Urban Wastewater Mining for Circular Resource Recovery: Approaches and Technology Analysis
Abstract
:1. Introduction
2. Wastewater or “Usedwater”?
2.1. Usedwater Generation and Composition
2.1.1. Centralized vs. Decentralized Used-Water Generation and Management
2.2. Residual Energy and Materials in Used Water
An Inefficient Nutrient Management Paradigm
3. UWW Mining: Approaches and Technologies
3.1. Water Reuse Opportunities
3.2. UWW Energy-Mining Technologies
3.2.1. Thermal Energy
3.2.2. Chemical Energy
3.2.3. Potential Energy
3.3. UWW Nutrient Mining
3.3.1. Ammonia Recovery
Technology | Pros | Cons | Comments | Ref. |
---|---|---|---|---|
Heat pumps | Mature technology. High, steady sewage flows allow consistent recovery. Can be applied in many situations, including segregated GW streams. | Issues with exchangers’ corrosion and fouling can develop in raw sewage applications. Low-grade heat transfer is most efficient in proximity uses. | Applicable both in large sewer networks and WWTPs. Excessive heat extraction may impair biological treatment efficiency. High potential in densely populated areas. | [19,81,82,83,84,85,86,87,88] |
Thermoelectric generators (TEGs) | Direct electricity generation from fluid-embedded heat possible through the Seebeck effect. | Most efficient at high thermal gradients (low in UWW applications). Expensive technology. | Not mature in the water sector. Efforts to exploit low-gradient, high-flow conditions are ongoing. Present potential is low. | [89,90] |
Anaerobic Digestion (fermentation) | Mature, most common technology for energy recovery from organic wastes. UASB version applicable to diluted UWW. Energy recovered as biogas or, with process modification, hydrogen. | Lower efficiency at low temperatures. Biogas contains up to 40% CO2 and must be upgraded for general use as a natural gas substitute. | Can be used as the first step in complex sludge biorefinery schemes, with sequential materials recovery. Could completely replace aerobic biodegradation processes in the presence of high concentrations of sewage. Very high potential for improvement. | [51,91,92,93,94,95,96,97,98,99,100,101,102,103,104,105,106,107,108] |
Bioelectrochemical systems | Direct electricity generation from UWW organics. Possible to achieve hydrogen production at lower costs than pure water electrolysis. | Expensive technology, not yet applied on a large scale. Limited electrical recovery compared to theoretical potential. | TRL still low. More research is needed for successful full-scale applications. Presently, it has low potential. | [109,110,111,112,113,137] |
Ammonia-fuel recovery | NH4 can be used as C-free fuel, with modification of existing engine technology. More economical to produce than H2, at a higher volumetric energy density. | High combustion temperature needed. Could generate NOx emissions if not properly controlled. | Ammonia-to-energy approach possible on a large scale and in heavy transport vehicles/ships. Good medium-term potential. | [114,115,116,117,124,125,126,127,128,129,130,131,132] |
Picoturbine hydropower | Electricity generation from liquid streams’ potential energy in high-rise buildings. | Picoturbines can be affected by solids and impurities in the flow. Needs buildings’ internal plumbing adaptation. | New picoturbine types developed to allow use with BW. Application to less contaminated GW could be an efficient solution. Good potential in highly dense, vertically developed urban areas. | [119,120] |
3.3.2. Phosphorous Recovery
3.3.3. Other Nutrient Recovery Approaches
3.4. UWW Chemicals and Materials Mining
3.4.1. Cellulose, a Used Water-Embedded Resource
3.4.2. Protein Recovery
3.4.3. UWW-Based Biorefineries
3.4.4. Recovery of Metals from UWW
4. Discussion
5. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Black Water (BW) | Grey Water (GW) | Yellow Water (YW) | |
---|---|---|---|
COD (mg/L) | 5000–93,000 | 200–500 | 4000–11,000 |
N (mg/L) | 1500–16,000 | 6–25 | 4000–11,000 |
P (mg/L) | 500–3000 | 0.4–8 | 200–4000 |
Solids | High | Low | N/A |
Pathogens | High | Low | High |
Micropollutants | High | High | Low * |
Type of Reuse | Pros | Cons | Comments | Ref. |
---|---|---|---|---|
Irrigation | Treated water reused for irrigation can reduce freshwater consumption. Irrigation with treated effluents can contribute N and P, necessary for crops. | Possibility of crop contamination by various contaminants, including emerging substances and pathogens. | Fertigation contributes water and nutrients to crops. Soil and crop types should be compatible with effluent characteristics. Stakeholders’ (farmers, consumers) perception and acceptance of this practice are essential. | [13,18,72,73] |
Urban and industrial uses | Treated effluents are suitable for several types of non-potable reuse, allowing the use of high-quality freshwater for potable use. | Infrastructure is usually absent for dual water distribution. | Dual-distribution networks present in water-scarce areas. Fit-for-purpose treatment can provide reused water at competitive costs. Industrial, non-contact uses are usually well accepted. | [8,14,17,27,74,75,76,80] |
Domestic uses | Onsite treated used water could provide about 2/3 of current domestic uses that do not require drinking water quality. | Dual piping in households required. | Acceptance of domestic reuse practices depends on water availability situations (scarcity conditions and cost of drinking water). Proper public communication is highly important. | [34,59,60,61,63,65,66] |
Aquifer recharge and Indirect potable reuse | Replenishment of aquifers increases future availability of water and supply resilience. Low-cost practice. Impurities are naturally filtered by subsoil formations. | Hydrogeological conditions should be verified to avoid preferential contaminant transport. Excessive recharge may affect underground infrastructure. | Urbanization reduces aquifer recharge. MAR and similar approaches can restore hydrological groundwater balance. Aquifer recharge is part of many indirect potable reuse schemes. IPR schemes are often accepted as they “blend” with the natural water cycle. | [8,13,14,15,16,74,79,80] |
Direct Potable reuse | Can provide drinking water to areas with critical water scarcity. This practice is a consolidated technology with many application examples globally. | Treatment can be energy-intensive. Citizens’ acceptance may initially be low. | Treatment technology can provide drinking water directly from WWTP effluents. DPR acceptance increases with water shortage and can be boosted by proper communication strategies. | [13,14,74,77,78] |
Element/ Technology | Pros | Cons | Comments | Ref. |
---|---|---|---|---|
Ammonia/ stripping | Easy implementation. Various process forms exist with different recovery yields. | pH buffering and high temperatures may be required. | Vacuum thermal stripping reduces the required process temperature. | [124,125,126] |
Ammonia/ adsorption | Zeolite adsorption easy to implement. High recovery (˃98%) even at low initial concentrations. | High chemical demand for regeneration. Filter suffers from fouling problems. | New polymer-based adsorbents may enhance recovery and cost-effectiveness. | [114,136] |
Ammonia/ concentration | Membrane-based processes can recover pure ammonia (no metal, pathogen contamination). | Relatively energy intensive. | Forward and reverse osmosis, membrane distillation, and electrodialysis, alone or in combination, available at intermediate TRLs. | [127,128,129,130,131,132,133,134] |
Ammonia/ others | Bioelectrochemical systems can achieve 100% ammonia recovery with a positive energy balance. | Technology more complex and costly than stripping/ adsorption. Low TRL (pilot scale only). | Material issues hinder BESs’ industrial development. Promising technology for the future. | [131,133] |
Phosphorous/ precipitation | P precipitation occurs naturally in WWTPs. Controlled precipitation can avoid serious scaling problems. High TRL. | Efficient precipitation requires costly chemical addition and controlled conditions. A P-concentrated solution is needed. | Can be implemented from the liquid or solids line. Struvite or other fertilizer-value minerals can be obtained. Many proprietary commercial processes are available. Can be combined with P pre-concentration by membranes or electrochemical technologies. | [129,137,139,140,141,142,143,144,145,146,147] |
Phosphorous/ leaching | Incinerated sludge waste is an available P source. Chemical extraction technologies available. | Chemical extraction may cause heavy metal leaching, in addition to P. This could create subsequent reuse problems. | Pre-treatment agents (e.g., EDTA) can achieve high-purity P leaching from ISSA. | [123] |
Material/ Chemical | Pros | Cons | Comments | Ref. |
---|---|---|---|---|
Cellulose | Valuable raw industrial material. Easily recovered through physical means. Removal of cellulose from WWTP influent could decrease aeration requirements by up to 30%. | Requires additional equipment. Some recovery processes may require substantial energy and chemical input. | Cellulose can be valorized as raw polymeric material in industrial applications or as substrate for AD, the production of chemicals, etc. | [152,153,154,155,156,157,158,159] |
Protein | Protein-rich biomass has an amino acid profile comparable to standard animal protein and could be a substitute for soybean meal. Has less of an environmental impact than conventional animal protein sources. | Requires dedicated processes. | Methane-oxidizing bacteria are MP-rich microorganisms that use methane as carbon and energy sources to assimilate nitrogen into proteins. Integrated WWTP/microbial protein systems have been demonstrated. | [160] |
Biorefinery-derived Products (PHAs, EPSs, VFAs, biopesticides, enzymes, etc.) | Molecules, more industrially valuable than biogas, are produced through microbial metabolism and immobilized in biomass during wastewater treatment. | Bioferinery processes are generally complex, and TRL is generally too low for commercial adoption. | Appropriate sequencing of biorefinery processes could maximize recovery of value-added products and facilitate subsequent biosolid processing steps | [56,57,135,160,161] |
Metals, REEs | WWTPs concentrate metals and REEs from wastewater into biosolids. Metal content in wastewater could be highly valuable. | Low concentrations limit the quantities of recoverable materials from the liquid phase. Some recovery methods from the sludge phase may generate hazardous residues, increasing waste treatment and disposal costs. | Integration of metal recovery into the sludge processing end of wastewater treatment could contribute to improving its CE footprint. | [21,162,163,164,165,166,167,168] |
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Capodaglio, A.G. Urban Wastewater Mining for Circular Resource Recovery: Approaches and Technology Analysis. Water 2023, 15, 3967. https://doi.org/10.3390/w15223967
Capodaglio AG. Urban Wastewater Mining for Circular Resource Recovery: Approaches and Technology Analysis. Water. 2023; 15(22):3967. https://doi.org/10.3390/w15223967
Chicago/Turabian StyleCapodaglio, Andrea G. 2023. "Urban Wastewater Mining for Circular Resource Recovery: Approaches and Technology Analysis" Water 15, no. 22: 3967. https://doi.org/10.3390/w15223967