Positioning pattern 4 of 4

Electrochemical Oxidation in Advanced Treatment Trains

Where EO sits relative to equalisation, clarification, biological treatment, and membrane polishing isn’t arbitrary — it’s the decision that determines whether the whole train performs as designed. EO is rarely the only treatment technology in a complete treatment system. Site-specific configurations depend on the influent characterisation, the discharge permit requirements, and the existing infrastructure at the facility. This specific context describes the most common multi-technology configurations that include EO — and the engineering design principles that determine where EO sits in the train.

The positioning question

What this actually means

Most real EO installations aren’t a single unit treating raw wastewater — they’re one stage in a sequence of several, each removing a different fraction of the load. Getting that sequence right means each stage receives a feed it’s actually designed for, rather than one stage compensating for another’s shortfall.

The general pattern that shows up most often: equalisation to level out flow and concentration swings, clarification to remove solids, biological treatment to remove degradable organics, and EO polishing to finish the refractory fraction before discharge or reuse.

Why treatment train position determines EO performance and cost

Where EO sits changes everything

An EO system treating raw industrial wastewater and the same EO system treating secondary effluent from the same facility have different energy consumption, different charge density requirements, different byproduct profiles, and different maintenance requirements — even if they are treating for the same target compound at the same discharge limit. Treatment train position is not a layout decision; it is a performance and economics decision. The four configurations below represent the most common patterns and the principles that determine which applies to a specific project.

Configuration 1

Biology → EO: the standard industrial polishing train

The most common configuration for industrial facilities with both biodegradable COD and recalcitrant target compounds. Biological treatment (aerobic or anaerobic) handles the biodegradable fraction; EO polishes the recalcitrant residual in the secondary effluent. The EO stage receives low-BOD, low-TSS effluent at low recalcitrant compound concentration — the conditions that produce the lowest possible charge density and energy cost for EO.

Configuration 2

NF/RO → EO (concentrate): the PFAS destruction train

The membrane concentrates PFAS into a small-volume reject stream; EO destroys the PFAS in that concentrate. The two technologies address adjacent problems — membrane achieves PFAS removal from the main process flow, EO achieves the destruction of the concentrated PFAS that the membrane produces. Neither technology alone achieves both separation and destruction at competitive cost for high-volume streams.

Configuration 3

Biology → NF/RO → EO: ZLD and high-recovery trains

The three-step train — biological treatment for bulk COD reduction, membrane for volume reduction and concentration of residual organics and dissolved solids, EO for destruction of the membrane concentrate — is deployed in ZLD objectives and high-water-recovery applications. Each stage performs its optimal function: biology on biodegradable COD, membrane on volume and inorganic removal, EO on refractory organics in the small-volume concentrate.

Configuration 4

Standalone EO: concentrated recalcitrant streams

For streams where the organic content is predominantly recalcitrant — concentrated AFFF leachate, cyanide-rich mining streams, highly contaminated groundwater from industrial sites with no biodegradable co-contaminants — EO as a standalone step without biological pre-treatment may be appropriate. The specific condition is a BOD:COD ratio below 0.1 — essentially all COD is recalcitrant. Confirmation of this ratio through bench-level biodegradability testing is required before eliminating biological pre-treatment.

In the train

Where it actually fits

The diagram above shows the most common sequence, but it isn’t the only valid one — where a membrane stage sits relative to EO depends on what problem you’re actually solving. Placing EO ahead of a membrane protects that membrane from fouling caused by refractory organics; placing it after treats the membrane’s concentrate, which is often smaller in volume and higher in concentration, changing EO’s economics favourably.

Neither order is universally correct — it’s decided by which stream actually needs the destruction capability and which stage needs protecting.

Engineering Reference

The Wastewater Treatment Train, Stage by Stage

Every industrial wastewater treatment system is a sequence of stages, not a single box. This page walks the train end to end — what each stage does, why it’s there, and which of our products sit at that point in the sequence — so you can see where electrochemical oxidation fits relative to what you already have.

Stage 01

Equalization & Screening

Buffers variable flow and pollutant load, and removes gross solids that would otherwise damage or foul downstream equipment. Not glamorous, but skipping it is the single most common cause of downstream process instability.

Stage 02

Electrocoagulation Pretreatment

Removes colloids, part of the suspended and emulsified organic load, some heavy metals, and color, reducing the burden on the oxidation stage that follows. Optional depending on influent characteristics.

Stage 03

Electrochemical Oxidation (Core Stage)

Destroys recalcitrant, non-biodegradable organics — phenolics, APIs, pesticide residues, cyanide, mixed solvents — via direct anodic oxidation and in-situ hydroxyl radical generation. This is where the actual COD destruction happens, not just phase transfer.

Stage 04

Biological Polishing (Optional)

Once biotoxicity is cut and the B/C ratio is lifted by the oxidation stage, a downstream biological process can often handle any remaining biodegradable load more cheaply than continuing electrochemical treatment to zero.

Stage 05

Tertiary Polishing & Water Reuse

Where treated water is destined for reuse rather than discharge, a polishing step (activated carbon, membrane) manages residual TDS the oxidation stage doesn’t touch.

Stage 06

Salt Recovery / ZLD (High-Salinity Streams)

For high-salt streams where zero liquid discharge is the goal, post-oxidation evaporative concentration recovers the salt fraction as a byproduct rather than a disposal cost.

Not sure which stage your process needs?

Send us your influent profile and we’ll map it against this treatment train to show exactly where a bench trial or full-scale unit would fit.

Equalisation levels flow & load Clarification removes solids Biological removes degradable COD EO polishing removes refractory fraction Discharge or reuse The sequence isn’t fixed A membrane stage can sit either side of EO polishing, and the choice is deliberate: place EO before a membrane to protect it from refractory-organic fouling, or after it to treat what the membrane concentrates into a reject stream. Which order is correct depends on what the membrane is actually being asked to do.

From treatment train to bench test

Next steps for each configuration

Engineering Process

The bench test protocol that confirms which configuration applies to your specific stream.

Products

System configurations for each position in the treatment train.

Downloads

Treatment train design worksheets and configuration selection tools.

Case Studies

Deployed treatment train configurations from the application areas listed above.

Common questions

Advanced Treatment Trains FAQ

Each stage transition requires a pre-treatment assessment: the effluent from one stage becomes the influent of the next, and the fouling and inhibition risks for the downstream stage must be characterised. For biology → EO transitions, TSS removal to <50 mg/L is standard. For NF/RO → EO transitions, the concentrate composition needs full characterisation — the concentrate has different pH, conductivity, and organic content than the feed. A bench test on the actual stage effluent (not the raw influent) is required for each EO stage in a multi-technology train.
EO system providers typically design and deliver the EO component of the train. For systems that include biological treatment, membrane systems, and EO together, either a single EPC contractor coordinates all components or the specialist providers work to a common process design. We deliver the EO component and can work to an interface specification provided by the overall treatment train designer, or we can provide a scope of work definition for the pre-treatment and interface requirements that the EO stage needs from the upstream stages.

It’s the most common position, but not universal — EO ahead of a membrane stage to protect it from fouling is a legitimate and fairly common alternative, depending on what the project is actually trying to protect or achieve.

Missing equalisation ahead of EO on a variable flow — without it, current density and byproduct control both become harder to hold steady, regardless of how well-designed the EO stage itself is.

Often yes, particularly as a polishing addition at the end of an existing train — the main check is confirming the actual feed EO would receive from the existing upstream stages, rather than assuming it matches the original design intent.

Configuration-specific

Each configuration is described with the specific conditions and applications that determine its use — not as generic alternatives.

Stage-specific sizing

The EO sizing parameters for each configuration differ — each is described with the specific influent conditions to the EO stage.

Bench at each stage

The requirement for bench testing on the actual EO influent — which differs by configuration — is stated for each of the four patterns.

Where to go from here

Take the path your train supports

GO — the position is clear

You know where in your train this sits and why. Move to a documented trial sized for that position, not the whole flow.

Not Sure

You know EO is worth testing but haven't pinned down where it sits relative to your other unit processes yet.

NO — you're trying to replace the wrong stage

If the goal is to replace clarification, disinfection, or biological treatment outright, that's a different technology question than this page answers.

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