (Betula alleghaniensis Britton) as a function of wood age and aging under industrial conditions. Holzforschung 60(2): 184-189
-
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