Abstract
The particle size distribution, the nutrient content and the sorption behaviour of six solid wood and ash/charcoal residues collected in three wood-processing companies in Germany and Brazil were investigated in order to elucidate the potential of these residues for the development of new products for soil amelioration. The absorption of N, P, and K by the residues and the leaching of nutrients from impregnated samples were studied in the laboratory at substrate temperatures of 20 and 300°C. The release of elements by the impregnated samples and the sorption behaviour of ash/charcoal incorporated in the soil were also studied in the field on a temperate site (Hamburg, 53°32′N 09°59′E), on a subtropical site (Ivaí, 25°15′S 50°45′W), and on a tropical site (Aripuanã, 10°09′S 59°26′W). Under laboratory conditions the solid wood residues absorbed 2.0–9.1% of the N, 0.1–0.4% of the P, and 1.0–8.5% of the K available in the impregnation solution. At a temperature of 20°C, selected sieve fractions of the ash/charcoal residues absorbed up to twice as much as N and up to 100 times more K than the treated wood residues. The absorption of N, P, and K to the ash/charcoal residues increased significantly at a substrate temperature of 300°C compared to a substrate temperature of 20°C. In absolute numbers, the leaching of N, P, and K from the impregnated ash/charcoal residues was in the range of the release by the impregnated solid wood residues, whilst the relative rate of nutrient leaching was strongly reduced. The field experiments confirmed the results obtained in the laboratory and indicated that ash/charcoal residues are suitable raw materials for the development of new products for soil amelioration, in particular for application under humid climate conditions.




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Akmar PF, Kennedy JF (2001) The potential of oil and sago palm trunk wastes as carbohydrate resources. Wood Sci Technol 35:467–473
Anonymus (2000) Leitfaden Bioenergie. Fachagentur für nachwachsende Rohstoffe, Gülzow, Germany
Bauch J (1964) Die axiale Durchlässigkeit von Kiefern-Splintholz für wässrige Lösungen. Planta 61:309–331
Bellote AFJ, Ferreira CA, da Silva HD, Andrade G (1995) Effects of the application of ash and pulp residues on the soil and the growth of Eucalyptus grandis. Bosque 16:95–100
Dinkelmeyer H, Lehmann J, Renck A., Trujillo L, da Silva JP, Gebauer G, Kaiser K (2003) Nitrogen uptake from 15N-enriched fertilzer by four tree crops in an Amazonian agroforest. Agrofor Syst 57:213–224
Dünisch O, Bauch J, Müller M, Greis O (1998) Subcellular quantitative determination of K and Ca in phloem, cambium and xylem cells of spruce (Picea abies [L.] Karst.) at the time of earlywood and latewood formation. Holzforschung 52:582–588
Dünisch O, Azevedo CP, Gasparotto L, Montoia GR, Schwarz T (2002) Light, water, and nutrient demand for growth of three high quality timber species (Meliaceae) of the Amazon. J Appl Bot 76:29–40
Dünisch O (2005) Influence of the El-niño southern oscillation on cambial growth of Cedrela fissilis Vell. in tropical and subtropical Brazil. J Appl Bot 79:5–11
Echlin P (2001) Biological X-ray microanalysis: The past, present practices, and future prospects. Microsc Microanal 7:211–219
EMBRAPA (1984) Levantamento de Reconhecimento dos solos do Estado do Paraná. SNLS. Boletim Técnico 57:791p
FAO-UNESCO (1990) Soil map of the world, revised legend. Food and Agriculture Organization of the United Nations, Rome
Glaser B, Lehmann J, Zech W (2002) Ameliorating physical and chemical properties of highly weathered soils in the tropics by charcoal – a review. Biol Fertil Soil 35:219–230
Hasler P, Nussbaumer T (1996) Landwirtschaftliche Verwertung von Aschen aus der Verbrennung von Gras, Chinaschilf, Hanf und Stroh, Bundesamt für Energiewirtschaft, Bern, Switzerland
Hasler P, Nussbaumer T (1997) Partikelgrößenverteilung bei der Verbrennung und Vergasung von Biomasse, Bundesamt für Energiewirtschaft, Bern, Switzerland
Hasler P, Nussbaumer T (1998) Particle size distribution of the fly ash from biomass combustion. Biomass for Energy and Industry. In: 10th European conference and technology exhibition, 8–11 June 1998, Würzburg, Germany, pp 1330–1333
Kang SM, Levien KL, Morell JJ (2005) Supercritical fluid impregnation of wood with biocides using temperature reduction to induce deposition. Wood Sci Technol 39:328–338
Klose S, Koch J, Bäucker E, Makeschin F (2001) Indicative properties of flyash affected forest soils in Northeastern Germany. J Plant Nutr Soil Sci 164:1–8
Kohler M, v. Wilpert K, Hildebrand EE (2000) The soil skeleton as a source for the short-term supply of base cations in forest soils of the Black Forest (Germany). Water Air Soil Pollut 122:37–48
Lisboa PLB, Prance GT, Lisboa RCL (1976) Contribuições ao projeto Aripuanã. Acta Amazon 6(4) (Suppl)
Ludwig B, Khanna PK, Hölscher D, Anurugsa B (1999) Modelling changes in cations in the topsoil of an Amazonian acrisol in response to additions of wood ash. Eur J Soil Sci 50:717–726
Marchetti V, Clement A, Geradin P, Loubinoux B (2000) Synthesis and use of esterified sawdusts bearing carboxyl group for removal of cadmium(II) from water. Wood Sci Technol 34:167–173
Moreira EE, Ribeiro AB, Mateus EP, Mexia JT, Ottosen LM (2005) Regressional modeling of electrodialytic removal of Cu, Cr and As from CCA treated timber waste: application to sawdust. Wood Sci Technol 39:291–309
Noger D, Felber H, Pletscher E, Hasler P (1996) Verwertung und Beseitigung von Holzaschen. Bundesamt für Umwelt, Wald und Landschaft, Bern, Switzerland, Schriftenreihe Umwelt Nr. 269
Postma J, Altemüller HJ (1990) Bacteria in thin soil sections stained with the fluorescent brightener calcofluor white M2R. Soil Biol Biochem 22:89–96
Rademacher P (1986) Morphologische und physiologische Eigenschaften von Fichten (Picea abies [L.] Karst.), Tannen (Abies alba Mill.), Kiefern (Pinus sylvetsris L.) und Buchen (Fagus silvatica L.) gesunder und erkrankter Waldstandorte. GKSS 86/E/10: 274 p
Rademacher P (2005a) Schwermetallgehalte in den Kompartimenten wichtiger Wirtschaftsbaumarten und deren Bedeutung für die Reststoffverwertung. Holz Roh Werkst 63:220–230
Rademacher P (2005b) Nährelementgehalte in den Kompartimenten wichtiger Wirtschaftsbaumarten und deren Bedeutung für die Reststoffverwertung. Holz Roh Werkst 63:285–296
Radlein D, Piskorz JK, Majerski P (1996) Method of producing slow release nitrogenous organic fertilizer from biomass. European patent application 0716056 A1, 12 June 1996
Renck A, Lehmann J (2004) Rapid water flow and transport of inorganic and organic nitrogen in a highly aggregated tropical soil. Soil Sci 169:330–341
Ruckenbauer P, Obernberger I, Holzner H (1995) Erforschung der Verwendungsmöglichkeiten von Aschen aus Hackgut- und Rindenfeuerungen, Technische Universität Graz
Schroth G, Seixas R, Silva RF, Texeira WG, Zech W (2000). Nutrient concentrations and acidity in ferralitic soil under perennial cropping, fallow and primary forest in Central Amazonia. Eur J Soil Sci 51:219–231
Seehann G, Donath JM (2004) Der Henneberg-Park Marienhof. Otto Henneberg-Poppenbüttel Stiftung, Hamburg p 62
Steffen A (1995) Better utilization of tropical timber resource in order to improve sustainability and reduce negative ecological impacts. Int Trop Timb Org (ITTO), 36 p
Treusch O, Hofenauer A, Tröger F, Fromm J, Wegener G (2004) Basic properties of specific wood-based materials carbonised in a nitrogen atmosphere. Wood Sci Technol 38:323–333
Tiessen H, Cuevas E, Chacon P (1994) The role of soil organic matter in sustaining soil fertility. Nature 371:783–785
Tippkötter R, Ritz K, Darbyshire JF (1986) The preparation of soil thin sections for biological studies. J Soil Sci 37:681–690
Tryon EH (1948) Effect of charcoal on certain physical, chemical, and biological properties of forest soils. Ecol Monogr 18:81–115
Watteau F, Villemin G (2001) Ultrastructural study of the biogeochemical cycle of silicon in the soil and litter of a temperate forest. Eur J Soil Sci 52:385–396
Acknowledgments
We thank the German Academic Exchange Service (DAAD-program “Integrierte Umwelttechnik”), Bonn and the Otto Henneberg-Poppenbüttel Foundation, Hamburg for financial support. We are indebted to Dr. habil. O. Greis, TU Hamburg-Harburg, for making available topochemical element analyses of soil samples. We thank the Fazenda Bitumirim, Ivai and the Pytec Thermochemische Anlagen GmbH, Hamburg for providing wood and soil samples. The assistance of M.A. de Carvalho Santos, Federal University of Parana State, Curitiba and of S. Strauß, University of Hamburg is greatly appreciated. We thank two referees for the improvement of the manuscript.
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Dünisch, O., Lima, V.C., Seehann, G. et al. Retention properties of wood residues and their potential for soil amelioration. Wood Sci Technol 41, 169–189 (2007). https://doi.org/10.1007/s00226-006-0098-1
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DOI: https://doi.org/10.1007/s00226-006-0098-1


