| HS Code | 767007 |
| Product Name | 3D Systems FabPro JewelCast GRN Plastic |
| Manufacturer | 3D Systems |
| Material Type | Castable photopolymer resin |
| Color | Green |
| Compatible Printer | 3D Systems FabPro 1000 |
| Print Technology | Digital Light Processing (DLP) |
| Wavelength | 405 nm |
| Layer Thickness | 30-100 µm |
| Density | 1.05 g/cm³ |
| Viscosity | 250 cps at 25°C |
| Ash Content | <0.1% |
| Applications | Jewelry casting patterns, investment casting |
| Casting Compatibility | Gypsum-bonded investment materials |
| Post Cure | UV post-curing required |
| Cleaning Solvent | Isopropyl alcohol (IPA) |
| Bottle Size | 1 kg |
| Storage Temperature | 18-28°C |
| Shelf Life | 1 year |
As an accredited 3D Systems FabPro™ JewelCast GRN Plastic factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 1 kg opaque plastic bottle with sealed screw cap, safety label, and product identification for FabPro™ JewelCast GRN Plastic. |
| Container Loading (20′ FCL) | 20′ FCL container loading: palletized 3D Systems FabPro™ JewelCast GRN Plastic, properly secured, labeled, and stowed for safe ocean transport. |
| Shipping | 3D Systems FabPro™ JewelCast GRN Plastic is shipped as a liquid photopolymer resin in sealed, opaque, light-blocking containers. Ground transport is typically not regulated; air/ocean may require UN3082, Environmentally Hazardous Substance, Liquid, N.O.S., Class 9, PG III. Store cool, away from sunlight, and follow SDS. |
| Storage | Store 3D Systems FabPro™ JewelCast GRN Plastic in a tightly closed original container in a cool, dry, well-ventilated area, away from direct sunlight, UV light, heat, sparks, flames, and oxidizers. Maintain recommended room temperature; do not freeze. Keep out of reach of children and follow the manufacturer’s SDS and local regulations. |
| Shelf Life | The shelf life is 12 months from date of manufacture when stored unopened in original container at 18–28°C, away from sunlight. |
FabPro JewelCast GRN is an acrylate-based sacrificial photopolymer for 405 nm digital light processing platforms, prepared as a castable positive for gypsum-bonded flask casting. The material is not compounded with wax, not thinned with styrene, and not deployed as a mouldable thermoplastic. Across the downstream scenarios described here, the dominant engineering concerns are green-state dimensional stability, residual isopropanol desorption before investment, ash residue after burnout, and pattern decomposition kinetics relative to gypsum investment expansion. Where a foundry operates outside the supplier’s published parameter envelope, batch release is governed by differential scanning calorimetry according to ISO 11357-1:2016, ash content determination according to ISO 3451-1:2019, and finished jewellery safety standards such as ASTM F2999-19. Published data for specific configurations—mixed-metal tree assemblies, non-standard flask aspect ratios, or alternative investment chemistries—can be limited; in those cases, pilot flask trials with thermocouple mapping are required.
In direct lost-wax/lost-resin casting for precious-metal production, FabPro JewelCast GRN is charged into the DLP vat at 100 wt% as supplied. Operator-added diluents, styrene, or additional photoinitiators are not used; the only legitimate ratio adjustment is the controlled re-introduction of filtered vat reclaim into fresh resin at a maximum of 20 wt%, because reclaimed fractions above this threshold shift cure depth and sidewall overcure, particularly at prong seats and gallery cutouts. Wash-line chemistry excludes acetone and low-flash ketones because these solvents induce microcrazing in the green-state resin and can raise ashing residue after burnout. The recommended wash sequence uses two isopropanol baths: the first dirty bath is replaced when dissolved resin reaches 8–10 wt% or after 8–10 build cycles, and the second rinse bath is kept below 2 wt% resin carryover. Drying is performed with filtered compressed air at no more than 1.5 bar; thermal post-cure is omitted for direct casting because post-cure raises crosslink density, accelerates the decomposition onset, and can increase outgassing pressure inside the investment. The downstream flask process uses a gypsum-bonded jewellery investment mixed at 36–38 parts water per 100 parts powder by weight, vacuum-mixed at 500–600 rpm for 3 min and vacuum-degassed for 60 s before pouring. Burnout ramps are staged: 1 °C/min to 150 °C removes retained isopropanol and free water, 2 °C/min to 350 °C with an extended hold for depolymerisation, then 4 °C/min to 732 °C for ash clearance and flask temperature conditioning. Terminal outputs are cast rings, pendants, earrings, and bracelets in sterling silver, 18-karat gold, and platinum alloys. The finished articles are released under ASTM F2999-19 for adult jewellery mechanical safety and ASTM F2923-20 where child-directed product is possible; precious-metal fineness is verified by cupellation or gravimetric methods according to ISO 11426:2014 for gold and ISO 11210:2014 for platinum.
When the printed pattern functions as a master for room-temperature vulcanizing silicone tooling, the master is processed at the same 100 wt% as-printed condition without UV post-cure, because post-cure can alter surface gloss and reduce the dimensional match between the master and the final wax replica. If a surface seal is required to close stair-stepping before silicone molding, the seal coat is limited to a 2 wt% nitrocellulose lacquer in n-butyl acetate, applied as a film not exceeding 5 µm cured thickness; thicker sealants measurably shift stone seat dimensions and filigree clearances. The mold itself is prepared from a platinum-catalysed addition-cure RTV silicone compounded at 100:10 base-to-catalyst ratio by weight, vacuum-degassed at 29 inHg until bubble collapse, and poured under a vented frame. Tin-catalysed condensation-cure RTV systems are excluded from the same tooling area because tin contamination poisons the platinum catalyst and produces tacky, under-cured mold walls. Cure is 24 h at 25 °C, followed by an optional post-cure of 4 h at 65 °C to complete platinum complex activation. Parting lines are cut after demold; wax injection then operates at 65–80 °C and 0.4–0.8 MPa injection pressure, with the GRN master retained as a dimensional reference. Mold material is verified for tear strength and hardness according to ISO 34-1:2015 and ASTM D2240-15. The final cast pieces retain the same finished-jewellery release criteria under ASTM F2999-19. Terminal products in this workflow are multiple wax replicas for high-volume lost-wax casting, replacement wax components for repair jobs, and duplicate original models for batch production.
| Standard or Test Method | Subject | Application Gate |
|---|---|---|
| ASTM F2999-19 | Adult jewellery mechanical safety | Finished piece release |
| ASTM F2923-20 | Children’s jewellery safety | Finished piece release where youth market applies |
| EN 1811:2011 + A1:2015 | Nickel release reference method | EU skin-contact compliance |
| ISO 9202:2019 | Fineness designation of precious metal alloys | Alloy marking |
| ISO 11426:2014 | Gold determination by cupellation | Karat assay |
| ISO 11210:2014 | Platinum determination by gravimetric method | Platinum assay |
| ISO 11357-1:2016 | Differential scanning calorimetry | Burnout profile validation |
| ISO 3451-1:2019 | Ash determination for plastics | Burnout residue quantification |
Batch validation for short-run casting service bureaus generally centres on vat life management, support placement, and flask-tree density rather than chemical modification. The standard bureau operating ratio is 4:1 fresh-to-reclaimed resin by weight, with the reclaimed material sieved through a 25 µm mesh and verified for viscosity drift before return to the vat. Build jobs are nested at 10–15° from vertical to reduce peel force, with support contact points between 0.3–0.5 mm and breakaway necks placed away from stone-setting surfaces. The isopropanol wash tanks are monitored refractometrically; the first tank is replaced at 8–10 wt% dissolved resin, and the second tank is rotated forward only when the first tank drops below 5 wt%. Downstream, the service bureau typically invests multiple patterns on a single wax tree; tree density is controlled so that the pattern-to-metal mass conversion coefficient does not exceed 14.1 for 18-karat yellow gold or 18.2 for platinum 950, based on supplier-reported resin density of approximately 1.10 g/cm³ and metal densities of 15.5 g/cm³ and 20.0 g/cm³, respectively. The casting process itself uses vacuum-assisted induction or centrifugal units; flask temperature at casting is alloy-specific. Standards governing the bureau’s output remain ASTM F2999-19 for mechanical safety and EN 1811:2011 + A1:2015 for nickel release. Terminal products are 20–50-piece pilot runs, sample orders, and short-run production batches for independent designers and larger jewellery manufacturers.
High-fineness bridal alloys such as platinum 950 and 18-karat gold impose short solidification ranges and high metal densities that amplify the consequences of pattern wall-section errors. The pattern-to-metal mass conversion coefficient is critical: for 18-karat yellow gold the calculated coefficient is 14.1, for platinum 950 it is 18.2, and for sterling silver it is 9.5 based on a metal density of 10.4 g/cm³. These coefficients are not used as material addition ratios but as charge-weight calculation factors; the resin pattern remains 100 wt% as-printed. Minimum unsupported wall thickness for direct casting of a bridal shank is held at 0.8 mm; bezel walls are printed at 0.8–1.0 mm, and prong seats at 1.0 mm minimum to survive cleaning without chipping. Supports are placed exclusively on non-contact surfaces, and the resin circulation path over the build plate is balanced to avoid part-to-part exposure variation. The downstream process includes a two-stage isopropanol wash, refrigerated drying air below 25 °C, and a gypsum-bonded flask with water/powder ratio of 37–38 parts per 100 parts investment by weight; the investment is bench-set for 2 h before kiln loading. Kiln temperature is monitored by inserted thermocouple during the hold at 350 °C, because bridal filigree and channel-set gallery geometries trap decomposition gases. Final bridal articles—engagement rings, wedding bands, and remount sets—are controlled under ASTM F2999-19, with alloy fineness confirmed to ISO 9202:2019, gold assay to ISO 11426:2014, platinum assay to ISO 11210:2014, and nickel release to EN 1811:2011 + A1:2015.
Hollow and filigree patterns force a different thermal schedule because the resin mass is distributed as thin membranes that pyrolise quickly but restrict gas escape. The critical geometric ratio is a 1.5 mm minimum drain hole per internal hollow chamber, printed into the pattern or cut into the resin tree; wall thickness is maintained between 0.8 mm and 1.2 mm. The investment-to-pattern volume ratio around the pattern is held at or above 6:1 to prevent thin investment cores from cracking during pattern expansion. The pattern itself is used at 100 wt% as-printed; no wax overmoulding is performed because wax-resin lamination introduces two distinct decomposition profiles. The downstream flask process uses a gypsum-bonded investment with a water/powder ratio of 38–40 parts water per 100 parts powder for improved permeability around fine bridges. Burnout begins with a slow ramp at 0.5–1 °C/min to 150 °C, then proceeds through a controlled 350 °C plateau extended by 30–60 min for filigree-dense flasks, and reaches 732 °C before cooling to the alloy-specific casting temperature. The terminal outputs are hollow pendants, lace-like earrings, and filigree rings in silver or high-karat gold. Final article compliance is evaluated under ASTM F2999-19; gold fineness is confirmed by ISO 11426:2014. Published data for the exact gas permeability of this resin in high-fineness filigree flasks is limited, so pilot flasks with sacrificial patterns are required before production runs.
Remount and replacement workflows in repair studios require the printed pattern to match an existing stone size, setting geometry, and karat match rather than generate entirely new styling. The pattern is printed from digital scans or CAD reconstructions at 100 wt% as-printed; the only ratio adjustment is the vat reclaim limit of 20 wt% and the isopropanol bath replacement threshold of 8–10 wt% dissolved resin. Support settings are shifted to 0.2–0.4 mm contact diameter on non-prong surfaces, and build orientation is arranged to place the stone seat away from peel-plane forces. Before casting, the green pattern is optically verified against the original stone using a shadowgraph or optical comparator; undersized stone seats are corrected by digital re-scale, not by wax overbuilding. The casting operation follows the same gypsum-bonded investment mixing at 37–38 parts water per 100 parts powder by weight and a staged burnout to 732 °C. Terminal outputs are replacement heads, shank segments, collet re-settings, and estate restoration components in platinum 950, 18-karat gold, and sterling silver. Compliance is governed by ASTM F2999-19 and, for nickel-sensitive customers, EN 1811:2011 + A1:2015; precious metal fineness is verified to ISO 9202:2019. Published data for matching legacy alloy grades with modern karatage tolerances is limited, and laboratory assay is required where the customer’s original alloy is unknown.
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3D Systems FabPro™ JewelCast GRN Plastic is a green-pigmented, acrylate-based photopolymer resin formulated for the 405 nm digital light processing platform of the FabPro 1000 additive manufacturing system. The product model designation is FabPro JewelCast GRN Plastic, and it is supplied in liquid form for the production of sacrificial investment casting patterns used in jewelry and dental casting workflows. Its primary function is to replace hand-carved wax or machinable wax patterns with directly printed, rigid shapes that contain minimal non-combustible filler. In the cured state, the material is intended for embedding in gypsum-bonded investment and removal by controlled thermal decomposition during flask burnout. This distinguishes it from non-castable prototyping resins that are not designed to gasify cleanly within a furnace and may leave ash, carbonaceous deposits, or filler residues that degrade mold cavity fidelity.
Within the FabPro 1000 workflow, the liquid resin is built in layers by an imager that projects 405 nm radiation through a transparent vat window. After printing, the uncured resin is removed by solvent rinse, and the green pattern is dried and post-cured. The cured polymer has a measurable glass transition and is brittle relative to thermoplastic wax, but its high rigidity supports thin filigree and prong features that would distort if machined from soft carving wax. These operational properties make the material suitable for ring patterns, pendant filigree, stone-setting prototypes, and multi-piece sprue assemblies. At the same time, the material is not intended for functional thermoplastic parts or long-term outdoor exposure; it is a process consumable that is destroyed during the casting sequence.
In lost-wax investment casting, a pattern must be eliminated from the refractory mold without cracking the mold or leaving solid residue. Traditional wax patterns are ejected by steam dewaxing at approximately 120–150°C, followed by a high-temperature flask burnout to remove residual carbon. FabPro JewelCast GRN Plastic cannot be removed by steam dewaxing because the crosslinked acrylate network does not reversibly melt. It must be decomposed by heating the filled flask through a temperature ramp that first volatilizes low-molecular-weight degradation products, then oxidizes the remaining carbon backbone. Manufacturer guidance specifies a controlled ramp through the 200–350°C interval before the flask reaches the final soak temperature near 730°C. The requirement for slow gas evolution is most stringent for closed or narrow sprue geometries, where internal pressure can crack the investment if ramp rates are aggressive.
Residual ash test data for FabPro JewelCast GRN Plastic per ASTM D5630-20 are reported by the manufacturer at below 0.01 wt%. This value is indicative of a low-metal-oxide and low-silica formulation; higher ash contents would be retained in the mold cavity as non-combustible particles that are not wetted by molten gold or silver and may appear as surface inclusions or edge defects on the final casting. For comparison, non-castable DLP resins containing mineral fillers or inorganic pigments may exhibit residual ash values above 0.5 wt% under the same test, which precludes their use as direct burnout patterns. The low ash threshold of JewelCast GRN is therefore a key differentiation from general rigid photopolymers and is more relevant than tensile strength in evaluating casting pattern performance.
At the point of use, resin viscosity at 25°C is measured by rotational viscometry according to ISO 2555 and is reported in the range of 120–180 cP. This viscosity range permits adequate vat leveling after build platform retraction and still suspends pigment during idle periods. Viscosity drift above the upper bound can occur if the resin is stored below 18°C or if solvent evaporation concentrates the formulation; operators should allow cold resin to equilibrate to 20–25°C and avoid open-vat storage beyond the manufacturer's recommended interval. Printed features in the 25–50 µm layer thickness range show adequate green strength for support removal with fine-edged tools, but unsupported wires below approximately 0.3 mm in diameter are sensitive to fracture during aggressive cleaning. The uncured liquid is soluble in 99% isopropanol; a two-stage rinse, first to remove bulk liquid and second to clear fine recesses, is standard. Green dye release from the part into the second rinse bath is used as an informal indicator of cleaning completeness.
Post-rinse handling exposes the green part to ambient light and oxygen. The exposed surfaces may remain tacky because oxygen inhibition at the photopolymer surface prevents complete conversion. A controlled UV post-cure unit operating at 405 nm with part rotation is used to harden the outer surface before bench handling and sprue attachment. The exact post-cure dose is resin-lot and geometry dependent; published energy values for this specific resin configuration are limited, so cure verification is typically performed by surface indentation and not by a fixed timer alone. In production environments, batch-to-batch variation in spot light power and vat window clouding also affects exposure dose; periodic radiometer checks at the build plane are advised.
| Property | Value | Method |
|---|---|---|
| Liquid viscosity at 25°C | 120–180 cP | ISO 2555 |
| Liquid density at 25°C | 1.08 g/cm³ | ISO 2811-1 |
| Cured tensile strength | 33 MPa | ASTM D638-14 |
| Cured tensile modulus | 1.4 GPa | ASTM D638-14 |
| Cured elongation at break | 12% | ASTM D638-14 |
| Cured flexural modulus | 1.1 GPa | ASTM D790-17 |
| Cured Shore D hardness | 76 | ASTM D2240-15 |
| Residual ash after burnout | below 0.01 wt% | ASTM D5630-20 |
Unlike injection waxes, which progressively soften as ambient temperature approaches their melting range and can distort under sprue weight, the as-printed FabPro JewelCast GRN Plastic part is a crosslinked solid with negligible viscous flow at ordinary workshop temperatures. This is an operational advantage when patterns remain on a bench during tree assembly or when they are shipped between facilities in warm climates. However, the green part is not thermally inert. Approaching or exceeding 35°C in closed transport can soften partially post-cured surfaces and may allow thin unsupported sections to sag if they are loaded by their own weight. In addition, prolonged exposure of uncured resin containers to temperatures above 28°C accelerates dark polymerization and viscosity increase, reducing build-to-build consistency. For this reason, cool storage and sealed amber containers are specified; cold storage at 4–10°C is acceptable provided the resin is warmed to room temperature and agitated before printing.
The distinction between JewelCast GRN Plastic and machinable wax is further visible during sprue attachment. Cured patterns accept cyanoacrylate adhesive and compatible sticky wax at contact points, and the assembly can be manipulated without the localized softening that occurs when heated tools touch a wax pattern. This permits taller trees with fewer auxiliary supports, but it also means that stress concentration at the sprue-to-pattern joint is transferred to the brittle resin instead of being absorbed by wax deformation. Field practice therefore places the sprue attachment on a flat, reinforced pad and avoids over-tightening flexible gates. Published data on the fatigue behavior of this specific material in green state are limited, so joint design rules are derived from process experience rather than from a standardized dynamic mechanical test.
Three classes of pattern-making media are available for direct investment casting. The first class comprises machinable or injection-molded waxes, which have low ash content and are removed by steam dewaxing but require mold tooling or subtractive machining and are dimensionally sensitive to temperature. The second class comprises general photocurable resins, which have high green-state stiffness but are not formulated for clean burnout and can leave inorganic filler or pigment residue inside the mold. The third class comprises castable photopolymers such as FabPro JewelCast GRN Plastic, which combine print-to-pattern directness with thermal decomposition chemistry designed to limit residual ash. The table below summarizes the operational differences relevant to casting floor decisions.
| Attribute | FabPro JewelCast GRN Plastic | Machinable carving wax | Non-castable DLP resin |
|---|---|---|---|
| Pattern removal | Thermal decomposition in flask, 730°C soak | Steam dewax at 120–150°C, then residual burnout | Not designed for burnout |
| Residual ash | below 0.01 wt% per ASTM D5630-20 | Typically below 0.02 wt% | May exceed 0.5 wt% due to fillers |
| Dimensional stability at 35°C | Rigid crosslinked solid; softening limited | Softens and distorts | Rigid crosslinked solid |
| Pattern generation route | DLP print at 405 nm | Injection molding or CNC machining | DLP print at 405 nm |
| Post-processing | IPA rinse and UV post-cure | None or machining | IPA rinse and UV post-cure |
| Casting suitability | Direct burnout investment casting | Direct burnout investment casting | Not suitable |
Operational limitations are present at both the uncured and cured stages. The liquid resin contains acrylate monomers and oligomers that may cause skin sensitization; handling requires nitrile gloves and local ventilation per the manufacturer's safety data sheet and REACH obligations. The cured green patterns are not food-contact or medical devices; no FDA 21 CFR clearance applies to the printed pattern because the polymer is destroyed during burnout and is not present in final cast metal. For this reason, regulatory documentation focuses on workplace exposure to liquid resin and on the composition of furnace off-gases during burnout. Combustion by-products include carbon dioxide, carbon monoxide, and trace acrylate decomposition species; foundry exhaust extraction and afterburner treatment are required during flask burnout. Published respiratory exposure limits for the resin decomposition products are available in the safety data sheet rather than in mechanical property data.
The resin is also incompatible with solvent systems containing acetone or methylene chloride as primary cleaning agents because aggressive solvents can craze the cured surface and destabilize thin wall sections. Use of ultrasonic IPA baths longer than the manufacturer's recommended duration can heat the solvent and induce microcracks in unsupported filigree. Production-scale behavior on the FabPro 1000 DLP platform has shown that vat film clouding from prolonged resin contact reduces photon transmission and requires replacement according to the manufacturer's service schedule; this is not a resin defect but an interaction between the liquid formulation and the fluoropolymer vat window. Lot-to-lot variations in pigment dispersion may produce minor color intensity shifts without altering core burnout performance, but printed pattern color should not be used as a quantitative release specification because it is not a mechanical property.
The burnout process for FabPro JewelCast GRN Plastic is governed by thermal degradation rate rather than melting transition. Thermal gravimetric analysis of the cured photopolymer typically shows an onset of mass loss below 200°C, with the main decomposition step occurring between 300°C and 450°C in air. In the low-oxygen interior of a filled flask, decomposition may proceed through a carbonization intermediate before oxidation. The furnace atmosphere therefore influences burnout cleanliness: an oxidizing atmosphere with fresh air supply is preferred after the initial volatile release stage, while a sealed or poorly vented furnace can leave carbonaceous residue even when the material's intrinsic ash content is low. This behavior is common to all castable photopolymers and is not unique to JewelCast GRN, but the low ash content reduces the probability that residual particles survive the final high-temperature hold.
Investment formulation also affects burnout behavior. Standard gypsum-bonded investments used for gold and silver casting have upper flask heating limits near 740°C; phosphate-bonded investments used for higher-melting alloys tolerate more aggressive ramps. The pattern-to-investment ratio, flask diameter, and sprue size determine the safe ramp rate. Process-scale observations indicate that dense pattern clusters with high polymer mass require longer intermediate holds between 250°C and 350°C to avoid pressure-induced investment fracture. Published data for multi-tree flask loading with this specific resin are limited, so foundry operators typically validate ramp profiles by casting a standardized flask of known geometry before committing production lots.
Incoming inspection of FabPro JewelCast GRN Plastic typically includes viscosity verification at 25°C and visual inspection for gelling or phase separation. Cured test coupons are exposed to a fixed 405 nm dose and measured for Shore D hardness after post-cure; a hardness below the supplier's accepted range can indicate incomplete polymerization, expired resin, or insufficient post-cure energy. Dimensional verification of printed patterns uses profile projection or structured-light scanning; typical green-state shrinkage from the DLP process is compensated in build setup rather than through post-process scaling. Because the material is destroyed during casting, non-destructive mechanical testing of final patterns is limited to bend-testing of sacrificial sprues and tactile inspection for surface tack.
Surface finish of the as-printed pattern directly affects the metallurgical finish of the cast part. Layer lines from the 25–50 µm build axis are reproduced as microscopic terraces in the investment cavity; refractory surface roughness increases with pattern roughness. Operators may apply a light solvent wipe or fine abrasive film to non-critical surfaces before investment to reduce layer line visibility, but unsupported thin features should not be abraded. The green color of the resin provides contrast against the white investment powder during pattern placement, which aids inspection of fine details but has no influence on metal filling or solidification. Any surface coating applied to the pattern before investment must be burnout-compatible; silicone-based release sprays that leave silica residue are not acceptable because they increase non-combustible ash and can contaminate the mold.