Remediation of Polluted River Water by Biological, Chemical, Ecological and Engineering Processes
Abstract
:1. Introduction
1.1. Sources of River Water Pollution
1.2. Remediation of Polluted River Water
2. Engineering and Physical Processes
2.1. Aeration
2.2. Water Diversion and Water Transfer
2.3. Hydraulic Structures
2.4. Riverbank Filtration
3. Ecological Engineering-Based Processes
3.1. Phytoremediation Process
3.2. Constructed Wetlands
3.3. Biofilm Reactors
3.4. Application of Microbial Agents
3.5. Ecological Floating Beds
3.5.1. Types of Floating Beds and Their Performance
3.5.2. Contaminants Removal Mechanisms in Floating Beds
3.5.3. Factors Affecting Performance of Floating Bed
3.6. Remediation by Aquatic Animals
4. Conclusions and Perspectives
Author Contributions
Funding
Conflicts of Interest
References
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Treatment Techniques | Process Description | Advantages | Disadvantages | Reference |
---|---|---|---|---|
Artificial aeration | Air flow into river water increases microbial diversity and degrades organic compounds in water | Effectively improve water quality, simple and easy to apply, sustainable and widely applicable | Cost intensive during operation and maintenance phase | [9,15] |
Water transfer/diversion | Mixing of clean water with polluted river water and dilution of pollution | Improve river water quality, water supply, river pollution control, promote self-purification process | Potential destruction of ecosystem, cost and labour intensive | [16,17] |
Mechanical algae removal | Removal of algae by mechanical process | Improve river water and sediment quality | Cost intensive during operation and maintenance phase | [18] |
Dredging river sediment | Removal of polluted sediment by dredging machine | Improve sediment and river water environment | Potential increase of pollution, cost intensive mechanical process | [9,19] |
Building hydraulic structures | Irrigation weirs or infrastructure built on the river | Improve river water quality for irrigation purposes | Potential destruction of ecosystem health, cost intensive | [20,21] |
Riverbank filtration | Flow through riverbed and groundwater aquifer to the pumping wells | Remove organic and inorganic contaminants through natural filtration process | Slow process | [22,23,24,25] |
Techniques | Processes or Systems | Plant Species | Reference |
---|---|---|---|
Wetland | Removal of nutrients and organic matter by aquatic plants and aeration | Pontederia cordata | [15,49] |
Constructed wetlands, floating bed systems | Reed (Phragmites communis), E. crassipes (water hyacinth), A. philoxeroides | [56] | |
Water lettuce (Pistia stratiotes) | [55] | ||
Watermilfoil (M. verticillatum), pondweed (Potamogeton spp.), cattail (T. latifolia), duckweed (L. gibba), canna (C. indica) | [57] | ||
Hydroponic floating bed | Removal of TN and TP; Water spinach performs better than sticky rice | Water spinach, sticky rice | [26] |
Revetment | Ecological revetment plants | Goosegrass, sedges, and water grasses | [59] |
Floating bed | Removal of BOD, COD, nutrient, metal | Polygonum hydropiper bagen, reeds, bulrushes | [59] |
Multistage floating-bed system | Macrophytes | [60] | |
Enhanced ecological floating beds | Canna indica L., Iris pseudacorus L. | [61] | |
Ecological floating bed for removal of nutrients | Canna indica, Accords calamus, Cyperus alternifolius, Vetiveria zizanioides | [62] | |
Floating wetland | Endophyte-assisted floating wetlands | Typha domingensis, Leptochloa fusca | [63] |
Floating treatment wetland | Elodea nuttallii | [64] | |
Carex spp., Lythrum salicaria | [65] |
Techniques | Process Description | Advantage/Disadvantage | Reference |
---|---|---|---|
Plant-based floating bed | Soil-less plant growth media is used (polyethylene foam, for example) like hydroponic system | Low to moderate performance for eutrophic river water; vulnerable to natural disasters | [62,92] |
Ecological floating bed | Aquatic plants and microbes absorb nutrients and degrade organic chemicals; plants used include polygonum hydropiper, reeds, bulrushes, etc. | Efficiently removes nutrients, organic compounds and metals; increase DO and transparency; cost effective; facilitates better plant accommodation | [6,59,68,91] |
Floating wetland/ artificial floating islands | Floating wetland system with plant species | Not affected by water fluctuation and inundation; efficiently removes nutrients and organic compounds | [10,65,93,94] |
Combined floating bed | Integrated hydrophyte, aquatic animal, wave-making, fluorescence inducing equipment, water cycling & aerator | Significantly improved water quality | [14] |
Hydroponic floating bed | Water spinach in hydroponic floating bed systems | Efficiently removes nutrients | [26] |
Hybrid floating bed | Use of various techniques in horizontal and vertical space of water | Efficiently removes nutrients and increase water transparency; complex process | [95] |
Multistage floating bed | Use of macrophytes, aquatic animals and aquamats ecobase | Effectively removes nutrients, improves ecological restoration process; complex process | [60] |
Enhanced floating bed | Plant species and substrate are used | Highly efficient in removing nutrients | [61] |
Aqua mats | Artificial seaweed simulating natural aquatic plants | High surface area; high growth of bacteria and algae; effectively removes nutrients and organic compounds | [69] |
Endophyte floating bed | Wetland with T. domingensis, L. fusca | Highly efficient | [63,96] |
Stereo floating bed | Tall fescue plants inoculated with denitrifying polyphosphate accumulating microorganisms | Significantly removes nutrients from eutrophic water | [12] |
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Md Anawar, H.; Chowdhury, R. Remediation of Polluted River Water by Biological, Chemical, Ecological and Engineering Processes. Sustainability 2020, 12, 7017. https://doi.org/10.3390/su12177017
Md Anawar H, Chowdhury R. Remediation of Polluted River Water by Biological, Chemical, Ecological and Engineering Processes. Sustainability. 2020; 12(17):7017. https://doi.org/10.3390/su12177017
Chicago/Turabian StyleMd Anawar, Hossain, and Rezaul Chowdhury. 2020. "Remediation of Polluted River Water by Biological, Chemical, Ecological and Engineering Processes" Sustainability 12, no. 17: 7017. https://doi.org/10.3390/su12177017
APA StyleMd Anawar, H., & Chowdhury, R. (2020). Remediation of Polluted River Water by Biological, Chemical, Ecological and Engineering Processes. Sustainability, 12(17), 7017. https://doi.org/10.3390/su12177017