Investigation of a Gas Hydrate Dissociation-Energy-Based Quick-Freezing Treatment for Sludge Cell Lysis and Dewatering
Abstract
:1. Introduction
2. Materials and Methods
2.1. Preparation of the Sewage Sludge
2.2. Gas Hydrate Dissociation-Energy-Based Quick-Freezing Process (HbQF)
2.3. Analysis of Leachate and Sludge
2.3.1. Effect of HbQF on Leachate Characteristics and Cell Viability
2.3.2. Effect of HbQF on the Rheology and Particle Size Distribution of the Sewage Sludge
2.3.3. Effect of HbQF on Sewage Sludge Water Content
2.3.4. Resistance Analysis
2.4. Release of Organic Materials by HbQF
- (a)
- Step 1: After 30 g of a sludge sample was centrifuged (2000× g, 15 min, 20 °C), 0.2 g of aluminum sulfate (Al2(SO4)3, 98%, Sigma-Aldrich, St. Louis, MO, USA) was added, and the mixture was centrifuged (2000× g, 30 min, 20 °C). The supernatant was separated and filtered using a 0.45-μm polytetrafluorethylene-H (PTFE-H) syringe filter (SH25P045N, Hyundai micro CO. LTD, Seoul, Korea). The filtrate was termed Alum.
- (b)
- Step 2: Adding phosphate buffered saline (PBS; pH 7.4) into the remaining pellet (from Step 1) to 30 g, the mixture was mixed using a vortex. Then, it was centrifuged (5000× g, 30 min, 20 °C). The supernatant was separated and filtered using a 0.45-μm syringe filter. The filtrate was termed Centrifuge 5000× g.
- (c)
- Step 3: Adding PBS into the remaining pellet (from Step 2) to 30 g, the mixture was mixed using the vortex mixer. Then, it was treated via Ultrasonication (288,000 W, 10 min) within ice to prevent the sludge heating. The treated sample was centrifuged (20,000× g, 20 min, 20 °C) and filtered using a 0.45-μm syringe filter. The filtrate was termed 1st Ultrasonication.
- (d)
- Step 4: Using the remaining pellet from Step 3, Step 3 was repeated. The supernatant was termed 2nd Ultrasonication.
3. Results and Discussion
3.1. Effect of HbQF on Sewage Sludge and Leachate Characteristics
3.1.1. Inactivation of Microbial Cells and Cell Lysis in a Sludge Sample
3.1.2. Changes in Rheology and Pore Size Distribution
3.1.3. Capillary Suction Time, Time to Filter, and Filtration Resistance
3.2. Effect on Dewaterability and the Release of Sludge Organic Materials.
4. Conclusions
- (a)
- Dissociation of CO2 gas hydrates rapidly freezes sewage sludge.
- (b)
- HbQF releases organic materials from sludge floc and microbial cells.
- (c)
- HbQF reduces cell viability by cell lysis.
- (d)
- HbQF followed by gravitational settling could be the solution to dewater sludge.
Author Contributions
Funding
Conflicts of Interest
References
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Sample Name | Control | N2 35 | CO2 10 | CO2 20 | CO2 35 |
---|---|---|---|---|---|
Pressure, bar | - | 35 | 10 | 20 | 35 |
Guest molecule | - | N2 | CO2 | CO2 | CO2 |
Temperature, °C | - | 0.2 | 0.2 | 0.2 | 0.2 |
Stirring rate, rpm | - | 150 | 150 | 150 | 150 |
Sample | Raw | Control | N2 35 | CO2 10 | CO2 20 | CO2 35 |
---|---|---|---|---|---|---|
Average, mV | −13.10 | −11.12 | −15.40 | −15.30 | −16.63 | −21.00 |
Standard deviation, mV | 1.127 | 0.743 | 0.400 | 1.916 | 0.833 | 2.258 |
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Kim, W.; Lee, H.K.; Kwon, Y.-N. Investigation of a Gas Hydrate Dissociation-Energy-Based Quick-Freezing Treatment for Sludge Cell Lysis and Dewatering. Int. J. Environ. Res. Public Health 2019, 16, 3611. https://doi.org/10.3390/ijerph16193611
Kim W, Lee HK, Kwon Y-N. Investigation of a Gas Hydrate Dissociation-Energy-Based Quick-Freezing Treatment for Sludge Cell Lysis and Dewatering. International Journal of Environmental Research and Public Health. 2019; 16(19):3611. https://doi.org/10.3390/ijerph16193611
Chicago/Turabian StyleKim, Woojeong, Hyung Kae Lee, and Young-Nam Kwon. 2019. "Investigation of a Gas Hydrate Dissociation-Energy-Based Quick-Freezing Treatment for Sludge Cell Lysis and Dewatering" International Journal of Environmental Research and Public Health 16, no. 19: 3611. https://doi.org/10.3390/ijerph16193611