In Tokyo, Japan, an industrial machinery buyer needs a hardened die insert brought to a bright cavity finish without rounding the parting-line edges or disturbing the shut-off face. SurfacePolish is a cross-border supplier of finishing machines, media and compounds, and its free sample trial returns the tested parts with observations and a proposed media, compound and cycle direction for the buyer's own evaluation. This brief is written for a buyer in Tokyo working on industrial machinery; it describes equipment, media and a scoped sample review, not a local polishing service.
How much stock may the sequence remove before datums, seal faces, flatness or edge form fall outside their allowance?
What batch size, part mix and media maintenance routine will production really run, and does the trial describe that condition?
How will the finish be measured or viewed, with which instrument, angle, cutoff and master, and who holds that master?
Two parts with the same alloy name can behave differently under the same media. Hardened tool steel resists cutting and holds a polish longer, while annealed low-carbon steel cuts quickly and can smear under high contact pressure. Austenitic stainless work hardens, so a heavy first pass can leave a skin harder than the bulk, after which fine media stop removing material and only burnish it. Aluminium and brass are soft enough that media pressure rolls metal instead of cutting it, producing a wave rather than a cut. Ask for the actual condition - hardness range, heat treatment, cold work, and whether the part was cast, forged or machined from bar - then confirm it on a sample rather than trusting a datasheet to describe the surface the media will meet.
Media geometry decides what the charge can reach and how hard it works a surface. Large angle-cut cylinders and triangles cut quickly on open faces, but they cannot enter a slot narrower than their section and they leave a deeper pattern for later stages to erase. Small spheres or ovals reach detail and produce a softer, more uniform colour, at the cost of much slower stock removal. As a working rule, keep media below the smallest opening the charge must clear, and confirm that a medium can sit against the surface being finished instead of bridging across it. Media that is too small for the load can also float above the working mass and waste the cycle.

| Media | Best fit | Watch out for |
|---|---|---|
| Dry media - walnut shell | Dry polishing, light deburring and lubricity on parts where a residual oil film is acceptable, and drying or lustre steps after wet processing. | Not a stock-removal medium, generates dust that needs extraction, and can leave an oily film that interferes with a later cleaning or coating requirement. |
| Small high-density ceramic spheres or ovals | Colour and pre-lustre stages where a uniform, soft-looking finish matters more than stock removal, including curved and contoured faces. | Very slow cut, easily lost through screens sized for larger media, and ineffective in deep recesses because it cannot reach or press against the surface. |
| Dry media - corn cob | Softer dry lustre and drying steps, absorbent polishing of small parts, and light work on brass, aluminium and plated-look surfaces. | Breaks down faster than walnut shell and must be replaced regularly; it removes almost no material and cannot correct a surface defect. |
| Hardened steel media, balls and shaped shot | Bright burnishing of stainless and hardened steel, and the final wet lustre stage where a dense medium can peen a surface smooth. | Can transfer iron and rust to stainless, dents soft or thin parts, and must be kept in a dedicated charge away from ceramic media. |
Rotary barrels work by sliding contact and suit parts that tolerate tumbling, giving a dense, uniform colour on small hardware. They cannot process anything longer than the barrel diagonal, so long shafts, extrusions and frame members belong in a tub vibrator, where a part can pass through the mass without being folded. Slender parts need support or careful load balancing, because the same energy that brightens a shaft can bow it or nick it against a neighbour. Barrel and tub routes reach some external areas a bowl cannot, such as a long groove, but they are poor at bores running parallel to the long axis. Verify straightness and roundness after the cycle, not only appearance.
| Machine route | Where it fits | What it will not do |
|---|---|---|
| Dry polishing machine and dryer | Final lustre, dry colour and post-wet drying where the last reflected image cannot be produced by a wet mass-finishing stage. | Works on accessible faces only, generates dust and heat that need control, and offers no way to correct a defect left by an earlier stage. |
| Vibratory finishing machine (bowl or tub) | Cut-to-colour sequences on rigid, mostly open parts such as housings, covers, brackets and frames, with adjustable energy and no fixturing. | Cannot present media uniformly into pockets with narrow mouths or deep internal bores, and broad flat faces finish more slowly than edges. |
| Barrel finishing machine / rotary barrel tumbler | Dense, uniform colour on small hardware that tolerates sliding contact, especially with steel media for a burnished appearance. | Nothing longer than the barrel diagonal can be processed, and slender parts can bend or nick against neighbours in the load. |
| Magnetic finishing machine | Refinement and edge conditioning of small precise parts with internal edges, cross holes and fine detail that media cannot enter. | Working envelope and part mass restrict size, removal is very small, and coverage falls off wherever the field cannot drive the pins. |
A bright face can carry a ghost of every earlier stage. When a coarse grinding or cut pattern is not fully removed, the finer stages polish the crests and leave the valleys, producing visible lines or a woven crosshatch that reappears as the viewing angle changes. The causes are a stage that removed too little, a refinement step that reused a contaminated charge, or a crosshatch direction that was never rotated between steps. Each successive stage should run across the previous direction at a clear angle, so an operator can see when the earlier pattern is gone. Inspect by reflecting a light source at a shallow angle and rotating the part: a mark that vanishes at one angle and returns at another is still in the surface.
| Failure mode | Likely cause | How to catch it |
|---|---|---|
| Orange peel, a slow wave that distorts the reflected image | Soft or work-hardened surface deformed rather than cut, a heavy cut stage followed by too little refinement, or a dry or buffing stage at high speed with excess pressure. | Reflect a straight edge or fluorescent tube in the face at a shallow angle, compare the shape of the image against a physical master in the same lighting, and repeat at several viewing angles. |
| Heat tint or discolouration concentrated near edges and thin sections | Friction at a dry or high-speed stage raising local temperature, poor cooling or compound flow, or a load that packs parts against each other with no media between them. | Compare colour against a master in consistent lighting, look for a gradient from edge inward, and check whether the tint follows load contact points or the whole face. |
| Ghost pattern of an earlier coarse stage showing through the final finish | A cut or refinement stage removed too little material, a later stage reused a contaminated charge, or the crosshatch direction was not changed between steps. | Reflect a light source at a shallow angle and rotate the part; a mark that disappears at one angle and returns at another is still in the surface rather than on it. |
| Haze, a general loss of image clarity with no directional pattern | Worn media shedding an oversized fine fraction, agglomerated abrasive in the compound line, or fine grit carried into a late stage from screens, machine walls or a shared rinse. | View under raking light at low magnification against a master, then trace the pattern by machine and by rinse line to separate a charge problem from a rinse or transfer problem. |
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.
For this brief the relevant part of that base is machinery: Ota City reports that Tokyo's largest concentration of manufacturing establishments is in Ota, and lists cutting, pressing, forming, grinding, casting, forging and plating as the ward's core base technologies, with about 3,500 manufacturing establishments in the ward.
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.
The customs authority is Japan Customs, the Customs and Tariff Bureau of the Ministry of Finance, with regional customs at Tokyo, Yokohama, Nagoya, Osaka and Kobe. Any person importing goods must declare them to the Director-General of Customs and obtain an import permit after examination and payment of customs duty and consumption tax. The declaration is normally filed by the importer or by a customs broker acting as proxy, on a triplicate import (customs duty payment) declaration form (Customs form C-5020) supported by the invoice, the bill of lading or air waybill, a certificate of origin where a WTO rate applies, certificates of origin for preferential rates, packing lists and freight and insurance documents where required, plus any licence or certificate demanded by laws other than the Customs Law. More than 90 per cent of import procedures are computerised. A JIS Mark certificate is a separate, voluntary third-party scheme; foreign exporters are eligible to apply, and certification bodies must comply with ISO/IEC 17065.
The national standards body is the Japanese Industrial Standards Committee (JISC), which states that JIS covers industrial and mineral products, data, services and management systems under the Industrial Standardization Act. Its technical divisions include mechanical engineering, ferrous materials and metallurgy, nonferrous materials and metallurgy, ceramics, medical equipment and safety appliances, and aircraft and aviation, which are the divisions a finishing or deburring requirement is normally read against. Product certification runs through the JIS Mark Certification Scheme, operated by accredited certification bodies compliant with ISO/IEC 17065; as of March 2019 there were 24 JIS-accredited bodies, three of them outside Japan, with about 8,700 certifications issued, and the scheme explicitly covers foreign manufacturers, processors and exporters.
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.
Ask for a settings record with every batch: machine and stage, media type and size class, charge mass and age, compound product and measured dose, load ratio, cycle time and rinse conditions. Retain a fully inspected first article as the physical reference, together with its measurement data and photographs at fixed scale and lighting. Write the disposition rule in advance, covering what passes, what is reworked and what is scrapped, and name who decides. The record should state plainly that the reported condition applies to the parts tested, at the locations measured, with the settings used; it is a description, not a guarantee of future output or of fitness for any regulated application. Certificate and approval requests belong with the buyer's own quality function.
A trial reports what was observed on the parts it received, under the settings used. It cannot prove that every casting in a lot will respond the same way, that a worn media charge will behave identically over months, or that the finish satisfies a regulated or safety-critical requirement; those are questions for the buyer's own engineering and quality functions, using their own verification. It also cannot promise a reflectance value, an Ra value, a cycle time, a price or a capacity. Before shipping parts, decide whether a mirror finish is plausible at all: check the substrate for porosity and inclusions, confirm that available media can reach the geometry, and define the acceptance method first. If the requirement cannot be measured or viewed consistently, no trial result will settle it.



Design the charge around the smallest opening rather than the average part. Use media clearly smaller than the hole, or mask and plug the features before the cycle, count the media into and out of the load as a reconciliation, and add a retrieval step with a defined check such as a borescope or pin gauge. For Japan buyers sending parts for a trial, include the part with the tightest feature so the media class is chosen against real geometry. The small pins used in magnetic finishing embed easily in soft metal, so those features need extra inspection.
The pits were in the casting before polishing. Bright finishing compresses the surface into a narrow reflected image, so gas porosity, shrinkage voids and non-metallic inclusions become far more visible once the surrounding metal is smooth, and additional fine polishing only makes them clearer. The options are to move the requirement to a satin or blasted finish that tolerates the surface, change the casting route or the location of the visible face, or accept a written level of visible pits. A trial can show how current castings respond; it cannot remove a defect below the surface.
A mirror surface is damaged by contact, so handling begins before the parts leave the machine. Rinse and dry thoroughly to remove compound and fines, because residue trapped in a cavity bleeds out later and a damp surface can stain stainless. Then protect: interleave or sleeve faces that will touch, keep parts separated in trays, avoid sliding them across each other, and use gloves or a clean cloth when they are picked up. Agree packaging with the buyer, including whether parts travel individually wrapped, and inspect on arrival for marks that occurred in transit.
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 wants a mirror-like cavity wall for release behaviour but cannot lose the sharp parting-line edges or the shut-off face height.
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-0809; 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-0809 · revised 2026-09-29 · cross-border equipment, media and scoped sample review. City context is sourced and cited above.
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