Alkali-Hydrothermal Treatment of K-Rich Igneous Rocks for Their Direct Use as Potassic Fertilizers
Abstract
:1. Introduction
2. Materials and Methods
2.1. Geological Description
2.1.1. High Atlas Tamazeght Alkaline Massif
2.1.2. Anti-Atlas Jbel Boho, El Glo’a, and Ait Saoun Complexes
2.2. Methods
2.2.1. Petrographic and Mineralogical Characterizations
2.2.2. Physical and Chemical Characterization
2.2.3. Alkali-Hydrothermal Treatment and Leaching Tests
3. Results
3.1. Petrographic Description
3.2. Mineralogical and Structural Characteristics
3.3. Physical and Chemical Characteristics
3.3.1. Physical Characteristics
3.3.2. Chemical Characteristics
3.4. Thermogravimetry Analysis (TGA)
3.5. Fourier-Transform Infrared (FTIR)
3.6. Leaching Tests
4. Discussion
5. Conclusions
- 1.
- These results confirm again the importance of petrography and alterability for predicting the leaching behavior of K-bearing rock;
- 2.
- K-rich rock needs to be hydrothermally treated before any application as fertilizer because hydrothermal treatment significantly enhances the release of potassium and other beneficial elements through the substitution ion mechanism;
- 3.
- Temperature, the initial potassium content of the rock, alterability, and particle size are found to be important factors controlling the K release; and
- 4.
- The approach used in this study provides a significant amount of sodium through the neoformed Na mineral, so it would be interesting to explore additives other than NaOH for further application in the fertilizer industry.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Sample | Texture | Alteration | Fracturing | Mineral Contents | Lithology Description | Rock Nature |
---|---|---|---|---|---|---|
TS10 | Coarse-grained | High | High | Or, Ne, Bt, Mic, Px, Grt, Opq, Ap, Clay, Ttn, Zrc | Highly weathered rock with centimetric Kfs and Ne minerals | Nepheline syenite |
AS01 | Microlitic | Medium to high | Low | Kfs (Or/Mc), Qtz, Opq, Clay | Less weathered, mainly composed of centimetric Kfs. Chalcedony and quartz are also present | Trachyte |
TS14 | Coarsed-grained, porphyritic | Medium | Medium | Or, Ne, Ab, Px, Clay, Carb, Qtz, Opq, Ap, Zrc | Highly weathered rock with centimetric Kfs minerals | Syenite |
TS01 | Coarse | High | Low | Kfs (Or/Mc), Pl, Bt, Px, Clay, Opq, Ttn, Ap, Zrc | Kfs highly altered, biotite and apatite are present | Syenite |
JB16 | Coarse-grained | Medium | Medium | Ab, Or, Qtz, Bt, Px, Ap, Opq | Iodomorphic centimetric and altered Kfs. Apatite and quartz are also present | Syenite |
EL01 | Microlitic | Medium | Low to medium | Or, Opq, Px/Amph | Weathered rock | Trachyte |
Samples | SiO2 | TiO2 | Al2O3 | Fe2O3 | MnO | MgO | CaO | Na2O | K2O | P2O5 | LOI | Total | CIW |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
AS01 | 55.1 | 1.5 | 15.8 | 9.7 | 0.2 | 0.1 | 1.3 | 0.1 | 13.3 | 0.4 | 2.4 | 99.9 | 91.9 |
EL-01 | 59,6 | 0.3 | 16.2 | 4.7 | 0.1 | 0.8 | 0.5 | 2 | 7.9 | 0.1 | 2.4 | 94.6 | 86.6 |
JB-16 | 60.7 | 0.5 | 16.7 | 6 | 0.1 | 0.9 | 1.2 | 4.9 | 5.7 | 0.2 | 2.6 | 99.5 | 73.2 |
TS10 | 53.1 | 0.5 | 24.3 | 3.3 | 0.1 | 0.1 | 0.9 | 0.1 | 12.7 | 0.1 | 3.8 | 99 | 96.4 |
TS14 | 53.9 | 0.7 | 23.2 | 3.8 | 0.2 | 0.1 | 0.8 | 0.3 | 13.2 | 0.1 | 1.7 | 98 | 95.5 |
TS01 | 57.9 | 1.4 | 17.2 | 5.1 | 0.2 | 0.4 | 1 | 0.2 | 11.5 | 0.2 | 2.9 | 98 | 93.5 |
Samples | TS01 | TS10 | TS14 | EL01 | JB16 | AS01 |
---|---|---|---|---|---|---|
pH (raw material) | 8.6 | 8.9 | 9.2 | 8.5 | 8.8 | 8.9 |
pH (treated material) | 12.4 | 12.3 | 12.2 | 12.1 | 12.3 | 12.6 |
Electricla conductivity (µS·cm−1) (raw samples) | 249.8 | 196.2 | 249.2 | 377.4 | 297.1 | 243.3 |
Electrical conductivity (µS·cm−1) (treated samples) | 20947.4 | 23281.8 | 19790.5 | 17631.3 | 18368.7 | 19524.3 |
Variables | Ke | Raw Materials | CIW | Ki |
Cu | ||||
Ke | 1 | - | - | - |
Cu | −0.64 | 1 | - | - |
CIW | 0.81 | −0.37 | 1 | - |
Ki | 0.90 | −0.57 | 0.92 | 1 |
Variables | Ke | Treated Materials | CIW | Ki |
Cu | ||||
Ke | 1 | - | - | - |
Cu | −0.72 | 1 | - | - |
CIW | 0.91 | −0.37 | 1 | - |
Ki | 0.96 | −0.57 | 0.92 | 1 |
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Mbissik, A.; Elghali, A.; Ouabid, M.; Raji, O.; Bodinier, J.-L.; El Messbahi, H. Alkali-Hydrothermal Treatment of K-Rich Igneous Rocks for Their Direct Use as Potassic Fertilizers. Minerals 2021, 11, 140. https://doi.org/10.3390/min11020140
Mbissik A, Elghali A, Ouabid M, Raji O, Bodinier J-L, El Messbahi H. Alkali-Hydrothermal Treatment of K-Rich Igneous Rocks for Their Direct Use as Potassic Fertilizers. Minerals. 2021; 11(2):140. https://doi.org/10.3390/min11020140
Chicago/Turabian StyleMbissik, Aaron, Abdellatif Elghali, Muhammad Ouabid, Otmane Raji, Jean-Louis Bodinier, and Hicham El Messbahi. 2021. "Alkali-Hydrothermal Treatment of K-Rich Igneous Rocks for Their Direct Use as Potassic Fertilizers" Minerals 11, no. 2: 140. https://doi.org/10.3390/min11020140
APA StyleMbissik, A., Elghali, A., Ouabid, M., Raji, O., Bodinier, J. -L., & El Messbahi, H. (2021). Alkali-Hydrothermal Treatment of K-Rich Igneous Rocks for Their Direct Use as Potassic Fertilizers. Minerals, 11(2), 140. https://doi.org/10.3390/min11020140