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Abstract
Insufficient knowledge on Ugandan grown Eucalyptus grandis W. Hill ex Maiden wood properties, high demand, and processing challenges led to a study into its physical properties. We obtained the variation of basic density (BD), calorific value (CV) and volumetric shrinkage (VS) within tree height and tree-age of E. grandis, and its appropriate use based on these properties. Trees with good boles were harvested from Kabarole District in western Uganda to produce specimens as prescribed by British Standards and ASTM standard wood testing procedures. Secondary data reviews and statistical analysis using ANOVA, Tukey’s test and multivariate analysis were done to obtain property estimates and their variation within trees and amongst tree ages. The mean BD of E. grandis is 413.6, 380.5, 471.0, and 501.1 kg m−3 at 3, 6, 9, and 12 years, respectively, showing significant increase with tree age (p = 0.003). The pattern of BD with tree height showed a reduction with tree height although with higher values in the middle portion of the tree. The CV increases (p = 0.014) with tree age and reduces with tree height with values of 14,560.32, 15,447.3, 16,079.11, and 16,932.6 kJ kg−1 at 3, 6, 9, and 12 years, respectively. The percentage VS was 11.02, 9.84, 12.31, and 14.45 for 3-, 6-, 9-, and 12-year-old trees, respectively, and it did not vary significantly (p = 0.088) with tree height. Basing on these property values, E. grandis wood could be used for scaffolding, light constructions and fuel wood production. Its seasoning needs to be longer with well monitored drying schedules to reduce seasoning defects caused by the high VS. Further studies on strength properties, seasoning schedules, panel products properties and tree-age chemical variations would improve the knowledge about its wood quality and would enhance its efficient utilization.
Keywords
Eucalyptus grandis
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Age
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Calorific value
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Basic density
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Volumetric shrinkage
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Wood
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Owen Emmanuel Sseremba, P. Mugabi, A. Y. Banana, B. C. Wessels, M. Plessis.
Variation of basic density, calorific value and volumetric shrinkage within tree height and tree age of Ugandan grown Eucalyptus grandis wood.
Journal of Forestry Research, 2020, 32(2): 503-512 DOI:10.1007/s11676-020-01141-7
| [1] |
ASTM D729. Standard test methods for density and specific gravity (relative density) of wood and wood-based materials, 2008, West Conshohocken: American Society for Testing and Materials 6
|
| [2] |
ASTM E711-87. Standard test method for gross calorific value of refuse-derived fuel by the bomb calorimeter. Annual book of ASTM Standards, 2004, West Conshohocken: American Society for Testing and Materials 1 8
|
| [3] |
Bacher M, Krzosek S. Timber bending and tension strength classes in European Standards. For Wood Technol, 2014, 88: 14-22.
|
| [4] |
Bal BC, Bektaş İ. The Effects of heat treatment on some mechanical properties of juvenile wood and mature wood of Eucalyptus grandis. Dry Technol, 2013, 31(4): 479-485.
|
| [5] |
Bamber RK, Humphreys FR. A preliminary study of some wood properties of Eucalyptus grandis (Hill) Maiden. J Inst Wood Sci, 1963, 11(1): 66-70.
|
| [6] |
Batista DC, Hegedus CEN, Pizzol VD, Corteletti RB. Partial shrinkage and proportion of cracks in juvenile and adult wood of Eucalyptus grandis W. Hill ex Maiden. Rev Ciênc Madeira, 2013, 4(2): 202-213.
|
| [7] |
Bhat KM, Bhat KK, Dhamodaran TK. Wood density and fiber length of Eucalyptus grandis grown in Kerala. Wood Fiber Sci, 1990, 22(1): 54-61.
|
| [8] |
Crafford PL, Wessels CB. The potential of young, green finger-jointed Eucalyptus grandis lumber for roof truss manufacturing. South For, 2016, 78(1): 61-71.
|
| [9] |
De Castro SJ, Tarcísio J, Oliveira S, Xavier BA, Vinícius E, Castro R. Influence of age and radial position on the volumetric and linear shrinkage of Eucalyptus grandis Hill ex. Maiden wood. Rev Árvore, 2006, 30(1): 803-810.
|
| [10] |
Eberhard AA. Calorific values and combustion characteristics of South African grown fuelwoods, 1988, Cape Town: University of Cape Town 40
|
| [11] |
FAO. Wood fuels handbook, 2015, Rome: Food and Agricultural Organisation of the United Nations 31
|
| [12] |
Forbes BW (2012) Physical and mechanical property variation of black ash (Fraxinus nigra) grown in the thunder bay seed zone. Master’s Thesis, Lakehead University, p 209
|
| [13] |
FPL. Wood handbook-wood as an engineering material, 1999, Madison: Forest Products Laboratory 466
|
| [14] |
Githiomi JK, Kariuki JG. Wood basic density of Eucalyptus grandis from plantations in central rift valley, Kenya: variation with age, height level and between sapwood and heartwood. J Trop For Sci, 2010, 22(3): 281-286.
|
| [15] |
Hann R. Longitudinal shrinkage in seven species of wood, 1969, Madison: Forest Producst Laboratory 15
|
| [16] |
Held C, Techel G, Windhorst K. Timber market study contact, 2010, Kampala: Sawlog Production Grant Scheme (SPGS) 39
|
| [17] |
Jozsa LA, Middleton GR. A discussion of wood quality attributes and their practical implications, 1994, Vancouver: Forintek Canada Corporation 42
|
| [18] |
Kambugu RK, Banana AY, Okure M. Exploring the linkage between commodity chain performance: a case study of sawn wood in Uganda. Open For Sci J, 2013, 6: 1-6.
|
| [19] |
Kityo PW, Plumpture RA. The Uganda timber users handbook, 1997, London: Common Wealth Secretariat 78
|
| [20] |
Kumar R, Pandey KK, Chandrashekar N, Mohan S. Effect of tree-age on calorific value and other fuel properties of Eucalyptus hybrid. J For Res, 2010, 21(4): 514-516.
|
| [21] |
Kumar R, Pandey KK, Chandrashekar N, Mohan S. Study of age and height wise variability on calorific value and other fuel properties of Eucalyptus hybrid, Acacia auriculaeformis and Casuarina equisetifolia. Biomass Bioenergy, 2011, 35(3): 1339-1344.
|
| [22] |
Lemenih M, Bekele T. Effect of age on calorific value and some mechanical properties of three Eucalyptus species grown in Ethiopia. Biomass Bioenergy, 2004, 27(3): 223-232.
|
| [23] |
Mckinley RB, Shelbourne CJA, Harris JM, Young GD. Variation in whole-tree basic wood density for a range of plantation species grown in New Zealand. NZ J For Sci, 2000, 30(3): 436-446.
|
| [24] |
MoEMD. Biomass energy strategy (BEST), 2013, Kampala: Ministry of Energy and Mineral Development of the Republic of Uganda (MoEMD) 113
|
| [25] |
MoWE. State of Uganda’s forestry 2016, 2016, Kampala: Ministry of Water and Environment of the Republic of Uganda (MoWE) 139
|
| [26] |
Munalula F, Meincken M. An evaluation of South African fuelwood with regards to calorific value and environmental impact. Biomass Bioenergy, 2009, 33(3): 415-420.
|
| [27] |
Ojelel S, Otiti T, Mugisha S. Fuel value indices of selected woodfuel species used in Masindi and Nebbi districts of Uganda. J Energy Sustain Soc, 2011, 5(14): 1-6.
|
| [28] |
Palermo GDM, Latorraca JDF, De Carvalho AM, Calonego FW, Severo ETD. Anatomical properties of Eucalyptus grandis wood and transition age between the juvenile and mature woods. Eur J Wood Wood Prod, 2015, 73(6): 775-780.
|
| [29] |
Parikka M. Global biomass fuel resources. Biomass Bioenergy, 2004, 27(6): 613-620.
|
| [30] |
Pelletier MC, Henson M, Boyton S, Thomas D, Vanclay JK. Genetic variation in shrinkage properties of Eucalyptus pilularis assessed using increment cores and test blocks. NZ J For Sci, 2008, 38(1): 194-210.
|
| [31] |
Plessis M (2012) A fibre optimisation index developed from a material investigation of Eucalyptus grandis for the Kraft pulping process. Doctorial Dissertation, Stellenbosch University
|
| [32] |
Poku K, Wu Q, Vlosky RP. Wood properties and their variations within the tree stem of lesser-used species of tropical hardwood from Ghana. Wood Fibre Sci, 2001, 32(2): 284-291.
|
| [33] |
Rücker G. Spatial variability of soils on national and hillslope scale in Uganda, 2005, Göttingen: Cuvillier Verlag.
|
| [34] |
Scherr SJ, Shames S, Friedman R. From climate-smart agriculture to climate-smart landscapes. Agric Food Secur, 2012 1 1 12
|
| [35] |
Searson MJ, Thomas DS, Montagu KD, Conroy JP. Wood density and anatomy of water-limited eucalypts. Tree Physiol, 2004, 24(11): 1295-1302.
|
| [36] |
Sette CR Jr, Oliveira IRD, Filho MT, Yamaji FM, Laclau JP. Efeito da idade e posição de amostragem na densidade ecaracterísticas anatômicas da madeira de Eucalyptus grandis. Rev Árvore, 2012, 36: 1183-1190.
|
| [37] |
Singh T, Kostecky MM. Calorific value variations in components of 10 Canadian tree species. Can J For Res, 1986, 16: 1378-1381.
|
| [38] |
SPGS. SPGS timber market study, 2010, Kampala: SPGS 39
|
| [39] |
Sseremba OE, Kaboggoza JRS, Ziraba NY, Mugabi P, Banana AY, Zziwa A, Ndawula J. Timber management practices and timber species used by small scale furniture workshops in Uganda. Maderas Cienc Tecnol, 2011, 13(3): 347-358.
|
| [40] |
Sseremba OE, Mugabi P, Banana AY. Within-tree and tree-age variation of selected anatomical properties of the wood of Ugandan-grown Eucalyptus grandis. For Prod J, 2016, 66(7–8): 433-442.
|
| [41] |
Telmo C, Lousada J. The explained variation by lignin and extractive contents on higher heating value of wood. Biomass Bioenergy, 2011, 35(5): 1663-1667.
|
| [42] |
Tomazello FM. Variação radial da densidade básica e da estrutura anatômica da madeira do Eucalyptus globulus, E. pellita e E. acmenioides. Revista IPEF, 1987, 36: 35-42.
|
| [43] |
Turinawe H, Mugabi P, Tweheyo M. Density, calorific value and cleavage strength of selected hybrid Eucalypts grown in Uganda. Maderas Cienc Tecnol, 2014, 16(1): 13-24.
|
| [44] |
Wessels CB, Crafford PL, Toit BD, Grahn T, Johansson M, Lundqvist SO, Seifert T. Variation in physical and mechanical properties from three drought tolerant Eucalyptus species grown on the dry west coast of Southern Africa. Eur J Wood Wood Prod, 2016, 74: 563-575.
|
| [45] |
Wilkins AP, Horne R. Wood-density variation of young plantation-grown Eucalyptus grandis in response to silvicultural treatments. For Ecol Manag, 1991, 40(1–2): 39-50.
|
| [46] |
Winandy JE. Wood properties, 1994, Madison: Forest Products Laboratory 549 561
|
| [47] |
Wu YQ, Hayashi K, Sugimori M, Liu Y, Cai Y, Wu YQ, Sugimori M. Relationships of anatomical characteristics versus shrinkage and collapse properties in plantation-grown eucalypt wood from China. J Wood Sci, 2006, 52(3): 187-194.
|
| [48] |
WWF. National timber trade and FLEGT solutions for Uganda, 2012, Kampala: WWF Uganda Country Office 76
|
| [49] |
Zanuncio AJV, Motta JP, Da Silveira TA, De Sá FE, Trugilho PF. Physical and colorimetric changes in Eucalyptus grandis wood after heat treatment. BioResources, 2014, 9(1): 293-302.
|
| [50] |
Zobel BJ, Buijtenen JP. Wood variation: its causes and control, 1989, Berlin: Springer 363
|
| [51] |
Zziwa A, Kaboggoza JRS, Mwakali JA, Banana AY, Kyeyune RK. Physical and mechanical properties of some less utilised tropical timber tree species growing in Uganda. Uganda J Agric Sci, 2006, 12(1): 29-37.
|
| [52] |
Zziwa A, Ziraba YN, Mwakali JA. Timber use practices in Uganda’s building construction industry: current situation and future prospects. J Inst Wood Sci, 2009, 19(1): 48-53.
|
| [53] |
Zziwa A, Ziraba YN, Mwakali JA. Strength properties of selected Uganda timbers. Int Wood Prod J, 2010, 1(1): 21-27.
|