ACETOGENIC FERMENTATION

ACETOGENIC FERMENTATION – OPEN KIMONO

TITAN Technology Due Diligence

Open the Kimono — Confidential Technology Disclosure Under NDA

Syngas Project sp. z o.o. | TITAN

1. PURPOSE

This document forms part of the TITAN Technology Series — Open the Kimono, a suite of technical Due Diligence disclosures provided under NDA.

Our public material explains what TITAN does.

The Open the Kimono Series explains how we intend to do it.

Acetogenic Fermentation within TITAN is a C1 biological manufacturing platform.

The initial commercial programme is the production of second-generation ethanol — 2G EtOH from cleaned and conditioned Hydrogen Producer Gas — HPG.

But the Fat Boy fermentation station is not designed around the assumption that ethanol will remain its only useful product throughout the operating life of the asset.

TITAN provides the steel, gas-transfer infrastructure, pressure capability, water, energy, laboratory, controls and operating environment.

The microbial worker and target product can continue to evolve.

The platform remains. The biology improves. The product opportunity expands.

2. THE PROCESS IN ONE LINE

The initial TITAN Acetogenic pathway is:

RENEWABLE CARBON → GASIFICATION → HPG → DEEP CLEANING → CONDITIONING → ACETOGENIC FERMENTATION → 2G ETHANOL

The process deliberately separates heterogeneous carbon from the biological manufacturing environment.

The Acetogenic microorganisms never see a tree.

They do not see wood chips.

They do not see ash, soil or heterogeneous forest material.

They see a prepared gaseous feed.

Gasification prepares the carbon. Fermentation manufactures the molecule.

3. THE MICROBIAL WORKER

Acetogens are anaerobic bacteria capable of fixing single-carbon compounds through the Wood–Ljungdahl Pathway — WLP, also known as the reductive acetyl-CoA pathway.

An important organism in the industrial development of gas fermentation is Clostridium autoethanogenum.

The organism can utilise gaseous C1 substrates including carbon monoxide and carbon dioxide, with hydrogen providing reducing power depending upon the metabolic route and gas composition.

The pathway brings carbon towards acetyl-CoA, from which biological metabolism can be directed towards products including ethanol and other molecules.

4. C1 BIOLOGY CHANGES THE HPG DESIGN

This is an important distinction between TITAN’s Methanogenic and Acetogenic systems.

The Acetogenic worker can consume the C1 carbon already contained within HPG.

CO is therefore not an unwanted intermediate that must automatically be converted before fermentation.

CO is food.

CO₂ is food.

H₂ provides reducing power.

Consequently, we do not apply Water-Gas Shift merely to convert biologically valuable CO into H₂ and CO₂ before the Acetogenic boundary.

That is different from the Methanogenic train, where gas conditioning is directed towards establishing the appropriate H₂/CO₂ relationship for methane production.

The engineering philosophy is therefore:

Do not make every HPG stream identical.

Prepare the right food for the worker receiving it.

5. THE FAT BOY FERMENTATION STATION

Within TITAN, the Acetogenic vessels are referred to as the Fat Boys.

These are large industrial gas-fermentation reactors rather than conventional waste digesters.

The physical scale matters.

The 2+1 architecture is deliberate.

TITAN does not install only the minimum vessel capacity necessary to reach today’s production number.

The third installed Fat Boy provides operability, resilience and development headroom.

6. 2+1 — BUILDING HEADROOM INTO DAY ONE

The additional installed vessel creates several operating possibilities.

The third vessel should therefore not be described simply as a spare.

It is installed biological headroom.

That distinction is important to the long-term value of the fermentation station.

7. TEMPERATURE, pH AND PRESSURE

The Fat Boy is a controlled industrial workplace for microorganisms.

The biological performance depends upon maintaining that workplace inside a defined operating envelope.

The public technical literature around C. autoethanogenum establishes operation at approximately 37°C and mildly acidic conditions around pH 5.5, while gas fermentation can use positive pressure to support gas transfer.

TITAN incorporates these requirements into the fermentation-station design.

Temperature — approximately 37°C

The process operates close to human body temperature. This is biologically significant but also advantageous for industrial thermal integration: we are maintaining a controlled microbial environment rather than a high-temperature chemical reactor.

pH — approximately 5.5

The broth chemistry is controlled to maintain the appropriate biological environment and product pathway.

Pressure — designed in from Day One

Positive pressure can increase gaseous-substrate availability and improve gas-liquid mass transfer.

The final commercial operating pressure will be established through detailed technology-provider engineering.

But the important TITAN design decision is already made:

Pressure capability is built into the platform from Day One.

We do not want future biological improvement to be constrained because the original steel was designed only around today’s minimum operating condition.

8. GAS TRANSFER — WHERE BIOLOGY MEETS ENGINEERING

Supplying HPG to the vessel is not enough.

The microbial worker exists principally in the liquid phase.

Its food arrives principally in the gas phase.

The engineering challenge is therefore to move CO, CO₂ and H₂ across the gas-liquid interface efficiently enough for the biological worker to consume them.

This makes gas transfer one of the critical performance variables of the Fat Boy.

The relevant engineering relationship is commonly expressed through:

Gas Transfer Rate ∝ kLa × Driving Force

where kLa represents the volumetric gas-liquid mass-transfer coefficient.

Biological performance can therefore be constrained not simply by the capability of the microorganism but by how quickly the gaseous food can physically reach it.

That is why TITAN considers sparging, agitation and pressure together.

9. SPARGER + STIRRER + PRESSURE — BUILT IN FROM DAY ONE

The TITAN Fat Boy incorporates an important future-operability principle.

Sparger technology, mechanical stirring and pressure capability are designed as complementary and interchangeable operating tools.

We are deliberately not locking a long-life biological asset into one fixed gas-transfer philosophy.

These mechanisms can be optimised individually or together.

That creates an important future opportunity.

A future microbial strain may consume gas faster.

A future product programme may require a different gas composition.

Improved sparger technology may reduce agitation demand.

Higher pressure may increase gas-transfer performance.

A different operating campaign may favour mechanical mixing.

TITAN does not want the biology of 2040 constrained by the gas-transfer decision made in 2026.

The physical capability is therefore built into the Fat Boy from Day One.

10. PUSHING THE ENVELOPE

The 80,000 L/day ethanol output is the current TITAN design basis.

It is not intended to represent the ultimate physical limit of the installed fermentation station.

The combination of:

2+1 vessels + ~650 m³ working volume per vessel + sparging + agitation + pressure capability + future strain development

creates an opportunity to improve productivity over the operating life of the plant.

Potential improvement can come from several directions simultaneously:

We therefore distinguish between:

Current guaranteed design duty

and

Installed future operating capability.

The first must be contractual.

The second is deliberate engineering headroom.

11. THE BIOLOGY IS A CIRCUS, NOT FRANKENSTEIN

The initial TITAN ethanol programme uses non-GMO biology.

Our philosophy is straightforward.

The biology is a circus, not Frankenstein.

We select naturally capable microbial workers.

We breed, select and adapt.

We provide the correct food.

We provide the correct temperature.

We control pH.

We manage pressure.

We improve gas transfer.

We provide nutrients.

And we progressively teach the worker to perform its job more effectively.

This is not presented as a scientific definition. It is the simplest description of our engineering philosophy.

Better worker + better food + better workplace = better biological performance.

12. THE WORKFORCE CAN IMPROVE AFTER THE FACTORY IS BUILT

This is one of the most attractive characteristics of industrial biotechnology.

The 720 m³ vessel is steel.

Its infrastructure has a long design life.

The microbial worker can develop much faster.

We build the factory once. We keep improving the workforce.

Future biological development is subject to qualification, licensing, process compatibility and appropriate regulatory assessment.

But the platform is deliberately engineered not to prevent that development.

13. NUTRIENTS — FEEDING THE WORKFORCE

The microorganisms require nutrients and trace components in addition to gaseous carbon.

Syngas Project uses Ghent operating consumption as the current planning reference.

The formulation itself is not ours to disclose.

The DD issue is cost and consumption.

The nutrient requirement is a controlled consumable, not a material threat to the TITAN operating model.

14. PLATFORM, NOT ETHANOL PLANT

The Fat Boy is initially configured for 2G ethanol because ethanol provides an immediate large-scale market.

But the biological platform has a wider potential envelope.

Different programmes will require their own technical qualification.

Some may require different organisms.

Some may require different nutrients.

Some may require different product recovery.

Some may require changes to operating conditions.

But they do not necessarily require rebuilding the entire upstream carbon, HPG, utility and fermentation infrastructure.

The fermentation station is the asset. Ethanol is today’s principal programme.

15. MULTIPLE SOURCES OF MISPLACED CARBON

The same philosophy applies upstream.

TITAN begins with forest residues.

Over time, Syngas Project intends complementary platforms to widen the recoverable-carbon envelope.

The objective is not to put every feedstock into the same gasifier.

Different misplaced-carbon problems require different upstream solutions.

But once suitable carbon is converted into a controlled gaseous feed, biological manufacturing becomes increasingly independent of where that carbon originally came from.

16. METHANOGENIC + ACETOGENIC

The Methanogenic Tall Boys and Acetogenic Fat Boys sit side by side within the TITAN architecture.

Their biology is different.

Their gas-conditioning requirements are different.

Their products are different.

But much of their industrial infrastructure is common.

Different biological boundaries. Common industrial platform.

17. RESOURCE RECOVERY

The ethanol is not the only useful output from the Acetogenic station.

The current TITAN architecture considers the complete material and energy balance.

Two Acetogenic islands provide approximately 4 MW of internal energy from header gas.

That residual gas is therefore a resource.

So are heat, water and recoverable carbon.

The design philosophy is:

Do not optimise the fermenter while throwing away the rest of the molecule.

We optimise the platform.

18. SAF IS DOWNSTREAM

The initial commercial programme produces 2G ethanol.

Syngas Project currently plans two downstream SAF refinery platforms in Poland, creating a major potential internal market for that ethanol.

But the sequence remains:

TITAN → HPG → FAT BOY → 2G ETHANOL

and only then:

2G ETHANOL → ALCOHOL-TO-JET → SAF

The Fat Boy does not manufacture SAF.

SAF is an important downstream market. It does not define the fermentation platform.

19. CURRENT DD DESIGN BASIS

20. EU REGULATORY POSITION

The fermentation technology and the regulatory classification of its products must be kept separate.

For TITAN, the principal relevant framework includes RED IIIRED Annex IXReFuelEU Aviation, the Industrial Emissions Directive, and—where genetically modified microorganisms were ever introduced—the EU contained-use framework for GMMs.

The initial TITAN ethanol programme is non-GMO.

We do not claim an additional ReFuelEU premium today simply because the biological worker is non-GMO.

The strategic position is simpler:

We are not claiming an advantage today. We are avoiding an unnecessary potential disadvantage tomorrow.

For downstream SAF, eligibility and incentive treatment ultimately follow the certified feedstock, chain of custody, production pathway, lifecycle GHG performance and final fuel qualification.

21. TECHNOLOGY READINESS

22. DD CONCLUSION

The TITAN Acetogenic system is a C1 biological manufacturing station.

Its current commercial task is straightforward:

Convert prepared HPG into 80,000 litres/day of 2G ethanol per island.

But the engineering philosophy extends considerably beyond today’s production number.

Each Fat Boy provides approximately 720 m³ gross vessel capacity and approximately 650 m³ normal working volume.

The station is installed 2+1.

The biology operates at approximately 37°C and pH 5.5.

The vessels incorporate positive-pressure capability.

Gas transfer can be developed through sparging, mechanical agitation and pressure, with these tools built into the architecture from Day One to preserve future operating flexibility.

That matters because the biology will not stand still.

The next microbial worker may be faster.

It may consume gas more efficiently.

It may tolerate a wider operating envelope.

It may favour another gas-transfer regime.

It may manufacture another molecule.

We do not want tomorrow’s biology constrained by today’s steel.

That is why the third vessel is installed.

That is why pressure capability is installed.

That is why sparger and stirrer capability are installed.

That is why TITAN retains the opportunity to push the envelope.

Upstream, TITAN and the wider ASMARA, AQUIS, IGNIS, STRATA and CUMULUS family are intended progressively to widen the sources of carbon that can be recovered.

Downstream, 2G ethanol provides an immediate route into major markets including SAF.

But neither the original waste nor the final product defines the Fat Boy.

The fermentation station is the long-life asset.

The carbon source can broaden.

The microbial worker can improve.

The gas-transfer regime can improve.

The target molecule can change.

The market can change.

The platform remains.

Recover the carbon.

Prepare the food.

Select the worker.

Control the workplace.

Keep improving the workplace.

Manufacture the molecule the market needs.

TITAN TECHNOLOGY SERIES

OPEN THE KIMONO — TECHNOLOGY DUE DILIGENCE UNDER NDA

Syngas Project sp. z o.o. | TITAN