Water Recovery Technologies

Key Question

How can infrastructure systems recover, reuse, and recirculate water that would otherwise be lost?


Questions Worth Exploring

  • How much water is currently lost from infrastructure systems?
  • What water recovery technologies are commercially available today?
  • Where do the greatest opportunities for water recovery exist?
  • Can water be recovered from cooling systems?
  • Can water be recovered from wastewater streams?
  • Can water be recovered from air?
  • How do water recovery technologies compare economically?
  • What role can water recovery play in supporting infrastructure resilience?
  • How should water recovery opportunities be evaluated within the broader ecosystem?
  • What emerging technologies may reshape future water management strategies?

What We Are Learning

Growing water demand, infrastructure expansion, and increasing resource constraints are driving interest in technologies capable of recovering water that would otherwise be lost.

Historically, infrastructure systems have often been designed around a linear model:

Water Source
→ Use
→ Discharge

Emerging technologies are increasingly enabling a circular approach:

Water Source
→ Use
→ Recovery
→ Reuse

One of the most important lessons emerging from stakeholder discussions is that significant quantities of water may already exist within infrastructure systems.

The challenge is often not identifying additional water sources.

The challenge is identifying opportunities to recover and reuse water that is already present within the ecosystem.

Water recovery opportunities may exist within:

  • Cooling systems
  • Wastewater systems
  • Industrial processes
  • Condensate streams
  • Atmospheric moisture
  • Thermal recovery systems
  • Resource recovery systems

As a result, water recovery is increasingly being evaluated as a strategic component of long-term infrastructure planning and resilience.


Observations

Significant Water Losses Exist Throughout Infrastructure Systems

Many infrastructure systems generate water streams that are discharged, evaporated, or otherwise lost.

Examples include:

  • Cooling tower evaporation
  • Cooling tower blowdown
  • Condensate discharge
  • Wastewater treatment losses
  • Industrial process water losses

Historically, many of these streams were viewed as unavoidable losses.

Emerging technologies suggest some of these losses may be recoverable.


Water Recovery Opportunities Exist at Multiple Points in the Water Cycle

Water recovery is not a single technology.

It is a collection of technologies and approaches that may be applied throughout an infrastructure system.

Potential recovery opportunities include:

  • Wastewater reuse
  • Condensate recovery
  • Cooling tower water recovery
  • Atmospheric water harvesting
  • Membrane technologies
  • Industrial water recycling

Each application presents unique technical and economic considerations.


Atmospheric Water Recovery Is Receiving Increased Attention

Recent advances in materials science have generated significant interest in technologies capable of recovering water directly from air.

Research involving:

  • Metal-Organic Frameworks (MOFs)
  • Covalent Organic Frameworks (COFs)
  • Sorbent materials

has demonstrated the potential to recover water from low-humidity environments.

Although many technologies remain in various stages of development and commercialization, they highlight new possibilities for decentralized water production and resilience.


Water Recovery Technologies Continue to Mature

Water recovery technologies vary significantly in maturity.

Some technologies are already widely deployed:

  • Reverse osmosis
  • Membrane filtration
  • Condensate recovery
  • Industrial recycling systems

Others remain emerging technologies:

  • MOF-based atmospheric water harvesting
  • COF-based water harvesting
  • Advanced adsorption systems

Understanding technology readiness is therefore an important component of infrastructure planning.


Water Recovery Is Often an Infrastructure Integration Challenge

Water recovery opportunities frequently emerge at the interfaces between systems.

Successful implementation often requires coordination among:

  • Utilities
  • Infrastructure operators
  • Technology providers
  • Municipalities
  • Regulators
  • Community stakeholders

This reinforces a recurring TIIM observation:

The greatest opportunities often emerge where systems intersect.


Water Recovery May Improve Infrastructure Resilience

Many discussions surrounding water focus on supply.

Water recovery introduces a different question:

How can existing resources be utilized more effectively?

In some situations, recovered water may:

  • Reduce freshwater demand
  • Improve drought resilience
  • Reduce wastewater discharge
  • Support infrastructure growth
  • Improve long-term sustainability

The value of recovery therefore extends beyond water conservation alone.


TIIM Perspective

Water recovery technologies should not be evaluated solely on gallons recovered.

They should be evaluated based on how they interact with:

  • Water resources
  • Wastewater systems
  • Energy systems
  • Infrastructure requirements
  • Community priorities
  • Technology maturity
  • Long-term resilience objectives

The question therefore becomes:

How can water recovery technologies be integrated into the ecosystem to improve overall infrastructure outcomes?

TIIM seeks to move the discussion beyond water scarcity alone and toward understanding how water recovery may influence resource resilience, infrastructure performance, and future opportunities.


Supporting Diagrams

Traditional Linear Water Model

Water Source

Infrastructure Use

Wastewater Discharge

Key Question:
How much water is required?


Circular Water Recovery Model

Water Source

Infrastructure Use

Water Recovery Technology

Reuse Opportunity

Reduced Water Demand

Key Question:
How much water can be recovered?


Ecosystem Water Recovery Framework

Water Source

Infrastructure System

Water Losses

Recovery Technologies

Resource Reuse

Community & Infrastructure Outcomes

Key Question:
How can recovered water improve ecosystem resilience?


Supporting Research

Atmospheric Water Harvesting Using Metal-Organic Frameworks (MOFs)

Groundbreaking research demonstrating the ability of MOFs to harvest water directly from ambient air under low-humidity conditions.

Related Topics

  • Atmospheric Water Harvesting
  • Emerging Technologies
  • Infrastructure Resilience

Links


Covalent Organic Frameworks (COFs)

Research examining COFs as a next-generation platform for atmospheric water capture and water recovery applications.

Related Topics

  • Advanced Materials
  • Atmospheric Water Recovery
  • Emerging Technologies

Links


National Renewable Energy Laboratory (NREL)

Research examining water treatment, desalination, water-energy nexus considerations, and resource recovery opportunities.

Related Topics

  • Water Recovery
  • Water-Energy Nexus
  • Infrastructure Planning

Links


U.S. Department of Energy

Research examining resource recovery, wastewater treatment, desalination technologies, and industrial water management.

Related Topics

  • Water Recovery
  • Resource Recovery
  • Infrastructure Resilience

Links


Membrane Technologies and Water Reuse

Research examining membrane-based treatment systems capable of recovering and reusing water from industrial and municipal sources.

Related Topics

  • Wastewater Reuse
  • Industrial Water Recovery
  • Water Treatment

Links


Industrial Water Recovery Systems

Research examining opportunities to recover water from industrial processes, cooling systems, and wastewater streams.

Related Topics

  • Industrial Water Management
  • Cooling Systems
  • Resource Recovery

Links


Related Topics

  • Understanding Data Center Water Demand
  • Municipal Wastewater Reuse
  • Evaluating Cooling Technology Tradeoffs
  • Thermal Energy Recovery
  • Resource Recovery Technologies
  • Community Impact Assessment