| Literature DB >> 26950136 |
Tanjina Nur1, Paripurnanda Loganathan2, Jaya Kandasamy3, Saravanamuthu Vigneswaran4.
Abstract
Discharging phosphate through wastepan> class="Chemical">waters into waterways poses a danger to the natural environment due to the serious risks of eutrophication and health of aquatic organisms. However, this phosphate, if economically recovered, can partly overcome the anticipated future scarcity of phosphorus (P) resulting from exhaustion of natural phosphate rock reserves. An experiment was conducted to determine the efficiency of removing phosphate from a membrane bioreactor effluent (pH 7.0-7.5, 20, 35 mg phosphate/L) produced in a water reclamation plant by adsorption onto Dowex 21K XLT ion exchange resin and recover the phosphate as fertilisers. The data satisfactorily fitted to Langmuir adsorption isotherm with a maximum adsorption capacity of 38.6 mg · P/g. The adsorbed phosphate was quantitatively desorbed by leaching the column with 0.1 M NaCl solution. The desorbed phosphate was recovered as struvite when ammonium and magnesium were added at the molar ratio of phosphate, ammonium and magnesium of 1:1:1 at pH 9.5. Phosphate was also recovered from the desorbed solution as hydroxyapatite precipitate by adding calcium hydroxide to the solution at a phosphate to calcium molar ratio of 1:2 at pH 7.0. The P contents of struvite and hydroxyapatite produced were close to those of the respective commercial phosphate fertilisers.Entities:
Keywords: adsorption; fertiliser; hydroxyapatite; phosphate; struvite; wastewater
Mesh:
Substances:
Year: 2016 PMID: 26950136 PMCID: PMC4808940 DOI: 10.3390/ijerph13030277
Source DB: PubMed Journal: Int J Environ Res Public Health ISSN: 1660-4601 Impact factor: 3.390
Characteristics of MBR treated water.
| Parameters | Unit | MBR Treated Water |
|---|---|---|
| Phosphate | mg/L | 20.0, 35.0 * |
| Nitrate | mg/L | 26.0 |
| Sulphate | mg/L | 33.0 |
| TOC | mg/L | 8.9 |
| pH | 7.0–7.5 |
* Water containing 20.0 mg/L of phosphate was used for column experiments and 35 mg/L used for batch experiments.
Figure 1EDS analysis of Dowex 21K XLT.
Figure 2Effect of pH on zeta potential and phosphate removal efficiency of Dowex 21K XLT.
Figure 3Effect of Dowex 21K XLT resin dose on the percentage removal of phosphate, nitrate and sulphate from MBR treated solution (I is initial concentration).
Figure 4Breakthrough curves for Dowex 21K XLT resin (I is influent concentration).
Chemical composition of the recovered struvite precipitate (mean ± standard error).
| Desorption Time (min) | Phosphate Concentration of Desorbed Solution (M) | Chemical Composition, Weight (%) | ||
|---|---|---|---|---|
| Phosphate | Ammonium | Magnesium | ||
| 30 | 0.007 | 41.7 ± 0.29 | 10.9 ± 0.68 | 12.6 ± 0.55 |
| 60 | 0.004 | 21.7 ± 0.49 | 7.9 ± 0.68 | 8.6 ± 0.55 |
Chemical composition of the recovered hydroxyapatite precipitate (mean ± standard error).
| Desorption Time (min) | Phosphate Concentration of Desorbed Solution (M) | Molar Ratio Phosphate: Calcium | Chemical Composition, Weight (%) | |
|---|---|---|---|---|
| Phosphate | Calcium | |||
| 30 | 0.007 | 1.0:0.5 | 25.1 ± 0.28 | 35.1 ± 0.27 |
| 1.0:2.0 | 38.5 ± 0.28 | 32.8 ± 0.45 | ||
| 60 | 0.004 | 1.0:0.5 | 26.4 ± 0.19 | 28.4 ± 0.49 |
| 1.0:2.0 | 29.9 ± 0.58 | 33.7 ± 0.75 | ||