Industrial flare stack at night
Zeolite Adsorption Regenerable Media Pilot to 18,000 m³/h

Tailored zeoliteadsorption

One platform, engineered per stream: capture at ambient temperature, release on gentle heat, reuse, cycle after cycle.

99.9% capture demonstrated 1 ppm-class outlets · ppb in CO₂ Regenerable, no consumables

Krajete's technology is adsorption on tailored zeolite media: frameworks tuned to trap target molecules, NOx above all, from industrial gas at ambient temperature, then release them as a concentrated, recoverable stream under gentle heating while the media return to service. No reagent dosing, no catalyst inventory, no process-water circuit. This page covers the physics, the media, the hardware (50–18,000 m³/h), the measurement discipline, and how the technology licenses for scale-up.

How does adsorption
capture NOx?

A zeolite is a crystalline framework laced with pores a few molecules wide, a vast internal surface folded into a small volume. Molecules that fit the pore geometry and chemistry are held there by physical binding: strong enough to strip NOx out of a moving gas stream, gentle enough to reverse. That is the whole trick, and it has three consequences engineers care about:

Ambient temperature
is enough

Physical binding needs no reaction window, no 250 °C to maintain, no injection-temperature corridor to chase through load swings.

Selectivity is designed,
not dosed

Pore size and framework chemistry decide what is captured; the media is the selectivity. Nothing is injected into your gas.

The bond reverses
on demand

Moderate heating releases the captured NOx as a concentrated stream and restores capacity, the media survive the cycle, which is why there is no reagent bill and no catalyst change-out.

Zeolite framework

traps NOx selectively

Gas
stream

Concentrated
release

Concentrated enough to handle simply: neutralise it, or recover it.

Gentle heat

Why “tailored” is the operative word

1

Target species

NO/NO₂ ratios, SOx co-capture, H₂S, trace acids, pore chemistry
selected for what your gas actually carries.

2

Matrix reality

Humidity, temperature, dust load, tolerance engineered in,
because field gas is never lab gas.

3

Co-contaminant strategy

Guard-bed configurations protect the working media where
aggressive co-species would shorten its life.

4

Lifetime economics

Saturation and lifetime modelled from your data, media exchange
cadence becomes a budget line, not a surprise.

Every cycle teaches more

Loaded media go back to the laboratory for composition analysis under chain-of-custody, every cycle teaches the model more about your stream.

Inert gas system with pressure gauges and a sample cylinder

The science
got harder.

The promise
got simpler.

Fifteen years of adsorption research, down to one sentence:
send us one sample, we'll tell you what's really there.

What happens
at regeneration?

When a bed approaches saturation, it is taken offline — flow shifts to a parallel bed, and heated gently. The captured NOx leaves as a small, concentrated stream; the bed cools and returns to service. Two things about this step matter commercially:

The energy asymmetry

SCR must heat your entire flue flow to reaction temperature, continuously. Regenerative adsorption heats only a saturated bed, briefly, on a schedule, in current field practice a fortnightly-class cadence tuned to load. You pay to warm a vessel, not a river of gas.

The desorbate is a decision, not a burden

The concentrated stream can be neutralised conventionally, or routed toward recovery as nitric-acid / fertiliser feedstock where site economics justify it. Destruction is optional; recovery is possible. Which path pays is a finding of the feasibility study, not a promise of this page.

What hardware exists today?

Class Throughput Character Typical use
Bench drum 50–500 m³/h ~500 W power draw, bottom-up suction, van-transportable Slipstream trials, conditioning studies, first field proof
Parallel-bed system to ~10,000 m³/h Containerised, alternating beds, capture continues through regeneration Extended pilots, small full stacks
Triple-chamber unit to 18,000 m³/h Largest current class; slipstream or full-stream on smaller stacks Pilot-scale delivery ceiling, the honest top of our build scope

How do we know
the numbers are true?

Because the measurement discipline is built for scrutiny, not marketing: field analyzers at inlet and outlet (O₂ / CO₂ / NO / NO₂ / SO₂ class), high-frequency time series rather than spot readings, daily zero/span calibration with archived certificates, documented detection limits, and chain-of-custody on every sample and media lot. Loaded media return to the Pasching laboratory for composition analysis.

Every pilot runs on a structured data room, methods, calibrations, raw series, daily logs, KPI dashboards, because our reports end their lives in permit files and capital committees, and they are written knowing it.

Where authorities require accredited regulatory measurement, we work alongside your certified measurement body, their numbers, our interpretation.

How does this scale
beyond pilot?

Through your engineering partner, as a package: the design basis (validated ranges, KPI bands, integration engineering from your pilot), the media supply agreement, the licence to the process family, protected by patents, and Krajete's supervision through commissioning and beyond. Your EPC builds what has already proven itself on your gas; we remain responsible for the science for the life of the system.

For engineering firms and corporate development

Licensing conversations start the same way client projects do — with a measured stream and a feasibility case.

Go deeper

The evidence

Instrument traces, honest curves, real streams.

The literature

Peer-reviewed publications behind the platform.

The comparisons

SCR vs SNCR vs adsorption, in engineering terms.

The science is ready.

The question is
your gas.

One sample answers it, report in four weeks, refunded if no actionable pathway.