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Make it watertight

A seal that holds tight

Plasma prepares surfaces so sealants and gaskets bond and stay watertight through thermal cycling and vibration.

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Benefits How it works Materials Equipment Products Process Industries FAQ Evaluation
01

Understand

The symptom, what plasma changes about it, and by what mechanism.

The problem we solve

The seal that eventually fails

What if the problem isn't your product, but the surface receiving it?

A sealant that peels off a profile. A gasket that lets in moisture after a few months. A film weld that leaks. Watertightness doesn't just depend on the sealing product itself — it first depends on the bond between that product and the surface. On smooth or low-energy substrates, that bond is missing. Plasma restores it.

What changes for you

Plasma, in practice

A bond that lasts

The sealant or gasket truly bonds to the surface, and withstands cycling and vibration.

On difficult substrates

PVC, composites, elastomers and metals that won't bond without preparation.

Reliable film welds

For packaging, a preparation that strengthens seal integrity.

Clean process

Dry activation, no chemical primer.

Automotive suppliers, medical device manufacturers and industrial printers run their parts through our processes. Over [x] parts treated in our facilities since [y], [z] processes qualified in production.

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How it works

The principle, no jargon

Plasma activates the surface exactly where the sealant or weld needs to bond. Surface energy rises, contamination is removed, and the sealing product forms a solid bond instead of a simple contact that degrades over time and under stress. On the equipment side, this step is carried out by the surface activation systems used before sealing.

Three-state diagram of the mechanism
Three-state diagram: untreated surface, plasma in action, activated surface. [replace with the final artwork]

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Treatment demonstration on [material], [x] seconds, unedited.
02

Choose

Results by material, the equipment, the limits and the integration.

What the literature reports

Results by material

MaterialBefore treatmentAfter treatmentEffect durationMethod
PVC 37.9 mN/m 45 to 66 mN/m a few days test ink, ISO 8296
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Silicone (PDMS) 20.1 mN/m 45 to 66 mN/m a few hours to 3 days test ink, ISO 8296
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Polyamide (PA 6) 70° 21 to 28° a few days goniometer, sessile drop
Have this material tested
PP 30.5 mN/m 45 to 66 mN/m a few days test ink, ISO 8296
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Carbon/epoxy composite ≈ 109° ≈ 32° a few days goniometer, sessile drop
Have this material tested

Documented order-of-magnitude figures, not our own measurements: pre-treatment values are the critical surface tensions from the Accu Dyne Test reference tables, the post-treatment range for polymers — 45 to 66 mN/m — is the one reported for atmospheric-plasma-treated polypropylene by Šrámková et al. (Polymers 13, 4173, 2021), Leroux et al. (J. Colloid Interface Sci. 328, 412, 2008) and Shaw et al. (Plasma Sources Sci. Technol. 25, 065018, 2016). On polymers that already start high — polyamide, polycarbonate, epoxy composite — the gain does not read in mN/m but in contact angle: PA 6 from 70° to 21–28° (Károly et al., Polymers 10, 1380, 2018), PC from 81.5° to 38–46° (Kelar et al., Polymer Testing 67, 428, 2018), as-moulded carbon/epoxy composite from 109° to 32° (Sun et al., Polymers 11, 139, 2019). Checking is done with test inks per ISO 8296, with a goniometer for the angles. Your results depend on your exact material, its initial cleanliness and your line parameters. We verify them on your own part before any commitment.

The equipment for this application

What prepares the joint

Activation equipment In-line integrated stations Matching table
The equipment

What performs this step

Every unit below handles the same application, but not the same part: geometry, width and throughput decide. We point you to the right one after a first conversation.

Treat

DBD plasma reactor

Our signature reactor, sized for demanding geometries and for repeatability run after run.

See details
Treat

Compact plasma torch

A nozzle that blows plasma straight onto the area to be treated. Mounts on a robot arm or on a fixed station.

See details
Treat

Precision cold plasma torch

A millimetre footprint, for small-area samples and sensitive substrates.

See details
Automate

Specialised treatment stations

For materials that cannot be treated like a part: powders, granulates, fibres.

See details

See all nine machines and the comparison table

What to know first

Where the process stops

A process that suited everything would truly suit nothing. Here are the cases where atmospheric plasma is not the right answer — better known before the trial than after.

  • Enclosed geometries. Atmospheric plasma treats what the source can reach. Deep cavities, blind channels and inaccessible internal faces stay untreated. Usable depth observed: [x] mm.
  • The effect is not permanent. Activation decays over time. On [material], [x]% of the effect remains after [y] days in shop-floor conditions. The next step has to follow the treatment closely enough.
  • Heat-sensitive materials. Surface temperature stays low, but not zero: about +15°C above ambient at the treatment point. Below [y]°C of thermal resistance, a trial is required.
  • Heavy contamination. Plasma removes thin-film organic contamination, not thick grease or a saturated mould-release film. Beyond [x], prior degreasing is still needed.
At your line speed

Integration in production

The treatment sits just before the critical step, on your existing line. Three parameters decide feasibility: line speed, width to cover, and the distance between source and part. Here are the orders of magnitude; we recompute them on your geometry.

Line speed 6 to 120 m/min

Maximum travel speed for full effect in a single pass.

Treated width 15 to 25 mm

Per source. Beyond that, sources are placed side by side.

Working distance 10 to 25 mm

Between nozzle and surface. Tolerance on this distance: ± 5 mm around the chosen setpoint.

03

Decide

The process, your questions, and how to start a trial.

Our approach

From first call to validated process

01

Diagnosis

48 h · free of charge

You describe your part and your goal. We qualify your case and get back to you within 48h.

02

Validation

[x] weeks · [y]

We treat a sample at our Québec facility, characterize the effect achieved, and document the process parameters.

03

Integration

Project-dependent · detailed quote

We define the solution: service treatment, a Plasmino® reactor, or a custom reactor integrated directly into your line.

A real case

What it changed in production

A [client sector] in [location]

The problem

Describe the symptom seen in production and its cost: [x].

What we did

Describe the intervention: equipment, position in the line, treatment time [y].

The result

Describe the measured gain, with the before and after figure: [z].

Case anonymised at the client’s request. Technical details available under NDA.

Relevant industries

Where this application matters

Construction Automotive Transportation Packaging Food & Beverage
Before you call us

The questions that block a decision

The ones production managers and buyers actually ask, not the ones that suit the seller.

How long does the surface stay activated after treatment?

The effect decays over time, at a rate that depends on the material and on storage conditions. On [material], we measure [x] mN/m right after treatment and [y] mN/m after [z] days in a sealed bag. In open shop-floor conditions, expect [x].

Does the treatment survive thermal cycling and vibration?

Answer to be written with an engineer: [x].

Is it compatible with my production rate?

Maximum travel speed for full effect in a single pass is 6 to 120 m/min per source, over a width of 15 to 25 mm. Beyond that, sources are placed side by side or multiplied. We validate this calculation on your geometry before any quote.

Do I need air extraction or ozone treatment?

Yes, in most cases. Air or nitrogen plasma at atmospheric pressure generates ozone and nitrogen oxides, which must be captured at source rather than diluted into the workshop. Recommended extraction rate: [x] m³/h per source. We size this during the process study.

Which materials do not treat well?

To be completed: [x]. Name the families where the result is disappointing or unstable, and say why. A page that admits no limits reads as marketing to an engineer.

What electrical power should I plan for?

Expect 1 to 2 kW per source, at 230 V single-phase (400 V three-phase above that). Add gas supply (dry compressed air, 35 to 60 L/min per source) and extraction. The full balance is part of the integration study.

How do I check the treatment worked?

With test ink, in seconds and without instruments: the ink spreads above the target surface energy threshold and beads below it. We supply the test inks and the threshold to aim for on your material/process pair, namely 38 mN/m for printing, 40 to 44 mN/m for bonding and lamination.

What is the ballpark budget?

It depends on the width to treat, the throughput and the degree of automation. Expect [x] to [y] for an in-line integration, and [z] for a standalone station. Treatment as a service, with no capital outlay, remains an option for small runs.

Often paired with

The neighbouring steps

Cleaning Adhesion All applications
PDF resource · [x] pages

Qualification checklist

The [x] points to check before changing your process: material, geometry, throughput, quality control. One page to print and take to the shop floor.

A seal that never lets go.

An engineer’s answer within 48 business hours on what plasma can do for your surfaces. No commitment, just clear answers from an expert.

What you get

  1. Within 48 h : an engineer’s answer on the feasibility of your case, by email or phone.
  2. If the case moves forward : you send us a part, we treat it in our Quebec City facilities within [x] weeks.
  3. You receive : the treated part and a report of the parameters used, so you can test it yourself.

Qualification sample treatment: [x]. Shipping [y].

Full form (attach a drawing or a photo) Discover our support

Response within 48 hours. No commitment. Technical discussion with an expert.

10, rue de l'Espinay, E0170
Quebec City, QC G1L 3L5, Canada
[email protected]
Free assessment