A finned aluminium cold plate for medical devices puts two requirements in conflict: a burr-free fin array that must not bend, and a gasket land that must keep its flat seat. A buyer in Hiroshima, Japan can send representative plates to SurfacePolish, a cross-border supplier of finishing machines, media and compounds, for a free sample trial. This brief is written for a buyer in Hiroshima working on medical devices; it describes equipment, media and a scoped sample review, not a local polishing service.
What edge radius or chamfer is allowed at each mating, sealing and press-fit feature, and how will it be measured?
Which surfaces on this aluminium part carry a cosmetic grade, which are functional seating or sealing faces, and which are indifferent?
What are the alloy and temper, and has machining, casting, welding or heat treatment already changed the surface hardness and porosity?
Aluminium is a family, and the finishing window moves with alloy and temper. Wrought 6061 in T6 cuts and polishes predictably and holds a uniform finish, which is why it dominates machined device hardware. Wrought 7075 is stronger but harder, more prone to tearing and to differential finishing around machining marks, and it needs gentler media and shorter high-energy contact. Cast aluminium behaves differently again: surface porosity, cold shuts and a hard as-cast skin mean a casting can absorb compound into pores and bleed it out later, and an energetic cycle opens pores that machining had closed. Annealed or solution-treated stock smears under media where the same alloy in T6 would cut cleanly. Record alloy, temper and heat-treatment state before media is chosen rather than after the first batch disappoints.
Magnetic finishing works on small aluminium parts with fine internal features, using a magnetic field to drive small pins or abrasive media through holes, slots and recesses that a tumbling load cannot reach. It is useful on small fittings, valve spools, connector components and parts with internal cross-holes, and it can be gentle enough for thin sections if field strength and cycle are controlled. Its limits are size and throughput: the working envelope is small and the process suits a narrow part family rather than a mixed batch, and fine media or pins lodge in blind features just as tumbling media do, so retrieval and inspection matter. Dry polishing machines and dryers handle the post-wet step, removing water from blind holes before anodising or laser marking, where a trapped droplet becomes a stain or a marking defect.
| Machine route | Where it fits | What it will not do |
|---|---|---|
| Vibratory bowl finishing machine | Small to medium aluminium components that tumble freely: ferrules, handles, brackets and cover plates needing uniform deburring or satin finishing | Long, tall or heavily recessed parts shadow themselves and finish unevenly; part envelope must fit free circulation in the bowl |
| Grinding finishing machine | Higher material removal on aluminium parts that need a heavy burr or a pronounced chamfer removed before a gentler finishing step | Aggressive on soft aluminium, difficult to control on cosmetic faces and functional edges, and not a finishing step on its own |
| Tub vibrator | Long and large aluminium parts such as extruded frames and housings that can be oriented in a linear working channel | Slower uniform coverage, a tendency for parts to settle in one attitude, and greater floor space and media volume than a bowl |
| Disc finishing machine | Fast burr removal and edge radiusing on robust aluminium parts where a short cycle and high material removal matter most | High part-on-part contact and impingement risk; smears soft 6061, is hard to localise, and adds fixturing labour to every cycle |
After a wet cycle an aluminium part carries compound residue, suspended fines, media dust and water. Some of it sits in a blind hole, under a flange or in a thread and is not removed by a plain rinse. A dried residue film or a silicate deposit can interfere with later operations: it can show as a bloom under anodising, uneven laser marking, a poor bond or a stained appearance after assembly. Define what the downstream operation needs and state it, because the buyer owns that requirement; the realistic levers are rinse stages, water quality, a controlled dry, and verification by the buyer on the parts they receive. Nothing about equipment supply or a sample trial establishes biocompatibility, sterility or a validated cleaning process, and residue limits for a device must be set and verified by the buyer against their own specification.

| Media | Best fit | Watch out for |
|---|---|---|
| Ceramic media, angle-cut triangles, medium size class | Heavy-cut deburring on cast or robust aluminium parts where the machined surface will be finished again or is not appearance graded | Rounds functional edges quickly and can chip or peen thin walls; not suitable where a sealing land or press fit is exposed |
| Dry media, walnut shell, fine grade | Dry polishing, light surface cleaning and preparation before anodising or laser marking on aluminium parts | Shell dust must be extracted and the part cleaned, or the residue interferes with marking, bonding or a later coating step |
| Steel media, balls or pins, for bright polishing | Bright reflective finish on hard, robust steel work where a high lustre is the primary requirement | Deposits iron on aluminium, causing black smut, staining and a galvanic couple; keep it out of any loop shared with aluminium parts |
| Plastic-bonded media, light to medium abrasive grade, cone and triangle shapes | General deburring and satin finishing on 6061 and 7075 where galling risk rules out dense ceramic | Wears quickly and loses edge definition; cut rate drops as the charge ages and the cosmetic result drifts unless media is screened and topped up |
Aluminium can leave a finishing cycle looking worse in colour than it went in. Over-alkaline compound etches and darkens the surface; hard water leaves mineral spotting that dries into rings; iron transferred from steel media or worn machine parts appears as black smut or scattered dark specks; and a slow or hot dry lets an oxide film form unevenly across a face. Castings with porosity are especially prone, because they hold liquid and release it later as a bloom. Check the part dry, under the lighting the customer will use, and compare against a retained reference part rather than memory. Control compound pH and concentration, rinse with controlled water quality, dry promptly and completely, and keep steel out of the aluminium loop. A stain found after anodising or packaging has already cost the value of the part.
| Failure mode | Likely cause | How to catch it |
|---|---|---|
| Media or abrasive fragment lodged in a blind hole, cross-drilling or thin-wall pocket | Media size class too small for the feature, unshielded pockets, flexing thin wall gripping the fragment, no dedicated retrieval step | Borescope the internal features, weigh against a known-clean reference, tap over white paper, and inspect the residue from an ultrasonic clean |
| Uneven finish with bright and dull bands on the same face | Part settling in one attitude, self-shadowing on a long or recessed part, wrong load ratio, media too large to flow around the geometry | Compare several parts taken from different positions in the load under directional light rather than sampling only the discharge gate |
| Bloom, bleed-out or staining appearing days after finishing on a casting | Porosity holding compound or rinse water, an as-cast skin opened by the cycle, incomplete drying before packaging or anodising | Hold finished castings for a defined period and re-inspect, and section a rejected part to confirm whether the residue originates in the pores |
| Finish bloom or speckle, or poor laser mark contrast, revealed after anodising or marking | Embedded media, a silicate or residue film, a directional texture that marks unevenly, or an oxide layer from a slow dry | Evaluate the appearance on a coated or marked sample rather than bare metal, and compare marking contrast on parts from different positions in the load |
Hiroshima Prefecture's industrial base is organised around automobiles and their supply chain: the prefecture's industry department describes a Hiroshima automotive industry-academia-government collaboration council founded in 2015 by six organisations with a 2030 vision, together with a car-technology innovation centre that supports automotive suppliers, and a separate division for automotive industry promotion and for advanced manufacturing and new technology development. Aircraft is a second organised cluster: the prefecture's Hiroshima Aircraft Industry Promotion Association (エアクラフトひろしま) builds an aircraft supply chain with more than 150 member companies and organisations, mainly manufacturers in the prefecture, and the prefecture also runs a carbon-neutral manufacturing business programme. Hiroshima Port is designated an international hub port (国際拠点港湾) serving the Hiroshima Bay industrial zone.
The nearest part of that base to this brief is machinery: The prefecture maintains a division responsible for automotive-related industry promotion and for the advancement and new-technology development of manufacturing (ものづくり), alongside a car-technology innovation centre for its automotive suppliers.
Automotive parts produced around Hiroshima - machined, stamped and cast components - are deburred and edge-conditioned before assembly, painting or inspection, and the prefecture's supplier-development programmes put supplier process capability under review. Aircraft supply-chain work adds documented process control and cleanliness expectations, so surface condition and edge quality have to be repeatable and recordable rather than merely visually acceptable.
A Hiroshima buyer should first settle which customer regime governs the part - automotive drawing tolerances for edge break and burrs, or an aircraft flow-down requiring documented process control and cleanliness - because that determines how much of the finishing process has to be specified, recorded and verified rather than judged by eye.
Freight context: 広島港 (Hiroshima Port), 国際拠点港湾. The prefecture's port authority office states that it manages and promotes the international hub port Hiroshima Port together with the ports in Etajima City, serving the Hiroshima Bay industrial zone; that makes Hiroshima Port the natural route for incoming finishing machines and for outbound sample parts.
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.
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.
Residue requirements on a device component come from the buyer's own specification, not from a finishing route, and they should be stated as a measurable limit before parts are accepted. Practical checks include visual inspection of internal features under magnification or with a borescope, a wipe test with a defined solvent and a white substrate, a gravimetric non-volatile residue determination on a rinse sample, and a rinse-water conductivity or particulate count where the assembly is sensitive. Blind holes, threads and press fits are the features that retain residue, so sample them specifically rather than only a flat exterior face. If a validated cleaning process, biocompatibility data or a sterility claim is needed, that work belongs to the buyer's own quality system.
A sample trial produces observations on the parts that were tested, under the settings that were used, on the equipment that ran them. It does not guarantee a roughness value, an appearance grade, an edge radius, a dimensional result, a cycle time, a capacity or a production cost, and it does not qualify, approve or validate a process for a medical device or any regulated application. It cannot prove biocompatibility, cleanability, sterility, corrosion life or a cleaning validation, and it does not create a specification the buyer can rely on for regulatory purposes. Those determinations belong to the buyer's own engineering and quality functions, working to their own requirements. What a trial can do is show whether a mechanical route is plausible for a part and which media and compound direction is worth pursuing.



No. A trial shows what happened on the parts tested, with the media, compound and cycle used at that time. It does not guarantee a roughness value, appearance grade, edge radius, dimensional result, cycle time, capacity or cost in production, and it cannot cover the drift that comes from media wear, compound carry-over, water changes or a different machine. What it can do is indicate whether a mechanical route is plausible, which media and compound direction deserves a closer look, and which features need protection. A buyer in Japan should plan a first-article routine and retain a reference part before releasing a production batch.
Laser marking interacts with surface texture, so contrast depends on whether the surface is directional, random satin or bright. A strong directional finish from a tub or a linishing step can produce a marking that reads differently when the part is turned, while a uniform random texture marks more consistently. Residue and embedded media also interfere, because the marking energy meets a contaminated surface. For a marked cover plate in Japan, the practical sequence is to fix the finish first, then qualify the marking programme on finished parts, and to check the mark under the lighting the end user will use rather than a bench lamp.
Both alloys can be finished mechanically, but they behave differently. 6061 in T6 cuts and polishes predictably and tolerates a wider media range. 7075 is stronger and harder, tears more readily around machining marks and is less forgiving of heavy media and long energetic cycles. Cast aluminium behaves differently again because porosity and an as-cast skin change how the surface responds. For a part in Japan, the useful approach is to trial both alloys separately with the same media direction and see where the surface and edge results diverge, then set the route per alloy rather than assuming one setting covers the family.
Use Hiroshima, 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.
Japanese buyers work to JIS (Japanese Industrial Standards) administered through the Japanese Industrial Standards Committee (JISC); the official JIS database allows standards to be read but not printed, so buyers normally work from purchased or licensed copies and from the JIS number cited on drawings. Management-system certification to ISO 9001 is commonly required as general industry practice, and aerospace customers flow down their own additional process and documentation requirements.
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 Hiroshima.
The buyer needs burrs removed from the fin array without bending the fins or rounding the gasket land that seals the assembly.
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-0863; 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-0863 · revised 2026-09-29 · cross-border equipment, media and scoped sample review. City context is sourced and cited above.
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