A manufacturing engineer in Kobe, Japan is finishing an aluminium fuel manifold for aerospace components and needs the outer face refined without disturbing a flat mating face or trapping media in cross-drilled passages. SurfacePolish runs a free sample trial from its own factory: representative parts are sent to Xiamen, tested, and returned with a media and cycle direction plus a record of what was measured. This brief is written for a buyer in Kobe working on aerospace components; it describes equipment, media and a scoped sample review, not a local polishing service.
How will media be kept out of drilled passages, tapped holes and closed volumes, and what retrieval and verification step proves it?
Does the compound chemistry family create a hydrogen, staining or residue risk for this alloy and heat treatment, and who verifies that?
Which features on this part must not be touched by media, and how will each one be masked, plugged, fixtured or deliberately finished?
Alloy and temper decide which media and compound families are realistic before any machine is discussed. Unaged aluminum alloys are soft and galling-prone, precipitation-hardening stainless steels are harder and respond to cutting media, and titanium has low thermal conductivity and a tendency to smear rather than cut cleanly. High-strength steels also bring a documented concern about hydrogen picked up from acidic chemistry. Heat treatment matters twice, because the same alloy in a solution-treated and an aged condition finishes differently and a part that has already been aged cannot be straightened after processing. Record alloy, temper, hardness range, prior manufacturing operations such as welding or grinding, and any stress-relief history. Then match media hardness and compound pH to the material instead of reusing a successful recipe from an unrelated part, because the same blend that brightens one alloy can stain another.
Aerospace polishing work often needs more than one stage because a single machine and medium rarely satisfies both a defined edge requirement and a defined surface requirement on a complex part. A common shape is a heavier cutting stage to remove machining burrs and establish an edge radius, followed by a lighter refinement stage with finer media and a cleaner compound, then a rinse and dry stage sized for the part's internal features. Treat the transfer points as engineering decisions: parts sitting wet between stages can stain, media carried on the part can scratch the next face, and handling between operations produces more damage than the finishing itself on thin parts. Describe the line as a sequence with defined in-between cleanliness and handling, then check that each machine's chamber, media separation and drying capability matches its position in that sequence before any purchase discussion.
| Machine route | Where it fits | What it will not do |
|---|---|---|
| Rotary barrel tumbling machine | Gentle, uniform processing of small robust parts in large quantities, such as bushings, spacers and fasteners. | Slow cycles, per-barrel weight limits, and limited access for inspecting or repositioning parts during the run. |
| Centrifugal barrel finishing machine | Short cycles on small, hard, robust parts where high pressure at the part-media interface is acceptable. | High energy transfers into thin walls and fixtures and wears liners; part size and barrel geometry bound what can be run. |
| Vibratory finishing machine, bowl type | General edge blending and surface refinement on medium-sized parts with a continuous, visible load. | Part size is capped by chamber geometry, and thin or delicate parts may need compartments or fixtures to limit part-on-part contact. |
| Dry polishing machine and dryer | Post-wet drying and light dry finishing of parts with blind holes and passages where moisture carryover matters. | Dry media cut slowly, require dust extraction and medium condition control, and forced-air drying must be matched to internal geometry. |
Media wear is a slow process change that eventually shows up as an unexplained shift in finish. As media break down and round off, the blend loses cutting power, screens differently and settles at a different bulk density, so the same timer setting no longer produces the same surface. Track size class, weight of make-up media per cycle and the interval between full replacements, and keep a record so a change in results can be traced to the blend. Separation is a matching problem: media must be retained in the machine and cleared from the parts, and the method used depends on the media shape and the features it can enter. Screens, magnetic separators and bar-end magnets all have limits. For parts with drilled passages, add a retrieval step to the routing and reconcile media counts per batch so a lodged piece is found before it leaves the shop as contamination.

| Media | Best fit | Watch out for |
|---|---|---|
| Ceramic media, small size class for tight features | Reaching small holes, slots and fillets where a standard size class cannot enter, at reduced removal rate. | Screens differently from larger media, lodges more easily in drilled passages and must be kept below the smallest hole to stay clear. |
| Compound with corrosion inhibitor for sensitive alloys | Aluminium and stainless parts that must not stain or pit during processing and between-stage handling. | Inhibitor does not compensate for hard or chloride-bearing water, and residue left in recesses can mask later inspection. |
| Mildly acidic or chelated brightening compound | Brightening certain stainless grades where the buyer's specification permits that chemistry family. | Not appropriate where hydrogen uptake is a concern on high-strength steel, and requires close pH control and good rinse water quality. |
| Plastic media, cones and triangles | Gentle cutting on aluminium, thin-wall sections and surfaces that must not be scored. | Deforms and loads with metal fines so cut rate falls while the blend still looks intact; ineffective in deep recesses and tight radii. |
A lodged piece of media is the failure mode that puts a finished aerospace part at greatest risk, because it may survive cleaning and only appear at final inspection or, worse, in service. Lodging happens where a feature's smallest dimension is close to the media size, which is why blind tapped holes, cross-drilled passage intersections, keyways, undercuts, dovetails and small counterbores are the usual sites. It is aggravated by soft or worn media that deform and wedge, by running a broad size-class blend, and by unmasked holes that were never intended to see media. Check with a known pin gauge, a borescope at an agreed viewing angle and a defined count of media in the batch before and after, and add a documented retrieval step such as bar-end magnets, directed air or a flush. The reliable prevention is size discipline: media sized well below the smallest hole to be left clear.
| Failure mode | Likely cause | How to catch it |
|---|---|---|
| Iron contamination pickup on stainless or aluminium parts | Shared media, bath or chamber with carbon steel work, or recycled compound carrying steel fines. | Inspect for rust bloom, discoloured spots or magnetic particles after drying, and check which media and bath last ran in the machine. |
| Media wedged at a cross-drilled passage intersection | Media small enough to enter the passage, plus no defined retrieval step in the routing before final cleaning. | Flush the passage with a measured volume, examine the flush medium and the passage with a borescope, and add a documented retrieval step such as directed air or a magnet. |
| Uneven finish across a batch or across one part | Load volume outside the chamber's working range, parts blocking one another, mixed part sizes, or inconsistent fixturing and media distribution. | Measure surface texture at several recorded locations on multiple parts from the same load and record the load pattern alongside the results. |
| Dried compound residue or water spotting in recesses | Rich compound, hard or chloride-bearing rinse water, or a drying method that does not move air through blind features. | Inspect recesses with a borescope, read rinse-water conductivity or hardness, and verify the drying method against the part's internal geometry. |
Kobe's manufacturing is concentrated in food, transport equipment and general machinery. The city's 2020 Census of Manufacture report counts 1,394 establishments with four or more employees, 67,951 workers and 3,421.1 billion yen of manufactured goods shipments, with value added up 3.3 per cent. It states that food manufacturing and metal products together account for about a quarter of all establishments, and that food, transport equipment and general machinery together account for just over half of employment, with Hyogo ward especially strong in transport equipment and Nishi ward in production machinery and metal products. The city also publishes an economic census and industrial statistics series, and the port has been the city's trade gateway since it opened to foreign trade in 1868.
The nearest part of that base to this brief is food: Kobe's 2020 Census of Manufacture report states that food manufacturing and metal products together account for about a quarter of all establishments, and that food manufacturing is one of the three industries making up just over half of employment.
Kobe's three largest manufacturing employers by industry are food, transport equipment and general machinery, so the surface requirement splits between hygienic, cleanable finishes for food equipment and dimensional, burr-controlled finishes for transport and general machinery parts. General machinery and metal products are concentrated in Nishi ward, where small firms supplying machined components need a finish specification that travels with the drawing rather than a verbal agreement.
A Kobe buyer should separate the two cases before choosing a process: transport and general machinery parts where edge and burr limits govern, and food-equipment parts where cleanability and surface condition govern, because the same media and compound choice will not serve both.
Freight context: Port of Kobe (神戸港), open to foreign trade since 1868, Kobe Airport (神戸空港), opened in 2006. Kobe City records that after the 1995 Hanshin-Awaji earthquake the port's facilities were restored within two years, and that the 2006 opening of Kobe Airport established a combined sea, air and land transport system. Customs clearance in the Kobe area is handled by Kobe Regional Customs, one of Japan Customs' regional offices.
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.
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 records that let a later batch be compared with the approved one rather than a certificate that merely asserts quality. Useful documents identify the machine and bath, the media type and size class, compound product and measured concentration, cycle time and energy setting, load weight or part count, rinse and dry method, and the measurement results with instrument, setup and locations. Photographs taken under the same lighting before and after belong in the record, along with the first-article result and any deviation raised during the run. Keep a controlled reference configuration so a change in media supplier, compound batch or machine setting is visible before it changes the output. The discipline that matters is the same for a trial and for production: one recorded configuration, one retained reference part, and a written rule for what triggers re-inspection rather than an informal judgement on the day.
Expect the first production batches to differ from trial parts, because a trial is run with extra attention on one or two pieces while a line runs a full load with a different operator, a partly worn blend and normal handling between operations. Reduce that gap by planning a ramp-up sequence: run a low quantity, inspect the first part fully, compare it against the retained trial part at the agreed locations, then increase load size only after the comparison holds. Re-inspect at defined intervals through the ramp and keep a reference part from each stage. Be clear about what a sample trial cannot establish. Observations apply to the parts tested and to the setup used. A trial does not establish fitness for a regulated or safety-critical application, does not replace the buyer's own qualification or structural testing, and does not transfer responsibility for acceptance, which always remains with the buyer's engineering and quality functions.



High-strength steels carry a documented concern about hydrogen picked up from acidic or hydrogen-bearing chemistry, so the conservative route is a mechanical process with a neutral or alkaline compound and no acid stage. If your own specification permits acid-bearing chemistry, that decision and any subsequent treatment belong to your engineering and quality functions, not to the equipment supplier. SurfacePolish supplies compounds and media across borders and can run a trial with the chemistry family you nominate, reporting observations on the parts tested. Buyers in Kobe should confirm hydrogen-related requirements with their own specialists before any process is set.
Send parts in the production condition, including the case with the thinnest wall, tightest internal feature and most difficult edge, not a convenient spare. Include material and heat treatment data, the drawing requirements you can share, and a marked-up photograph showing features that must not change. Add one part in the incoming condition and, if available, one finished the way you want the result to look. State the batch size and how you separate parts in your own shop. International shipments should be declared for temporary processing with a parts list, and buyers in Japan can ask us for a packing list format before dispatch.
Specify the location, the evaluation length and cutoff, the filter, and whether the requirement is a maximum or an average, then keep that setup unchanged for every batch and comparison. Readings taken with different cutoffs on the same surface will not agree, and readings on interrupted or curved surfaces such as fillets or cast skins need a setup designed for them. Record the instrument and its calibration status with the results. When you compare a trial part from Xiamen with your production parts, Japan and China, use one instrument and one setup so the difference you are reading is the process, not the measurement.
Use Kobe, 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.
Kobe buyers reference JIS, maintained by the Japanese Industrial Standards Committee, whose mechanical engineering and ferrous materials divisions cover the city's machinery and transport-equipment output, with the JIS Mark scheme available for third-party product certification. For food-equipment work the additional reference is the customer's hygiene and cleanability requirement, which is specified on the drawing rather than by a general 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 Kobe.
The buyer needs the outer face brightened while the mating face stays flat and the passages are proven 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-0851; 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-0851 · revised 2026-09-29 · cross-border equipment, media and scoped sample review. City context is sourced and cited above.
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