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The initial and residual value for subterranean clover of phosphorus from crandallite rock phosphates, apatite rock phosphates and superphosphate

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Abstract

The residual value of phosphorus from superphosphate, crandallite rock phosphate (Christmas Island C-grade ore), 500°C calcined crandallite rock phosphate (Calciphos) and apatite rock phosphate from Queensland, Australia, was measured in a 6 year field experiment sited on lateritic soil in south-western Australia. Different amounts of each fertilizer were applied at the commencement of the experiment, and either left on the soil surface or mixed through the soil by cultivating to a depth of about 10 cm. Dry matter production of subterranean clover measured in spring (August) and bicarbonate-extractable phosphorus determined from soil samples collected in summer (January–February) were used as indicators of fertilizer effectiveness.

The effectiveness values calculated for each fertilizer each year were similar for the treatments that were left on the soil surface and those which were mixed through the soil. The effectiveness of both ordinary and triple superphosphate were similar each year. They were the most effective fertilizers for the duration of the experiment. Using pasture yield as an indicator, the effectiveness of the superphosphates decreased by about 50% from year 1 to year 2, and by a further 10% over the remaining 4 years. Using bicarbonate-extracted soil phosphorus the effectiveness of both superphosphates decreased in a more uniform fashion by about 60% from year 2 to year 6. The effectiveness of all the rock phosphate fertilizers was approximately constant through time. As calculated from yield and bicarbonate-soluble phosphorus values, C-grade ore, Calciphos and the Queensland apatite were respectively 5%, 20% and 7% as effective as freshly applied superphosphate.

The proportion of the total phosphorus content present in the rock phosphates which was initially soluble in neutral ammonium citrate was a poor predictor of the effectiveness of the phosphorus from these fertilizers determined using herbage yield or the amount of bicarbonate — soluble phosphorus extracted from the soil.

The bicarbonate soil test did not predict the same future production for superphosphate and some of the rock phosphates in years 2 and 3 of the experiment, indicating that different soil test calibration curves are needed for the different fertilizers.

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References

  1. Alston AM and Chin KW (1974) Response of subterranean clover to rock phosphate as affected by particle size and depth of mixing in the soil. Aust J Exp Agric Anim Husb 14, 649–55

    Google Scholar 

  2. AOAC (1975) ‘Official Methods of Analysis’. 12th Edn, Sect 2.037. Assoc Off Agric Chem: Washington D.C.

    Google Scholar 

  3. Atanasiu N (1971) A comparative study on the effect of water and citrate-soluble phosphatic fertilizers on yield and P-uptake on tropical and subtropical soils. J Ind Soc Soil Sc 19, 119–27

    Google Scholar 

  4. Barrow NJ and Campbell NA (1972). Methods of measuring residual value of fertilizers. Aust J Exp Agric Anim Husb 12, 502–10

    Google Scholar 

  5. Bolland MDA and Bowden JW (1982) Long-term availability of phosphorus from calcined rock phosphate compared with superphosphate. Aust J Agric Res 33, 1061–71

    Google Scholar 

  6. Cathcart JB (1980) World phosphate reserves and resources. In The Role of Phosphorus in Agriculture. Eds FE Khasawneh EC Sample and EJ Kamprath. Ch 1, pp 1–18. Am Soc Agron: Madison Wisconsin USA

    Google Scholar 

  7. Chien SH (1977) Thermodynamic considerations on the solubility of phosphate rock. Soil Sci 123, 117–21

    Google Scholar 

  8. Chien SH (1981) Direct application of phosphate rocks in some tropical soils of South America: A status report. In Proc Int Conf Phos Pot in the Tropics. Eds E Puspharajah and HA Hamid Sharifuddin. pp 519–29. Malaysian Soc Soil Sci, Kuala Lumpur, Malaysia

    Google Scholar 

  9. Colwell JD (1963) The estimate of phosphorus fertilizer requirements of wheat in southern New South Wales by soil analysis. Aust J Exp Agric Anim Husb 3, 190–97

    Google Scholar 

  10. Earle DF and McGowan AA (1979) Evaluation and calibration of an automated rising plate meter for estimating dry matter yield of pasture. Aust J Exp Agric and Anim Husb 19, 337–43

    Google Scholar 

  11. Fergus IF Gilkes RJ and White RE (1970) Calcined Duchess rock phosphate as a phosphate fertilizer. Aust J Sci 32, 405–7

    Google Scholar 

  12. Gilkes RJ and Palmer B (1979) Calcined Christmas Island C-grade rock phosphate fertilizers: Mineralogical properties, reversion and assessment by chemical extraction. Aust J Soil Res 17, 467–81

    Google Scholar 

  13. Hammond LL (1981) Agronomic measurements of phosphate rock effectiveness. Seminar on Phosphate Rock for Direct Application. pp 147–73. Special Publications IFDC-S1, International Fertilizer Development Centre (IFDC), Muscle Shoals, Alabama

    Google Scholar 

  14. Hoare J (1980) Phosphate raw materials and fertilizers. II. A case history of marginal raw materials. In The Role of Phosphorus in Agriculture. Eds FE Khasawneh EC Sample and EJ Kamprath. Ch 4, pp 121–8. Am Soc Agron: Madison Wisconsin USA

    Google Scholar 

  15. Khasawneh FE and Doll EC (1978) The use of phosphate rock for direct application to soils. Ad Agron 30, 159–206

    Google Scholar 

  16. Lehr JR and McClellan GH (1972) A revised Laboratory reactivity scale for evaluating phosphate rocks for direct application. Bulletin Y-43, Tennesse Valley Authority, Muscle Shoals, Alabama

    Google Scholar 

  17. Lehr JR, McClellan GH Smith JP and Fraizer AW (1967) Characterisation of apatites in commercial phosphate rocks. Proc Intern Colloq Solid Inorg Phos 12, 29–35

    Google Scholar 

  18. Moriceau L and Tintignac JP (1963) Behaviour of Phospal on calcareous and acid soils. Acad d'agric France Proc Dec 1963, 1350–9

  19. Northcote KH (1979) ‘A Factual Key for the Recognition of Australian Soils’. 4th Edn Rellim Tech Publ: Glenside, South Australia

    Google Scholar 

  20. Olsen SR, Cole CV, Watanabe FS and Dean LA (1954) Estimation of available phosphorus in soils by extraction with sodium bicarbonate. US Dep of Agric Cir No 939

  21. Ozanne PG and Shaw TC (1967) Phosphate sorption by soils as a measure of the phosphate requirement for pasture growth. Aust J Agric Res, 29, 225–33

    Google Scholar 

  22. Palmer B (1980) A chemical, mineralogical and biological evaluation of calcined Christmas Island C-grade rock phosphate. PhD Thesis, University of Western Australia, Perth

    Google Scholar 

  23. Palmer B and Gilkes RJ (1982) Agronomic evaluation of calcined Christmas Island iron-aluminium phosphate fertilizers. In Phosphorus and Potassium in the Tropics. Eds E Pushparaja and HZ Hamid Sharifuddin. pp 495–507. Malaysian Soc Soil Sci: Kuala Lumpur

    Google Scholar 

  24. Terman GL (1976) Prospects for new fertilizers and their evaluation. TVA National Fertilizer Development centre. Invited paper for review in Rural Science, University of New England, Armidale, New South Wales, Australia

    Google Scholar 

  25. Terman GL, Moreno EC and Osborne G (1964) Acidulation of phosphate rock in soil. Soil Sci Soc Am Proc 28, 104–7

    Google Scholar 

  26. White MS (1971) Calcination of Christmas Island phosphates. NZ J Sci, 14, 971–92

    Google Scholar 

  27. Williams CH and Simpson JR (1965) Some effects of cultivation and waterlogging on the availability of phosphorus in pasture soils. Aust J Agric Res 16, 413–27

    Google Scholar 

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Bolland, M., Bowden, J. The initial and residual value for subterranean clover of phosphorus from crandallite rock phosphates, apatite rock phosphates and superphosphate. Fertilizer Research 5, 295–307 (1984). https://doi.org/10.1007/BF01051629

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