| HS Code | 486538 |
| Product Name | 3D Systems Accura PP White (SL 7811) Flexible and tough plastic |
| Material Type | Polypropylene-like photopolymer |
| Technology | Stereolithography (SLA) |
| Color | White |
| Tensile Strength | 35 MPa |
| Tensile Modulus | 1,400 MPa |
| Elongation At Break | 25% |
| Flexural Strength | 45 MPa |
| Flexural Modulus | 1,200 MPa |
| Notched Izod Impact Strength | 40 J/m |
| Hardness | 80 Shore D |
| Heat Deflection Temperature At 0 45 Mpa | 58 °C |
| Heat Deflection Temperature At 1 82 Mpa | 48 °C |
| Glass Transition Temperature | 55 °C |
| Density | 1.13 g/cm³ |
| Water Absorption | 0.35% |
| Dielectric Strength | 15 kV/mm |
| Coefficient Of Thermal Expansion | 100 µm/m-°C |
As an accredited 3D Systems Accura PP White (SL 7811) Flexible and tough plastic factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 1 kg sealed bottle of 3D Systems Accura PP White (SL 7811), flexible and tough plastic, labeled for resin printing. |
| Container Loading (20′ FCL) | 20′ FCL container loading: palletized drums of 3D Systems Accura PP White (SL 7811) flexible, tough plastic resin, secured. |
| Shipping | 3D Systems Accura PP White (SL 7811) is typically not regulated for transport by DOT, IMDG, or IATA. Ship in original, sealed, labeled containers at ambient temperature, protected from sunlight and ignition sources. No UN hazmat class, packing group, or special label is normally required; verify current SDS and local rules. |
| Storage | Store Accura PP White (SL 7811) in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and flames. Keep the original, labeled container tightly closed and upright when not in use. Protect from UV light, freezing, and moisture. Maintain recommended temperature, typically 15–25°C. Segregate from oxidizers, acids, bases, and food. Follow SDS and use appropriate PPE. |
| Shelf Life | Shelf life is 24 months if stored unopened in the original container at 20–25°C, away from sunlight. |
Accura PP White (SL 7811) is processed on solid-state stereolithography platforms such as the ProX 800 or Viper Pro using a 355 nm laser source. The resin vat is held at the supplier-specified temperature range to maintain recoating viscosity; layer thickness is set to 0.100 mm for large automotive interior trim components, while critical latch features are built with 0.050 mm layers. The support network is generated with a base density of 40–60 % and a latch-arm density of 15–20 %; support tip diameter is limited to 0.60 mm on engagement surfaces to reduce witness marks. After the build, the parts are removed and washed in a centrifugal solvent station with tripropylene glycol monomethyl ether (TPM), then rinsed in isopropyl alcohol in an ultrasonic bath to remove residual uncured resin from undercut recesses. A heated UV post-cure with 365–405 nm lamps is applied; the total radiant energy dose is adjusted to the thickest cross-section to avoid undercure at the bosses. Mechanical validation is performed under ASTM D638-14 for tensile strain and ASTM D256-10 for notched Izod impact at 23 °C and 50 % RH; these values are used to calculate maximum undercut depth in snap-fit retention features. The material does not replicate the low-temperature impact response of impact copolymer polypropylene below −40 °C, but cabin ambient testing down to −30 °C is specified for fit and latch force verification. Terminal products include wiring harness routing clips, B-pillar trim fasteners, and door panel push-in retainers.
Closure prototypes produced from Accura PP White require the hinge line to be oriented parallel to the recoater axis. When the hinge is perpendicular to the recoater direction, layer boundary planes intersect the flexural neutral axis, and published data for this specific anisotropic flexural fatigue configuration is limited; coupon-level validation is required before functional testing. Hinge thickness is designed with a thickness-to-width ratio of 0.10–0.15, based on the tensile strain at break measured under ASTM D638-14, and the land length behind the hinge is kept below the minimum dimension at which stress whitening initiates during full-open closure. The resin is built at 0.050 mm layer thickness for hinge features to reduce stair-step notch effects. Cleaning uses TPM in a first-stage solvent bath, followed by isopropyl alcohol in a second-stage ultrasonic rinse; the post-cure energy dose is held at the lower end of the supplier’s recommended range to avoid embrittlement of the thin hinge web. Torque retention is measured according to ASTM D3475, drop impact is evaluated under ISTA 3A, and dimensional stability is checked after a controlled aging interval at 40 °C. The resin is not supplied with EU 10/2011 migration documentation, so closure prototypes are restricted to mechanical fit, torque, and drop testing rather than food-contact migration studies. Terminal products include tamper-evident dispensing closures, flip-top caps for personal care bottles, and overcaps for airless pump assemblies.
Master patterns for vacuum casting are built with Accura PP White at 0.050 mm layer thickness and then finished with 400-grit wet sanding followed by a solvent-resistant primer before silicone mold fabrication. The printed pattern is scaled non-uniformly: the X and Y axes are compensated upward by the linear shrink factor of the downstream polyurethane, while the Z axis receives a smaller offset because the build has higher dimensional stability along the layer plane than through the stack. A 0.1–0.2 % scale adjustment is applied to the master depending on the Shore A 30–40 silicone mold compound and the casting resin’s polymerization shrinkage; published data for this specific resin-as-master configuration is limited, so the exact scale factor is established by a one-piece trial measurement under ISO 2781 or DIN 7715 methods. The pattern surface is sealed with a solvent-resistant varnish to prevent styrene absorption from the silicone RTV, and the flatback geometry is designed with a draft angle not below 1.5° to reduce demolding shear. Terminal products include silicone mold master patterns for polyurethane battery housings, intake manifold prototypes, and soft-touch console trays.
For external diagnostic device housings and laboratory instrument bezels, Accura PP White is built at 0.100 mm layer thickness with drain holes oriented downward to minimize trapped resin pockets. The washed and UV-post-cured surface is prepared with a filler primer and sanded to Ra 0.8 µm before painting, because the as-built surface retains layerlines that can harbor disinfectant residues. Chemical compatibility is evaluated under ASTM D543 using the actual disinfectant, often a 70 % isopropanol/water solution or a quaternary ammonium formulation, because the material’s solvent resistance in the cured state is not equivalent to unfilled polypropylene. Biocompatibility is not assumed: if the prototype is to be used in a clinical setting, batch-specific cytotoxicity screening is conducted under ISO 10993-5 with an extract dilution method, and sensitization testing under ISO 10993-10 is ordered only for skin-contact geometries. The supplier’s datasheet may not include a USP Class VI monograph for this specific resin, so procurement specifications should explicitly state whether a USP Class VI certificate is required. Terminal products include point-of-care diagnostic enclosure front panels, laboratory pipette stand bases, and IVD instrument bezel prototypes.
| Application segment | Reference method | Measured condition | Operational boundary |
|---|---|---|---|
| Automotive interior clip | ASTM D638-14 / ASTM D256-10 | 23 °C, 50 % RH | Not validated below −40 °C |
| Closure living hinge | ASTM D3475 | Torque retention, ambient | No EU 10/2011 migration compliance |
| Vacuum casting master | ISO 2781 | Dimensional change after silicone mold | Scale factor established by trial piece |
| Medical housing | ISO 10993-5 | Cytotoxicity extract dilution | Batch-specific screening required |
| Electronic enclosure | ASTM D790-17 / IEC 62631-3-1 | Flexural modulus / volume resistivity | No electrical insulation claim without tested value |
Electronic enclosure prototypes that incorporate conductive elastomer gasket grooves and snap-fit lids are produced with Accura PP White at 0.050 mm layer thickness, because the gasket channel width tolerance of ±0.10 mm is difficult to hold at thicker layers after ethanol rinsing and post-cure shrinkage. The lid ribs are oriented at 15–20° to the recoater edge to avoid a single layer plane running continuously along the rib root; this orientation reduces cleavage along the recoater direction while maintaining a clean top surface. The enclosure halves are washed in TPM with agitation, then post-cured in a UV oven at the supplier-specified dose. Mechanical integrity is checked under ASTM D790-17 flexural modulus and ASTM D256-10 notched Izod; electrical insulation claims are not made because the material is not supplied with a volume resistivity value under IEC 62631-3-1 for this configuration. Terminal products include prototype enclosures for industrial control modules, DIN-rail power supply housings, and handheld diagnostic instrument cases.
Air duct and fluid-reservoir prototypes sometimes require the toughness of impact copolymer polypropylene; Accura PP White is used for form-and-fit evaluation but is not specified as a direct material substitute for thermal cycling in underhood air paths. The printed duct sections are built with 0.100 mm layer thickness, then prepared for bonding by sanding the mating flanges to a flatness within 0.25 mm per 100 mm of flange length. Adhesive compatibility with the printed substrate is characterized before bonding; cyanoacrylate or two-part acrylic adhesives may be screened under ISO 527-2 tensile lap shear on the actual wall thickness to identify delamination before the duct is mounted on a flow bench. Airflow resistance is measured at a differential pressure of 500 Pa using a calibrated orifice plate, but published data for this specific resin in blow-molded duct replacement is limited. Terminal products include air intake snorkel mock-ups, PCV line routing prototypes, and coolant reservoir fit models.
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Accura PP White (SL 7811) is a liquid photopolymer supplied by 3D Systems for stereolithography (SLA) equipment. The cured resin is specified to approximate unfilled polypropylene in appearance and semi-ductile mechanical behaviour, but it is not a thermoplastic; it is a crosslinked photopolymer that reaches final properties only after solvent removal and UV post-cure. Manufacturer-published datasheet values for fully post-cured specimens tested under ASTM D638-14 list a tensile strength at break of 32 MPa, tensile modulus of 1,500 MPa, and elongation at break of 25%. Flexural strength is reported as 45 MPa under ASTM D790-17, and flexural modulus is 1,300 MPa. Notched Izod impact is 40 J/m under ASTM D256-10, Shore D hardness is 82 under ASTM D2240-15, and heat deflection temperature is specified at 52 °C at 0.455 MPa and 47 °C at 1.82 MPa under ASTM D648-18. Cured density is approximately 1.13 g/cm³ under ISO 1183-1. These published values are baseline data from standard test specimens and do not transfer directly to large-area production parts unless build orientation, support density, wash protocol, and UV post-cure energy are controlled.
Rigid SLA resins such as Accura 60 and Accura Xtreme are sold into tooling and housing applications where stiffness and high-temperature resistance dominate. Their published tensile moduli are generally above 2,000 MPa, while SL 7811 is specified at 1,500 MPa. The lower modulus shifts SL 7811 toward polypropylene-like compliance, making it useful for snap-fit retention features that would crack in high-modulus resins at the same strain. Under ASTM D638-14 tensile loading, the material exhibits yielding and ductile drawing before fracture, which is consistent with the 25% elongation at break. In notched impact testing under ASTM D256-10, the 40 J/m result indicates that fracture propagation consumes energy through plastic work at the notch tip, but the value is not directly comparable to thick-section polypropylene injection-moulding data because SLA specimens are typically tested in ambient-equilibrium moisture and without weld lines.
| Property | Standard | Published Value |
|---|---|---|
| Tensile strength at break | ASTM D638-14 | 32 MPa |
| Tensile modulus | ASTM D638-14 | 1,500 MPa |
| Elongation at break | ASTM D638-14 | 25% |
| Flexural strength | ASTM D790-17 | 45 MPa |
| Flexural modulus | ASTM D790-17 | 1,300 MPa |
| Notched Izod impact | ASTM D256-10 | 40 J/m |
| Shore D hardness | ASTM D2240-15 | 82 |
| Heat deflection temperature at 0.455 MPa | ASTM D648-18 | 52 °C |
| Heat deflection temperature at 1.82 MPa | ASTM D648-18 | 47 °C |
On production SLA lines, the resin is typically processed at 100 µm layer thickness with a heated recoater maintained at the supplier’s recommended temperature range of 20–30 °C. Lower temperatures increase viscosity and can cause incomplete recoat over large flat surfaces, producing layer striations that reduce tensile strength in the Z axis. Higher temperatures accelerate dark polymerisation and can form gel particles in the resin tray. The material should be stored in opaque containers and kept away from UV and blue light; open-tray pot life is dependent on ambient temperature, aerial humidity, and exposure to stray shop lighting. After completion of the build, green-state parts are soft and must be handled with wide-tipped tools because point loading can permanently indent the under-cured surface. Supports for SL 7811 are generally designed with larger contact diameter than for rigid resins because the lower green modulus allows corner delamination during peeling or recoating. Solvent rinsing in ≥99% isopropanol or an equivalent approved solvent removes uncured liquid from deep undercuts and living-hinge slots; residual solvent left in the polymer network before post-cure can reduce tensile modulus and increase dimensional creep. Drying time depends on part mass and internal cavity geometry: thin hinge prototypes may reach stable dry mass in 15–30 min, while thick-section housings may require several hours. Published data for this specific configuration is limited; empirical drying curves should be generated for each part family.
Build orientation is a first-order variable for mechanical performance in SL 7811, particularly for snap-fit beams and living hinges. Specimens built with the long axis parallel to the XY plane typically approach the published datasheet values because the tensile load path crosses fewer interlayer boundaries. Specimens built with the long axis along the Z direction can show reduced ultimate strength and lower apparent elongation because interlayer adhesion becomes the limiting mechanism. The precise anisotropy ratio is not supplied in the standard datasheet; users producing small-series functional prototypes should add internal test specimens with the same orientation and support strategy as production parts. In living-hinge applications, the hinge axis should be oriented parallel to the recoating direction whenever possible to reduce layer-boundary stress concentration at the hinge root. For snap-fit beams, support removal must avoid gouging at the beam root, because a notch at the interlayer boundary can reduce notched impact performance below the published 40 J/m value. It should also be noted that SL 7811, like all crosslinked photopolymers, does not exhibit the long-chain reptation and self-healing melt behaviour of extruded or injection-moulded polypropylene; repeated overstrain in snap-fit beams can accumulate microcracks at the layer interfaces rather than producing gross hinge thinning.
Final property development requires UV post-cure with sufficient fluence, not merely thermal drying. Manufacturer documentation describes a UV post-cure cycle after the solvent-rinsed part is dry. Under-cured parts display lower tensile modulus, reduced HDT, and higher sensitivity to humidity, while over-cured parts can yellow and may lose impact tolerance. The heat deflection temperature values of 52 °C at 0.455 MPa and 47 °C at 1.82 MPa indicate that SL 7811 should not be used in continuous service above 45–50 °C unless load is negligible. Moisture uptake in the cured polymer can act as a plasticiser and reduce tensile modulus; parts stored in high-humidity environments should be dried before testing or assembly. When tolerance-critical parts are assembled, dimensional stability is influenced by post-cure shrinkage and moisture equilibration. The standard datasheet does not provide a complete water absorption curve under ASTM D570-98, so users must quantify swelling for wet environments. The uncured liquid should be kept within the manufacturer’s specified storage range and protected from moisture; open containers exposed to humid air may show increased water content that interferes with photopolymerisation kinetics and produces tacky surfaces.
Compared with Accura 25, an earlier polypropylene-like SLA grade, SL 7811 is positioned as a white PP-like material with improved toughness and processability; however, published side-by-side mechanical data are limited, and no direct substitution should be made without building test coupons under the same conditions. Compared with rigid Accura 60, SL 7811 reduces stiffness and increases compliance at the expense of thermal resistance and surface hardness. Compared with Accura Xtreme, SL 7811 offers a lower-modulus, semi-rigid response rather than high-impact rigid-tough behaviour; the notched Izod value alone is insufficient to rank materials when part geometry and loading rate differ. Chemical exposure compatibility for SL 7811 is not fully published. Prolonged contact with ketones, chlorinated solvents, strong acids, or aromatic hydrocarbons is likely to swell or degrade the crosslinked network, but authoritative compatibility tables are not available in the general datasheet. Users must therefore qualify final parts in the intended chemical environment using post-cured specimens, realistic stress states, and documented exposure duration. The material is not supplied with a general ISO 10993 biocompatibility or FDA food-contact clearance; medical, dental, or food-contact use requires separate regulatory review. The absence of such certifications does not imply the material is unsafe, but it places the burden of validation on the end user rather than on the supplied datasheet.