A linear motion component supplier in Montreal, Canada in robotics and automation has a hardened steel carriage block whose ground ways and mounting face must be left as they are while its edges are broken. SurfacePolish supplies finishing machines, media and compounds across borders and offers a free sample trial: representative blocks travel to Xiamen and return with observations plus a proposed media, compound and cycle direction for the buyer's own evaluation. This brief is written for a buyer in Montreal working on robotics and automation; it describes equipment, media and a scoped sample review, not a local polishing service.
Which alloys and tempers run through the shop, and how will media, machines and compounds be purged between aluminium, stainless and steel work?
What does the finishing step actually have to deliver before the next operation, whether that is assembly, anodising, painting or a functional test, and who defines that requirement?
What is the size and mass spread inside one part family, and does one machine have to cover both a heavy casting and a small gripper jaw?
The mechanism that raised the burr matters more than its size. Milling a pocket leaves a rolled edge that folds over the top of a wall; turning leaves a fine feather on a bore lip; EDM leaves a recast layer that is hard, brittle and behaves differently under impact media; cross-drilling leaves a burr inside the intersection of two passages that no external media stream reaches; laser cutting leaves dross on a bracket edge; a weld leaves spatter and a heat-affected zone. Each of those responds to a different combination of energy, media shape and time. Ask for the routing that produced the part and not only the drawing, because a cycle written for a milled edge will under-work a recast layer while rounding a turned bore lip long before the recast layer has gone.
Inside any machine, the way parts are carried decides whether the finish is even and the geometry survives. Parts left loose together nibble each other along contact lines and produce bright impact marks on visible faces. Cradles that follow a casting, compartments, dividers and clip-on carriers present the same face to the media on every part and protect machined lands. Load ratio matters as much: too many parts in the charge reduces circulation and leaves shielded pockets unworked, while too few allows parts to be thrown against the chamber wall. Build the arrangement around the most delicate and the heaviest part in the family rather than an average one. Where a buyer plans automated loading or transfer between operations, the fixture interface, the orientation and the pick points belong to the buyer's own engineering scope and are defined and verified on that side.
| Machine route | Where it fits | What it will not do |
|---|---|---|
| Barrel finishing machine, rotary barrel tumbling | Gentle deburring of small fragile parts and mixed batches of screw-machine components with a generous compound flow | Long cycles, no visibility while running, and internal features can collect media and compound that must be retrieved at unload |
| Vibratory finishing machine, bowl type | General deburring and refinement of machined housings, plates and brackets that fit and can tumble without racking, with easy mid-cycle inspection | Continuous part-on-part contact and no access to deep internal passages; thin plates and finished mounting faces need separation |
| Tub vibrator | Long parts such as linear-axis beams, manifolds and welded frames that cannot rotate in a bowl | Lower energy per unit area so heavy burrs take longer, and large tubs need floor space and a reliable part support method |
| Disc finishing machine | Fast, high-energy edge breaking and surface refinement on small robust parts and uniform batches of gripper jaws, blocks and fittings | High impingement and edge-loss risk on thin, soft or aluminium parts, and the geometry must suit the disc working gap |
Shape decides what the marks look like, often more than the material label does. Spheres and rounded shapes leave overlapping craters, which suits a general deburred or satin appearance but reads as a peened, dimpled surface. Angle-cut triangles, cylinders and cones strike along their axis and leave a linear pattern, which suits visible covers, panels and brackets where a direction is wanted. The mass of the media then sets the cutting power, so a heavy ceramic charge removes a milled burr faster and also reaches edges sooner. On aluminium, a coarse angular charge can fold or smear the surface instead of cutting it cleanly. Choose the shape against the appearance the part must carry and the edges that must keep their radius, then keep the shape class stable, because a charge that has worn into rounded forms behaves differently from a fresh one.

| Media | Best fit | Watch out for |
|---|---|---|
| Dry media such as walnut shell and corn cob | Drying assistance and light surface polish after a wet cycle, particularly on parts with pockets and threads that must not stay wet | Does not deburr or refine metal significantly, generates dust, and must not be treated as a cleanliness step |
| Plastic cylinders and cones in a harder, denser grade | Longer cycles on mixed batches of small fittings and screw-machine parts where a repeatable light edge break is wanted without ceramic impact | Can float or segregate by shape in a bowl, and cylindrical forms can wedge in slots, keyways and cross-drillings |
| Fine ceramic or porcelain shapes in a small size class | Edge blending and surface refinement after a cutting stage, and reaching tighter external geometry on machined housings and brackets | Small sizes enter and retain in tapped holes and fine slots, and media wear shrinks the charge so the finish drifts over its life |
| Heavy-cut ceramic, angle-cut triangles in a coarse size class | Removing a substantial milled or turned burr from open external edges and pockets on steel and stainless automation parts before a refinement stage | Cuts functional edges and corners aggressively, leaves a coarse surface on aluminium, and lodges in slots whose width approaches the media section |
Edge rounding beyond limit is the failure that most often turns a finished automation part into scrap, because the features that round first are the ones that set position. A bearing bore lip, a dowel hole edge, a seal groove corner or the edge of a ground mounting land can lose a fraction of its geometry under a high-energy charge and still look uniform and polished. Coarse or dense media, an over-long cycle and a heavy load ratio all accelerate it, and aluminium rounds faster than stainless under the same conditions. Because the damage is invisible to a casual look, checking has to be deliberate: measure the feature before and after with an optical comparator, a radius gauge or a moulded replica, and compare the result with the limit on the drawing. Masking, a shielding fixture or a gentler medium are the usual mitigations to test.
| Failure mode | Likely cause | How to catch it |
|---|---|---|
| Thin plate, cover or housing distorted, bowed or dimensionally drifted after the cycle | Tumbling load on an unsupported thin section, part-on-part contact, or heat and pressure from a high-energy route | Measure flatness, wall thickness and critical dimensions at the same marked points as the pre-process baseline, on a surface plate or CMM |
| Impact marks, dents or a peened, rippled appearance on a visible aluminium face | Charge mass or load ratio too high, light parts left loose among heavy neighbours, or a soft alloy run on a route chosen for steel parts | Look for repeating mark patterns under angled light, compare a part run loose with the same part compartmentalised, and review the batch mix and load recorded for the lot |
| Rust spotting on stainless parts appearing hours or days after finishing | Ferrous transfer from steel media, a machine or tooling that has held carbon steel, or insufficient corrosion inhibition and drying | Inspect after a defined dwell time rather than immediately, look for pinpoint spots on and near edges, and trace the media and machine history for the lot |
| Compound film, smut or tenacious residue left on a face or in a bore | A film-forming or silicate-bearing compound, insufficient rinse volume, or drying a part before it is genuinely clean | Magnify the suspect surface, wipe a defined area with solvent against a clean reference, and confirm with the buyer's own cleanliness method |
Montreal's industrial identity is anchored in aerospace, and the province-level cluster is organised, funded and internationally visible: when announcing defence-supply-chain funding at Aéro Montréal's 2026 International Aerospace Innovation Forum, the federal government described Aéro Montréal as the "Quebec aerospace industrial cluster" and paired it with Propulsion Québec for electric and smart transportation and with Sous-traitance industrielle Québec (STIQ) for manufacturing businesses. The same announcement shows how deliberately the region builds supplier capability, with CAD 4,495,000 of non-repayable federal funding to prepare Quebec SMEs for defence-sector requirements, and STIQ's share explicitly targeted at "manufacturing businesses in order to prepare them to meet defence sector requirements". Manufacturing is broad beyond aerospace, and the federal funding is deliberately aimed at the supplier tier: STIQ's contribution is targeted at manufacturing businesses across Quebec to prepare them to meet defence sector requirements, which is the metal-fabrication, machining and process-equipment base that Greater Montreal depends on for aerospace and transport-equipment work. The region's economic development agency also runs formal industrial clusters, including a green and smart buildings cluster whose members develop and manufacture architectural products and innovative building technologies, plus a life sciences and health technologies cluster.
The nearest part of that base to this brief is machinery: Sous-traitance industrielle Québec (STIQ), a Quebec manufacturing association, received CAD 1,995,000 to offer services to manufacturing businesses to prepare them to meet defence sector requirements, and the provincial industrial-cluster program supports manufacturing across the region.
Aerospace and defence supply chains are the sharpest finishing driver in Montreal: structural and engine components, hydraulic and pneumatic fittings, and machined aluminium and titanium parts are specified with controlled edge condition, surface integrity and cleanliness because burrs and residual media create foreign-object-debris and fatigue risks. The cluster funding is explicitly aimed at moving SMEs into defence supply chains, and defence primes impose documented process control, which pushes suppliers toward repeatable, verifiable deburring and surface conditioning rather than manual operator judgement. Architectural-products and metal fabrication work in the same region adds a second, more cosmetic requirement set, where a uniform brushed or satin finish on visible stainless and aluminium is the acceptance criterion.
A Montreal aerospace or defence supplier should first settle whether the finishing step has to be a controlled, traceable process that can survive a prime-contractor audit, including media lot control, compound chemistry control and records, because adding those controls after machine selection is expensive. The second question is language and documentation: quotations, machine labelling, manuals and training material for a Quebec plant normally have to be usable in French, and that should be settled before order rather than during commissioning.
Freight context: Port of Montreal, Montréal-Trudeau International Airport, Mirabel (Mirabel airport and industrial park), CN and CPKC rail corridors. Montreal sits on the St. Lawrence corridor and combines a container and bulk seaport with a major international airport and a dedicated aerospace industrial park at Mirabel, which is what makes the region workable for both importing a machine and shipping sample parts to a supplier. For a cross-border equipment sale, the practical sequence is that machines move as sea freight into a St. Lawrence or coastal container port and are trucked or railed to the plant, while test parts and media samples can move by air through Montréal-Trudeau.
The customs authority is the Canada Border Services Agency (CBSA), and importers of commercial goods must work through the CBSA Assessment and Revenue Management (CARM) system, which is where registration, the duties-and-taxes calculator, advance rulings and national customs rulings, and the commercial accounting declaration (CAD) are handled. Documentation expectations are explicit: "You must provide proof of country of origin when you import goods into Canada and, in some cases, your goods must also be clearly marked", the invoice or sales receipt must carry "a complete description of the goods", "the selling price" and "any conditions and terms of the sale", and the value for duty must be declared in Canadian currency only. Duties and taxes are layered rather than single: customs duty on the tariff item, the Goods and Services Tax calculated on the duty-paid value, and potentially excise duty, excise tax, surtax or safeguard measures. Importers must also clear non-tariff gates: goods must be admissible, some goods need permits, certificates or inspections from other federal departments that the CBSA applies on their behalf, controlled goods under the Defence Production Act require consultation with the CBSA and Global Affairs Canada before import, and "Goods manufactured or produced wholly or in part by forced or prison labour are prohibited from entering Canada", with due diligence resting on the importer. For electrical machinery, the practical conformity route in Canada is certification of the product to Canadian electrical safety standards by an accredited certification body rather than a self-declared CE-style mark; buyers should confirm the specific certification body and mark required before shipment. For a first shipment of a finishing machine or a media/compound sample lot, the fastest way to remove classification and valuation uncertainty is to use the CARM portal to request an advance ruling for tariff classification and origin.
Canada's national standards system is coordinated by the Standards Council of Canada (SCC), which accredits standards-development organizations, certification bodies and testing laboratories; the SCC and CSA Group websites could not be retrieved for citation during this research, so this entry rests on the accessible Government of Canada and CCOHS material below. The Canadian Centre for Occupational Health and Safety describes standards as documents that "establish specifications and procedures to ensure the reliability of the products, methods, and services people use every day on the job", and Innovation, Science and Economic Development Canada (ISED) maintains the federal entry point for "[t]he different types of standards and certifying bodies that can be used by your business". In practice a Canadian buyer of finishing equipment references (a) the Canadian electrical safety certification of the machine and its control panel, (b) provincial occupational health and safety regulation for machine guarding, lockout and dust/ventilation control, which in Canada is enforced by the provinces rather than by a single federal inspectorate, and (c) the buyer's own customer-specific surface finish, edge-condition and cleanliness specifications, which are contractual rather than national standards. Finishing-process standards in the ISO 25.080 machine-tool and ISO 8500-series surface-preparation families are the usual technical reference points, but product-level standards sold by CSA Group were not retrievable for verification here.
SurfacePolish supplies from Xiamen, China. The buyer's own destination rules, conformity marking, tariff classification and documentation responsibilities stay with the buyer; confirm them against the authorities named above before ordering.
Roughness is only comparable when the measurement conditions are fixed. State the location by distance from a reference feature, the traverse direction relative to the machining or media marks, the cut-off and the evaluation length, then use the same conditions for the first article and for production checks. A reading taken along a bore axis and one taken around its circumference describe different surfaces. Curvature limits how a skid or shoe sits on the work, particularly in a small bore or on a narrow land, and a poorly seated pickup is not evidence. Take readings at several stations, because the ends of a part and the middle of a part often differ. Where visual appearance is what the customer sees, pair the number with a physical reference viewed at an agreed distance, since a surface can measure inside a band and still look wrong.
Send parts that represent the real range rather than one convenient sample. Include the part with the tightest hole, slot or cross-drilling, the thinnest unsupported section, the functional surface that must not be touched, and at least one part in its normal as-received condition with the usual burr, chips and cutting oil. Cover every alloy and temper in the family, because aluminium and stainless behave differently under the same charge. Add a coupon of the same material with a known starting roughness so a measurement can be compared before and after. Supply a marked-up drawing naming the controlled surfaces, edge limits and any cleanliness requirement, and a short note on what the part does in service. Several pieces let more than one stop point be examined; one part answers one question.



A bore cannot be protected by the cycle alone; it is protected by what is decided before the cycle. Masking or plugging the bore, keeping the part out of contact with heavy neighbours, choosing a lighter route and shortening the cycle all reduce the load the bore sees, but none of them guarantees a dimension. That is why the bore must be measured before and after at the same points, with a bore gauge or CMM, and compared with the drawing limit. SurfacePolish does not promise a tolerance or a result; the trial reports what was observed on the parts tested, and the dimensional acceptance decision stays with your own metrology and quality functions.
Change one variable at a time. Hold the machine, load, compound, cycle time and part mix constant and change only the medium. Use parts from the same production lot so the only difference is the variable under test. Label the pieces before they run and have the returned parts judged in one session, under the same light and at the same marked measurement points, rather than one at a time. Where several people judge appearance, ask each to rank the pieces before discussion. Where a cut stage is followed by a refinement stage, score the stages separately, because a good final result can hide an unremoved burr or an over-coarse first stage.
A trial shows what a given machine, charge and setting did to the parts tested, which is useful evidence but not a sizing study. Machine size depends on the largest envelope and mass in the family, the smallest part that must meet the same appearance, the load ratio you intend to run, and how many stages the part needs. Those are planning questions that belong in a line-concept discussion alongside the trial result. A part tested on a small machine may behave differently in a larger chamber, and a part run in a full production load may come out differently from one run in a light trial batch. Record both the settings and the load.
Use Montreal, Canada as the destination on the enquiry and state whether the deliverable is equipment, media and compound, a representative sample review or a line concept. A destination does not imply local stock, a local service point or a local delivery time.
A Montreal buyer works in French for documentation and in the Quebec occupational health and safety regime, which is administered separately from the other provinces, alongside Canadian electrical safety certification of the machine. Where the buyer is in the aerospace or defence supply chain, the governing requirement set is the prime contractor's process specification and its audit of the finishing operation, including traceability of media and compounds, rather than a single national finishing standard.
Sources were retrieved on 2026-09-29 and describe the local industrial and trade context only. They do not evidence any SurfacePolish project, shipment, installation or service in Montreal.
The buyer needs the milled and tapped edges broken lightly without removing material from the ground ways or softening the mounting face condition.
Send the material, dimensions, approximate weight, batch quantity, the incoming condition and photographs of the difficult features. Mark which features must not be contacted by media and state how the result will be inspected. This form carries source reference PSEO-0120; quote it if you prefer an additional manual reference.
Open the SurfacePolish enquiry form Email a prepared enquiry
No price, lead time, certification or result is promised here. Confirm whether a sample trial is available for the specific part and what the trial can and cannot show.
Page PSEO-0120 · revised 2026-09-29 · cross-border equipment, media and scoped sample review. City context is sourced and cited above.
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