Fertilizers

ARBOK-URIA

recovers urea, uric acid, and nitrogen compounds from source-separated human urine via vacuum evaporation, concentration, and crystallization.

ARBOK-URIA

Technology brief

What this platform addresses

recovers urea, uric acid, and nitrogen compounds from source-separated human urine via vacuum evaporation, concentration, and crystallization.

TRL 5 (pilot-scale validation)

The challenge

The problem this technology addresses

Municipal nutrient recovery (separate collection), fertilizer production (urea commodity replacement), industrial supply, agricultural nutrient cycling, biosolids valorization. Typical: modern residential buildings with separate plumbing, retrofit of existing buildings, industrial streams with urine content. Users: municipal utilities, fertilizer manufacturers, building developers, farms, closed-loop facilities.

ARBOK solution

How the ARBOK system creates value

ARBOK-URIA recovers urea, uric acid, and nitrogen compounds from source-separated human urine via vacuum evaporation, concentration, and crystallization. Rather than treating urine as dilute waste (10–15 g/L nitrogen), it recognizes it as valuable commodity. Process: the urine is chemically stabilized to prevent ammonia loss and microbial breakdown, then vacuum-evaporated at ambient temperature — the reduced pressure lets water flash off without added heat, which is what preserves the urea instead of degrading it — and finally crystallized. Recovered urea (>95% purity) suitable for fertilizer, industrial chemistry, or medical applications. Closes nutrient loop in cities; reduces wastewater burden; circular input for agriculture/industry.

Source separation: separate plumbing collects urine. Stabilization: a controlled acid dose is added to prevent ammonia loss and microbial decomposition. Vacuum evaporation: carried out under deep vacuum at ambient temperature, which preserves the urea that would otherwise break down under heat. Concentration: water evaporates and dissolved salts (urea, phosphates, potassium) accumulate into a concentrate. Crystallization: the cooled concentrate crystallizes urea; other salts separate. Product: urea crystals (>95%), phosphorus concentrate, potassium-rich liquor.

Market and application

Commercial opportunity

Target: new construction in Nordic/Dutch/German markets, municipal wastewater operators, organic farming, developing regions with nutrient deficiency, closed-loop institutions. Drivers: global urea demand 150M tons/year (energy-intensive), phosphorus scarcity, nutrient limits in EU/USA/Japan, circular economy mandates. Market: 500M m³ human urine/year globally = 5–7.5M tons recoverable nitrogen = €1–3.75B/year potential (realistic penetration 2026: 0.1–1% in source-separation infrastructure).

Ref: municipal 10,000 L/day (100,000 people)

Annual recovery: 18,000–36,000 kg urea (€3.6k–18k at €200/ton or €9k–36k at €500/ton)

Annual by-products: €1k–5k (phosphorus/potassium)

Annual avoided wastewater cost: €20k–50k

Annual OPEX: €30k–80k

Margin: break-even to +€14.6k | Payback: 10–20 years (collection infrastructure dominates cost)

Use cases

Where the technology can be applied

Municipal nutrient recovery (separate collection), fertilizer production (urea commodity replacement), industrial supply, agricultural nutrient cycling, biosolids valorization. Typical: modern residential buildings with separate plumbing, retrofit of existing buildings, industrial streams with urine content. Users: municipal utilities, fertilizer manufacturers, building developers, farms, closed-loop facilities.

Path: feasibility study → pilot (single building, 100–1,000 L/day) → optimize protocol → commission evaporator → scale-up

Operating: decentralized (10–500 L/day) or municipal (10,000+ L/day), batch cycles 4–8 hours, minimal staffing

Maintenance: pump calibration monthly, vacuum pump service annually, scale removal as needed, tank inspection quarterly

Urine-diverting sanitation, renewable energy (solar thermal), municipal wastewater treatment, fertilizer supply chains, building management systems, circular economy platforms. Related: Source Separation · Vacuum Evaporation · Nutrient Recovery · Urine-Diverting Toilets

View preserved source description

Overview

ARBOK-URIA recovers urea, uric acid, and nitrogen compounds from source-separated human urine via vacuum evaporation, concentration, and crystallization. Rather than treating urine as dilute waste (10–15 g/L nitrogen), it recognizes it as valuable commodity. Process: the urine is chemically stabilized to prevent ammonia loss and microbial breakdown, then vacuum-evaporated at ambient temperature — the reduced pressure lets water flash off without added heat, which is what preserves the urea instead of degrading it — and finally crystallized. Recovered urea (>95% purity) suitable for fertilizer, industrial chemistry, or medical applications. Closes nutrient loop in cities; reduces wastewater burden; circular input for agriculture/industry.

Applications

Municipal nutrient recovery (separate collection), fertilizer production (urea commodity replacement), industrial supply, agricultural nutrient cycling, biosolids valorization. Typical: modern residential buildings with separate plumbing, retrofit of existing buildings, industrial streams with urine content. Users: municipal utilities, fertilizer manufacturers, building developers, farms, closed-loop facilities.

Operating Principle

Source separation: separate plumbing collects urine. Stabilization: a controlled acid dose is added to prevent ammonia loss and microbial decomposition. Vacuum evaporation: carried out under deep vacuum at ambient temperature, which preserves the urea that would otherwise break down under heat. Concentration: water evaporates and dissolved salts (urea, phosphates, potassium) accumulate into a concentrate. Crystallization: the cooled concentrate crystallizes urea; other salts separate. Product: urea crystals (>95%), phosphorus concentrate, potassium-rich liquor.

Key Parameters

| Parameter | Value |

|---|---|

| Urine Nitrogen Content | 10–15 g/L (60% urea, 20% uric acid, 20% other) |

| Urea Yield per Person/Day | 5–10 g/day (1.8–3.6 kg/year) |

| Phosphorus Recovery | 0.5–0.8 g/L as PO₄ |

| Potassium Recovery | 2–4 g/L as K₂O |

| Vacuum Operating Pressure | Deep vacuum, sufficient to enable evaporation without added heat |

| Evaporation Temperature | Ambient — no external heat input required |

| Urea Product Purity | >95% |

| Energy Intensity | 0.5–1.5 kWh/kg urine |

| Acid Stabilizer Dose | A controlled acid dose calibrated to stabilize dissolved nitrogen |

| Cycle Time | A same-day batch cycle |

| Storage Stability (stabilized) | Over 6 months in a stable, acid-conditioned state without nutrient loss |

Architecture and Components

Collection system (urine-diverting toilets or separate plumbing). Stabilization unit (acid dosing pump, mixing tank). Storage (sealed tanks sized to throughput). A vacuum evaporator sized to the required daily throughput. Condenser for recovering the water vapor. A vacuum pump maintaining the operating pressure. Crystallizer (optional). Control/instrumentation (temperature, pressure, pH, conductivity sensors). Installation: decentralized (building-level), centralized (municipal), modular/transportable.

Advantages

Technical: closed-loop recovery, low-temperature operation (solar thermal compatible), simple chemistry, modular scalability. Economic: urea value $200–500/ton, 1 person recovers €0.36–3.60/year or €36–360 for 100-person building, municipal-scale €36k–360k/year. Environmental: eliminates synthetic urea (Haber-Bosch 2% global energy), reduces eutrophication, closes nutrient loop. Operational: automated, stable product (indefinite storage), no odor/biohazard, incremental deployment.

Integrations

Urine-diverting sanitation, renewable energy (solar thermal), municipal wastewater treatment, fertilizer supply chains, building management systems, circular economy platforms. Related: Source Separation · Vacuum Evaporation · Nutrient Recovery · Urine-Diverting Toilets

Deployment & Operation

Path: feasibility study → pilot (single building, 100–1,000 L/day) → optimize protocol → commission evaporator → scale-up

Operating: decentralized (10–500 L/day) or municipal (10,000+ L/day), batch cycles 4–8 hours, minimal staffing

Maintenance: pump calibration monthly, vacuum pump service annually, scale removal as needed, tank inspection quarterly

TRL

TRL 5 (Pilot validation)

Evidence: lab testing (stabilization, evaporation, crystallization completed), pilots operating in multiple regions (100–1,000 L/day), product quality validated by agricultural standards

Remaining: large-scale municipal deployment (10,000+ L/day, 2–3 years operation), building code integration, protocol standardization, market linkages, economic validation, LCA approval

Market Potential

Target: new construction in Nordic/Dutch/German markets, municipal wastewater operators, organic farming, developing regions with nutrient deficiency, closed-loop institutions. Drivers: global urea demand 150M tons/year (energy-intensive), phosphorus scarcity, nutrient limits in EU/USA/Japan, circular economy mandates. Market: 500M m³ human urine/year globally = 5–7.5M tons recoverable nitrogen = €1–3.75B/year potential (realistic penetration 2026: 0.1–1% in source-separation infrastructure).

Risk Factors

Technical: stabilization reliability, vacuum system durability in urine vapor, product contamination (pharmaceuticals/pathogens), energy intensity. Market: regulatory uncertainty (source-separation not standardized), social acceptance (urine reuse stigma), collection logistics (retrofit expensive), synthetic urea competition (cheap $200–300/ton). Operational: end-market development risk, scale-up reliability, liability framework for nutrient products uncertain.

Related Technologies

Part of ARBOK's broader nutrient-recovery and vacuum-evaporation technology family, sharing its core low-temperature, low-pressure separation approach with other ARBOK waste-valorization processes.

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Partnership pathway

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