Literature DB >> 11537990

Solubility and cation exchange in phosphate rock and saturated clinoptilolite mixtures.

E R Allen1, L R Hossner, D W Ming, D L Henninger.   

Abstract

Mixtures of zeolite and phosphate rock (PR) have the potential to provide slow-release fertilization of plants in synthetic soils by dissolution and ion-exchange reactions. This study was conducted to examine solubility and cation-exchange relationships in mixtures of PR and NH4- and K-saturated clinoptilolite (Cp). Batch-equilibration experiments were designed to investigate the effect of PR source, the proportion of exchangeable K and NH4, and the Cp to PR ratio on solution N, P, K, and Ca concentrations. The dissolution and cation-exchange reactions that occurred after mixing NH4- and K-saturated Cp with PR increased the solubility of the PR and simultaneously released NH4 and K into solution. The more reactive North Carolina (NC) PR rendered higher solution concentrations of NH4 and K when mixed with Cp than did Tennessee (TN) PR. Solution P concentrations for the Cp-NC PR mixture and the Cp-TN PR mixture were similar. Solution concentrations of N, P, K, and Ca and the ratios of these nutrients in solution varied predictably with the type of PR, the Cp/PR ratio, and the proportions of exchangeable K and NH4 on the Cp. Our research indicated that slow-release fertilization using Cp/PR media may provide adequate levels of N, P, and K to support plant growth. Solution Ca concentrations were lower than optimum for plant growth.

Entities:  

Keywords:  NASA Center JSC; NASA Discipline Life Support Systems; NASA Discipline Number 61-10; NASA Program CELSS

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Year:  1993        PMID: 11537990     DOI: 10.2136/sssaj1993.03615995005700050034x

Source DB:  PubMed          Journal:  Soil Sci Soc Am J        ISSN: 0361-5995


  1 in total

1.  Effects of clinoptilolite zeolite on phosphorus dynamics and yield of Zea Mays L. cultivated on an acid soil.

Authors:  Hasbullah Nur Aainaa; Osumanu Haruna Ahmed; Nik Muhamad Ab Majid
Journal:  PLoS One       Date:  2018-09-27       Impact factor: 3.240

  1 in total

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