A cleaning equipment maker in Tokyo, Japan supplying food processing equipment has a 316L spray ball whose drilled holes and thread start carry burrs. The internal channel is small and enclosed, so any medium that enters may never come out, and the buyer needs to weigh that risk before selecting a machine. SurfacePolish supplies finishing equipment, media and compounds across borders, and runs a free sample trial on shipped parts. This brief is written for a buyer in Tokyo working on food processing equipment; it describes equipment, media and a scoped sample review, not a local polishing service.
Which surfaces on this part touch product, and what does each one have to satisfy in roughness, oxide freedom, edge condition and cleanliness?
Which internal surfaces can a mechanical route physically reach, and what happens to the zones it cannot?
What must the finished surface survive in service, including cleaning cycles, and how will that be checked without leaning on a finishing trial?
The first screening question is which surfaces actually touch product, which sit adjacent to it and which are structural. A tank shell, a tube bore, a gasket seat and an agitator face carry different requirements from a mounting frame or a nameplate bracket, and one blanket finish call on the drawing usually means the wrong zones get the most attention. Mark each zone and state what has to be true of it: oxide-free, inside a stated roughness band, flat at a sealing face, unbroken at an edge radius. Product-contact geometry is where a mechanical route is judged, because heat tint, crevices and unreachable internal surfaces decide whether the surface can be brought to the condition the buyer's own specification describes. Surface classification also drives inspection, since reading roughness on a structural frame says nothing about a weld inside a vessel.
Magnetic finishing uses small steel pins or fine media driven by a rotating magnetic field, which lets it work inside small bores, slots and blind features that tumbling media cannot enter, and the pin-like medium is less likely to lodge than a shaped ceramic piece. It suits small precise components rather than large panels or long tubes, and it will not remove a proud weld cap. A dry route, using dry media on a dry polishing machine, is chosen when retained water in a crevice or an assembly is a problem, or when a light cosmetic refinement is wanted on a part that must not be wet. Dry processing generates dust and cannot remove heat tint or oxide, so it complements rather than replaces a wet abrasive stage. The dryer after a wet cycle is a process step, not an afterthought.
| Machine route | Where it fits | What it will not do |
|---|---|---|
| Tub vibrator | Long parts, tube spools, chute sections and small vessels that a bowl cannot accept, with the part repositioned as needed. | Coverage depends on how the part sits in the media mass, so banding and shadow zones are common without a planned fixture. |
| Grinding finishing machine | Removing a proud weld cap, heavy scale and heat tint before any tumbling or refinement stage. | Leaves a scratch pattern that needs refining, can smear oxide, and iron-bearing tooling can deposit free iron on stainless. |
| Magnetic finishing machine | Small precise parts and short internal features such as slots, small bores and blind recesses. | Part size and surface area are limited, large panels and long tubes are out of scope, and it will not dress a weld cap. |
| Dry polishing machine and dryer | Dry burnishing where a wet cycle is unwanted, and drying parts after a wet cycle so crevices do not stay wet. | Removes no oxide and needs dust extraction; a dryer manages water, it does not change the finish left by the wet stage. |
The compound does the cleaning, descaling, foam control and fine abrasive work that media alone cannot, and its chemistry family has to match the alloy. On stainless the critical questions are pH through the cycle and the chloride content of both the compound and the water used to mix and rinse it, because a chloride-bearing fluid on a sensitised or stressed surface is a pitting risk, and a residue left in a crevice is worse. Concentration and flow rate set how fast the work proceeds and how well the load is kept clean; too little compound leaves swarf and sludge on the part, while too much can foam, cushion the media and slow the cut. Water hardness affects how the compound behaves and how the rinsed surface dries. Ask for composition data and set limits.

| Media | Best fit | Watch out for |
|---|---|---|
| Plastic media, cones and triangles | Gentle edge blending and cosmetic refinement on softer non-ferrous fittings, thin sections and delicate parts. | Cannot remove heat tint, mill scale or a weld cap, so it must follow the operation that does that work. |
| Dry media, walnut shell and corn cob | Light dry burnishing and cosmetic refinement where retained water in a crevice or assembly is a problem. | Generates dust requiring extraction, removes no oxide, and leaves a surface character different from a wet abrasive cycle. |
| Ceramic media, angle-cut triangles | Heavier weld-zone refinement and edge blending on 304 and 316L parts where a corner or a toe line has to be reached. | Wears down and changes its effective size class, produces sludge, and can over-round a thin edge or a soft detail. |
| Ceramic media, small cylinders and spheres | General deburring and light radius work on hygienic fittings, with less edge cutting than an angle-cut shape. | Small sizes lodge in gasket grooves and drilled openings, and a sphere refines slowly where oxide is thick. |
Banding, patchy gloss and untouched shadow zones come from the load, not from the medium. Parts sitting in a dead corner of a chamber, a tub fixture that holds a weld away from the media mass, a load that is too full or too empty, or a cycle cut short so only the accessible faces were refined will all produce a finish that fails when the whole surface is examined. The failure is easy to miss because the first glance lands on the brightest area. Detection is systematic: roughness readings at several marked locations rather than one, photographs at fixed angles around the part, and a borescope record of internal surfaces at an agreed view. Comparing a part from the top and the bottom of the load shows the spread quickly.
| Failure mode | Likely cause | How to catch it |
|---|---|---|
| Heat tint or oxide remaining at the weld toe and in the crevice beside it | Cycle too gentle or too short for the oxide thickness, or a medium size class too large to enter the toe line. | Inspect the toe at magnification under raking light against an agreed visual reference, photograph at a fixed angle before and after, and apply the buyer's own free-iron or passive-condition method where specified. |
| A shiny but burnished surface with intact oxide beneath it | Abrasive media smearing the oxide instead of cutting through it, often where a cleaning compound was relied on to do the cutting. | Examine the transition zone rather than the cap, compare a mechanically worked area with a freshly ground control area, and cross-section one sample part under magnification. |
| Gasket seat or sealing face dished so it no longer seals | Over-finishing a machined face, part-on-part contact in an unseparated load, or media hammering a face that should have been masked. | Check flatness of the sealing face with a straight edge, a feeler gauge or a surface plate before and after, and confirm against the sealing requirement the buyer's specification states. |
| Edge or weld toe rounded beyond the specified limit | Dense or large media running too long at high energy, or a part left free to tumble when it should have been fixtured. | Measure edges with an optical comparator or radius gauge and compare with the drawing limit, and measure a weld toe before and after the cycle on the same part. |
Tokyo's manufacturing is concentrated in the eastern wards rather than spread evenly across the metropolis. Ota City states that the number of manufacturing establishments in Tokyo is largest in Ota, and describes itself as a metalworking town of small and medium firms; about 3,500 manufacturing establishments are counted there (2021 Economic Census). The ward's core 'base technologies' are cutting, pressing, forming, grinding, casting, forging and plating, and it reports that these support fields extending from automobiles to medical equipment and aerospace, with Naka-Ikegami concentrating industrial equipment makers and Omori-nishi concentrating electro-mechanical manufacturers. Multi-product, small-lot production and prototyping and R&D work are named as strengths of the district.
The nearest part of that base to this brief is automotive: Ota City states that the ward's base technologies support fields from automobiles to medical equipment and aerospace.
Ota's base-technology list explicitly includes grinding and plating, and the ward reports that its firms are specialised by process step and linked across steps to achieve high-precision, compound machining and short lead times. In a district built on multi-product, small-lot work and prototyping, deburring, edge condition and pre-plating surface cleanliness are process-step decisions rather than finishing afterthoughts, because each downstream firm in the chain inspects what the previous step delivered.
Because Ota's supply chain is organised by process step, a Tokyo buyer should decide first which step owns the edge condition — the machining shop, the grinder or the plater — and specify burr and edge limits on the drawing so the requirement is not re-negotiated at each hand-off.
Freight context: Port of Tokyo (東京港) — container terminals including Oi, with the port's hinterland covering the 40-million-person Greater Tokyo area, Shinetsu and southern Tohoku, Haneda Airport (羽田空港, Tokyo International Airport), located in Ota City's waterfront. The Port of Tokyo is described by the Tokyo Metropolitan Government as an urban general port handling goods needed by the metropolis' industry and residents, with imports accounting for two thirds of cargo volume by in/out direction. The Tokyo Metropolitan Government reports Port of Tokyo container throughput of 4.86 million TEU for 2025, 3.3 per cent above 2024, so containerised receipt of machines and dispatch of sample parts runs through the same port complex.
Chinese industrial machinery entering Japan is classified under the Customs Tariff Law, whose harmonised schedule sets the classification and the General Rate; the Temporary Tariff Measures Law sets a Temporary Rate for certain products, and where the WTO rate or an EPA rate for the goods is lower, that lower rate is applied. The applied rate therefore depends on the exact commodity code, and on whether an economic partnership agreement covers the goods and their origin, so a landed-cost figure has to be confirmed against the specific machine before it is quoted. Japan Customs' monthly country table for August 2026 records exports to China of 1,809,133 million yen and imports from China of 2,361,239 million yen, the largest single-country line in the Asian table, with imports from China up 22.5 per cent year on year.
Documentation and technical communication are Japanese-language in practice: JISC states that the documents submitted for JIS certification-body accreditation must be written in Japanese, and drawings, inspection sheets and purchase specifications from Japanese buyers are normally issued in Japanese. Import declarations are filed in triplicate and importers commonly use licensed customs brokers, so the commercial invoice, packing list and origin documents must be complete and consistent with the declared commodity code. As general industry practice in Japan, industrial buyers qualify a supplier on documentation, quality-management evidence and a defined inspection standard before volume orders, and expect a named Japanese-speaking contact for technical and commercial follow-up.
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.
Acceptance has to exist before finishing begins, otherwise every batch becomes a negotiation about appearance. Write the requirement per zone: which surfaces are product-contact, what roughness band applies to each, which edges keep a radius, which faces stay flat, what cleanliness and residue condition is required, and which features come back untouched. Name the inspection method and instrument for each requirement and the person who accepts or rejects. Where a requirement comes from a design code or a customer specification, the buyer's own quality function states and verifies it. A first article fully inspected and retained as the physical reference removes most later argument, particularly on welds, where a kept part says far more than a written description. Re-confirm the requirement whenever drawing, material or upstream fabrication changes.
A sample trial reports what was observed on the parts tested under the settings used, and that is the whole of it. It cannot promise a roughness value, an edge dimension, a cycle time, a throughput, a cost per part or a delivery date, and it does not qualify a machine, medium, compound or process for food contact, hygienic service or any regulated application. A handful of parts does not represent production variation in material, welding or fit-up, and performance in service, including corrosion behaviour after cleaning and any passivation step, is not established by a finishing trial. What a trial does give is evidence: how a route behaved on real geometry, which zones it reached, what the surface looked like, and where a mechanical route runs out of reach. The decisions that follow belong with the buyer.



No. Mechanical finishing removes material and can strip oxide and free iron from the surfaces it touches, but it does not restore a passive film and it does not perform a chemical passivation step. Passivation, whether by a paste, a bath or an electrochemical process, is a separate operation with its own method and verification that belongs to your own specification and supply chain. Mechanical work can leave a surface in better or worse condition for that step, which is one reason media and compound selection on 316L should consider what comes afterwards rather than only the finish you see at the end of the cycle.
No. SurfacePolish supplies mechanical finishing equipment, media and compounds across borders and runs a free sample trial on parts sent to the factory in Xiamen. Electropolishing is an electrochemical operation that is neither supplied nor performed, and no chemical pickling or passivation step is offered either. Where the two routes are compared on this page it is to help a buyer decide what they actually need, not to present a mechanical process as a substitute. If your specification requires an electrochemical finish, that work has to be sourced and verified by you.
Heat tint is oxide, so it is removed by cut rather than by cleaning. Ceramic media with an aggressive shape and bonding, or a grinding stage followed by refinement, are the usual mechanical answers on accessible weld zones. The limit is reach: a tint line that runs into a toe, a crevice or a small bore may survive a cycle that polishes the cap, which is why the toe should be inspected rather than judged by the shine of the weld face. Media size, shape and cycle energy must suit the oxide thickness. A trial on your own parts shows what was removed on the geometry tested.
Use Tokyo, Japan 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.
Tokyo buyers work to JIS, maintained by the Japanese Industrial Standards Committee, with the mechanical engineering and ferrous materials divisions covering machined metal parts; the JIS Mark scheme provides third-party product certification, and foreign exporters are eligible to apply. Drawings and inspection sheets issued by the customer, not a generic finishing standard, define the acceptance criteria for burrs, edge radius and surface texture.
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 Tokyo.
The buyer must deburr the drilled holes and the thread start while keeping the internal channel clear of media.
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-0804; 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-0804 · revised 2026-09-29 · cross-border equipment, media and scoped sample review. City context is sourced and cited above.
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