| HS Code | 106976 |
| Density | 0.93 g/cm³ |
| Water Absorption | <0.01% |
| Tensile Strength At Yield | 17 MPa |
| Tensile Strength At Break | 40 MPa |
| Elongation At Break | >300% |
| Tensile Modulus | 700 MPa |
| Charpy Notched Impact Strength | 100 kJ/m² |
| Shore D Hardness | 62 |
| Coefficient Of Friction | 0.1-0.2 |
| Thermal Conductivity | 0.4 W/(m·K) |
| Coefficient Of Linear Thermal Expansion | 2.0 x 10^-4 /K |
| Maximum Service Temperature | 80 °C |
| Minimum Service Temperature | -200 °C |
| Dielectric Strength | 45 kV/mm |
| Volume Resistivity | >10^14 Ω·cm |
| Food Contact Compliance | FDA 21 CFR 177.1520; EU 10/2011 |
As an accredited Mitsubishi Chemical Advanced Materials UHMW-PE 1000 FG factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Supplied as sheets or rods, wrapped and palletized in wooden crates; standard pack quantity 20 kg. |
| Container Loading (20′ FCL) | Container loading (20′ FCL): Mitsubishi Chemical Advanced Materials UHMW-PE 1000 FG, palletized, dry, securely braced, and evenly distributed. |
| Shipping | Mitsubishi Chemical Advanced Materials UHMW-PE 1000 FG is a non-hazardous, food-grade UHMW polyethylene. Ship in original sealed, clean packaging to prevent contamination, moisture, and UV/heat exposure. No special DOT/IMDG/IATA hazard classification or placarding required. Maintain sanitary handling and include material certificates with shipping documents. |
| Storage | Store Mitsubishi Chemical Advanced Materials UHMW-PE 1000 FG in a cool, dry, well-ventilated area, away from direct sunlight, heat, flames, and strong oxidizers. Store separately from incompatible substances. Keep in original sealed packaging or clean, closed containers on pallets. Protect from dust, dirt, moisture, oils, and odorous contaminants to preserve food-grade quality. Avoid excessive stacking or mechanical damage. |
| Shelf Life | Indefinite shelf life when stored cool, dry, in original packaging, protected from direct sunlight, UV light, and heat. |
In air-swept hammer mills and pneumatic flour transfer lines, Mitsubishi Chemical Advanced Materials UHMW-PE 1000 FG is machined into diverter gate liners, deflector plates, and rotary airlock end plates where dry wheat flour and starch are conveyed at air velocities above 20 m/s. The material is selected because it combines a low dry-sliding friction coefficient against 304 stainless steel with food-contact compliance under 21 CFR 177.1520(c) and EU Regulation No 10/2011. Published typical ranges for unfilled UHMW-PE 1000 place density at 0.93–0.94 g/cm³ per ISO 1183-1, yield stress at 17–22 MPa per ISO 527-2, and Shore D hardness at 62–68 per ISO 868. Water absorption after immersion is below 0.01 % by ISO 62, so no pre-drying step is required before machining liners with 10 mm to 20 mm wall thickness. The non-polar surface reduces adhesion to moist flour but also eliminates solvent-welding as a joining option; mechanical fastening with 316L stainless steel countersunk bolts is the reliable joining method on these gates. In a floor-mounted diverter gate retrofitted into a flour transfer line, installed liners are slotted rather than through-bolted because the linear thermal expansion coefficient of unfilled UHMW-PE ranges from 1.5 × 10-4 K-1 to 2.0 × 10-4 K-1. A 1.5 m liner raised from 20 °C to 60 °C can elongate by 9 mm to 12 mm; rigidly fixed liners have been observed to buckle upward and obstruct gate blade travel. Abrasive loss on smooth stainless steel under dry wheat flour is lower than that of impact-modified nylon because the sliding contact carries fine carbohydrate particles as a mild third body, but published wear rate data for this specific configuration is limited and should be verified against the target flour ash content. The liner material is not compatible with concentrated nitric acid or long-term exposure to 85 °C caustic cleaning solutions.
| Property | Test method | Reported range |
|---|---|---|
| Density | ISO 1183-1 | 0.93–0.94 g/cm³ |
| Yield stress | ISO 527-2 | 17–22 MPa |
| Elongation at break | ISO 527-2 | 200–400 % |
| Shore D hardness | ISO 868 | 62–68 |
| Water absorption after immersion | ISO 62 | <0.01 % |
Rotary airlock end plates made from the same grade are machined from 20 mm natural or black sheet and are deburred with radiused edges to eliminate fines buildup at interfaces. The food-contact grade contains no intentionally added colour masterbatch or reprocessed surface layer, and the as-machined surface is accepted for dry flour contact because porosity is insufficient to retain moisture or microbial growth. End plates are designed with 0.5 mm axial clearance to accommodate thermal expansion without binding at 60 °C. Published data for airlock leak rates after 2,000 h of wheat starch service are limited; acceptance criteria on installation should include a dial-indicator check of flatness before and after hot-water wipe-down of bearing housings.
Glass and PET bottle transfer lines running at 40 m/min to 80 m/min require neck guides and transfer star wheels machined from UHMW-PE 1000 FG because stainless steel guide rails create scuff marks on bottle necks and generate objectionable noise above 85 dB(A). The unfilled food-grade specification is used at the feed throat of carbonated soft drink fillers where incidental contact with filled bottles occurs and where no external lubricant may be applied. The sliding coefficient of friction against dry stainless steel is in the range 0.10–0.15 under contact pressures below 0.5 MPa. The guides are produced by CNC routing 8 mm to 15 mm sheet into 1 m to 1.5 m lengths, followed by edge chamfering to 0.5 mm radii. Mounting slots are not circular; production specifications call for 8 mm wide oval slots on 250 mm centres. This slot allowance prevents buckling when the line is washed with 60 °C caustic foam and then cooled to 12 °C before production. Because UHMW-PE has a continuous service temperature of 80 °C, these guides are not placed in bottle tunnels where hot alkaline spray reaches 85 °C or in hot-fill segments above 82 °C. Distortion at the upper boundary is plastic rather than elastic; a guide rail clamped at both ends and exposed to 70 °C water has been observed to bow more than 1 mm at the centre if the slot travel is consumed. The food-contact compliance of the material rests on FDA 21 CFR 177.1520(c) and EU Regulation No 10/2011, and the hardness of 62–68 Shore D per ISO 868 is low enough to protect glass finishes from chipping during star wheel transfer. The bottle contact zone is usually specified with a polished machined surface roughness below Ra 0.8 µm, but published correlation between surface roughness and glass fracture rate in this specific configuration is limited.
The dominant failure mode in production is not abrasive wear but fastener-induced stress cracking around undersized holes. Machined UHMW-PE 1000 FG has high notch sensitivity under repeated cleaning cycles if sharp threads cut directly into the polymer. Steel threaded inserts are therefore installed with pilot holes that allow 0.2 mm to 0.3 mm witness clearance around the insert body. In packhouse environments, the same grade is used as wear strips on case packing chain rails because the natural white surface allows visual detection of surface contamination from conveyor lubricants. The material is not flame-polished; heat from flame treatment oxidises the surface and can create a yellow brittle layer that is not compliant with the sensory restrictions of the food-contact specification. If a black marking line is required for operator visibility, laser marking is used at power settings below the threshold that causes surface charring.
When chocolate enrobing conveyors are cleaned by reciprocating scrapers against chilled steel wire belts at 18 °C, the scraper blades are made from 8 mm to 12 mm UHMW-PE 1000 FG sheet and ground to a 0.4 mm edge radius. The component is inserted into a stainless holder with 3 mm vertical float so that the edge follows belt undulation without scoring the wire mesh. The unfilled composition contains no glass fibre or talc that could abrade the belt; this distinguishes the food-grade specification from structural filled polyethylenes. Under the temperature conditions of chocolate enrobing, cocoa butter is in a partially crystalline state and adheres to chilled metal; the non-polar surface of UHMW-PE reduces this cold adhesion without requiring release agents. The scraper is cleaned with 50 °C to 60 °C water and an approved alkaline detergent; the polymer is not subjected to open steam because steam temperature above 100 °C exceeds the short-term thermal limit of the material. Edge life is monitored by visual rounding rather than by mass loss because the sugar crystal content of the coating creates a mild abrasive condition; published quantitative wear data for cocoa mass against UHMW-PE is limited. Direct food-contact compliance is established under FDA 21 CFR 177.1520(c) and EU Regulation No 10/2011, including fatty food simulant testing; the user is responsible for validating the extraction profile under actual cocoa fat migration conditions. Black speck contamination is prevented by using virgin natural sheet and by rejecting any sheet that exhibits fusion line voids after pressing.
Bone saw guide blocks used in pork and beef band saws are machined from 20 mm UHMW-PE 1000 FG plate because the material maintains impact toughness at 4 °C to 8 °C cutting-room temperatures without splintering into hard fragments if the blade wanders. The blocks are fabricated with a ±0.05 mm blade slot width and are annealed after milling to relieve internal stress before being clamped into the saw frame. The low-temperature service boundary for unfilled UHMW-PE extends well below -80 °C, and low-temperature impact tests do not show brittle fracture at meat-processing conditions; the relevant test standard is ISO 11542-2. The material does not require external food-grade grease, which would contaminate the cutting area; its dry sliding friction against stainless steel blade sides is below 0.20 at 4 °C and permits the blade to run without metal-to-metal guide contact. In production, secondary bone fragments can embed in the polymer surface; the natural white colour provides visual detection of embedded bone chips and allows replacement before black specks transfer to meat. Cleaning is conducted with low-pressure hot water at 60 °C and quaternary ammonium sanitizers. High-pressure waterjets above 80 °C are not recommended because they can generate local frictional heat and strip the surface layer left by machining. The chemical resistance of the unfilled grade is adequate for diluted organic acid rinses, but concentrated bleach solutions at 50 °C can cause oxidative chain scission over repeated cycles; sanitizer concentration must remain below the chemically incompatible limit recorded by the cleaning chemical supplier. The component is subject to FDA 21 CFR 177.1520(c) and EU Regulation No 10/2011 for repeated food contact, but the user must confirm that meat contact is incidental rather than continuous.
If the band saw blade guide is misaligned by more than 0.3 mm, local frictional heating at the slot face raises the contact temperature above 80 °C. The resulting surface whitening is an early indicator of plastic deformation and is followed by dimensional widening of the guide slot beyond 0.1 mm. This is a process boundary, not a material defect. The same effect is observed when blunt bone saw blades are run at high tension; the additional side load on the guide block increases contact pressure beyond the recommended 0.5 MPa. Published data on wear life in this specific configuration is limited; production sites commonly inspect the slot width after 500 h of operation and replace the block when widening exceeds 0.2 mm. The component is machined without sharp internal corners; root radii below 1 mm promote notching and must be avoided.
If the sanitization water reaches 85 °C, the distortion window of a split wear ring in an aseptic filling machine is controlled by butt gap rather than clamping force. UHMW-PE 1000 FG is used for split wear rings, star wheel inserts, and cam follower guides that must be sanitized with hot water. The material’s continuous service temperature is 80 °C; exposure to 85 °C sanitization water is tolerated only if the component geometry absorbs thermal expansion without constrained buckling. For a split wear ring of 200 mm outer diameter, a temperature rise from 20 °C to 85 °C produces a diameter growth of approximately 2.2 mm when the linear thermal expansion coefficient is 1.7 × 10-4 K-1. A butt gap of at least 2.5 mm is therefore specified at 20 °C. If the gap is smaller, the ring closes during sanitation and imposes interference contact on the shaft or housing, generating wear debris. The same calculation governs the design of split star wheel inserts on 120 mm pitch circle diameters; the required gap is scaled linearly. Because the unfilled grade is not cross-linked, the expansion is not fully reversible after rapid quenching in cold water at 10 °C; repeated cycling above 80 °C may cause cumulative dimensional drift of 0.1 mm to 0.3 mm. Food-contact compliance of the natural white grade is supported by FDA 21 CFR 177.1520(c) and EU Regulation No 10/2011. The material is resistant to diluted hydrogen peroxide and peracetic acid sterilants at room temperature; at 85 °C, oxidiser concentration must remain below the chemical resistance line specified by the sterilant supplier, and any concentration above 1 % peracetic acid is outside the recommended boundary. The split rings are not autoclaved at 121 °C; such exposure leads to gross distortion and cannot be compensated by gap widening alone.
Machining of the split ring is performed on a lathe from 20 mm sheet or tube stock, followed by split gap milling with a 2 mm end mill. After machining, the ring is annealed in air below the crystalline melting region of the polymer and then rechecked for diameter and gap closure. Fastening uses stainless steel shoulder bolts in oval counterbores, not adhesive bonding. The assembly is intentionally allowed to slide on the shoulder bolt bearing face; if the ring is clamped tightly, the thermal expansion calculated above is converted into out-of-plane warping. On an aseptic line with 4 bar caustic foam washdown at 80 °C, warped rings have been observed to contact the moving container guide and cause line stoppage. The specified clamp torque is therefore limited to the low value stated by the machine builder, typically under 3 N·m for M6 shoulder bolts. Published data on long-term creep of UHMW-PE in this specific aseptic sanitization cycle is limited, so dimensional checks are required after every 100 h of accumulation.
Clinically, pharmaceutical blister packaging lines use UHMW-PE 1000 FG feed screws and guide profiles because external lubricants are prohibited in ISO Class 7 cleanrooms. The components are machined from natural rod or sheet and used in contact with aluminium and PVC blister lidding materials where particulate shedding must remain below visible inspection thresholds. The unfilled food-grade composition is selected because it does not contain PTFE, silicone oil, or carbon black that could migrate into pharmaceutical packaging. Static dissipation is a known limitation: unfilled UHMW-PE has surface resistivity above 1014 Ω/sq per ASTM D257, and it is not specified for zones where electrostatic discharge can damage dry powder filling electronics or ignite fine organic powders. For those zones, an electrically modified UHMW-PE grade is substituted, or the machine builder adds ionising bars. The food-contact regulation under FDA 21 CFR 177.1520(c) and EU Regulation No 10/2011 applies to incidental contact with packaged dose formats, but pharmaceutical qualification of the final feed screw surface requires extractables testing under the user’s cleaning solvent regime. The material is not autoclaved and is not compatible with strong oxidative cleaning agents at high temperature. In service, feed screws are periodically inspected for thread flank wear using a go/no-go gauge; if the flank width opens by more than 0.15 mm, tablet orientation drift occurs. Published wear rate data for UHMW-PE 1000 FG against PVC blister sheet is limited; therefore, the acceptance criterion is dimensional rather than weight-based.
The fabrication process for these feed screws differs from standard commodity polyethylene because UHMW-PE 1000 FG cannot be melt-extruded into a continuous screw profile at commercial rates. The profile is produced by CNC turning from rod stock followed by hand deburring and ultrasonic cleaning in purified water at 40 °C. The natural white surface is inspected under high-intensity light for machining smears and embedded swarf. No petroleum-based cutting oil residue may remain on the surface; low-viscosity food-grade cutting fluids are used, and the final cleaning validation is based on gravimetric non-volatile residue below 0.1 mg per 100 cm². The unfilled polymer does not require drying before machining, but preheating of rod stock to 20 °C to 25 °C in a cleanroom staging area reduces dimensional variation due to cold storage.
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Designated UHMW-PE 1000 FG, the product is a virgin, unfilled ultra-high-molecular-weight polyethylene semi-finished material supplied by Mitsubishi Chemical Advanced Materials in natural sheet, rod, and profile stock. The FG suffix denotes food-contact documentation, not a change in base polymer; the grade is classed as PE-UHMW under ISO 11542-1 and carries declarations referenced to FDA 21 CFR §177.1520 and EU Regulation (EC) No 10/2011 for qualitative food-contact suitability. Published nominal density is 0.93 g/cm³ when measured under ISO 1183-1, and water absorption after saturation is below 0.1% under ISO 62. Because the molecular weight places the material in the high melt-viscosity UHMW-PE class, it is not converted by conventional injection moulding; primary shaping occurs by compression moulding or ram extrusion, followed by machining at fabricator level. Typical machined components include filler-line wear strips, rotary valve seals, container-handling guides, timing screws, and cutting surfaces where incidental or direct food contact is intended. Exact melt-viscosity and molecular-weight data are lot-specific and are normally stated on certificates of analysis rather than as fixed published values.
The FG distinction is procedural and documentary. Under EU Regulation (EC) No 10/2011, the finished article must satisfy overall migration limits expressed in Annex I and specific migration limits in Annex II when tested under the intended food simulants and time–temperature conditions. A raw-material declaration does not substitute for finished-article migration testing under Articles 17 and 19 when the final machined part changes the surface-to-volume ratio. For United States applications, FDA 21 CFR §177.1520 covers polyethylene resins in contact with food; the FG stock shape is supplied with a food-contact statement only when the distributor and fabricator preserve lot traceability. The natural FG grade should not be confused with anti-static, glass-filled, or reprocessed UHMW-PE stock, which typically lack the same food-contact documentation package.
| Compliance parameter | Reference | End-use condition |
|---|---|---|
| Resin positive list for polyolefins | FDA 21 CFR §177.1520 | Natural virgin PE-UHMW; documentation required for each lot |
| Overall migration limit | EU Regulation (EC) No 10/2011 Annex I | ≤ 10 mg/dm² in finished-article testing |
| Specific migration limits | EU Regulation (EC) No 10/2011 Annex II | Substance-specific; no generic pass from raw-material declaration |
| Declaration of compliance | EU Regulation (EC) No 10/2011 Article 17 | Required at finished-article stage under intended food simulant exposure |
| End-use condition documentation | EU Regulation (EC) No 10/2011 Article 19 | Time, temperature, food type, and surface/volume ratio must be recorded |
For machined parts with large surface-to-volume ratios, such as thin-walled liners or abraded surfaces, the relevant EU compliance document is the finished-article declaration under Article 17, not the stock-shape raw-material certificate. Published data for this specific configuration is limited; migration testing is therefore assigned to the downstream fabricator or brand owner under the intended food simulant and contact time.
Nominal physical property values for the unfilled FG grade duplicate the standard UHMW-PE 1000 datasheet within normal production tolerances. The values below are reference points from laboratory specimens; they are not design minima and require safety factors for machined parts.
| Property | Test method | Typical value |
|---|---|---|
| Density | ISO 1183-1 | 0.93 g/cm³ |
| Water absorption at saturation | ISO 62 | < 0.1% |
| Tensile stress at yield | ISO 527-2 | 20 MPa |
| Tensile elongation at break | ISO 527-2 | > 200% |
| Tensile modulus of elasticity | ISO 527-2 | 680 MPa |
| Shore D hardness | ISO 868 | 62 |
| Ball indentation hardness | ISO 2039-1 | 38 MPa |
| Vicat softening temperature | ISO 306/B50 | 80 °C |
| Melting temperature | ISO 11357-3 | 135 °C |
| Coefficient of linear thermal expansion | ASTM E831 | 1.7 × 10⁻⁴ K⁻¹ |
| Volume resistivity | IEC 62631-3-1 | > 10¹⁴ Ω·cm |
| Charpy unnotched impact strength | ISO 179-1/1eU | No break |
The coefficient of linear thermal expansion of 1.7 × 10⁻⁴ K⁻¹ means a 500 mm machined strip subjected to a 10 K temperature rise will increase in length by approximately 0.85 mm. This dimensional movement is frequently larger than the machining tolerance and must be compensated in high-precision food-processing equipment. In addition, the volume resistivity above 10¹⁴ Ω·cm makes the unfilled grade an electrical insulator; static charge accumulation is possible in dry product streams, and anti-static grades should be evaluated separately for food-contact compatibility.
Under static compressive load, UHMW-PE is viscoelastic and can cold flow. Bolted connections in wear strips or liners should use large-diameter washers and bushings to spread bearing stress; published long-term creep data under ISO 899-1 for this specific grade is limited, but fabricators commonly retorque fasteners after initial installation and again after the first sanitation cycle. Polymeric anchor systems are not suitable for structural transfer of high torque because the material’s low modulus and high coefficient of thermal expansion reduce clamping force over time.
The primary difference between UHMW-PE 1000 FG and UHMW-PE 500 lies in the molecular weight and melt-viscosity class. The 1000 grade enters the higher melt-viscosity region of ISO 11542-1 PE-UHMW; it is supplied in semi-finished stock shapes rather than as a melt-flow resin. In comparison with lower-molecular-weight UHMW-PE, the 1000 grade generally exhibits greater resistance to sliding abrasion and higher notched-impact retention at sub-zero temperatures, but it also generates more frictional heat during aggressive machining and is less forgiving to inadequate chip clearance. Published data for direct wear-rate comparison between 1000 and 500 across a common ASTM G99 or ASTM D3702 configuration is limited; component qualification should be carried out on the final geometry and mating surface.
Versus standard UHMW-PE 1000, the FG suffix adds documentary traceability; mechanical and physical properties are not substantially altered by the FG designation. Filled UHMW-PE grades such as anti-static/ESD, glass-bead-filled, or molybdenum-disulfide-modified stock are outside the natural food-contact positive list in most cases. Glass or mineral fillers raise hardness but lower impact and can compromise compliance. Reprocessed stock is less reproducible in molecular weight, often contains colour streaks, and lacks the feedstock custody required for food-contact documentation.
Compared with acetal copolymer and cast polyamide 6, the unfilled UHMW-PE grade has lower density and lower equilibrium water absorption, but also lower tensile modulus and lower continuous-use temperature capability. In food-equipment change-outs, direct substitution of acetal with UHMW-PE 1000 FG usually requires thicker sections because the modulus under ISO 527-2 is below 1,000 MPa; published nominal tensile modulus for this specific grade places the value at 680 MPa. Guides and rails therefore need wider support centres to avoid deflection under product mass.
On high-speed bottling and packaging lines, machined UHMW-PE 1000 FG guide rails, neck-handling rails, and conveyor wear strips are installed where intermittent food contact occurs with dry snacks, bakery products, beverages, and primary packaging. The material is used for rotary filler star wheels and pocket inserts because its low water absorption and low friction against stainless steel reduce mechanical interference and product scuffing. However, load-bearing capacity declines as temperature increases; continuous operation under bearing load above 60 °C requires derating, and the Vicat softening temperature of 80 °C under ISO 306/B50 defines a processing, not a long-term structural, limit. In meat and poultry cutting rooms, the grade is machined into cutting boards and bone guides; published data for repeated knife-scar damage under production-scale sanitation is limited, and end users typically qualify specific part geometries through their own hygienic design protocols.
Under continuous sliding against stainless steel, UHMW-PE 1000 FG operates in a regime where frictional heating rather than mechanical tensile failure controls service life. Published coefficient-of-friction values for unfilled UHMW-PE under ASTM D3702 are commonly reported in the 0.15–0.25 range against polished stainless steel at low sliding speed; published data for the specific FG grade under bottled-water or juice lubrication is limited. Industry-published dry PV limits for unfilled UHMW-PE are commonly cited at 0.07 MPa·m/s for continuous sliding; above this limit, local contact temperatures can approach the crystalline melting region near 135 °C, producing surface smearing, dimensional loss, and accelerated wear. Where the application includes intermittent motion, water lubrication, or product-film lubrication, the relative wear rate decreases when a water film is present; absolute wear rates require geometry-specific testing. The grade is therefore specified as a wear part only when the bearing pressure, sliding velocity, and ambient temperature are explicitly lower than the PV threshold and when clearance is available to absorb thermal expansion.
Machining of UHMW-PE 1000 FG on CNC routers and machining centres requires high-positive-rake tooling and aggressive chip evacuation. On routers with 10 mm to 20 mm diameter single-edge or two-flute carbide tools, spindle speeds of 3,000 rpm to 6,000 rpm and air-blast chip removal are typical; flooded coolant is not required and hydrocarbon-based cutting fluids can contaminate food-contact surfaces. Low-speed turning operations on lathes use high-positive-rake carbide inserts and continuous chip-breaker geometries because UHMW-PE tends to form long, tough chips that can wrap around rotating components. Feed rates are kept high enough to avoid dwell-related frictional heating; local machining temperatures above the Vicat softening point of 80 °C cause smearing and weld-back of cut material onto the finished surface. For close-tolerance parts, rough machined blanks are allowed to normalise for 24 h to 48 h before finishing because release of internal stress in the stock shape can alter flatness by more than the nominal machining tolerance.
Strong oxidising acids, including concentrated sulfuric acid and concentrated nitric acid, attack UHMW-PE at room temperature and are not recommended for continuous immersion. Aromatic hydrocarbons and chlorinated solvents cause swelling and can extract low-molecular-weight polyethylene fractions; dimensional changes occur before dissolution. The material is not autoclavable at 121 °C because the service temperature exceeds the Vicat softening range and produces significant deformation under load. Cleaning with hot water above 80 °C can induce temporary thermal expansion and should be followed by a cooling period before precision alignment verification. For fatty foods above 40 °C, the finished article may require EU Regulation (EC) No 10/2011 migration testing with olive oil or 95% ethanol as a substitute simulant in accordance with Annex III and Annex V; the raw-material FG declaration alone is not sufficient where the surface/volume ratio exceeds standard test conditions. Published data for direct contact with aggressive cleaning agents at elevated concentration is limited; end users are expected to qualify chemical resistance under actual sanitation cycles.