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Carbon Printers 3D Print Resin 385nm

    • Название продукта: Carbon Printers 3D Print Resin 385nm
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД 288294

    Будучи аккредитованным заводом для 3D-печати 385 нм, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка 1 L opaque black HDPE bottle, child-resistant cap, UV-blocking, hazard labels, batch code, sealed inner liner.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL container loading of Carbon Printers 3D Print Resin 385nm, securely palletized, stowed, and braced for ocean transport.
    Доставка Carbon Printers 3D Print Resin 385nm is shipped as UN3082, Environmentally Hazardous Liquid, n.o.s. (methacrylate monomers), Class 9, Packing Group III, marine pollutant. Use UN-rated packaging, Class 9 labels, shipping papers, and emergency response information. Keep containers closed, cool, and protected from sunlight.
    Хранение Store in a cool, dry, well-ventilated area away from direct sunlight, UV sources, heat, sparks, and open flames. Keep the container tightly closed, upright, and in its original labeled packaging. Maintain recommended temperature, typically 15–25°C, avoid freezing, segregate from incompatible materials, use secondary containment, and follow SDS/local regulations.
    Срок годности Shelf life is typically 12 months when stored sealed, unopened, in a cool, dry, dark place away from direct sunlight.
    Применение углеродных принтеров 3D печати смолы 385nm

    The 385 nm methacrylate-based vat photopolymer system supplied for digital light synthesis platforms is formulated around a difunctional bisphenol A ethoxylate diacrylate backbone with 20–25 wt% trimethylolpropane triacrylate crosslinker and 3.0–5.0 wt% 2,4,6-trimethylbenzoyl-diphenylphosphine oxide photoinitiator. Production-scale 385 nm LED projectors delivering 15–25 mW/cm² at the build surface require the resin to be maintained at 30–35°C because viscosity at 25°C spans 450–800 mPa·s. Handling under amber or fluorescent lighting is required; exposure to 380–390 nm stray light causes premature crosslinking in the recoat region. Moisture pickup above 0.2% by weight slows double-bond conversion and raises water absorption in post-cured parts. The resin must not be pre-mixed with amine-functional oligomers above 2 wt%, because amine-acrylate addition reduces shelf stability and accelerates radical quenching. High-temperature service above 80°C is excluded because published data for this specific configuration is limited. The following downstream scenarios are limited to established production sectors for this wavelength-specific material.

    Application sectorPrimary compliance or verification standardCritical formulation addition ratioProcess boundary
    Dental model and surgical guideEN ISO 13485:2016; ISO 10993-5:2009; ISO 10993-10:2021; EU MDR 2017/7452.0–3.5 wt% TPO; 15–20 wt% TMPTA; 0.05–0.15 wt% UV absorberPost-cure at 60°C ±5°C for 20–30 min
    Lost-wax investment castingISO 3451-1:2019; ISO 9202:20195–10 wt% HDDMA; 20–30 wt% methacrylate diluent; 0.5–1.0 wt% dye dispersionBurnout ramp 60–80°C/h to 700°C; 2-h hold
    Assembly jigs and fixturesISO 178:2019; ISO 527-2:2012; RoHS 2011/65/EU10–20 wt% silica filler; 1–3 wt% fumed silica; 1–2 wt% 2-hydroxy-2-methylpropiophenonePost-cure 60°C for 60–90 min; pre-dry at 45°C for 4–6 h if RH > 60%
    Silicone tooling master patternsISO 4287:1997; ISO 1101:201780–90 wt% base resin; 5–10 wt% HDDA; 1–2 wt% phosphine oxide; 0.05–0.15 wt% HALSRa 0.2–0.4 µm after polishing; post-cure 40°C for 30 min
    Microfluidic master moldsISO 10993-5:2009; ISO 10993-12:2021; ISO 4287:19970.05–0.20 wt% light absorber; 2.0–3.0 wt% TPO; 15–25 wt% diluentPost-cure 25°C for 10–20 min under 385 nm LED
    Consumer electronics snap-fit modelsISO 527-2:2012; ISO 178:2019; IEC 60068-2-27:200810–20 wt% urethane acrylate; 5–10 wt% HDDA; 0.2–0.5 wt% HALSPost-cure 60°C for 30–45 min; latch cycling 50–200 cycles

    What Changes When 385 nm Resin Is Used for Dental Model Production?

    Dental model and surgical guide formulations use the same 385 nm backbone but reduce total photoinitiator concentration to preserve dimensional fidelity. The addition ratio for this segment is 2.0–3.5 wt% TPO, 15–20 wt% trimethylolpropane triacrylate, and 0.05–0.15 wt% substituted triazine ultraviolet absorber, with the base resin held at 75–82 wt% before 0.5–1.0 wt% inorganic pigment dispersion is incorporated. Non-patient-contact diagnostic models are produced under EN ISO 13485:2016 quality management at the print-service level; surgical guides that contact oral mucosa or bone must be assessed according to ISO 10993-5:2009 for cytotoxicity and ISO 10993-10:2021 for skin sensitisation, with device registration following EU MDR 2017/745 or FDA 21 CFR Part 872 as applicable. The downstream process on a 385 nm DLP/DLS system uses 50–100 µm layer thickness, followed by washing in 99.9% isopropanol or tripropylene glycol monomethyl ether for 5–10 min at 25°C and post-curing at 60°C for 20–30 min in a 405 nm LED chamber with 10–15 mW/cm² irradiance. The post-cure chamber must maintain a ±5°C window around the setpoint to avoid overcure-induced warping of thin model bases. Finished product types include orthodontic study models, aligner stage-forming models, implant osteotomy guides, and crown and bridge diagnostic casts.

    Controlling Ash Content During Lost-Wax Pattern Burnout

    In lost-wax casting patterns, the resin formulation is shifted toward low-molecular-weight methacrylate diluents to reduce residual char in gypsum-bonded and phosphate-bonded shells. The addition ratio moves to 5–10 wt% 1,6-hexanediol dimethacrylate, 20–30 wt% methacrylate ester diluent, and 0.5–1.0 wt% wax-compatible dye dispersion for visual inspection; the base 385 nm resin is reduced to 60–70 wt% of the mixture. Burnout compliance is generally governed by foundry-specific internal procedures rather than a universal ISO standard for printed pattern resins; the pattern must achieve residual ash below 0.05 wt% when tested according to ISO 3451-1:2019 after a 700°C burnout, and downstream precious metal castings are marked under ISO 9202:2019 for fineness. The pattern must not be compounded with amine-based castable wax additives because amino groups inhibit acrylate polymerisation and raise ash content. Production uses 25–35 µm layers to preserve filigree geometry, followed by investment in silica-bonded shell material, dewaxing at 150–180°C, ramped burnout at 60–80°C/h to 700°C, and a 2-hour hold to remove carbon before casting. Terminal finished product types include gold and platinum ring patterns, pendant and locket patterns, and cobalt-chromium dental partial frameworks produced by the lost-wax route.

    When Dimensional Drift in Assembly Fixtures Exceeds ±0.3 mm

    Assembly fixture service failures occur when unfilled 385 nm resin grades absorb moisture and expand after installation; the acceptable go/no-go gauge window is commonly ±0.05 mm. The formulation for this segment is therefore a filled high-modulus blend containing 10–20 wt% surface-treated silica filler with a median particle size of 1–3 µm and 1.0–2.0 wt% 2-hydroxy-2-methylpropiophenone as secondary initiator; the base resin is kept at 70–80 wt% before thixotropic adjustment. Mechanical verification follows ISO 178:2019 for flexural modulus and ISO 527-2:2012 for tensile modulus and elongation at break; fixtures placed near electronic assembly cells are screened under RoHS 2011/65/EU for restricted substances. The downstream production process uses 75–100 µm layer printing on a 385 nm projection vat platform, then post-curing in a 385/405 nm flood chamber at 60°C for 60–90 min to reduce residual monomer below 0.1% before line deployment. Operations where relative humidity exceeds 60% require fixture pre-drying at 45°C for 4–6 h before critical dimension inspection. Finished product types include end-of-arm robot grippers, printed circuit board drilling fixtures, soldering pallets with standoff features, and snap-fit assembly fixtures for battery pack production.

    For polyurethane vacuum casting surface replication, the same 385 nm vat photopolymer chemistry is rebalanced to suppress oxygen inhibition at the part surface. A typical formulation for master patterns uses 80–90 wt% base resin, 5–10 wt% 1,6-hexanediol diacrylate, 1.0–2.0 wt% phosphine oxide photoinitiator, and 0.05–0.15 wt% high-molecular-weight hindered amine light stabiliser to retain clarity during room-temperature storage. The governing dimensional and surface standards are ISO 4287:1997 for surface roughness parameters and ISO 1101:2017 for geometric tolerancing of the resulting silicone cavity; master patterns are specified to Ra 0.2–0.4 µm after post-cure and polishing. Downstream production begins with 25–50 µm layer printing, two-stage isopropanol washing, and 405 nm post-cure at 40°C for 30 min to minimise warpage before the pattern is embedded in platinum-catalysed addition-cure silicone at 25°C. The process output is used to produce polyurethane vacuum-cast housings, elastomeric overmoulds, low-volume instrument bezels, and polyurethane foam seating prototypes.

    Microfluidic Channel Resolution and Cure Depth Control

    When channel depth in polydimethylsiloxane microfluidic replicas must stay below 25 µm, the 385 nm resin is formulated with a controlled light absorber for cure depth suppression. The addition ratio for channel-defining masters is 0.05–0.20 wt% dispersed carbon black or substituted triazine absorber, 2.0–3.0 wt% TPO, and 15–25 wt% low-viscosity cyclic trimethylolpropane formal acrylate diluent; the base resin is maintained at 70–80 wt%. For biomedical microfluidic research devices, the final polydimethylsiloxane chip and its master may require biological screening under ISO 10993-5:2009 and ISO 10993-12:2021 for extractables; engineering devices without patient contact are typically evaluated for channel geometry using ISO 4287:1997 surface roughness and ISO 1101:2017 geometric tolerancing when no device-specific ISO interoperability framework has been adopted by the customer. Downstream production involves 10–25 µm layer thickness printing, isopropanol washing, and 25°C post-cure for 10–20 min under 385 nm LED to preserve sharp channel sidewalls before silanisation and polydimethylsiloxane casting. Terminal finished product types include PDMS cell-culture chips, droplet generators, gradient mixers, and organ-on-a-chip masters used in preclinical laboratory research.

    In portable electronic enclosure development, a toughened version of the 385 nm resin is used because standard dental or model grades crack during repeated latch cycling. The addition ratio for this segment is 10–20 wt% urethane acrylate oligomer, 5–10 wt% 1,6-hexanediol diacrylate, and 0.2–0.5 wt% hindered amine light stabiliser, with the base resin at 70–80 wt% before colour correction. Mechanical acceptance follows ISO 527-2:2012 for tensile modulus and elongation at break, ISO 178:2019 for flexural modulus, and IEC 60068-2-27:2008 for drop shock testing of the assembled housing prototype; the printed layer is not a UL 94-rated production compound and is restricted to fit, latch, and drop verification models rather than final flame-rated enclosures. Downstream production prints at 50 µm layer thickness on a 385 nm digital light synthesis platform, washes with isopropanol, and post-cures at 60°C for 30–45 min before snap-fit latch cycling at 50–200 cycles to evaluate cracking. Terminal finished product types include smartphone case verification models, earbud housing prototypes, wearable device enclosures, and battery door fit-check models.

    Бесплатная цитата

    Конкурентные углеродные принтеры 3D печати смолы 385nm цены, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

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    Сертификация и соответствие требованиям
    Более подробное введение

    Carbon Printers 3D Print Resin 385nm is a liquid acrylate/methacrylate photopolymer formulated for vat photopolymerization equipment using a 385 nm peak-wavelength LED, DLP, or Carbon Digital Light Synthesis light engine. The resin is distinguished from 405 nm materials by the shorter wavelength photochemistry: at 385 nm, photon energy is approximately 3.22 eV versus 3.06 eV at 405 nm, which alters initiator selection, depth of cure, and surface conversion. Typical formulations contain urethane acrylate or epoxy acrylate oligomers, monofunctional and difunctional reactive diluents, an acylphosphine oxide photoinitiator package such as diphenyl(2,4,6-trimethylbenzoyl)phosphine oxide or phenylbis(2,4,6-trimethylbenzoyl)phosphine oxide, and additive packages for pigment dispersion, wetting, and oxygen-mediated dead-zone control. The liquid density for this product class is commonly reported in the range of 1.05–1.15 g/cm³ at 25 °C according to ISO 1183-1:2019, and rotational viscosity measured with a Brookfield viscometer per ASTM D2196-20 falls between 250 mPa·s and 700 mPa·s. The cured-material property envelope for a rigid grade after post-cure is typically tested according to ASTM D638-14, ASTM D790-17, ASTM D256-10, and ASTM D648-18; exact lot-specific values are stated on the supplier certificate of analysis, and published data for this specific configuration is limited where proprietary pigment or stabilizer packages are present.

    385 nm Cure Window and Free-Radical-Acrylate Kinetics

    Photoinitiator response at 385 nm is dominated by acylphosphine oxide photolysis. The free-radical generation rate is a function of incident irradiance, spectral overlap, and initiator concentration; once the surface initiator concentration exceeds 1.5 wt%, depth of cure may fall sharply because the resin becomes optically dense at the working wavelength and incoming photons are consumed in the first 20–40 µm of the layer. This is a distinguishing constraint for 385 nm systems compared with 405 nm systems, where longer-wavelength initiator absorptivity is usually lower and penetration depth is higher. The Jacobs working curve is used to define the minimum exposure energy required for adhesion to the previous layer: Cd = Dp · ln(E0/Ec), where Cd is cure thickness, Dp is penetration depth, E0 is incident energy dose, and Ec is critical energy dose. For clear rigid grades, published working curves commonly place Dp between 120 µm and 180 µm and Ec between 8 mJ/cm² and 20 mJ/cm² at 385 nm. Pigment loading, especially carbon black or titanium dioxide, can increase Ec by a factor of 1.5–3.0 and must be compensated by longer exposure per layer or higher light intensity.

    At low irradiance below 1 mW/cm², the cure front may not reach the intended depth because oxygen influx consumes radicals faster than they are generated. Production-scale failure signatures include interlayer delamination, edge cupping, and soft bottom surfaces on the build platform side. The resin temperature further modifies cure response because viscosity falls with increasing temperature, and the monomer diffusion rate into the polymerisation front rises. A resin conditioned at 30 °C commonly exposes faster than the same lot at 18 °C by 10–20 % for a given layer thickness, though the exact shift is machine- and lot-specific and must be confirmed by a working-curve calibration.

    On the build platform, the resin is conditioned at 25–30 °C before the vat is filled, and low-shear recirculation is maintained through a 10–50 µm filter to remove cured debris. Layer thickness is set between 25 µm and 100 µm. For Carbon M1 and M2 Digital Light Synthesis systems, the oxygen-permeable window maintains a polymerisation-inhibited dead zone of roughly 20–50 µm, which prevents the first cured layer from bonding to the optical window. The dead-zone thickness is affected by oxygen permeability, resin photoinitiator concentration, incident irradiance, and temperature; resin lots with viscosity above 700 mPa·s may require heated vat operation or longer recoating time between layers. Exposure time per layer is derived from the working curve and the measured build-plane irradiance, which for 385 nm LCD/DLP systems is typically 1–5 mW/cm². At 50 µm layer thickness and 2 mW/cm² measured irradiance, a clear resin with Ec of 12 mJ/cm² and Dp of 150 µm may require an incident dose of approximately 18–25 mJ/cm², corresponding to 9–13 s exposure per layer after adhesion overcure is included; however, this must be confirmed on the target machine because optical path losses, window haze, and resin temperature shift the actual cure response.

    Recoating in high-viscosity lots is a bottleneck on high-throughput lines. When a 25 µm layer is formed on a resin with viscosity above 500 mPa·s, resin drainage time can exceed 10 s per cycle if the build plate diameter is large or if the resin contains denser fillers such as silica or alumina. Actual manufacturing platforms therefore use heated vats, blade recoating, or delay loops to prevent layer starvation. Batch-to-batch variation in monomer ratio, inhibitor level, and pigment dispersion also changes the working curve; incoming lots are qualified on a representative calibration part before production release.

    Why Does Oxygen Inhibition Alter Surface Conversion at the Dead Zone Interface?

    Oxygen is a strong inhibitor of free-radical acrylate polymerisation because ground-state triplet oxygen reacts with propagating carbon-centred radicals at rates near diffusion control, generating peroxyl radicals that terminate chains. In vat photopolymerization at 385 nm, the oxygen-permeable membrane deliberately maintains a thin, uncured region at the build interface; below this dead zone, oxygen concentration falls and the polymerisation front propagates once the incident dose exceeds Ec. The surface of the final part, however, remains oxygen-inhibited and may exhibit tack if the layer is the last one cured. Fourier-transform infrared attenuated total reflectance spectroscopy of an uncured layer typically monitors the acrylate C=C twisting vibration near 810 cm−1; after post-cure, residual conversion increases and the absorption peak decreases. Oxygen inhibition also requires a 20–50 % increase in exposure dose for the first burn-in layers to compensate for the high oxygen flux at the window interface. Formulations that contain amine synergists are generally avoided because amine-based additives can migrate to the interface and generate measurable yellowing or premature dark reaction, shifting the working curve and reducing shelf stability.

    Post-cure in a 385–405 nm flood chamber is conducted at an irradiance of 2–5 mW/cm² and a part-surface temperature of 60 °C for 20–60 min, depending on cross-section and mass. A nitrogen blanket at 2–5 L/min reduces oxygen inhibition during the first 10 min of post-cure; without inerting, the part surface can remain underconverted and exhibit reduced hardness according to ASTM D2240-15. The post-cure step raises tensile strength and heat deflection temperature but can reduce elongation at break because additional crosslinking shifts the network structure into a denser, more brittle state. For a rigid 385 nm grade, tensile bars post-cured at 60 °C for 30 min under 3 mW/cm² may reach tensile strength values in the 45–65 MPa range when tested according to ASTM D638-14, while an under-cured batch may remain below 40 MPa and exhibit measurable flexural creep at 0.455 MPa according to ASTM D648-18. Lot release testing is performed on Type IV specimens conditioned at 23 °C and 50 % RH for 24 h; specimens are measured with a calibrated universal testing machine equipped with an extensometer, and the strain rate is set to 5 mm/min for tensile testing.

    Incoming resin lots are inspected by rotational viscometry, FTIR-ATR, and a standardized cure-depth test on a glass slide using a 385 nm LED source at a fixed energy dose. The cure-depth test is compared against the supplier working curve; if the measured Dp deviates by more than ±15 %, the lot is rejected or the exposure recipe is compensated. Contaminants from heated vat elements or from metal build platforms can accelerate radical generation or cause localized gelation; stainless steel 316L build plates are generally compatible, but unpainted aluminum surfaces may release ions that shift inhibitor consumption. Storage is specified at 15–30 °C in sealed polyethylene or polypropylene containers with headspace purged of oxygen, and exposure to ambient light below 450 nm must be minimized. The uncured resin is incompatible with strong oxidizers, copper salts, and amine-functionalized cleaning solvents, all of which can alter polymerization kinetics or cause premature gelation in the vat.

    When 385 nm Resin Replaces a 405 nm Grade in Existing DLP Platforms

    Replacement of a 405 nm resin with a 385 nm grade requires more than changing the exposure time. The optical train of a DLP or LCD printer may include anti-reflection coatings, polarizers, and light guides whose transmission at 385 nm is lower than at 405 nm. Build-plane irradiance must be measured with a calibrated radiometer with a full-width half-maximum bandpass of no more than 10 nm; a value that is 20–30 % lower at 385 nm can move the process out of the resin’s working curve. Recalculation of exposure follows the same Jacobs equation, but the lower penetration depth of the 385 nm resin may require compensation through reduced layer thickness or increased irradiation time. The shorter wavelength also increases photon energy to 3.22 eV, which can promote chromophore degradation and higher yellowing in unpigmented or clear formulations unless hindered amine light stabilizers are present. In contrast, a 405 nm resin may exhibit greater penetration and lower surface inhibition for a given oxygen environment but may require a longer exposure because its photoinitiator absorption cross-section is lower at that wavelength. Published data for this specific configuration is limited where the vat film material and projector optics are proprietary, so a working-curve calibration on the actual machine is mandatory.

    Parameter385 nm resin class405 nm resin class
    Photon energy3.22 eV3.06 eV
    Typical clear-resin penetration depth Dp120–180 µm180–250 µm
    Typical clear-resin critical energy Ec8–20 mJ/cm²12–30 mJ/cm²
    Common initiator absorption band370–410 nm380–430 nm
    Surface tack before post-curemoderatelow to moderate
    Yellowing tendency in clear formulationshigher if unstabilizedlower

    Type-release qualification for the 385 nm resin follows the test matrix in the table below. The supplier certificate of analysis reports lot-specific values for viscosity, density, and photoinitiator content. Tensile and flexural specimens are printed or machined to the geometry required by the relevant standard and post-cured using the same recipe intended for production; if the production post-cure is changed by more than ±5 °C or ±10 min, the mechanical data must be regenerated.

    Test methodPropertySpecimen/conditionReported unit
    ASTM D638-14Tensile strength, tensile modulus, elongation at breakType IV, 5 mm/min, 23 °C, 50 % RHMPa, MPa, %
    ASTM D790-17Flexural strength, flexural modulus3-point bend, 1.3 mm/min, 23 °CMPa, MPa
    ASTM D256-10Notched Izod impact63.5 × 12.7 × 6.4 mm, 23 °CJ/m
    ASTM D648-18Heat deflection temperature at 0.455 MPa and 1.82 MPa120 × 12.7 × 6.4 mm, edgewise°C
    ASTM D2240-15Shore D hardness6 mm plaque, 15 s dwellShore D
    ISO 1183-1:2019DensityLiquid and curedg/cm³
    ASTM D2196-20Rotational viscosityBrookfield, 25 °C, spindle 63mPa·s

    For regulatory compliance, the supplier provides batch-specific REACH and RoHS declarations; FDA 21 CFR 177.2600 or ISO 10993-5 statements are not implied unless separately listed. If the resin is used in biomedical, food-contact, or toy applications, migration testing according to EU 10/2011 or applicable regional standards must be completed on the final printed article because the printed surface and post-cure conversion can alter leachable content.

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