Free Access
Issue
Ann. For. Sci.
Volume 63, Number 8, December 2006
Page(s) 871 - 878
DOI https://doi.org/10.1051/forest:2006070
Published online 09 December 2006
References of  Ann. For. Sci. 63 (2006) 871-878
  1. Abdel-Gadir A.Y., Krahmer R.L., Estimating the age of demarcation of juvenile and mature wood in Douglas-fir, Wood Fiber Sci. 25 (1993) 242-249.
  2. Andrews M., Which acoustic speed? in: Proceedings of the 13th International symposium on nondestructive testing of wood, Forest Products Society, Madison, 2004, pp. 43-52.
  3. Bendtsen, B.A., Senft J., Mechanical and anatomical properties in individual growth rings of plantation-grown cottonwood and loblolly pine, Wood Fiber Sci. 18 (1986) 23-28.
  4. Burdon R.D., Bannister M.H., Low C.B., Genetic survey of Pinus radiata. 6: Wood properties: variation, heritabilities, and interrelationships with other traits, N.Z. J. For. Sci. 22 (1992) 228-245.
  5. Carter P., Lausberg M., Application of Hitman acoustic technology: The Carter Holt Harvey Experience. Tools and technologies to improve log and wood product segregation, 4th Wood quality workshop, NZ Forest Industry Engineering Association, Rotorua, 2001.
  6. Cown D.J., Juvenile wood (juvenile wood) in Pinus radiata: should we be concerned? N.Z. J. For. Sci. 22 (1992) 87-95.
  7. Cown D.J., Ball R.D., Wood densitometry of 10 Pinus radiata families at seven contrasting sites: influence of tree age, site and genotype, N.Z. J. For. Sci. 31 (2001) 88-100.
  8. Cown D.J., Parker M.L., Densitometric analysis of wood from five Douglas-fir provenances, Silvae Genet. 28 (1979) 48-53.
  9. Dean C.A., Genetics of growth and wood density in radiata pine, Ph.D. thesis, University of Queensland, 1990.
  10. Dodd R.S., Power A.B., Population variation in wood structure of white fir, Can. J. For. Res. 24 (1994) 2269-2274.
  11. Evans R., Stuart S.A., Van der Tour J., Microfibril angle scanning of increment cores by X-ray diffractometry, Appita J. 49 (1996) 411.
  12. Falconer D.S., Mackay T.F.C., Introduction to Quantitative Genetics, 4th ed., Longman Scientific and Technical, London, 1996.
  13. Gilmour A.R., Cullis B.R., Welham J.S., ASREML, New South Wales Agriculture, Orange, New South Wales, 1999.
  14. Harris J.M., Cown D.J., Basic wood properties. P 6-1-6-28 in Properties and uses of New Zealand radiata pine, Vol. 1, Kininmonth J.A., Whitehouse L.J. (Eds.), Wood properties, Ministry of Forests, Forest Research Institute, Rotorua, New Zealand, 1991.
  15. Hodge G.R., Purnell R.C., Genetic parameter estimates for wood density, transition age, and radial growth in slash pine, Can. J. For. Res. 23 (1993) 1881-1891.
  16. Jayawickrama K.J.S., Mckeand S.E., Jett J.B., Wheeler E.A., Date of earlywood-latewood transition in provenances and families of loblolly pine, and its relationship to growth phenology and juvenile wood specific gravity, Can. J. For. Res. 27 (1997) 1245-1253 [CrossRef].
  17. Kumar S., Earlywood-Latewood demarcation criteria and their effects on genetic parameters of growth ring density components and efficiency of selection for end-use rotation density of radiata pine, Silvae Genet. 51 (2002) 241-246.
  18. Kumar S., Lee J., Age-age correlations and early selection for end-of-rotation wood density in radiata pine, For. Genet. 9 (2002) 323-330.
  19. Li L., Wu H.X., Efficiency of early selection for rotation-aged growth and wood density traits in Pinus radiata, Can. J. For. Res. 35 (2005) 2019-2029 [CrossRef].
  20. Loo J.A., Tauer C.G., McNew R.W., Genetic variation in the time of transition from juvenile to mature wood in loblolly pine (Pinus taeda L.) Silvae Genet. 34 (1985) 14-19.
  21. Mamdy C., Rosenberg P., Franc A., Launay N.S., Bastien J.C., Genetic control of stiffness of standing Douglas-fir; from the standing stem to the standardized wood sample, relationships between modulus of elasticity and wood density parameters, Part 1, Ann. For. Sci. 56 (1999) 133-143.
  22. Matheson A.C., Dungey H.S., Improving of wood stiffness through microfibril angle, CSIRO Forestry and Forest Products Client Report No. 1417, 2004.
  23. Matheson A.C., Raymond C.A., The impact of genotype $\times$ environment interactions on Australian Pinus radiata breeding programs, Aust. For. Res. 14 (1984) 11-25.
  24. Matheson A.C., Eldridge K.G., Brown A.G., Spencer D.J., Wood volume gains from first-generation radiata pine seed orchards, CSIRO Division of Forest Research, No. 4, 1986.
  25. Megraw R.A., Bremer D., Leaf G., Roers J., Stiffness in loblolly pine as a function of ring position and height, and its relationship to microfibril angle and specific gravity, in: Proceedings of third workshop: Connection between silviculture and wood quality through modelling approaches, IUFRO Working Party, La Londe-Les Maures, France, 1999, pp. 341-349.
  26. Neter J., Wasserman W., Kunter M.H., Applied linear regression models, Richard D. Irwin, Inc., Homewood, IL, 1989.
  27. Nicholls J.W., Morris J.D., Pederick L.A., Heritability estimates of density characteristics in juvenile radiata pine, Silvae Genet. 29 (1980) 54-61.
  28. Nyakuengama J.G., Quantitative genetics of wood quality traits in Pinus radiata D. Don, Ph.D. thesis, University of Melbourne, Australia, 1997, 319 p.
  29. Polge H., Une nouvelle méthode de détermination de la texture du bois : l'analyse densitométrique de clinches radiographiques, Ann. Sci. For. 20 (1963) 533-580.
  30. Rawlings J.O., Pantula S.G., Dickey D.A., Applied regression analysis: a research tool, 2nd ed., Springer, New York, 1998, 657 p.
  31. Regent Instruments Inc., WinDendro and WinCell user manuals, Regent Instruments Inc., Québec, Quebec, 2001.
  32. Rosenberg P., Franc A., Mamdy C., Launay N.S., Bastien J.C., Genetic control of stiffness of standing Douglas-fir, from the standing stem to the standardized wood sample, relationships between modulus of elasticity and wood density parameters, Part II, Ann. For. Sci. 56 (1999) 145-154.
  33. SAS Institute, SAS Procedures Guide, Vol. 2, Version 6, 4th ed., SAS Institute Inc., Cary, NC, 1990.
  34. Sorensson, PTAA 2002. An Easy guide to MGP, Plantation Timber Association Australia, http://www.ptaa.com.au, 2004.
  35. Szymanski M., Tauer C.G., Loblolly pine provenance variation in age of transition from juvenile to mature wood specific gravity, For. Sci. 37 (1991) 160-174.
  36. Tasissa G., Burkhart H.E., Juvenile-mature wood demarcations in loblolly pine trees, Wood Fiber Sci. 30 (1998) 119-127.
  37. Tsehaye A., Buchanan A.H., Walker J.C.F., Sorting of logs using acoustics, Wood Sci. Tech. 34 (2000) 337-344.
  38. Vargas-Hernandez J., Adams W.T., Genetic variation of wood density components in young coastal Douglas-fir and implications for tree breeding, Can. J. For. Res. 21 (1991) 1801-1807.
  39. Vargas-Hernandez J., Adams W.T., Krahmer R.L., Family variation in age trends of wood density traits in young coastal Douglas-fir, Wood Fiber Sci. 26 (1994) 229-236.
  40. Walker J.F.C., Nakada R., Understanding corewood in some softwoods: a selective review on stiffness and acoustics, Int. For. Rev. 1(4) (1999) 251-259.
  41. Wang T., Aitken S.N., Rosenberg P., Millie F., Selection for improved growth and wood density in lodgepole pine: Effects on radial patterns of wood variation, Wood Fiber Sci. 32 (2000) 391-403.
  42. Wright P.J., Eldridge K.G., Profitability of using seed from the Tallaganda radiata pine seed orchard, Appita 38 (1985) 341-344.
  43. Wu H.X., Yang J.L., McRae T.A., Li L., Ivkovich M., Powell M.B., Breeding for wood quality and profits with radiata pine 1: MOE prediction and genetic correlation between early growth, density, microfibril angle and rotation-age MOE, in: Proceedings of Wood quality 2004: Practical tools and new technologies to improve segregation of logs and lumber for processing, Albury, 2004.
  44. Wu H.X., Yang J., McRae T.A., Li L., Powell M.B., Genetic relationship between breeding objective and early selection criterion traits in Australia radiata pine population, CSIRO CFFP Technical Report 156 and STBA Technical Report TR04-01, 2004.
  45. Wu H., Matheson A.C., Quantitative Genetics of growth and form traits in radiata pine, Forestry and Forest Products Technical Report No. 138, 2002, 133 p.
  46. Zamudio F., Baettyg R., Vergara A., Guerra F., Rozenberg P., Genetic trends in wood density and radial growth with cambial age in a radiata pine progeny test, Ann. For. Sci. 59 (2002) 541-549 [EDP Sciences] [CrossRef].
  47. Zamudio F., Rozenberg P., Baettyg R., Vergara A., Yanez M., Gantz C., Genetic variation of wood density components in a radiata pine progeny test located in the south of Chile, Ann. For. Sci. 62 (2005) 105-114 [EDP Sciences] [CrossRef].
  48. Zobel B.J., Jett J.B., Genetics of wood production, Springer-Verlag, Berlin, Germany, 1995, 337 p.
  49. Zobel B.J., Sprague J.R., Juvenile wood in forest trees, Springer-Verlag, Berlin, Germany, 1998, 300 p.
  50. Zobel B.J., van Buijtenen, J.P., Wood variation. Its causes and control, Springer-Verlag, Berlin, Germany, 1989, 363 p.