| HS Code | 931266 |
| Color | White |
| Opacity | Opaque |
| Materialtype | Rigid photopolymer |
| Tensilestrength | 50-60 MPa |
| Elongationatbreak | 10-25% |
| Modulusofelasticity | 2000-3000 MPa |
| Flexuralstrength | 75-110 MPa |
| Flexuralmodulus | 2200-3200 MPa |
| Izodnotchedimpact | 20-30 J/m |
| Shorehardnessd | 83-86 |
| Heatdeflectiontemperatureat045mpa | 45-50 deg C |
| Heatdeflectiontemperatureat182mpa | 40-45 deg C |
| Glasstransitiontemperature | 52-54 deg C |
| Density | 1.17-1.18 g/cm3 |
| Waterabsorption | 0.5-1.0% |
| Compressivestrength | 70-80 MPa |
As an accredited Proto3000 Objet VeroWhitePlus FullCure835 Rigid Opaque Prototyping Polymer factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Supplied as one sealed 1 kg cartridge, clearly labeled with product name, lot number, and safety warnings. |
| Container Loading (20′ FCL) | 20′ FCL loaded with Proto3000 Objet VeroWhitePlus FullCure835 Rigid Opaque Prototyping Polymer, securely palletized, braced, and ready for ocean shipment. |
| Shipping | Proto3000 Objet VeroWhitePlus FullCure835 ships in sealed original cartridges/bottles, typically not regulated as dangerous goods. Store cool, dry, away from direct sunlight and ignition sources. Use absorbent padding and secure packaging. Always verify the current SDS and carrier requirements before shipping. Handle as a chemical; avoid temperature extremes. |
| Storage | Store Proto3000 Objet VeroWhitePlus FullCure835 Rigid Opaque Prototyping Polymer in its original, tightly sealed cartridge, upright, in a cool, dry, well-ventilated area. Protect from direct sunlight, UV light, heat, sparks, and incompatible materials. Maintain 15–25°C (59–77°F); do not freeze. Keep away from food, drink, and children. Observe shelf life and SDS instructions. |
| Shelf Life | Shelf life is 18 months from date of manufacture when stored sealed at 15–25°C, away from light, in original packaging. |
For instrument panel bezel prototypes and center console trim components intended for snap-fit attachment to production ABS or PC-ABS substrates, Proto3000 Objet VeroWhitePlus FullCure835 is jetted at 30 µm layer thickness in high-speed mode on an Objet 30 Pro or Connex series platform, with support material removed by water jet at 3 bar from enclosed latch pockets and locating ribs. The resin is supplied as a 100% reactive opaque photopolymer in sealed 1 kg cartridges; no solvent dilution, catalyst addition, or batch mixing is performed before jetting. Support-to-model consumption is geometry-dependent, and enclosed snap features with 0.8 mm nominal gaps generate higher support volume than open bosses, a condition that must be reviewed in the build preview because support material can accumulate in blind holes. Bonding of separate printed inserts is carried out with a 1:1 volume-ratio two-part methyl methacrylate adhesive after surface abrasion with 240 grit aluminum oxide, producing lap-shear joints sufficient for static fit-check assemblies. Dimensional acceptance is verified on a bridge CMM against ISO 286-1 tolerance classes, typically IT12 for printed interface features; printed holes are checked with plug gauges because jetting edge definition can reduce effective diameter by 0.05–0.15 mm depending on orientation. Published FMVSS 302 flammability certification for VeroWhitePlus is limited, so end-use automotive interior parts require independent testing by the molder or tier supplier. The material’s heat deflection temperature under 0.45 MPa load is reported in the 45–50°C range according to ISO 75-2:2013, which restricts use to cabin areas not exposed to continuous hot-air duct flow or direct sunlight load at the glazing line. Terminal outputs include air vent grille prototypes, switch bezel fit-check fixtures, and gauge cluster trim panels for design review before steel tooling release.
| Property | Test method | Reported typical range |
|---|---|---|
| Tensile strength | ASTM D638-14 | 50–65 MPa |
| Tensile modulus | ASTM D638-14 | 2000–3000 MPa |
| Elongation at break | ASTM D638-14 | 10–25% |
| Flexural strength | ASTM D790-17 | 75–110 MPa |
| Flexural modulus | ASTM D790-17 | 2200–3200 MPa |
| Notched Izod impact | ASTM D256-10 | 20–30 J/m |
| Shore D hardness | ASTM D2240 | 83–86 |
| Heat deflection temperature at 0.45 MPa | ISO 75-2:2013 | 45–50°C |
| Water absorption, 24 h | ASTM D570 | 1.1–1.5% |
Handheld electronics enclosure prototypes built from VeroWhitePlus are used for assembly trials, drop-testing, and speaker mesh validation, but the snap-fit retention force is governed by the material’s elongation at break in the 10–25% range under ASTM D638-14, which lies below production ABS or PC blends. For high-definition boss geometries, build mode is shifted to 16 µm layer thickness to reduce stair-stepping on small retention lugs; the resulting surface roughness on near-vertical walls is measured with a contact profilometer and typically requires no vapor smoothing for fit evaluation. Cantilever snap beams with 1.5 mm thickness and 0.8 mm root radius are printed in the xy-plane to maximize tensile strength along the beam axis, because z-axis interlaminar strength is lower than in-plane strength. Mating hole clearance is set at 0.2 mm on diameter for printed bosses, matching design practices for rigid photopolymers with limited creep recovery. Drop testing is performed under IEC 60068-2-27 shock pulse conditions at 50 g, 11 ms half-sine, but published data for VeroWhitePlus impact survival in this specific configuration is limited; fracture commonly initiates at the sharp corner of the snap-fit root rather than the boss body, so corner radii below 0.5 mm are avoided. Terminal parts include mobile phone housing prototypes, wearable device frames, and battery door latches for user-trial units, all requiring subsequent surface finishing with 800 grit abrasive and a clear acrylic topcoat where cosmetic appearance is evaluated.
When VeroWhitePlus masters are used to produce room-temperature vulcanizing silicone molds for polyurethane vacuum casting, the chemical incompatibility between platinum-catalyzed RTV systems and some photopolymer surfaces becomes the primary process control point. The master pattern is printed in 30 µm mode and post-finished to 800 grit wet sanding before a transparent barrier coat is applied; without a barrier coat, platinum-catalyzed silicone may remain uncured at the contact surface due to interference from residual photoinitiator species. A tin-catalyzed RTV silicone is an alternative for direct molding, with a base-to-catalyst ratio commonly specified by the formulator at 100:2 by weight; vacuum degassing at −0.09 MPa for 5–10 min removes entrained air before pouring. The master pattern is placed in a sealed mold frame and cured at 25–35°C for 16–24 h, after which the silicone tool is cut along predefined parting lines. Polyurethane casting resins are then metered in a 1:1 volume ratio or formulator-specified weight ratio and cast at 0.2 bar absolute pressure; the resulting vacuum-cast prototypes reproduce VeroWhitePlus master features to within 0.1 mm over a 100 mm length when tool shrinkage is compensated. Terminal applications include small-batch handpiece housings, connector overmold models, and enclosures for design verification of elastomeric seals.
Segmented computed tomography data for maxillofacial trauma review is converted to a printable STL with 1 mm slice intervals, and the resulting anatomical model is printed in VeroWhitePlus at 16 µm layer thickness to capture foramina and fracture lines relevant to surgical planning. The material is not designated as USP Class VI or ISO 10993 compliant in standard PolyJet documentation; therefore, the model is restricted to external visualization, preoperative contouring, and patient education, with no direct contact with open tissue or mucous membranes. After support removal, the model is rinsed with deionized water until the rinse pH is neutral, dried at 40°C for 2 h, and sealed with a water-based polyurethane coating before handling in the surgical suite. Sterilization of VeroWhitePlus by autoclave is not recommended because the HDT of 45–50°C at 0.45 MPa predicts dimensional distortion at autoclave temperatures; ethylene oxide or hydrogen peroxide plasma methods, if required, must be validated on printed test coupons under ISO 11135 or ISO 14937. For institutions requiring a quality management system for patient-specific anatomical models, the printing service provider should operate under ISO 13485 and maintain design traceability from DICOM data through STL orientation and build report. Terminal outputs include craniofacial reference models, mandible fracture planning aids, and orbital floor contour templates used by oral and maxillofacial surgeons.
| Verification domain | Reference standard | Application condition |
|---|---|---|
| Mechanical property validation | ASTM D638-14 | Dog-bone specimens printed in xy-plane |
| Biocompatibility pre-screen | ISO 10993-1 | Not supplied as certified; end-use validation required |
| Flammability evaluation | FMVSS 302 | Independent testing required before automotive cabin use |
| Dimensional control | ISO 286-1 | IT12 or tighter only with process capability study |
| Material safety data | EC 1907/2006 | REACH SDS review before export shipments |
Under-hood fit-check components made from VeroWhitePlus are limited to ambient-temperature assembly trials because the heat deflection temperature under 0.45 MPa load is 45–50°C according to ISO 75-2:2013, while typical under-hood soak temperatures in late-model gasoline and hybrid platforms exceed 85°C at the charge air duct and coolant expansion tank. The material is used for air intake mockups, wiring harness clip validation, and coolant reservoir bracket checks only when the vehicle is static and the engine bay is at ambient temperature. Dimensional verification is conducted with a coordinate measuring machine under ISO 286-1 IT13 tolerances; inspection is performed at 23±2°C and 50±10% relative humidity according to ISO 291. For short-term heat exposure trials, parts are pre-conditioned in a circulating air oven at 45°C for 1 h to stabilize creep; exposure above 60°C is not recommended because permanent deformation accumulates rapidly at the rafts of large flat panels. Terminal outputs include air cleaner housing mockups, battery tray interface gauges, and EGR cooler tube fit-up aids that are discarded after tooling validation.
Academic and industrial research groups use VeroWhitePlus to fabricate tensile and impact coupons because the material’s in-plane mechanical response provides a reproducible reference for polymer mechanics studies; however, thermal post-cure introduces measurable changes in Izod impact response and tensile elongation. Dog-bone specimens are printed in the xy-plane according to ASTM D638-14 Type IV, with a 2 mm nominal thickness and build orientation of 0° or 90° relative to the long axis. Support removal is followed by drying at 40°C for 24 h before mechanical testing. Izod specimens are notched after printing with a 2 mm residual notch depth and tested under ASTM D256-10; the notch is machined rather than printed to eliminate jetted-edge artifacts at the crack initiation zone. Published data for specific post-cure protocols with VeroWhitePlus is limited, so each laboratory is advised to establish its own baseline before comparing thermal aging regimens. Terminal outputs include tensile test coupons, microfluidic mold negatives, and structural lattice samples for finite element model validation.
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Proto3000 Objet VeroWhitePlus FullCure835 is the commercially supplied Stratasys RGD835 rigid opaque photopolymer, packaged in sealed PolyJet cartridges of 1 kg or 3.6 kg and polymerized by the printer UV lamp during material jetting. The resin is an acrylate-based, unfilled white-pigmented photopolymer that cures to a non-translucent solid with a Shore D hardness of 83–86 per ASTM D2240-15. It is used in Stratasys Objet24, Objet30 Pro, Objet Eden, and Connex platforms that recognize FullCure835 cartridges, with selectable layer thicknesses of 16 µm in high-quality mode or 28 µm in high-speed mode on supported systems. The product is intended for form-and-fit prototypes, visual communication models, light-duty assembly fixtures, and non-implantable anatomical models where dimensional stability under ambient laboratory conditions is required. Published quantitative data for this specific cartridge configuration is limited to the manufacturer-supplied property ranges and printer capability statements.
Tensile and flexural property ranges for fully cured VeroWhitePlus FullCure835 are reported by the manufacturer using ASTM test coupons printed in the X-Y orientation. The values are accepted windows rather than single-point ratings because of variance across builds, ambient cure, and print orientation. The following table consolidates the published mechanical and physical ranges.
| Property | Test method | Reported range |
| Tensile strength | ASTM D638-14 | 50–65 MPa (7250–9450 psi) |
| Tensile modulus | ASTM D638-14 | 2000–3000 MPa (290–435 ksi) |
| Elongation at break | ASTM D638-14 | 10–25% |
| Flexural strength | ASTM D790-17 | 75–110 MPa (11,000–16,000 psi) |
| Flexural modulus | ASTM D790-17 | 2200–3200 MPa (320–465 ksi) |
| Heat deflection temperature at 0.45 MPa | ASTM D648-18 | 45–50 °C |
| Heat deflection temperature at 1.82 MPa | ASTM D648-18 | 45–50 °C |
| Izod notched impact | ASTM D256-10 | 20–30 J/m |
| Shore D hardness | ASTM D2240-15 | 83–86 |
| Water absorption | ASTM D570-98 | 1.1–1.5% |
| Specific gravity | ASTM D792-20 | 1.17–1.18 |
Tensile elongation of 10–25% under ASTM D638-14 supports snap-fit evaluation but remains below that of elastomeric PolyJet grades such as Agilus30; FullCure835 is therefore treated as a rigid plastic rather than as a tough engineering thermoplastic. Heat deflection temperature is 45–50 °C at both 0.45 MPa and 1.82 MPa per ASTM D648-18, which constrains continuous load-bearing service to below 45 °C for long-duration dimensional stability. Moisture uptake of 1.1–1.5% per ASTM D570-98 indicates that precision metrology should be conducted only after conditioning at 23 °C and 50% relative humidity following ASTM D618. The specific gravity of 1.17–1.18 per ASTM D792-20 is used to calculate mass for assembly fixtures and shipping estimates. The published property values are generated on X-Y orientation tensile and flexural coupons; vertical build orientation tends to reduce tensile elongation at break because of interlayer boundary stress concentration. No single published ASTM D638-14 data set covers all build angles, so orientation-specific testing is required for structural use.
In production-scale use, the cartridge is brought to 20–25 °C before installation; the resin is paired with SUP705 water-jet removable support and is removed after the build using the integrated water-jet station. On an Objet30 Pro, the practical tolerance floor is approximately ±0.1 mm in the X-Y plane and ±0.15 mm to ±0.25 mm in the Z axis depending on layer thickness, part aspect ratio, and support geometry; these values are manufacturer capability statements rather than a formal ISO tolerance class. Blind holes with diameters below 2 mm and capillary channels tend to retain support residue and require manual excavation; this is a documented processing limitation. The printed part should not be exposed to forced-air drying above 50 °C, because the heat deflection temperature indicates plastic deformation under load begins near this range, and the part may distort before the bulk material reaches oven set point. Cartridge storage above 35 °C for extended periods increases viscosity and may produce jetting deviations. Batch-to-batch gloss and opacity can vary slightly due to pigment dispersion; quantitative batch-rate data for this specific configuration is limited.
Selection between VeroWhitePlus FullCure835 and other PolyJet rigid resins is driven by opacity, thermal resistance, impact performance, and processing mode. VeroClear RGD810 has a similar tensile strength range of 50–65 MPa under ASTM D638-14 but is specified for transparent fluid-flow models and light pipes where transmitted light and polishing characteristics matter. VeroWhitePlus FullCure835 is opaque white and is therefore better suited to conceal internal features in assemblies under review. Digital ABS Plus RGD515 is selected when the part must endure higher temperature or higher impact loading, but it is a two-component digital material requiring a compatible high-temperature mode and is not a drop-in single-cartridge replacement; FullCure835 remains a single-component rigid resin and can be run on lower-tier Objet systems that do not support simultaneous multi-material jetting. VeroBlackPlus RGD875 is the black opaque counterpart for light-shielding and low-reflectance housings, and its mechanical properties are within the same published range as FullCure835; the choice is visual and application-specific. Against Agilus30 or TangoPlus elastomeric grades, FullCure835 shows higher tensile modulus of 2000–3000 MPa and lower elongation at break of 10–25%, which suits rigid prototypes but excludes living hinges and gaskets.
Difference from non-PolyJet prototyping polymers must also be considered. When compared with opaque stereolithography resins such as Accura 25 or Accura Xtreme White 200, FullCure835 is processed at ambient resin temperature in a cartridge rather than in a vat, and no recoat blade effect or settled filler management is required because the resin is unfilled. Fully cured part surfaces show a matte or glossy finish depending on the printer mode; the opaque white surface can be sanded and painted, but solvent rubbing with ketones should be avoided because the crosslinked acrylate network may swell. For applications where long-term UV exposure is expected, a UV-stable topcoat is applied; the raw material is not formulated as an outdoor weatherable grade and published data for this specific configuration is limited.
Support removal is the primary post-processing step that shifts as-built dimensions. SUP705 is removed by water jet after the build; over-spray pressures are kept below the level that would erode thin walls, and operators typically restrict pressure to the printer manufacturer default setting. If the part contains walls below 1.0 mm, water-jet removal may fracture unsupported edges; this is a processing constraint rather than a resin weakness. After support removal, parts are dried with compressed air and conditioned before dimensional inspection. Because the resin absorbs 1.1–1.5% water under ASTM D570-98, equivalent to a small mass increase, metrology on as-built parts should follow ASTM D618 conditioning at 23 °C and 50% relative humidity for the time specified by part thickness. Sanding of opaque white surfaces is performed with wet/dry paper from 400 to 1200 grit; if the surface is sanded, the final Shore D hardness at the surface may increase by several points due to reduced surface irregularity, but this is not a bulk property change. Autoclaving or steam sterilization is not appropriate because heat deflection temperature of 45–50 °C under 1.82 MPa indicates saturated steam at 121 °C would cause severe distortion. Strong alkaline cleaners and prolonged immersion in aggressive solvents should be avoided because ester groups in the acrylate network can undergo hydrolytic surface attack; quantitative chemical compatibility data for this specific configuration is limited.
For build planning, the operator should select 16 µm mode when sidewall finish and thin-wall resolution are critical, and 28 µm mode when shorter build time is required; the trade-off is visible slicing steps and Z-axis feature resolution. The opaque white surface can be sanded, filled, and painted; a primer is specified before painting because the white base shifts final color. If the part is intended for outdoor display, a UV-stable clear topcoat is applied because the raw resin is not formulated for outdoor weatherability; visible yellowing may occur after sustained UV exposure, although published quantitative data for this specific configuration is limited. Cartridge storage is maintained at 15–27 °C away from direct sunlight. A direct substitution for injection-molded ABS, polycarbonate, or nylon in continuous-load or elevated-temperature service is not supported by the published property ranges.