Technology

ARBOK MedZWD (Medical Zero Waste Discharge)

ARBOK MedZWD is a vacuum-based phase separation technology designed to fully eliminate liquid medical waste streams by converting them into clean water and dry, controlled by-products.

Overview

ARBOK MedZWD is a vacuum-based phase separation technology designed to fully eliminate liquid medical waste streams by converting them into clean water and dry, controlled by-products. Instead of filtering or chemically treating contaminated water, the system removes the water phase itself, leaving all contaminants behind. This approach eliminates biological activity, removes hazardous compounds from circulation, and stops secondary contamination. Compared to membrane and chemical systems, ARBOK closes the process completely and converts waste into stable outputs and usable resources. The solution is relevant due to increasing regulatory pressure, rising disposal costs, and the need for closed-loop infrastructure.

Applications

Primary use cases:

• Treatment of liquid medical waste (hospitals, clinics, laboratories)

• Hazardous wastewater streams with biological and chemical contamination

• Pharmaceutical and biotech effluents

Typical scenarios:

• On-site elimination of waste transport and disposal

• Replacement of chemical and thermal treatment systems

• Closed-loop water recovery systems

Industries and users:

• Hospitals and healthcare networks

• Diagnostic laboratories

• Pharmaceutical manufacturing

• Industrial hazardous waste operators

Scale:

• Small systems: 1–5 m³/day (labs)

• Medium systems: 5–100 m³/day (clinics, hospitals)

• Large systems: 100–250+ m³/day (medical complexes, industrial sites)

Operating Principle

The system operates under deep vacuum conditions, causing water to evaporate at low temperatures. Only H₂O transitions into vapor, while all contaminants (biological, chemical, and solid) remain in the residual phase. The vapor is then condensed into clean water.

Key steps:

  1. Feed intake of contaminated liquid
  1. Vacuum-induced phase change
  1. Separation of vapor and residue
  1. Condensation into clean water
  1. Collection of concentrated residues

Limitations:

• Requires stable vacuum conditions

• Efficiency depends on feed composition and load balance

• Pre-screening may be needed for large solids

Key Parameters

|Parameter|Conventional systems|ARBOK MedZWD|

|—|—|—|

|Energy consumption|8–20 kWh/m³|0.7 kWh/m³|

|Water recovery|30–70%|~100%|

|Liquid waste output|High|0 (ZWD)|

|Operating cost|High|Low|

|Biological stability|Active|Inactive|

Typical values:

• Throughput: 1–250+ m³/day

• Energy: ~0.7 kWh/m³

• Residue reduction: 20–50x volume decrease

• Bacterial count: 0 CFU/ml

Architecture and Components

Core components:

• Vacuum evaporation chamber

• Condensation unit

• Residue collection system

• Control system (PLC/automation)

• Sensors (pressure, temperature, flow)

Auxiliary systems:

• Feed tanks

• Separation modules

• Output storage

The system is modular and scalable. Units can be combined or expanded depending on required capacity.

Advantages

Technical:

• Complete phase separation, no filtration limits

• Stable output water with no biological activity

• No membrane degradation or fouling

Economic:

• Reduced disposal costs ($300–800/ton avoided)

• >$20,000/day savings for large hospitals

• Payback period: 5–7 years

Environmental:

• Zero liquid discharge

• No secondary contamination

• No chemical use

Strategic:

• Independence from disposal infrastructure

• Reduced regulatory risk

• Increased resilience of healthcare systems

Integrations

Compatible with:

• Existing wastewater pipelines

• Industrial water systems

• Energy systems

Digital integration:

• SCADA

• PLC automation

• Remote monitoring

• Predictive maintenance systems

Deployment & Operation

Implementation steps:

• Site assessment

• System sizing

• Installation and integration

• Commissioning

Operating conditions:

• Indoor or controlled environment

• Standard industrial utilities

Operation:

• Fully automated

• Minimal operator involvement

• Routine monitoring only

Installation timeline:

• 2–3 weeks to operational state

TRL

TRL 9

Evidence:

• Pilot and industrial validation

• Operational systems

• Proven performance in real conditions

Remaining steps:

• Scaling deployment

• Regulatory expansion

• Standardization across markets

Market Potential

Target industries:

• Healthcare

• Pharmaceuticals

• Industrial wastewater

Global market size:

• $50–100 billion annual waste treatment segment

Addressable share:

• High-value hazardous and regulated waste streams

Typical Project Economics

System capacity: 1–250 m³/day

CAPEX: variable by scale

OPEX: low (energy ~$21/day for 250 m³)

Savings: >$20,000/day (large hospital)

Payback: 5–7 years

Risk Factors

• Conservative industry adoption

• Regulatory approval timelines

• Integration with legacy systems

• Need for initial capital investment

• Awareness and education gap

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