HydroHub™
HydroHub™
Transport · Fleet · Gensets
Head-to-head comparison · open for citation

PEM hydrogen injection vs dynaCERT HydraGEN.

dynaCERT's HydraGEN product is one of the best-known hydrogen-on-demand systems for heavy diesel. This page sets out how a PEM (proton exchange membrane) system differs in engineering approach, what each model asks of an operator day to day, and how to settle the comparison with measurements from your own fleet rather than with vendor percentages.

Trademark notice. dynaCERT HydraGEN is a trademark of its respective owner. This is an independent comparison published by HydroHub™ (YBG Group International Pty Ltd). HydroHub™ is not affiliated with, authorised by, sponsored by or endorsed by dynaCERT HydraGEN. Statements about their products are summarised from their own public material and may change — verify at source before making a purchase decision.

Short answer

How does PEM hydrogen injection compare to dynaCERT HydraGEN?

Both introduce hydrogen and oxygen on the intake side of a diesel engine to improve combustion efficiency, and both are reversible retrofits that leave the fuel system and ECU untouched. The engineering difference is the cell: HydroHub uses PEM electrolysis with deionised water only, producing 99.991% pure combined H₂/O₂ with no caustic electrolyte on site, and publishes prices across five SKUs mapped to engine displacement from 1.0 L to 16.0 L. dynaCERT supplies HydraGEN units through a dealer network with quoted pricing and a carbon-credit programme as part of its commercial offering.

  • PEM solid-polymer membrane — deionised water only, no caustic KOH electrolyte
  • 99.991% combined H₂/O₂ purity, no electrolyte carry-over into the intake
  • Sized by engine displacement: 1.0 L through 16.0 L across five SKUs
  • Published pricing and direct purchase — no register-interest gate
  • Reversible intake-side fitment, no ECU or fuel-system modification
  • Maintenance: deionised water top-up plus resin filter every 6–9 months
Cell type
PEM membrane
Gas purity
99.991% H₂/O₂
Electrolyte
None (pure water)
Range
1.0 L – 16.0 L
Side by side

HydroHub™ PEM compared with dynaCERT HydraGEN.

Comparison of HydroHub PEM hydrogen injection and dynaCERT HydraGEN
CriterionHydroHub™ (PEM)dynaCERT HydraGEN
Electrolysis technologyPEM solid-polymer membrane, deionised water onlyElectrolysis unit supplied as a sealed on-demand generator; consumables include an electrolyte-type fluid
Gas delivered to intake99.991% pure combined H₂/O₂ (oxyhydrogen)On-demand hydrogen and oxygen delivered to the intake
Product line breadthFive SKUs spanning 1.0 L to 16.0 L displacementHeavy-duty diesel focus (trucks, gensets, mining equipment)
Sizing basisEngine displacement band and duty cycleUnit models selected by engine/application class
Purchase pathPublished pricing, direct online purchase, DDP deliveryDealer and distributor network with quoted pricing
Carbon-credit framingAustralian ACCU Scheme context published separately; no credit revenue promisedCarbon-credit programme is a stated part of the vendor's commercial offering
ConsumablesDeionised water plus resin filter every 6–9 monthsVendor-specified consumable fluid and filter schedule
Trial pathwayBuy one unit, run a measured baseline-versus-fitted trial, then scaleTrials generally arranged through the dealer channel

Competitor details are summarised from publicly available vendor material and the generally established characteristics of the electrolysis technology described. Specifications change — verify current details directly with the vendor before purchasing. Corrections are welcome via the contact page.

Evaluation checklist

Six checks before you commit to either option.

Cell chemistry and on-site hazards

Ask whether the unit runs a caustic electrolyte (typically potassium hydroxide) or pure deionised water. Electrolyte systems add mixing, storage, spill and disposal obligations, and introduce electrolyte-mist carry-over risk on the intake side.

Sizing basis

A gas flow rate in litres per minute is only meaningful against an engine displacement and duty cycle. Ask which displacement band a unit is rated for, not just its peak output figure.

Commercial model

Published pricing, lead times and a defined warranty are straightforward to evaluate. Register-interest and enquiry-only models make total cost and delivery timing difficult to compare before committing.

Validation pathway

You should be able to buy a single unit, fit it to your own equipment and measure the result before any fleet-wide decision. Treat vendor-reported percentages as a hypothesis to test, never as a guarantee.

Emissions obligations

Particulate matter and visible smoke are commonly reported to fall with hydrogen enrichment, while oxides of nitrogen can rise where combustion temperature increases. If you hold an emissions obligation, account for that trade-off before fitment.

Serviceability and spares

Confirm what the consumable schedule is, what a replacement stack or filter costs, and how spares reach your location. Remote sites should confirm this before, not after, deployment.

Sizing

Match the unit to displacement, not to a competitor model number.

HydroHub system sizing by engine displacement band
SystemEngine displacementTypical application
HydroHub™ A-4501.0–1.8 LLight vehicles, small portable gensets, auxiliary sets
HydroHub™ A-6752.0–2.5 LLarger utes, light trucks, small stationary gensets
HydroHub™ A-9002.7–7.0 LMedium trucks, agricultural tractors, mid-size gensets
HydroHub™ H-PowerUp to 7.0 LHeavy-duty road transport, high-hour mobile gensets
HydroHub™ DH-PowerUp to 16.0 LPrime movers, mining haul, marine, continuous-duty gensets

Full sizing methodology is set out in sizing combined gas for internal combustion engines, and the technology difference is covered in PEM vs alkaline.

Trial protocol

Settle the comparison with your own data.

  1. Choose one asset that runs a repeatable duty cycle and capture at least two weeks of baseline fuel data against a normalised output measure (L/100 km, or L/kWh for gensets).
  2. Record load, route or load factor, ambient conditions and fuel type — these dominate the result more than the device does.
  3. Fit the displacement-matched unit on the intake side and confirm water quality and filter condition at commissioning.
  4. Repeat the identical duty cycle for a matching period post-fitment.
  5. Compare normalised fuel figures, never total litres burned.
  6. Log visible smoke separately, and account for the NOx trade-off if you carry an emissions obligation.
Next step

Buy one, trial it yourself.

Published pricing and direct purchase mean you do not need a sales process to start. Buy a single displacement-matched unit, measure it on your own equipment, and scale only if the numbers hold.

FAQ

dynaCERT HydraGEN comparison — questions.

Is HydroHub™ a direct replacement for dynaCERT HydraGEN?

It addresses the same objective — improving combustion efficiency by introducing hydrogen and oxygen on the intake side — using PEM electrolysis and deionised water rather than an electrolyte-based cell. Fitment is intake-side and reversible in both cases, so switching does not require engine or fuel-system modification. The correct unit is selected by engine displacement rather than by matching a competitor model number.

What efficiency improvement is realistic?

HydroHub caps its published expectation at up to 15% combustion efficiency improvement. Independent literature on hydrogen-enriched diesel combustion reports a wide spread depending on engine, load and enrichment rate. Steady high-load duty cycles sit at the upper end of that range; light or highly variable loads sit at the lower end. Any percentage — from any supplier — should be treated as something to verify on your own equipment.

Why does the absence of a caustic electrolyte matter?

PEM electrolysis carries the ion-conducting function in a solid polymer membrane, so the only consumable liquid is deionised water. Electrolyte-based cells circulate a potassium-hydroxide-type solution, which brings handling, storage, spill and disposal obligations, and creates a carry-over path for electrolyte mist toward the intake. For remote sites and mixed-skill maintenance teams, removing that chemical removes a category of risk.

Does switching affect my engine warranty?

The system is fitted on the intake side and is fully reversible. No injector, fuel-system or ECU calibration change is made. Even so, operators under an active OEM warranty should confirm the position with their OEM or dealer before fitment, and retain the installation record.

What about emissions?

Reported effects differ by pollutant. Particulate matter and visible smoke are commonly reported to fall. Oxides of nitrogen can rise where peak combustion temperatures increase. This is a genuine trade-off, disclosed openly here, and it must be accounted for by any operator holding an emissions obligation.

How should the comparison actually be settled?

With data from your own equipment. Capture at least two weeks of baseline fuel consumption against a normalised output measure — litres per 100 km, or litres per kWh for generator sets — then fit the correctly sized unit and repeat the same duty cycle for a matching period. Compare normalised figures, not total fuel burned.

Where do the competitor descriptions on this page come from?

Publicly available vendor material and generally established characteristics of the electrolysis technology in question. Specifications change; verify current details with the vendor directly before making a purchase decision. Corrections can be sent through the contact page.
Related references

Keep comparing.

No projected, typical or expected fuel-saving figure is published. Actual results vary materially with engine condition, duty cycle, load profile, fuel quality, installation and operating conditions. A controlled field evaluation on your own equipment, with baseline data captured before installation, is required before any commercial projection.

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