Reaction Mechanism of Simultaneous Removal of H2S and PH3 Using Modified Manganese Slag Slurry
Abstract
:1. Introduction
2. Results and Discussion
2.1. Effect of Different Component Slurry after Acid Leaching on Simultaneous Removal of H2S and PH3
2.2. Effect of Simulated Modified MS Slurry on Simultaneous Removal of H2S and PH3
2.3. Effect of Single and Multi-Metal Ions on Simultaneous Removal of H2S and PH3
2.4. Reaction Mechanism of Metal Ions to Simultaneous Removal of H2S and PH3
3. Materials and Methods
3.1. Materials
3.2. Acid Leaching Procedure and Preparation of Modified MS Slurry
3.3. Analytical Method
3.4. Catalytic Activity Test
4. Conclusions
- (1)
- Through acid leaching experiments, the liquid-phase part after filtration has a leading role in removing H2S and PH3. The highest PH3 conversion efficiency of leaching residue slurry + CuSO4 group can only obtain 15.14%, which indicated that the main active components were consumed by the acid leaching method.
- (2)
- By simulation of the modified MS slurry with metal ions based on real chemical composition, the catalytic activity for H2S and PH3 is relative to the types of metal salts, with the order being metal chlorides > metal nitrates > metal sulfates. All of the metal salts can obtain 100% H2S removal efficiency. In addition, the metal chlorides can maintain above 70% PH3 conversion efficiency for 10.5 h and the highest PH3 conversion efficiency was 86.85%; whereas the highest PH3 removal efficiency of the metal nitrates and metal sulfates can only obtain 47.36% and 27.24%, respectively. Furthermore, Al3+ and Cu2+ has a synergistic effect on removing H2S and PH3 compared to Ca2+, Mg2+, and Mn2+ combined with Cu2+ groups.
- (3)
- H2S was oxidized to element S and sulfate due to the reaction between Cu2+ and H2S and part of the H2S oxidation by O2, while the PH3 was oxidized to PO43− by liquid-phase catalytic oxidation of metal ions with the conversion of Cu2+ to Cu+.
- (4)
- The best PH3 and H2S conversion efficiency was obtained by the modified MS slurry (MS + CuSO4), and the maximum removal efficiency of H2S and PH3 were 100% and ~78%, respectively. The simple modification process for raw MS through adding Cu2+ can effectively improve the H2S and PH3 conversion relative to fresh MS, which can be attributed to the synergistic effect of different metal ions. However, the added Cu2+ in the modified MS slurry would be consumed by conversion of Cu2+ to CuS/Cu2S, thereby leading to the deactivation of modified MS slurry.
Author Contributions
Funding
Conflicts of Interest
References
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Element | Ca | Si | Mn | Al | Mg | S | O |
---|---|---|---|---|---|---|---|
Raw electrolytic manganese slag | 25.54 | 13.09 | 11.33 | 4.80 | 3.54 | 1.87 | 37.48 |
Samples | Composition (wt.%), Total Mass = 3 g, Balanced in SiO2 | ||||
---|---|---|---|---|---|
Ca2+ | Mg2+ | Mn2+ | Al3+ | Extra Added Cu2+ | |
Group 1 (metal nitrates) | 25.54 | 3.54 | 11.33 | 4.80 | 0.01 mol |
Group 2 (metal chlorides) | 25.54 | 3.54 | 11.33 | 4.80 | 0.01 mol |
Group 3 (metal sulfates) | 25.54 | 3.54 | 11.33 | 4.80 | 0.01 mol |
Sample | Element | Parameter | |||||||
1 h | 4 h | Complete Reaction | |||||||
Cu2+ Group | S | Position (eV) | 164.7 | 159.6 | 169.1 | 164.0 | 169.6 | 163.9 | 162.6 |
Atomic ratio (%) | 68.2 | 31.9 | 40.4 | 59.6 | 46.8 | 46.5 | 6.7 | ||
Substance | Sn1 | S2− | SO42− | S | SO42− | Sn | Sn | ||
P | Position (eV) | 134.2 | 131.3 | 134.2 | 131.4 | 134.1 | |||
Atomic ratio (%) | 39.9 | 60.1 | 64.7 | 35.3 | 100.0 | ||||
Substance | PO43− | P3− | PO43− | P3− | PO43− | ||||
Cu | Position (eV) | 935.1 | 932.7 | 932.8 | 935.3 | 932.3 | 934.6 | ||
Atomic ratio (%) | 87.9 | 12.1 | 15.2 | 84.8 | 70.2 | 29.8 | |||
Substance | CuSO4 | CuS | CuS | CuSO4 | CuS | CuSO4 | |||
Sample | Element | Parameter | |||||||
1 h | 4 h | Complete Reaction | |||||||
Al3+ + Cu2+ Group | S | Position (eV) | 164.2 | 159.4 | 169.8 | 164.9 | 169.7 | 163.6 | |
Atomic ratio (%) | 78.4 | 21.6 | 74.2 | 25.8 | 91.4 | 8.6 | |||
Substance | Sn | S2− | SO42− | S | Sn | Sn | |||
P | Position (eV) | 133.6 | 131.0 | 134.0 | 131.5 | 134.1 | 131.0 | ||
Atomic ratio (%) | 51.7 | 48.3 | 69.8 | 30.2 | 94.4 | 5.6 | |||
Substance | PO43− | P3− | PO43− | P3− | PO43− | P3− | |||
Cu | Position (eV) | 934.9 | 932.6 | 935.2 | 932.9 | 935.0 | 932.6 | ||
Atomic ratio (%) | 83.5 | 16.5 | 86.5 | 13.5 | 73.6 | 26.4 | |||
Substance | Cu(II) | Cu(I) | Cu(II) | Cu(I) | Cu(II) | Cu(I) |
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Bao, J.; Wang, X.; Li, K.; Wang, F.; Wang, C.; Song, X.; Sun, X.; Ning, P. Reaction Mechanism of Simultaneous Removal of H2S and PH3 Using Modified Manganese Slag Slurry. Catalysts 2020, 10, 1384. https://doi.org/10.3390/catal10121384
Bao J, Wang X, Li K, Wang F, Wang C, Song X, Sun X, Ning P. Reaction Mechanism of Simultaneous Removal of H2S and PH3 Using Modified Manganese Slag Slurry. Catalysts. 2020; 10(12):1384. https://doi.org/10.3390/catal10121384
Chicago/Turabian StyleBao, Jiacheng, Xialing Wang, Kai Li, Fei Wang, Chi Wang, Xin Song, Xin Sun, and Ping Ning. 2020. "Reaction Mechanism of Simultaneous Removal of H2S and PH3 Using Modified Manganese Slag Slurry" Catalysts 10, no. 12: 1384. https://doi.org/10.3390/catal10121384
APA StyleBao, J., Wang, X., Li, K., Wang, F., Wang, C., Song, X., Sun, X., & Ning, P. (2020). Reaction Mechanism of Simultaneous Removal of H2S and PH3 Using Modified Manganese Slag Slurry. Catalysts, 10(12), 1384. https://doi.org/10.3390/catal10121384