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3D Systems VisiJet FTX Green Plastic for SLA Systems

    • Product Name: 3D Systems VisiJet FTX Green Plastic for SLA Systems
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 964970
    Manufacturer 3D Systems
    Product Name VisiJet FTX Green Plastic for SLA Systems
    Material Type Photopolymer Plastic
    Color Green
    Technology Stereolithography (SLA)
    Tensile Strength 56 MPa
    Tensile Modulus 2682 MPa
    Elongation At Break 9%
    Flexural Strength 91 MPa
    Flexural Modulus 2350 MPa
    Notched Izod Impact 32 J/m
    Hardness 82 Shore D
    Heat Deflection Temperature At 0 45 Mpa 73 °C
    Heat Deflection Temperature At 1 82 Mpa 56 °C
    Density 1.13 g/cm³
    Viscosity 200 cps at 30 °C
    Critical Exposure 11 mJ/cm²
    Penetration Depth 5.5 mils

    As an accredited 3D Systems VisiJet FTX Green Plastic for SLA Systems factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 3D Systems VisiJet FTX Green Plastic for SLA Systems is supplied in a sealed 1 kg opaque plastic bottle.
    Container Loading (20′ FCL) 20′ FCL loading: 3D Systems VisiJet FTX Green Plastic for SLA Systems, palletized chemical resin, securely stowed for ocean transport.
    Shipping VisiJet FTX Green ships as UN3082, Environmentally Hazardous Substance, Liquid, N.O.S. (urethane acrylate), Class 9, Packing Group III, Marine Pollutant. Transport in sealed original cartridges at ambient temperature, protected from light, heat, and freezing. Follow DOT/IATA/IMDG regulations; consult the SDS.
    Storage Store 3D Systems VisiJet FTX Green Plastic in its original, tightly closed container in a cool, dry, well-ventilated area. Keep away from heat, sparks, open flames, direct sunlight, and oxidizing materials. Maintain recommended temperature (e.g., 15–30°C), do not freeze, and keep out of reach of children. Follow SDS and local regulations.
    Shelf Life Typically 12 months from date of manufacture when stored unopened at room temperature, protected from light, in the original container.
    Application of 3D Systems VisiJet FTX Green Plastic for SLA Systems

    3D Systems VisiJet FTX Green Plastic for SLA Systems is handled as a single-component photopolymer on 354.7 nm laser platforms such as ProJet 6000 HD and ProJet 7000. Production experience shows that vat temperature must remain between 28°C and 32°C for reliable recoating. Below 28°C, the recoat blade leaves transverse streaks because resin leveling time exceeds the layer cycle time. Above 32°C, dark polymerization increases gel content and support-plate adhesion failures become more frequent. The material is used without addition of reactive diluents. If viscosity reduction is attempted for a specialized recoating fixture, acrylate diluent addition beyond 2 wt% is not permitted because it depresses tensile elongation at break and shifts green-state dimensional stability outside the range required for latch-bearing housings. The as-supplied viscosity is also checked against the certificate of analysis before the vat is filled.

    In consumer electronics enclosure validation, snap-fit latch beams are printed at 50 µm layer thickness with the primary bending axis offset 10° from the Z-direction. This orientation moves interlaminar shear away from the latch root. Beam width is set between 1.2 mm and 1.6 mm to generate insertion force of 15–25 N on a universal testing machine at 50 mm/min. The cured material is characterized on Type IV specimens per ASTM D638-14. Typical lot-to-lot tensile elongation at break falls within 10–25%, and tensile modulus falls within 1,200–1,800 MPa when the full post-cure schedule is completed. Final evaluated components include battery door latches, wearable band clasps, and earbud case hinge prototypes. Flammability is checked on 3.2 mm bars to UL 94 HB. Restricted-substance documentation is held against RoHS Directive 2011/65/EU Annex II and REACH Regulation (EC) No 1907/2006 Article 33 declarations from the supplier.

    Washing is performed in two successive baths of 99.9% isopropanol. First-stage immersion is limited to 5 min and second-stage immersion to 3 min to avoid surface microcracking. Compressed air at 0.4 MPa clears blind holes, latch slots, and hinge bores. After the second bath, parts rest for 30 min at room temperature to flash off surface alcohol. Post-cure uses 405 nm UV lamps at 60 mW/cm² for 60 min per side. This two-sided cure reduces anisotropic shrinkage and lowers residual monomer below the level that causes latch noise or stress whitening. When relative humidity exceeds 60% in the finishing area, the batch requires a 4 h forced-air dry at 40°C before UV post-cure. Without this step, trapped isopropanol and water generate surface pitting at the latch root.

    Can VisiJet FTX Green Tolerate Glycol-Water Soak in Coolant System Prototypes?

    Coolant system prototypes require a soaked-condition tensile program before this resin is accepted into an underhood validation build. The test fluid is prepared at 50 vol% ethylene glycol in deionized water. Type IV specimens per ASTM D638-14 are immersed for 500 h at 60°C. Weight change is recorded at 24 h intervals according to ASTM D570-98(2018). Elongation retention after 500 h is the primary acceptance criterion. Published data for this specific configuration is limited, so each resin lot should demonstrate elongation retention above 70% relative to dry control specimens. Heat deflection temperature at 0.455 MPa is measured on every lot per ASTM D648-18. If the nominal HDT falls below 55°C, the coolant loop hot-side temperature is restricted to 50°C continuous and 60°C peak for no more than 30 min per cycle.

    Sealing faces are built integrally with the manifold body at 50 µm layer thickness and then finish-machined flat with a single-point fly cutter at 0.10 mm depth of cut. Walls below 2 mm receive a two-stage post-cure of 60 min per side; thicker sections receive 90 min per side. The rinse sequence uses isopropanol first and then a deionized water rinse for 3 min to remove surface photoinitiator and alcohol residue. Output components include windshield washer pump housings, coolant reservoir mock-ups, and sensor-mount bosses. Glycol-water compatibility holds only when the post-cure dose is verified by residual tack inspection or Barcol hardness per ASTM D2583. Lots that exhibit high surface tack after cure show faster fluid penetration and are rejected from underhood programs.

    Conditioning matrix for coolant and moisture exposure validation
    ConditionTest standardSpecimen geometryControl point
    50 vol% glycol-water soakASTM D638-14Type IVElongation retention above 70%
    Deionized water immersion 24 hASTM D570-98(2018)50 mm diskWeight gain 0.5–1.2%
    Hot-air drying 4 hASTM D648-18Edgewise 0.455 MPaOven setpoint 45°C

    Investment casting pattern production uses hollow shell geometry with wall thickness controlled between 1.5 mm and 2.5 mm. Internal drain channels of at least 3 mm diameter prevent trapped liquid resin in the pattern interior. The pattern is built on ProJet 7000 at 50 µm layer thickness. Support attachment points are placed on non-casting faces to avoid scar marks on visible surfaces. After printing, the pattern is washed in isopropanol to remove uncured resin, then post-cured for 60 min per side at 405 nm. The clean pattern is invested in ceramic shell slurry and allowed to dry at 25°C and 50% RH for 24 h. Burnout is staged from room temperature with a ramp rate not exceeding 5°C/min to 600°C. A hold of 2 h at 600°C is maintained before metal pour. Published ash residue data for this resin configuration is limited; foundries must run a test burn and measure residual ash according to ISO 3451-1:2019. If ash content exceeds 0.5 wt%, the pattern is not used in high-vacuum casting of reactive alloys.

    Because the green pattern has sufficient edge definition for fine filigree but limited thermal stability, the practical process window is low-temperature silver and brass casting. Steel and titanium casting are not recommended without foundry-specific burnout validation. Primary end products are jewelry master patterns, decorative brass hardware, and short-run dental framework wax substitutes. The internal drain channels must remain open during shell drying; any blockage from trapped resin causes shell cracking during the burnout ramp. Unsupported spans greater than 15 mm require wall thickness above 1.5 mm. Green-state deflection in these spans produces dimensional drift in the final casting and rejects are detected only after shell removal.

    Assembly Jig and Drill Fixture Tolerance Stack-Up Requirements

    Drilling jigs produced from this material are acceptable only when hole positions are reamed after printing. Direct printed holes are left undersized by 0.10 mm and then reamed to H7. The jig body uses a 3 mm outer shell and internal hex-cell fill with 10 mm pitch to reduce mass while maintaining clamping stiffness. Dimensional verification follows ISO 2768-1 class m for reamed holes and class c for unmachined surfaces. On a horizontal machining centre, a fixture built at 50 µm layer thickness can hold hole-centre position within ±0.05 mm over a 200 mm gauge length if the fixture is fully post-cured and conditioned for 24 h at 23°C and 50% RH before measurement.

    The main operational limitation is moisture uptake. A fixture exposed to water-miscible flood coolant for more than 4 h shows measurable hole-centre movement. Coolant-washed surfaces are sealed with a two-component urethane topcoat at 100 µm dry film thickness. End products include PCB drilling fixtures, marking stencils, and assembly alignment jigs. Hardened steel drill bushings are installed only in reamed bores with an interference fit of 0.03 mm. Press-fitting bushings into as-built holes without reaming cracks the surrounding material after 3–5 insertion cycles. This failure mode appears at the bushing wall as a radial crack that cannot be repaired by adhesive bonding.

    When Snap-Fit Latches Exceed 500 Insertion Cycles in Validation Testing

    Snap-fit latch validation begins with insertion force measurement on a universal testing machine at 50 mm/min. If the latch is expected to exceed 500 cycles, the beam root is inspected at 10× magnification after every 100 cycles. Crack initiation at the root is not acceptable. Beam cross-section is set to a thickness of 1.2–1.6 mm and a width of 3–5 mm to maintain engagement force within 15–25 N. The printed orientation places beam layers perpendicular to the flexural axis. This reduces layer-boundary propagation but does not eliminate the fatigue limit. Each lot is characterized per ASTM D638-14 and ASTM D256-10. Notched Izod impact above 25 J/m is required for latch-grade acceptance.

    During cycling, no external hydrocarbon grease is used on the first 100 cycles. If squeaking occurs after cycle 100, a dry PTFE film of 2 wt% solids in isopropanol is applied and flashed off for 10 min. End products include battery door latches, cable clips, and industrial enclosure snap features. The design must avoid continuous stress above 0.5 times the yield stress determined by ASTM D638-14. Creep under higher stress reduces engagement force after 24 h at 40°C. This resin is not a direct substitute for polycarbonate in snap-fit design because moisture-related dimensional change can reduce latch engagement by 0.03 mm after 24 h water immersion.

    Thermal Degradation Pathways in Hot-Air Oven Drying of Printed Manifolds

    Manifolds that are dried in forced-air ovens after washing must be held below the heat deflection temperature of the specific lot. Edgewise HDT is determined per ASTM D648-18 at 0.455 MPa. Drying is set to 45°C for 4 h. If the oven exceeds 60°C, visible distortion appears first at threaded ports and sealing lands. The failure mode is not melting but a combination of residual-cure shrinkage and modulus loss above the HDT. This distortion is irreversible and cannot be corrected by re-machining if wall thickness below the port is less than 1.5 mm.

    Chemical exposure is limited to water-based fluids and aqueous alcohols not exceeding 10 vol% ethanol. Continuous exposure to ketones, esters, or aromatic hydrocarbon solvents causes surface softening and threaded fitting relaxation. Manifold ports are therefore lined with PTFE inserts or metal threaded fittings. The final components are low-pressure laboratory fluid manifolds, vacuum distribution blocks, and medical device development housings that do not contact broken skin. If the manifold is intended for repeated autoclave exposure, the resin is not acceptable because the steam sterilization cycle at 121°C exceeds the established HDT range. No amine-based coupling agent should be applied for downstream bonding; residual photoinitiator reacts with amines and produces dark, weak interfacial layers.

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    Certification & Compliance
    More Introduction

    3D Systems VisiJet FTX Green Plastic for SLA Systems is a green-tinted, photoreactive resin formulated for vat photopolymerization in the 355 nm UV-A region. The model designation VisiJet FTX Green identifies a semi-rigid, polypropylene-like material with published mechanical data generated according to ASTM and ISO methods. The liquid resin is supplied in sealed, light-opaque cartridges for use with compatible 3D Systems SLA machines; cartridge capacities and lot-specific viscosity are listed on the certificate of analysis. Unlike clear stereolithography resins, the green pigment reduces optical penetration at the cure wavelength and therefore changes the exposure window for a given layer thickness. This property difference is exploited for sidewall resolution but must be compensated through the system material file. The product is intended for functional prototyping, form-fit validation, low-volume fixture production, and assembly testing where moderate impact-related behaviour and visual contrast are required. It is not classified as a high-temperature photopolymer or a castable resin for investment burnout.

    Representative manufacturer-published properties for post-cured material are listed below. Values are not specification limits and vary with build orientation, layer thickness, and post-curing dose. Current batch certificates govern.

    Representative VisiJet FTX Green mechanical data
    PropertyTest methodPublished representative value
    DensityASTM D792-201.05 g/cm³
    Tensile strengthASTM D638-1430 MPa
    Tensile modulusASTM D638-141120 MPa
    Elongation at breakASTM D638-14100 %
    Flexural strengthASTM D790-1735 MPa
    Flexural modulusASTM D790-171100 MPa
    Izod notched impactASTM D256-1095 J/m
    Heat deflection temperature at 0.455 MPaASTM D648-1650 °C
    Shore D hardnessASTM D2240-1568

    The tabulated values are generated on specimens printed and post-cured according to the manufacturer’s standard protocol. The data are not directly transferable to arbitrary part geometries because photopolymerization in SLA systems is anisotropic. Thin-walled sections may exhibit lower effective elongation due to residual surface stress and interlayer boundary energy. When designing ribs or bosses, wall thickness should be kept above 0.80 mm to avoid brittle fracture during ejection or assembly; sections below this threshold require a radius at the root to distribute stress.

    What distinguishes the green-tinted FTX formulation from clear SLA resins during recoating?

    The green-tinted chemistry affects recoating because the pigment particles are dispersed in the oligomer matrix, not dissolved. During blade traversal at typical SLA recoater speeds of 80 mm/s to 150 mm/s, a stable film of 0.050 mm to 0.150 mm is required before each exposure. The manufacturer controls viscosity in a narrow band; a shift greater than ±10 % from the batch mean is normally sufficient to produce lamination on horizontal surfaces or starved areas on the trailing edge of the platform. In clear resins, minor viscosity drift is often compensated by an increased recoater gap, but the FTX Green pigment accelerates settling if the cartridge sits unmixed for more than 72 hours. Cartridges must therefore be rolled or shaken according to the material handling procedure before installation. At 355 nm, the green pigment reduces the depth of cure per unit exposure, which narrows the process latitude relative to transparent resins. Operators typically observe that an exposure setting optimized for a clear resin leaves FTX Green undercured at the same layer thickness, leading to weak interlayer peel strength and occasional delamination on large flat up-facing surfaces.

    Recoating defects observed on the first layers are frequently traced to cartridge temperature rather than laser calibration. If the resin temperature is below 18 °C, the recoater blade may pull a partial film and leave uncoated areas near the platform edges. The material file for the target SLA system assumes a resin temperature near 25 °C; deviations beyond ±3 °C may require a temporary reduction in recoater speed. Production builds should log resin temperature and batch number to provide traceability when mechanical results fall outside the expected range. Viscosity measurements on a cone-and-plate rheometer can be used as an incoming quality check, but the test must be performed at the same shear rate as the recoater system to be meaningful. A single-point viscosity at 25 °C without shear-rate control is insufficient for predicting recoating behaviour.

    For functional prototyping, VisiJet FTX Green is applied where polypropylene-like flexibility and visual contrast are needed. Snap-fit features, thin living hinges, and resilient clips are common part classes. The published elongation at break of approximately 100 % under ASTM D638-14 is often used as a design upper bound, but the effective elongation in a printed feature is orientation-dependent and can fall by more than 30 % when the tensile axis crosses multiple build layers. Hinge thicknesses between 0.30 mm and 0.50 mm are feasible when the hinge line lies parallel to the recoater direction and the part is fully post-cured before flexing. Cyclic endurance data for living hinges with this specific formulation is limited; production applications require lot-specific validation with the exact build orientation and post-cure schedule.

    When 0.10 mm layer thickness is selected for snap-fit prototypes

    At 0.10 mm layer thickness, the exposure window is narrower than at 0.050 mm because the polymerization front must travel through a pigmented film with higher optical attenuation. Slight undercure produces horizontal lamination, while slight overcure increases the Z-axis growth and may close small clearances. Measurements from build calibration coupons indicate that the exposure window can narrow to less than ±5 % for this material at 0.10 mm on some equipment, although platform-specific beam uniformity and laser spot size shift the actual range. The recommended approach is to run a nine-point calibration grid on the target machine and to derive scale factors from measured part deviations rather than transferring values from clear resins. Down-facing surfaces near supports often show a thin layer of incompletely cured material because the pigment limits light penetration; these surfaces require adequate support density and a reduced peel angle to prevent chipping during part removal.

    The build orientation for snap-fit prototypes should place the principal bending axis in the build plane to avoid interlayer tensile failure. When the tensile axis is perpendicular to the layers, elongation at break is reduced from the XY value. Post-curing in a 405 nm UV chamber for the manufacturer-specified duration raises crosslink density and stabilizes creep. Parts tested immediately after alcohol drying often exhibit inflated compliance because residual solvent plasticizes the matrix; test specimens should be conditioned at 23 °C and 50 % RH for at least 24 hours before mechanical testing.

    Snap-fit clips and cantilever latches can be produced with a printed-in deflection and then released after post-cure. The design should limit bending strain to the elastic region of the stress-strain curve; because the published elongation at break is not a design allowable, a safety factor of at least 2 is typically applied to account for lot-to-lot and orientation effects. For a cantilever latch, the maximum deflection during engagement should not exceed 50 % of the printed beam thickness. Assembly trials on production-scale equipment have shown that installing parts immediately after alcohol drying can lead to stress cracking at the gate because residual solvent reduces the tensile strength of the surface layer. Conditioning at 23 °C and 50 % RH for 24 hours after post-cure reduces this failure mode.

    VisiJet FTX Green is stored between 15 °C and 27 °C in a dry, UV-shielded environment. Resin removed from cold storage must be conditioned at 23 °C for a minimum of 4 hours before loading because viscosity increases at lower temperatures and recoating defects are most common in the first layers of a build. Moisture uptake above 0.1 % by mass is generally associated with reduced crosslink density, lower tensile modulus, and an increase in surface tack after post-cure. The vat should be protected from ambient light during long idle periods; exposure to sunlight or fluorescent UV can initiate premature polymerization in the liquid and create gels that contaminate the recoater blade. When gels are observed, the vat must be drained and filtered according to the equipment maintenance schedule. Batch-to-batch shifts in pigmentation are controlled by the manufacturer, but visual color density is not a reliable indicator of cure behaviour; the material file and exposure verification remain the controlling process inputs.

    Surface finish, solvent retention, and dimensional stability after IPA post-processing

    Parts are washed in isopropyl alcohol or a manufacturer-approved solvent to remove uncured surface resin. Alcohol immersion times beyond the manufacturer-specified maximum cause solvent absorption, edge whitening, and temporary dimensional expansion, particularly in thin walls below 0.60 mm. Centrifugal or vacuum-assisted drying is preferred for blind holes and snap-fit recesses; residual solvent trapped in recesses leads to post-cure porosity and local softening. After drying, the green parts are post-cured in a calibrated flood UV chamber. Incomplete post-cure leaves residual acrylate groups that can cause slow dimensional drift and surface tack over several days. Overt post-cure can raise brittleness and shift the part from flexible behaviour toward brittle fracture, especially in unsupported sharp corners. Dimensional stability after post-cure is sensitive to the initial green-state geometry; measurements of 0.100 mm holes and 0.200 mm slots should be used to correct CAD scale factors for the target machine.

    Cleaning solvent selection should follow the current safety data sheet and equipment manual. Isopropyl alcohol with a purity below 99 % introduces water that can slow drying and increase surface haze. Two-stage washing is preferred: a bulk rinse to remove the majority of uncured resin, followed by a clean solvent bath. If a single dirty bath is used, dissolved resin accumulates and can deposit a sticky film on the part surface during drying. This film is occasionally mistaken for undercure; a tacky surface after drying is more often a cleaning failure than a post-cure failure. Operators should change solvent according to the consumption log and use filtration to remove pigment particles that settle from saturated baths.

    Relative to rigid clear SLA resins, VisiJet FTX Green trades tensile modulus and heat deflection temperature for higher elongation and improved impact-related behaviour. The published heat deflection temperature near 50 °C at 0.455 MPa limits sustained load-bearing use above that threshold. The material is not designed for thermal testing above 55 °C, nor is it suitable for outdoor UV exposure without a protective coating because unpainted green surfaces yellow and embrittle over time. Relative to castable SLA resins, the ash content after burnout is not controlled and investment casting is not a recommended application. Relative to flexible SLA elastomers, FTX Green is semi-rigid and cannot replace rubber-like parts below Shore A 70. Compliance documentation should be checked against REACH and RoHS requirements for the specific production region. No food-contact status is claimed under FDA 21 CFR, and no biocompatibility assessment is provided under ISO 10993-1. If the part is intended for skin contact, a material-specific toxicological assessment is required. Operators should avoid contact between uncured resin and amine-containing coatings or additives because residual amines can inhibit free-radical polymerization and produce a tacky, incompletely cured surface.

    Compared with a rigid SLA resin having a flexural modulus above 2500 MPa, FTX Green has lower stiffness and is less suitable for load-bearing brackets that rely on screw preload. For threaded inserts, the lower heat deflection temperature limits thermal insert staking; ultrasonic insertion is preferred with low amplitude and short duration. Compared with an ABS-like SLA resin, FTX Green offers improved snap-fit recovery but may require an additional clear coat when surface scratch resistance is necessary. The green pigment can mask stress whitening that is visible in clear materials, so visual inspection for overload damage is less straightforward. Dye penetrant inspection is not recommended because the dark green color can hide crack indications.

    In low-volume fixture production, the material is used for soft jaws, locating pads, and assembly aids. The maximum fixture load should be derived from the flexural modulus and part cross-section, not from the tensile strength alone. Because SLA parts are not fully isotropic, shear failure can occur along layer boundaries at loads below the XY-plane tensile strength. When a fixture must hold a metal pin or bushing, the printed hole should be undersized by 0.10 mm to 0.15 mm and reamed after post-cure to a final tolerance. Reaming removes the resin-rich surface layer and produces a more stable interference fit than printing directly to size. When dimensional acceptance criteria are tighter than ±0.10 mm, the build must be corrected for shrinkage using a target-machine calibration grid. The largest deviations are typically measured along the Z-axis on tall, thin walls where accumulated layer growth and post-cure shrinkage interact. VisiJet FTX Green is not recommended for parts requiring optical clarity, continuous service above 55 °C, or chemical resistance to strong acids and aromatic solvents; solvent-specific immersion testing is required for any sealing or fluid-contact application.

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