LOW, CONTROLLED NUTRIENT AVAILABILITY PROVIDED BY ORGANIC WASTE MATERIALS FOR CHRYSANTHEMUM

Seven organic materials including 1) the bacterium Brevibacterium lactofermentum (Okumura et al.) in a nonviable state, 2) a mixture of two bacteria, Bacillus licheniformis (Weigmann) and Bacillus subtilis (Ehrenberg), plus the fungus Aspergillus niger (van Tieghem) in a nonviable state, 3) an activated microbial sludge from wastewater treatment, 4) sludge from a poultry manure methane generator, 5) unsteamed bonemeal, 6) aged pine needles, and 7) poultry feathers were evaluated to determine their pattern and term of N release and the possibility of using them as an integral part of root media releasing N at a steady, loW rate over 10 to 12 weeks for production of Dendranthema × grandiflorum (Ramat.) Kitamura ‘Sunny Mandalay’. These were compared to the inorganic slowrelease fertilizer micro Osmocote (17N-3.9P-10.8K) and a weekly liquid fertilizer control. All organic sources released N most rapidly during the first 2 weeks, followed by a decline, which ended at 6 to 7 weeks. Brevibacterium lactofermentum, bonemeal, and micro Osmocote treatments resulted in about equal growth, which was similar to growth of a weekly liquid fertilizer control for 9 weeks in the first and for 12 weeks in the second experiment. The period of N release could not be extended through increased application rate of source due to the high initial release rate. It was not possible to lower source application rates to achieve an effective, low soil solution concentration due to the large variation in release rate over time. Efficiency of N use varied among plants grown in media treated with various microorganismal sources and was highest in those treated with B. lactofermentum. Nitrogen release from ground poultry feathers was inadequate, and additions of the viable hydrolyzing bacterium B. licheniformis to feathers failed to increase soil solution N levels. Attempts to retard mineralization of B. lactofermentum by cross-linking proteins contained within the bacterium by means of heat treatment at 116C vs. 82C failed. While anaerobic poultry manure sludge proved to be an inefficient source of N, it provided large amounts of P. Organic sources released primarily ammoniacal N, which raised the medium pH by as much as one unit, necessitating the use of less limestone in the

[1]  W. C. Fonteno,et al.  Physical Properties of and Plant Responses to Rockwool-amended Media , 1990 .

[2]  A. C. Bunt Media and Mixes for Container-Grown Plants , 1988, Springer Netherlands.

[3]  A. Glass Plant nutrition : an introduction to current concepts , 1988 .

[4]  J. Shih,et al.  Composition and phosphorus bioavailability of a solid by-product from anaerobically digested waste from caged layer hens. , 1987, Poultry science.

[5]  D. Cox Nitrogen Recovery by Seed Geranium as Influenced by Nitrogen Source , 1985, HortScience.

[6]  P. Nelson,et al.  Relationships among nitrogen accumulation, nitrogen assimilation and plant growth in chrysanthemums , 1983 .

[7]  D. Hershey,et al.  Leaching-losses of nitrogen from pot chrysanthemums with controlled-release or liquid fertilization , 1982 .

[8]  P. F. Pratt,et al.  Methods of Analysis for Soils, Plants, and Waters , 1982 .

[9]  E. F. Eastin Total nitrogen determination for plant material containing nitrate , 1978 .

[10]  W. R. Wright Laboratory and Field Mineralization of Nitrogen from Fermentation Residues 1 , 1978 .

[11]  L. King,et al.  Mineralization of Nitrogen in Fermentation Residue from Citric Acid Production 1 , 1978 .

[12]  L. Schrader,et al.  Rapid colorimetric determination of nitrate in plant tissue by nitration of salicylic acid , 1975 .

[13]  C. Clement,et al.  A System for Measuring the Uptake of Ions by Plants from Flowing Solutions of Controlled Composition , 1974 .

[14]  A. L. Chaney,et al.  Modified reagents for determination of urea and ammonia. , 1962, Clinical chemistry.

[15]  J. P. Riley,et al.  A modified single solution method for the determination of phosphate in natural waters , 1962 .