| Код ТН ВЭД | 456046 |
Как аккредитованная 3D Systems Accura HPC, высокоскоростная, высокожесткая фабрика нанокомпозитов, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Supplied in a 1-kg light-blocking, sealed plastic bottle labeled 3D Systems Accura HPC A engineered nanocomposite resin for safe storage. |
| Погрузка контейнера (20-футовый контейнер) | 20′ FCL container loaded with 3D Systems Accura HPC, a high-speed, high-rigidity engineered nanocomposite, securely palletized for safe transport. |
| Доставка | 3D Systems Accura HPC, a high-speed, high-rigidity engineered nanocomposite resin, is shipped as a liquid photopolymer in sealed, opaque, UN-approved containers. Keep cool, dry, and away from sunlight and ignition sources. Verify the SDS; it is typically non-regulated for DOT, IMDG, and IATA transport, but follow all applicable regulations. |
| Хранение | Store in the original, tightly closed container in a cool, dry, well-ventilated place away from direct sunlight, heat, sparks, and flames. Recommended temperature: 18–25°C (65–77°F); avoid freezing and extreme heat. Keep away from oxidizers, moisture, and incompatible materials. Keep containers upright, labeled, and protected from damage. Do not store near food, drink, or animal feed. Follow the SDS. |
| Срок годности | Typical shelf life is 12 months when stored in original sealed container at 20–25°C, protected from light, heat, and moisture. |
When a closed-return wind tunnel campaign requires a multi-channel pressure-tap manifold integrated into a thin-shell wing-body shape, the use of Accura HPC is evaluated against machined aluminium and polyurethane modelling board for modulus retention across the tunnel temperature cycle. In this downstream pattern, the resin is processed as a single-component vat resin at 100% fill; no diluent, pigment, or additional photoinitiator is introduced because the formulation is supplied ready to use and dilution shifts recoating behaviour outside the machine-specific material parameter file. The production sequence begins with STL slicing at 50–100 µm layer thickness depending on surface curvature, followed by 355 nm galvanometer-scanned laser exposure on a 3D Systems ProX 800 or equivalent platform. Internal pressure channels are printed at 1.0–1.5 mm nominal bore with a minimum wall thickness of 1.2 mm around each channel. Support structures account for 8–12% of total build volume, rising to 15–20% when the wing-body model contains unsupported overhangs greater than 30° from vertical. After build, parts are washed in tripropylene glycol monomethyl ether or isopropyl alcohol per the machine-specific process sheet, then UV post-cured at 30–60°C until Shore D hardness exceeds 84 under ASTM D2240-15. The final product is an aerodynamic test article with pressure taps, surface roughness maintained at Ra 0.8 µm or better, and dimensional acceptance documented under AS9100D clause 8.5.1 for first-article inspection. Tensile property verification on co-cured witness specimens is performed per ASTM D638-14; measured modulus values are commonly reported in the 4.5–5.2 GPa band, though published data for this exact geometry is limited and must be re-confirmed with each lot. Because batch-to-batch variation in vat viscosity is observed on production machines with long idle intervals, pre-job viscosity verification at 30°C is required before committing to a 50 µm layer campaign; recoating failures in low-humidity environments below 30% RH typically present as surface chatter on the z-axis-facing surface. The operational boundary is that internal pressure channels below 1.0 mm diameter may close during UV post-cure due to anisotropic z-axis shrinkage; compressed air above 0.3 MPa is not recommended without hydraulic burst verification of the channel wall.
The use of Accura HPC for short-run injection moulding insert fabrication is governed not by steel-insert standards such as P20 tool steel but by the thermal conductivity gap between the crosslinked photopolymer network and the steel bolster. In this downstream pattern, the printed insert occupies 100% of the cavity-forming volume; aluminium-filled epoxy backfill is permitted only outside the cavity insert block at 5–15 mm thickness, not as a resin additive. The formulation addition ratio at the tool shop is therefore 0% reactive diluent and 100% printed solid for the cavity surface. The downstream production sequence includes extraction of the cavity with conformal cooling channels of 4–6 mm diameter, SLA printing at 50 µm layers, centrifugal drainage and solvent immersion for uncured resin removal, UV post-cure, and hand-bedding into a steel bolster with 0.02–0.05 mm shut-off clearance. Gate, runner, and ejector layout follows ISO 294-1:2017, and moulded part general tolerances are assigned under DIN 16742:2013. Published run-length data for this specific configuration is limited, but tooling evaluations commonly report viable unfilled polypropylene shot counts in the 50–200 range before cavity-edge chipping or vent flash exceeds drawing limits. The principal processing conflict is thermal rejection: the polymer composite insert extends cooling time by a factor of 1.5–2.5 compared with P20 steel of equivalent wall thickness. Melt temperature for unfilled polypropylene is therefore held at the low end of the supplier window, typically 190–210°C, with mould surface temperature controlled at 30–50°C by water lines. Terminal product types include short-run packaging closures, lens prototypes, and living-hinge trials where steel tooling cannot be justified. The insert should not be used with flame-retardant polyamide or glass-filled grades above 15 wt% fibre because abrasive filler removes the printed surface and shortens life below 20 shots.
The compliance matrix consolidates the acceptance standards and numerical gates referenced in the downstream application scenarios.
| Scenario | Acceptance standard | Measured parameter | Numeric gate |
|---|---|---|---|
| Wind tunnel pressure-tap model | AS9100D clause 8.5.1; ASTM D638-14 | First-article dimensional inspection; tensile modulus on witness specimens | Ra ≤ 0.8 µm; modulus 4.5–5.2 GPa |
| Injection mould insert | ISO 294-1:2017; DIN 16742:2013 | Injection moulding test specimen preparation; moulded part general tolerances | Tolerance class per drawing; cooling time factor 1.5–2.5× |
| Underhood prototype | ISO 16750-4:2010 | Temperature, vibration, chemical exposure | -40°C to 140°C; topcoat 50–100 µm if coolant contact |
| Solder fixture | IEC 61340-5-1 | ESD protected area compatibility | Requires external conductive coating; wave contact ≤ 10 s at 260°C |
| Connector shell | IEC 60695-2-11:2014; ASTM D543-20 | Glowing-wire end-product test; chemical compatibility of barrier overlay | Overlay 100–150 µm; immersion 7 days at 60°C |
Across underhood validation programmes where ambient thermal cycling is specified from -40°C to 140°C, Accura HPC is used as a dimensionally stable master for sensor brackets and harness clips rather than a production polymer. In this use the resin is printed at 100% solid fill for load-bearing bosses; brass or stainless heat-stake inserts occupy 3–5% of the component volume and are installed at 180–220°C into undersized holes after curing. The downstream process includes SLA layering at 100 µm, solvent wash, UV post-cure, and dry machining of mounting surfaces to a flatness of 0.1 mm over 100 mm before insert installation. Industry compliance is evaluated under ISO 16750-4:2010 for temperature, vibration, and chemical load exposure representative of road vehicle environments. Because no additional flame-retardant or rubber-toughening agent is added, the formulation remains a 100% ready-to-use resin at the vat; proposed additions of acrylate-based tougheners to lift impact strength alter crosslink density and reduce heat deflection temperature. Terminal products include prototype ECU housings, battery management module covers, and front-end sensor brackets exposed to limited underhood soak cycles. The known limitation is chemical exposure to ethylene glycol-based coolant at temperatures above 60°C: immersion testing per ASTM D543-20 shows surface microcracking in some lots after 100 h, though published lot-specific data is limited. For components requiring continuous underhood fluid contact, the printed surface is sealed with a two-component urethane topcoat at 50–100 µm dry film thickness, but the coating adds compliance risk because it can bridge snap-fit features.
In electronics assembly lines operating wave-solder and reflow-adjacent tooling, Accura HPC is specified only when aluminium machining time cannot meet a 24–48 h line-change deadline and when the fixture is not intended for continuous lead-free wave solder exposure. The vat is charged at 100% fill; no antistatic agent or conductive filler is added because the cured surface is not inherently static-dissipative under IEC 61340-5-1 unless subsequently coated. The downstream production route for a typical solder pallet begins with a solid model with 2.5 mm minimum wall thickness, 1.0 mm through holes for component leads, and 0.5 mm vent slots. After SLA printing and UV post-cure, holes are reamed to final diameter, and helicoils or press-fit brass bushings are inserted at 5–8% of part volume. Heat deflection temperature of witness specimens is checked per ASTM D648-18 Method B at 1.82 MPa before fixture release; if the measured value falls more than 5°C below the lot-qualified mean, the fixture is quarantined for rework. Dimensional validation after thermal soak is performed at 120°C for 8 h, with flatness measured on a granite surface plate to 0.2 mm over 300 mm as the acceptance gate. The terminal product is a short-run assembly fixture or routing template, not a production solder pallet for lead-free wave solder temperatures exceeding 260°C. The process boundary is sharply defined: sustained contact with a 260°C solder wave is limited to 5–10 s contact time, and even then surface degradation is expected; fixtures used in continuous wave solder are protected by a 0.5–1.0 mm ceramic or silicone foam contact layer.
For high-voltage test-rig connector shells, the mechanical stiffness of Accura HPC is useful but flammability classification is not inherent to the cured network. The resin is processed at 100% vat fill, with nominal wall thickness of 2.0–3.0 mm around terminal pockets and 3.0 mm bosses for screw-retained mating faces. The downstream sequence includes SLA printing at 100 µm, solvent wash, UV post-cure, drilling and tapping of M3 threads, and electroless copper/nickel plating or conductive paint application for EMI shielding where required. Industry compliance for the electrical enclosure is tested under IEC 60695-2-11:2014 glowing-wire end-product test; however, published data for the flammability classification of unfilled Accura HPC is limited, and it is not cited as a UL94 V-0 system in the manufacturer’s standard documentation. Where a V-0 or V-2 rating is contractually required, a 100–150 µm ceramic-filled silicone barrier overlay is applied to internal surfaces; this overlay constitutes a separate added layer and is not a resin formulation change. Terminal products are low-volume connector housings, relay sockets, and potting shells for laboratory power distribution. The operational incompatibility is with amine-based epoxy potting compounds: direct contact before full post-cure can induce softening at the printed surface because unreacted amine hardener can attack the acrylate-ester network. Compatibility is therefore verified by 7-day immersion testing per ASTM D543-20 at 60°C before the housing design is released.
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3D Systems Accura HPC is an engineered nanocomposite photopolymer supplied for 355 nm stereolithography platforms. The material is formulated as a white, opaque liquid containing a dispersed nanoscale filler that raises room-temperature modulus while suppressing elongation. The product is positioned for high-rigidity, high-temperature functional prototypes, wind-tunnel test models, tooling, and short-run injection mold inserts. The “HPC” designation is manufacturer shorthand for high-performance composite; the high-speed handling claim is associated with faster thick-layer build modes and higher green-state rigidity rather than with a change in laser scan physics.
Liquid density is approximately 1.18 g/cm³ and viscosity at 30 °C is approximately 550 cP. The viscosity is higher than most unfilled SLA prototyping resins, so build schedules normally require longer recoater dwell times or reduced blade speed to maintain uniform film thickness. Manufacturer-qualified layer-thickness settings include 100 µm and 150 µm; the 150 µm build style supports faster part production for coarse-feature iterations, while the 100 µm style is selected when surface finish and small-feature fidelity dominate acceptance criteria.
Mechanical values are not process-independent. The following data are representative of post-cured specimens machined and tested in accordance with the cited standards. Build orientation, post-cure duration, and UV chamber uniformity all shift the measured values; manufacturer-published curves should be consulted before design allowables are fixed.
The resin’s high-rigidity signature appears in both tensile and flexural loading. Manufacturer-published data place tensile modulus in the 10,000–10,500 MPa range and flexural modulus in the 9,500–10,000 MPa range after a validated UV post-cure cycle. Tensile strength is commonly reported in the 66–76 MPa range with elongation at break near 1.5%, indicating a brittle failure mode with limited plastic deformation before fracture.
| Property | Test standard | Metric value |
|---|---|---|
| Tensile strength | ASTM D638-14 | 66–76 MPa |
| Tensile modulus | ASTM D638-14 | 10,000–10,500 MPa |
| Elongation at break | ASTM D638-14 | 1.5–2% |
| Flexural strength | ASTM D790-17 | 105–130 MPa |
| Flexural modulus | ASTM D790-17 | 9,500–10,000 MPa |
| Izod notched impact | ASTM D256-10 | 16 J/m |
| Heat deflection temperature at 0.46 MPa | ASTM D648-18 | 220 °C |
| Heat deflection temperature at 1.82 MPa | ASTM D648-18 | 96 °C |
Interpretation of the Izod notched impact value of 16 J/m is equally important: the material should not be specified for snap-fit clips or living hinges that require repeated high-strain recovery. Stress concentrations at sharp internal corners can initiate cracking because the matrix does not yield sufficiently to redistribute local stress. For load-bearing fixtures, internal fillets with radii greater than 1 mm are typically recommended, and threaded inserts are preferred over direct thread-cutting in thin walls.
The high heat deflection temperature at 0.46 MPa is commonly cited as 220 °C, while the more demanding 1.82 MPa condition is 96 °C. This spread indicates that the polymer matrix remains dimensionally stable under low mechanical load but softens earlier when high stress is applied simultaneously. For under-hood components or short-run injection tool inserts, the low-load HDT should not be used as the sole thermal screening value; the 1.82 MPa HDT and the part’s sustained stress state must be evaluated together.
High-speed operation is realized primarily through the qualified thick-layer build style and the resin’s rapid green-state handling. Because the filler raises green modulus, parts can be removed from the platform with less flexure during support removal, which reduces hand-finishing time and allows quicker transfer to post-cure. However, the 150 µm mode produces more pronounced staircase surfaces on shallow slopes, so the speed gain carries a surface-roughness penalty. For aerodynamic models, critical surfaces are usually built at 100 µm or machined after thick-layer roughing.
On large-frame SLA equipment with solid-state laser sources, the nanocomposite’s viscosity demands careful recoater control. Operators typically reduce recoater speed by 10–30% relative to unfilled resins and may increase vat temperature to the upper end of the manufacturer’s recommended range. Failure to maintain a uniform liquid film produces visible drag lines and can entrap air at the part surface, which appears as pitting or delamination after post-cure. The resin vat should be sealed and dry-air blanketed when ambient relative humidity exceeds 60%; moisture uptake in open-vat handling can alter polymerization kinetics and cause surface haze.
Post-cure is required to reach the published mechanical values. UV post-cure should be performed in a chamber with uniform irradiance and controlled temperature; the manufacturer’s validated cycle should be followed rather than extending exposure indefinitely, because overexposure can darken the part and increase brittleness without a proportional gain in modulus. After post-cure, parts may be machined, drilled, and tapped. Carbide tooling is preferred because the nanoscale filler is abrasive; high-speed steel tools exhibit accelerated edge wear. When sections are machined, coolant or compressed air should be used to limit heat buildup and prevent local stress relaxation.
Support removal follows standard SLA practice with isopropanol in an ultrasonic bath, followed by drying before UV post-cure. Prolonged solvent immersion can swell exposed surfaces and reduce dimensional accuracy. Uncoated parts are not recommended for continuous outdoor UV exposure or direct contact with amine-based coatings unless compatibility is verified; residual epoxy functionalities on the surface can react with amine crosslinkers and produce localized softening or adhesion loss.
Layerwise fabrication creates anisotropic mechanical and thermal behavior. The published ASTM D638-14 tensile values are usually derived from specimens oriented in the XY plane; Z-direction tensile strength and elongation may be lower because interlayer adhesion is the limiting interface. For a high-modulus, low-elongation material, the Z-direction penalty is particularly relevant in thick sections or parts with abrupt cross-section changes. When a tool insert is expected to see clamping loads perpendicular to the build layers, the design should be validated by testing specimens built in the same orientation as the production part.
Interlayer adhesion in high-filler resins can be reduced if the laser energy density is not matched to the critical exposure of the filled formulation. The machine operator should confirm that the build style uses the manufacturer’s material-specific parameters, including scan speed, spot overlap, and recoater dwell. Using generic clear-resin parameters with Accura HPC can produce under-cured layers, leading to interlayer delamination and a substantial loss of Z-direction tensile strength.
Thermal expansion is also process-dependent. Published linear coefficient of thermal expansion data for Accura HPC are limited; design calculations that combine the 96 °C HDT at 1.82 MPa with a metallic mating part should not assume isotropic expansion. A conservative approach is to use an effective CTE range of 35–50 ppm/°C for initial tolerance stack-up until application-specific measurements are available. This range is typical for filled SLA resins but is not a substitute for part-level thermal cycling on the actual production geometry.
Published fatigue and creep data for Accura HPC are limited. Cyclic loading in high-temperature tooling should be screened with coupon tests that replicate the production load spectrum. The material’s brittle tensile response means fatigue life is more sensitive to surface defects, machining marks, and incomplete support removal than in an unfilled, higher-elongation resin. Polishing or sealing machined surfaces can reduce crack initiation sites.
Resin storage should follow the manufacturer’s safety data sheet. Containers should be kept sealed and stored at 15–30 °C; freezing or high-temperature storage can destabilize the dispersion of the nanoscale filler. Before use, the resin should be gently mixed without high-shear air entrainment. Vigorous agitation can introduce microbubbles that remain suspended in the viscous liquid and create voids in the cured part.
Accura HPC occupies a different property bracket from Accura Xtreme and Accura 25. High-impact grades such as Accura Xtreme exhibit elongation at break in the 10%–20% range and flexural modulus below 2,500 MPa; they are selected for snap-fit assemblies and impact-resistant housings. Accura HPC inverts that balance: elongation is near 1.5% and flexural modulus is above 9,500 MPa. The correct selection rule is therefore not a simple strength comparison but a stiffness-versus-ductility trade-off. A component that requires deflection before failure should not be converted to Accura HPC without redesign.
Against clear SLA grades, the difference is more than optical. Transparent resins are usually unfilled and have lower modulus and heat deflection temperature; they allow internal visualization but lack the high-temperature and dimensional-stability characteristics of the nanocomposite. Accura HPC is not a transparent material, and its white opaque appearance is an inherent consequence of the nanoscale filler scattering visible light.
No manufacturer-published food-contact or medical body-contact certification is associated with Accura HPC; it is not formulated as a biocompatible material under ISO 10993. REACH and RoHS status must be confirmed from the current safety datasheet or supplier documentation, because photopolymer raw-material inventories can change. For applications with direct chemical exposure, solvent compatibility testing is required; the filled polymer matrix may resist aliphatic hydrocarbons but can be attacked by strong polar solvents or concentrated acids.
The main application scenarios for Accura HPC are derived from this property set. Wind-tunnel test models benefit from high flexural modulus because aerodynamic loading produces low deflection; the 0.46 MPa HDT of 220 °C permits testing under heated flow conditions. Short-run injection mold inserts benefit from high modulus and low-load thermal stability but are limited by the 96 °C HDT at 1.82 MPa and the material’s brittle failure mode; they are best used for prototype molding of low-temperature thermoplastics at reduced clamp pressures. High-rigidity jigs and fixtures, inspection gauges, and robot end-effector components are also practical applications when the design incorporates radii, inserts, and orientation-specific validation. End users should qualify the material on the intended SLA platform with the production build style and post-cure cycle; a single datasheet value cannot replace part-level testing under the actual load, temperature, and chemical environment.