Research Status and Development Trend of Wastewater Treatment Technology and Its Low Carbonization
Abstract
:1. Introduction
2. Conventional Wastewater Treatment Technology
2.1. Pushed-Flow Activated Sludge Process
2.2. Completely Mixed Activated Sludge Process
2.3. Adsorption-Regeneration Activated Sludge Process
2.4. Delayed Aerated Activated Sludge Process
2.5. Pure-Oxygen Activated Sludge Process
- (1).
- The oxygen content of air is generally 21%; the oxygen content of pure oxygen is 90–95%, and the partial pressure of oxygen is 4.4–4.7 times higher than that of air, so pure oxygen aeration can greatly improve the diffusion capacity of oxygen in the mixed liquid.
- (2).
- The oxygen utilization rate can be as high as 80–90%, while the air-aerated activated sludge method is only about 10%, so the volume of gas required to achieve the same oxygen concentration can be greatly reduced.
- (3).
- Activated sludge concentration (MLSS) can reach 4000–7000 mg/L, so the volume load can be greatly increased at the same organic load.
- (4).
- The sludge index is low, only about 100, which is not prone to sludge swelling;
- (5).
- High treatment efficiency and short aeration time.
- (6).
- The amount of residual sludge produced is small.
2.6. Sequential-Batch Activated Sludge Process
2.7. Summary Discussion
3. Low-Carbon Sewage Treatment Technology
3.1. Research Status
3.1.1. Resource Recovery Carbon Conversion and Reuse
3.1.2. Comprehensive Treatment of Low Carbon and Carbon Sequestration
3.1.3. Operation Parameter Optimization and Process Improvement
3.2. Growing Trend
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Operation Mode of Activated Sludge Method | BOD | COD | TSS | Advantages | Disadvantages | References |
---|---|---|---|---|---|---|
Removal Rate (%) | ||||||
Pushed-flow activated sludge process | 90–95 | 90–95 | 90–95 | ① The degradation efficiency of sewage is higher. ② The treatment of wastewater is more flexible. | The phenomenon of insufficient aeration at the head of the tank and excessive gas supply at the tail of the tank increases the power cost. | [21,22] |
Completely mixed activated sludge process | 85–90 | 85–90 | 90–95 | ① Strong ability to bear the impact load, to weaken the peak load. ② It can save power and facilitate operation management. | ①Continuous water inflow and outflow may cause short circuits. ②Prone to sludge swelling. | [23,24] |
Adsorption-regeneration activated sludge process | 80–90 | 80–85 | 85–90 | ① The contact time is shorter and the adsorption pool volume is smaller. ② Bearing a certain impact load, the sludge in the regeneration tank is convenient to use. | ①The treatment effect of wastewater is lower than that of the traditional activated sludge process. ②The treatment effect of wastewater with high dissolved organic matter is poor. | [21,25] |
Delayed aerated activated sludge process | 75–95 | 85–95 | 90–95 | ① The organic load is low, the residual sludge is less, and the sludge is stable and does not need to be digested. ② It has high stability of treatment water quality, strong adaptability to the impact load of wastewater and does not require a primary sedimentation tank. | The tank capacity is large, the aeration time is long, the construction cost and the operation cost are high, and it occupies a large area. | [26,27] |
Pure-oxygen-aerated activated sludge process | 90–95 | 85–90 | 90–95 | ① Greatly improves oxygen diffusion ability in the mixture ② The volume of gas required can be greatly reduced, the volume load can be greatly increased, it is not prone to sludge swelling, it has high treatment efficiency, the required aeration time is short, the amount of residual sludge generated is less. | The device is complex, management is troublesome, and the structure of the closed container is demanding. | [28,29,30,31,32] |
Sequential-batch reactor activated sludge process (SBR) | 85–95 | 85–90 | 90–99 | The operation management is simple, the cost is reduced, the impact load is resistant, the effluent quality is good, the activated sludge filamentous bacteria can be inhibited, the nitrogen and phosphorus removal. | Automation control requirements are high. Operation, management and maintenance require high quality of operation and management personnel. High requirements for drainage equipment. | [33,34,35,36,37] |
Low-Carbon Operation Mode | Low Carbonization Pathway | Concrete Measure | Low-Carbon Achievement |
---|---|---|---|
Resource recycling carbon conversion and reuse | recycle water | After the sewage treatment is up to standard, it will be used for factory reuse. | “Turning waste into treasure” rationally utilizes all valuable and usable substances produced in the process of sewage treatment, maximizes the concept of sustainable development, reduces carbon emissions and carbon loss from all aspects, and reduces carbon footprint. |
Energy-carrying gas | Energy-carrying gases such as CH4 and H2 are used for fuel. | ||
heat energy | Heat generated by microorganisms during sewage treatment is used for heating. | ||
sludge | Recovery disposal sludge is used in a burning capacity. | ||
Comprehensive treatment of low carbon and carbon sequestration | energy-saving and cost-reducing | According to the nature of wastewater, the appropriate treatment process can be selected to reduce the energy consumption such as aeration. | To keep up with the pace of the times, the production and processing equipment is updated over time, and the low-carbon energy-saving equipment is used as much as possible to reduce carbon emissions. Actively develop and utilize new sewage treatment microorganisms to reduce energy consumption and carbon emissions as much as possible and reduce carbon footprint. |
equipment replacement | Upgrade equipment such as old blowers or mixers. | ||
Development and utilization of carbon sequestration microorganisms | Reasonable development and utilization of photosynthetic bacteria and other microorganisms for low energy consumption and carbon sequestration methods. | ||
Operation parameter optimization and process improvement | Operation parameter optimization | Intelligent parameter control is carried out for each processing unit. | Under the premise of ensuring the standard of sewage treatment, the operation parameters of each treatment unit should be controlled, so as to achieve the standard of sewage treatment with the lowest energy consumption possible of each physical unit. The treatment process of each treatment unit should be updated in time, and the sewage treatment should be completed according to the concepts of sustainable development and low-carbon treatment. |
combined technology | According to the nature of sewage, can choose a lower carbonization treatment method combined treatment. | ||
technology improvement | The low carbonization process was improved. |
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Li, D.; Wang, Z.; Yang, Y.; Liu, H.; Fang, S.; Liu, S. Research Status and Development Trend of Wastewater Treatment Technology and Its Low Carbonization. Appl. Sci. 2023, 13, 1400. https://doi.org/10.3390/app13031400
Li D, Wang Z, Yang Y, Liu H, Fang S, Liu S. Research Status and Development Trend of Wastewater Treatment Technology and Its Low Carbonization. Applied Sciences. 2023; 13(3):1400. https://doi.org/10.3390/app13031400
Chicago/Turabian StyleLi, Demin, Zhaoyang Wang, Yixuan Yang, Hao Liu, Shuai Fang, and Shenglin Liu. 2023. "Research Status and Development Trend of Wastewater Treatment Technology and Its Low Carbonization" Applied Sciences 13, no. 3: 1400. https://doi.org/10.3390/app13031400
APA StyleLi, D., Wang, Z., Yang, Y., Liu, H., Fang, S., & Liu, S. (2023). Research Status and Development Trend of Wastewater Treatment Technology and Its Low Carbonization. Applied Sciences, 13(3), 1400. https://doi.org/10.3390/app13031400