| Код ТН ВЭД | 545747 |
Как аккредитованный завод по производству жестких полиуретановых принтеров RPU 60, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
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In automotive interior clip and bracket production, RPU 60 is qualified as a neat, one-part liquid photopolymer whose formulation addition ratio at the dispensing point is 100:0; no reactive diluent, catalyst, or plasticizer is added because the DLS oxygen-inhibited dead zone relies on a controlled oligomer-to-monomer viscosity envelope. Addition of as little as 1 wt% of an unreported solvent has been observed in production-scale builds to lower green-state tear strength and to cause tray-level delamination during part extraction, though published data for this specific configuration is limited. Compliance is driven by 49 CFR 571.302 (FMVSS 302) for horizontal burning behavior, EU REACH Annex XVII for restricted phthalates and organotin compounds, and OEM emission limits measured by VDA 278; parts disposed inside passenger compartments are additionally screened under EU 2000/53/EC ELV provisions when the vehicle platform requires recyclability declarations. Downstream production follows a continuous liquid interface printing sequence on M2-class DLS equipment, with layer thicknesses in the 50–100 µm range, followed by a sealed wash in tripropylene glycol methyl ether or isopropyl alcohol and a forced-air thermal post-cure cycle in electrically heated ovens. Green-state clips are extracted from the tray before completing crosslinking, so any reduction in post-cure residence time of more than 10% against the qualified cycle is detectable as Shore D hardness below 58 when tested to ISO 868, and as a reduction in snap-fit retention force on vehicle-level female receivers. Terminal products include seat harness clips, dash panel retaining brackets, HVAC mode-door levers, park-brake cable guides, fuse-box covers, and trunk trim fasteners; each part class is validated at the OEM level for cycle life at 85 °C and -30 °C thermal soak.
Consumer electronics housings printed in RPU 60 are typically evaluated under IEC 62368-1:2018 for fire enclosures, electric shock, and impact, but the neat resin is normally characterized as UL 94 HB; if a device standard requires UL 94 V-0 or V-1, the unmodified material is outside the qualified envelope and published data for this specific configuration is limited. The formulation addition ratio is fixed at 100 wt% as-supplied resin and 0 wt% of flame retardant, plate-out agent, or viscosity reducer; adding phosphorous or halogenated packages without supplier requalification can create anisotropic pigment settling and underbound layers inside bosses and snap features. On production lines, the DLS process is used for wall-section stabilizers, internal ribs, and screw bosses at nominal feature sizes down to 0.5 mm, followed by solvent wash and thermal post-cure that drives conversion high enough to reduce low-molecular-weight extractables. The printed substrate is then finished by urethane clearcoat or soft-touch coating after atmospheric plasma or corona treatment, because freshly post-cured surfaces do not reliably wet polar coatings without activation. EU RoHS 2011/65/EU Annex II screening for lead, mercury, cadmium, hexavalent chromium, PBB, and PBDE is conducted at homogeneous-material level on the cured resin. Terminal products in this category include wearable earbud shells, handheld field-tool enclosures, GPS receiver frames, battery door covers, and impact-resistant internal frames for portable data collectors.
High-wear assembly fixtures and end-of-arm tooling made from RPU 60 are used as one-piece replacements for machined nylon or acetal in short-run manual assembly lines where metal fixtures would damage painted or polished surfaces. The material is dispensed as a 100 wt% single-part resin; there is no post-printed compounding step, and the qualified formulation addition ratio is 0 wt% of glass fibre, carbon fibre, or mineral filler because non-transparent fillers reduce the UV penetration depth inside the DLS tray and can create underbound regions around vertical walls. The downstream production process for a typical nest involves digital light synthesis at 100 µm layer thickness, washing in tripropylene glycol methyl ether in a sealed wash tank, thermal post-cure in a forced-air oven, and final machining of locating bores or datum pads to ISO 2768-mK. On actual fixture lines, as-printed flatness below 0.2 mm over a 100 mm span is not stable after post-cure unless the part is supported on a milled ceramic plate, because crosslinking shrinkage marks propagate from rib intersections; this is a known production bottleneck on M2-class platforms. Compliance for these non-food, non-medical tools is driven principally by ISO 9001 process control and EU 2006/42/EC machinery-safety principles for end-of-arm tooling. Terminal products include CMM holding fixtures, robotic gripper jaws, pick-and-place nests, assembly alignment fixtures, and drill-guide bushings for low-volume sheet-metal work.
For external diagnostic device housings, RPU 60 is not qualified as an implantable or long-term mucosal-contact material; the applicable biocompatibility assessment is limited to ISO 10993-5 for cytotoxicity and ISO 10993-10 for skin sensitization or irritation on the finished, post-cured part. The formulation addition ratio is 100 wt% unadulterated resin and 0 wt% of antimicrobial additive, plasticizer, or adhesion promoter; any added surface coating, adhesive, or lubricant above a detectable residue changes the extractables profile and must be reconsidered under ISO 10993-18. Printing for this sector is performed on dedicated resin trays with batch traceability, followed by two-stage solvent washing and extended thermal post-cure to reduce residual urethane acrylate monomer below the lot-specific limit established by the supplier; after post-cure, parts are cleaned in an ultrasonic bath at 40 kHz with filtered water and dried in a particulate-controlled cabinet. The production record is maintained under ISO 13485 document control, though the part is not a finished medical device until the OEM completes system-level design controls under FDA 21 CFR 820.30. Steam autoclave cycles above 121 °C are excluded because the thermal environment exceeds the material's practical HDT range; ethylene oxide or gamma exposure may be used only after OEM validation confirms no significant embrittlement. Terminal products include diagnostic handheld enclosures, external ultrasound scanner bezels, benchtop analyzer front fascias, and non-patient-contact equipment covers in hospital laboratories.
RPU 60 enters aerospace cabin interior bracketry only where the service temperature stays below the polyurethane HDT; machined Ultem and glass-filled nylon remain required for parts near heating ducts, galley ovens, or avionics heat sinks. The material is qualified as a 100 wt% as-supplied one-part resin with 0 wt% regrind or halogenated flame retardant; recycled DLS part scrap cannot be re-entered into the resin tray because liquid photopolymer does not regrind into a flowable powder without destroying the resin's polymerization profile. Compliance begins with FAR 25.853(a) and Appendix F Part I vertical-burn requirements for interior non-metallic materials; if the installed area falls under FAR 25.853(d) heat-release or smoke-density requirements, the uncoated resin may fail and published data for this specific configuration is limited. Downstream production follows the standard DLS work flow of printing, washing in TPM, thermal post-cure, and first-article inspection on a CMM with datum references per AS9102; mounting holes are drilled and reamed after post-cure to avoid shrinkage-induced angular drift in as-printed holes. Shrinkage anisotropy of 0.3–0.6% depending on wall thickness is documented in cabin-bracket first-article reports and drives the use of post-machining for interface features. Terminal products are limited to non-structural cabin items such as overhead-bin latch brackets, passenger service unit retainers, seatback tray catches, galley latch covers, and ventilation grille clips.
| Application sector | Primary standard or regulatory framework | Material-level test | End-use boundary |
|---|---|---|---|
| Automotive interior clips | 49 CFR 571.302, REACH Annex XVII, 2000/53/EC | VDA 278 | FMVSS 302 pass; not for engine bay or continuous service above 85 °C |
| Electronics enclosures | IEC 62368-1, RoHS 2011/65/EU | UL 94 | HB at minimum qualified thickness; no V-0 claim without requalification |
| Industrial tooling and fixtures | ISO 9001, 2006/42/EC | ISO 868 | Creep and clamp load validated at process temperature; no food-contact use |
| Medical external housings | ISO 10993-5, ISO 10993-10 | ISO 10993-18 | External non-invasive only; steam autoclave excluded |
| Aerospace cabin interior | FAR 25.853(a), AS9102 | FAR 25.853 Appendix F Part I | Non-structural; ambient below HDT; not for OSU heat-release zones |
| Protective equipment shells | EN 1621-1 | ISO 178 | System-level certification required; material alone not certified |
| Non-potable fluid shrouds | ISO 175, ISO 62 | ISO 868 | Non-potable, pH < 10, not for continuous hot water above 60 °C |
Impact-absorption shells for personal protective equipment are made from RPU 60 when the annual volume is too low to justify injection-molded polycarbonate or glass-filled nylon tooling. The resin is used as a 100 wt% one-part photopolymer with 0 wt% of impact modifier, blowing agent, or flexibilizer; any post-print paint or lacquer must be assessed because solvent uptake can shift the shell's energy transmission by altering surface hardness and friction. The printed shell undergoes a downstream production sequence of DLS printing, solvent wash, thermal post-cure, and then system-level impact testing at -10 °C and +40 °C according to EN 1621-1 for motorcyclist limb protectors or equivalent product-specific standards; material-level ISO 178 flexural data alone is insufficient for certification. For a CE limb protector, the system-level acceptance boundary under EN 1621-1 is commonly set at a mean transmitted force below 35 kN for level 1 or below 20 kN for level 2, but the complete device, including liner and shell integration, controls the result. Printed lattice zones under the outer shell can be used only if the OEM validates that open-cell structures do not capture water or cause a change in transmitted force; published data for this specific configuration is limited. Terminal products include motorcyclist knee and elbow protector shells, mountain-bike shin guards, equestrian vest plates, and industrial anti-impact gloves using printed dorsal plates.
| Property | Method | Qualified class range for 60 Shore D DLS rigid polyurethane |
|---|---|---|
| Shore D hardness | ISO 868 | 58–65 |
| Tensile modulus | ISO 527-2/1A | 1200–2000 MPa |
| Notched Izod impact | ASTM D256 | 25–60 J/m |
| Heat deflection temperature at 0.455 MPa | ISO 75-2/B | 65–85 °C |
In non-potable fluid handling, RPU 60 is restricted to shrouds, brackets, and covers outside continuous liquid contact; it is not qualified for NSF/ANSI 61 drinking-water contact, and continuous immersion in hot water above 60 °C or in amine-containing machining coolants above pH 10 falls outside the operational boundary because urethane linkages are hydrolytically sensitive. The formulation addition ratio is 100 wt% neat resin and 0 wt% of hydrophobic filler, wax, or silane coupling agent; any surface sealant applied after post-cure must be tested under ISO 175 immersion conditions to confirm it does not soften the underlying resin. Production is conducted on M2-class DLS lines, followed by a wash in tripropylene glycol methyl ether and thermal post-cure; final parts are subjected to ISO 62 water-absorption screening at 23 °C and 50% relative humidity. Before deployment, the completed shroud or bracket is immersed for 500 h in 50:50 ethylene glycol/water at 40 °C and visually inspected for cracks, swelling, or hardness loss by ISO 868. If the mass gain after immersion exceeds 2%, the part is rejected from service because the swollen matrix can lose clamping preload and dimensional stability. Terminal products include CNC spindle motor shrouds, coolant manifold covers, pump adapter brackets, sensor mounting plates, and cable routing clips in wet industrial enclosures.
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Carbon Printers RPU 60 Rigid Polyurethane is a dual-cure resin formulated for Carbon Digital Light Synthesis platforms. In the CLIP process, ultraviolet exposure in the 385 nm band converts the liquid resin into a green part, and subsequent forced-air thermal cure completes the polyurethane network. The material is classified as a rigid polyurethane because post-cured specimens exhibit Shore D hardness above 70 under ASTM D2240-15e1 and tensile elongation at break generally above 100% under ASTM D638-14. It is positioned for impact-loaded housings, brackets, low-pressure ducts, and snap-fit closures where cyclic deflection exceeds the capability of brittle acrylate photopolymers.
RPU 60 is supplied as a single-component liquid prepolymer resin for CLIP-compatible trays and requires closed-loop control of tray temperature and oxygen-permeable window conditions. The oxygen-permeable window maintains an uncured dead zone, typically 20–100 µm, that prevents part adhesion during continuous build motion. If oxygen permeability or irradiance drifts outside the calibrated window, the dead zone thickness changes and z-axis dimensional error appears. On production-scale Carbon M2 and L1 cells, z-axis compensation offsets are applied to control feature deviation below ±0.2 mm for dimensions under 50 mm. Resin bath age and photoinitiator depletion shift polymerization kinetics during long campaigns, so resin-level sensing and wipe cycles are required to limit batch-to-batch variance.
Because RPU 60 contains no fiber fillers, pigment or colorant additions require validation. Light-scattering particulates reduce cure depth and can alter green-part mechanical integrity before the thermal cure step. The uncured resin viscosity is temperature-dependent; elevated tray temperature improves recoating dynamics, but excessively high temperature accelerates photoinitiator consumption and shortens resin bath life. Production cells that operate below the supplier’s recommended tray temperature frequently observe irregular resin layer formation, visible as horizontal banding on large-area surfaces. Such banding is not cosmetic only; it indicates locally reduced monomer conversion and correlates with lower z-axis tensile strength retention in printed specimens.
| Property | Standard designation | Unit | Typical post-cured range |
|---|---|---|---|
| Tensile strength at break | ASTM D638-14 | MPa | 35–45 |
| Tensile modulus | ASTM D638-14 | MPa | 1,000–1,300 |
| Elongation at break | ASTM D638-14 | % | 100–150 |
| Flexural modulus | ASTM D790-17 | MPa | 900–1,200 |
| Notched Izod impact | ASTM D256-10e1 | J/m | 55–80 |
| Hardness | ASTM D2240-15e1 | Shore D | 70–75 |
| Heat deflection temperature at 0.455 MPa | ASTM D648-18 | °C | 55–65 |
| Density | ASTM D792-20 | g/cm³ | 1.05–1.15 |
UV exposure in the DLS cell establishes part geometry but leaves the polyurethane network only partially converted. The forced-air oven step, typically conducted at 120°C for 2 h under manufacturer-directed protocols, drives chain extension and crosslinking through reaction of residual isocyanate-functional groups. Oven temperature uniformity should be held within ±5°C of setpoint because under-cure at the low end depresses heat deflection temperature and increases solvent swell, while over-cure at the high end can accelerate oxidative discoloration. For sections thicker than 6 mm, staged ramps or extended dwell are used to limit thermal overshoot; published cycle-time data for very thick configurations remains limited, so production validation is required.
Green-part support removal is performed before the thermal cure step because the uncured network is softer and less prone to brittle fracture. Aggressive support removal after cure can create subsurface microcracks that reduce notched Izod impact by more than 10% relative to properly separated specimens. Cross-section microscopy of under-cured parts shows a gradient in network density from the outer surface to the core; the outer skin can pass hardness checks while the core remains under-converted. This condition is detected by differential scanning calorimetry residual exotherm or by solvent uptake under ASTM D543-21, which exceeds the datasheet range when cure is incomplete.
Relative to RPU 70, RPU 60 occupies a lower-stiffness, higher-elongation region of the Carbon rigid polyurethane series. Representative tensile modulus for RPU 60 is below 1.5 GPa under ASTM D638-14, while RPU 70 is reported above that threshold; the elongation at break of RPU 60 is approximately two times the value typically reported for RPU 70. This distinction directs RPU 60 toward snap-fit covers and impact-loaded brackets that tolerate flexural compliance, whereas RPU 70 is selected where thinner walls must maintain tighter dimensional stability under load. Compared with epoxy-based Carbon grades such as EPX 82, RPU 60 shows lower tensile modulus and lower heat deflection temperature but higher notched Izod impact and reduced brittle failure tendency; EPX 82 is specified for stiff structural components with elevated thermal exposure, where RPU 60 would approach its upper thermal limit.
Automotive housing programs select RPU 60 for parts that must endure repeated service access and moderate impact. Notched Izod impact under ASTM D256-10e1 is reported above 60 J/m for post-cured specimens, contrasting with unfilled epoxy photopolymers that frequently fall below 30 J/m in equivalent specimen geometries. Snap-fit insertion force is governed by flexural modulus, beam deflection, coefficient of friction, and undercut depth. The lower flexural modulus of RPU 60 reduces peak insertion force for two-arm cantilever latches while retaining latching force through larger allowable undercut deflection. Abrasion resistance measured by Taber or rotating drum mass loss places RPU 60 between elastomeric polyurethane and rigid epoxy grades, making it suitable for shrouds, cable guides, and positioning brackets subject to repeated contact.
On production lines, RPU 60 parts that are ultrasonically welded or adhesively bonded require post-wash surface activation. Residual isopropyl alcohol or uncured monomer can reduce bond strength by more than 20% if not evaporated before bonding. Corona or plasma treatment is generally applied to raise surface energy above 45 mN/m measured by dyne test inks, but the specific treatment window depends on time since post-cure and storage humidity. Assemblers should not use amine-heavy accelerators on RPU 60 joints unless validated, because amine species consume isocyanate groups and shift the network stoichiometry at the bond line.
Immersion testing under ASTM D543-21 at 23°C shows moderate mass uptake in aliphatic hydrocarbon fluids and measurable swell in polar aprotic solvents such as acetone and methyl ethyl ketone; percent mass increase can exceed 10% after 24 h immersion. Continuous water exposure at 60°C initiates hydrolytic degradation of the polyurethane ester segments, and tensile strength retention after 1,000 h is typically below 80%. RPU 60 therefore should not be specified for continuous contact with strong acids or alkalis at pH below 3 or above 11 unless part-level validation is performed. In hydrocarbon splash environments common to automotive powertrains, short-term contact is tolerated, but elastomeric gasket and seal compatibility must be reviewed because plasticizer migration from adjacent rubber can alter RPU 60 surface hardness over time.
Direct substitution of 30% glass-filled PA66 with DLS-printed RPU 60 has been evaluated for low-pressure air ducts where continuous service temperature remains below the 0.455 MPa heat deflection temperature of RPU 60, typically near 60°C. Glass-filled PA66 exhibits tensile modulus above 6 GPa, so RPU 60 requires increased wall section or rib density to match flange stiffness. The polyurethane network provides isotropic mechanical behavior and eliminates the fiber orientation anisotropy that complicates molded nylon air duct deflection. The DLS route also removes mold tooling cost for low-volume bridge production, but per-part printer time and thermal post-cure capacity limit economic use; when injection molding tooling already exists and annual volumes are high, RPU 60 is not a direct cost substitute.
Design for DLS in duct applications should orient the part so that load-dominated flanges do not rely solely on interlaminar z-axis strength. While published data comparing build orientations for RPU 60 shows limited anisotropy, z-oriented tensile specimens may retain 80–90% of xy strength. Finite-element material cards should therefore use reduced allowables for load paths that cross print layers. Service validation also requires thermal soak testing at the upper intake temperature, because creep deflection in a constrained polyurethane flange under constant load can exceed short-term HDT-based predictions.
Green RPU 60 parts removed from the DLS build platform are washed in isopropyl alcohol to remove uncured resin, and support structures are separated before thermal cure. If solvent or atmospheric moisture is not removed, the thermal cure step can generate internal porosity because water reacts with isocyanate intermediates and releases carbon dioxide. Production cells apply a pre-drying hold at 40–60°C for 30–60 min before the 120°C cure ramp. Trays should be sealed when idle, and resin exposure to relative humidity above 60% should be limited because the uncured resin is hygroscopic.
Cured RPU 60 water absorption under ISO 62:2008 is generally below 3% at 23°C and 50% RH, a level that affects dimensional tolerance in tight-tolerance snap fits more than it affects bulk mechanical integrity. In humid environments, equilibrium moisture uptake can shift dimensions by 0.1–0.3% linear expansion, depending on section thickness and cure conversion. Assemblies that press-fit metal inserts into RPU 60 should account for this hygroscopic expansion to avoid residual hoop stress that can exceed the material’s tensile strength in very thin bosses. Published data for press-fit insert retention in RPU 60 is limited; validation under expected thermal-humidity cycling is required before release.
Published multiaxial fatigue data for RPU 60 is limited. Component validation under expected duty cycles is required before production release for high-cycle brackets and snap-fit arms. Conservative design practice applies a strength derating of at least 40% from the static tensile value when no component-specific S-N curve is available. The derating is applied to the build direction with the lowest tensile strength, typically the z-axis, and covers the combined effects of interlayer boundary regions and surface roughness.
Regulatory compliance for the uncured resin and cured article must be confirmed against current supplier declarations. The uncured resin contains photoactive and isocyanate-functional components; industrial hygiene controls should follow the safety data sheet, including nitrile glove protection and local exhaust ventilation for oven off-gassing. EU REACH registration under Regulation (EC) No 1907/2006 and RoHS Directive 2011/65/EU conformity should be verified by the supplier for the intended component, particularly for applications sold into electrical and electronic equipment. No food-contact claim is established for RPU 60 unless a separate FDA 21 CFR migration study is completed for the exact curing, washing, and post-cure sequence.
RPU 60 should not be blended with amine-containing additives unless explicitly validated, because amine species consume isocyanate groups and shift network stoichiometry toward incomplete cure. Storage of cured parts in direct sunlight or continuous UV exposure can lead to progressive discoloration and surface embrittlement; UV-stabilized coatings are required for exterior-use validation. The upper service temperature in air is limited by the heat deflection temperature and oxidative stability of the polyurethane backbone; sustained exposure above 80°C is application-specific and requires mechanical property retention testing after heat ageing under ASTM D3045-18 or equivalent oxidation protocols.