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DruckWege TYPE S STANDARD Basic Model UV Resin

    • Название продукта: DruckWege TYPE S STANDARD Basic Model UV Resin
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    Код ТН ВЭД 762734

    Как аккредитованный завод DruckWege TYPE S STANDARD Basic Model UV Resin, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    Применение DruckWege TYPE S STANDARD Основная модель УФ-смолы

    Sheetfed offset UV printing exposes DruckWege TYPE S STANDARD Basic Model UV Resin to a process conflict between roller-train rheology and end-of-press cure response, and this conflict sets the practical addition range. On Heidelberg Speedmaster XL 106 or RMGT 9 series presses configured with interdeck UV modules, the ink train stabilises at 28–34 °C after approximately 15,000 impressions on non-absorbent substrates, and dynamic tack is maintained at 8–12 at 800 rpm on a Laray falling-rod instrument. If the resin fraction exceeds 45 wt%, the paste exhibits duct edge skinning during press stoppages longer than 4 min, and the tack rise caused by fount solution absorption can exceed 2 units within a 30 min run. If the resin fraction falls below 20 wt%, dot gain on 175 lpi screens moves outside ISO 12647-2:2013 tolerances and pigment wetting on aluminium lithographic plates becomes unstable. The starting formulation therefore uses 20–45 wt% DruckWege TYPE S STANDARD Basic Model UV Resin as the main binder, 25–40 wt% monomer diluents such as HDDA or DPGDA, 4–8 wt% photoinitiator matched to 200–400 nm mercury arc or 385 nm UV-LED output, 15–20 wt% pigment, and 0.5–2.0 wt% fumed silica if pseudo-plastic flow is required for sharp dot reproduction. Compliance for graphic arts inks requires REACH (EC) No 1907/2006 registration and CLP (EC) No 1272/2008 classification. Printed folding cartons intended for food contact invoke Regulation (EC) No 1935/2004, the Swiss Ordinance RS 817.023.21, and migration testing according to EN 1186-1:2002. Process control follows ISO 12647-2:2013 for colour sequence and ISO 2846-1:2017 for ink colour and transparency. Terminal output includes high-gloss commercial brochures, coated paper folding cartons, synthetic paper sheets, and rigid PVC loyalty cards.

    Flexographic Anilox Release and the Dynamic Surface Tension Boundary

    On narrow-web UV flexographic lines such as Gallus ECS 340 or Mark Andy Performance Series, chambered doctor blades running against 800–1200 LPI anilox rolls with 2.0–7.0 BCM/in² cell volume impose a viscosity ceiling that narrows DruckWege TYPE S STANDARD Basic Model UV Resin addition to 10–25 wt% of the finished ink. Above this band, the ink no longer releases cleanly from low-density cells, producing cell scavenging, density loss greater than 0.15 status T density units, and pinholing on 150 m/min print runs. Below the band, the cured film loses rub resistance on pressure-sensitive label stock under ASTM D5264-98(2019) abrasion testing. The monomer diluent fraction is 25–35 wt%, photoinitiator is 5–10 wt%, pigment dispersion is 15–25 wt%, and the remaining mass is wetting/defoaming additives. Viscosity measured by Brookfield spindle 27 at 100 rpm and 25 °C should remain between 0.2 and 1.0 Pa·s; dynamic surface tension should stay 24–28 mN/m to prevent dewetting on corona-treated polyolefin films. For food-contact packaging, EUPIA GMP and the Nestlé Guidance Note on Packaging Inks apply alongside FDA 21 CFR 175.300 or 21 CFR 175.105, depending on the ink-coating-adhesive structure. Curing is carried out with UV mercury or 385 nm UV-LED systems at 8–16 W/cm² irradiance and line speeds of 120–300 m/min. Terminal products include pressure-sensitive labels, shrink-sleeve films, flexible pouches, and in-mould labels. Amine synergists such as ethyl 4-(dimethylamino)benzoate require pre-screening because amine-initiated dark cure can shorten press-side open time and produce viscosity drift across an 8 h shift.

    When a 40 kHz Piezoelectric Printhead Demands Sub-12 mPa·s Jetting Rheology

    The main constraint in UV inkjet is not cure speed but maintenance of Newtonian behaviour at the nozzle, and this constraint forces DruckWege TYPE S STANDARD Basic Model UV Resin into a minor binder role at 2–10 wt% of the ink. In piezoelectric drop-on-demand systems based on Kyocera KJ4A or Ricoh GEN5 heads, the jettable vehicle must remain between 8 and 12 mPa·s at 40–45 °C and behave as a near-Newtonian fluid across 1–100 kHz firing frequencies. Resin addition above this window increases elongational viscosity at the nozzle expansion zone, generating missing nozzles and misting during multi-pass graphics; addition below 2 wt% reduces adhesion to corona-treated polyolefin and coated paper in tape-pull tests. Monofunctional monomers such as cyclic trimethylolpropane formal acrylate (CTFA) or 2-phenoxyethyl acrylate occupy 50–70 wt% of the formula, with N-vinyl caprolactam at 5–10 wt% as a viscosity reducer and adhesion promoter, photoinitiator at 4–8 wt%, and dispersant/wetting agents at 0.5–2.0 wt%. Filtration through a 1 µm absolute polypropylene capsule before the printhead is standard; batch viscosity drift greater than ±0.2 mPa·s at 45 °C triggers line stoppage on single-pass label presses. Compliance includes REACH (EC) No 1907/2006, CLP (EC) No 1272/2008, and RoHS 2011/65/EU where printed electronics or electrical equipment are produced. Printed food-contact packaging follows Regulation (EC) No 1935/2004 and EUPIA GMP. Terminal output covers variable-data labels, direct-to-shape pharmaceutical containers, mailing envelopes, and coding/marking on extruded profiles. Published data for this specific configuration in the open literature is limited; rheology trials using a piezoelectric axial rheometer with 40 kHz oscillatory sweep are required before volume deployment.

    Across flat-line UV coating systems for engineered wood panels, DruckWege TYPE S STANDARD Basic Model UV Resin is formulated as the dominant oligomer in two-coat sealer and topcoat architectures, with addition levels of 30–60 wt% in sealer coats and 25–45 wt% in topcoats. Roller coater lines running at 10–25 m/min apply 10–60 g/m² wet films through closed-chamber doctor blades; foaming under shear becomes a production bottleneck when defoamer content falls below 0.2 wt%. The reactive diluent fraction of 25–40 wt% typically uses TPGDA or HDDA, photoinitiator content is 3–6 wt%, flatting agents 5–10 wt%, and defoamers 0.2–0.5 wt%. UV mercury lamps operating at 80–120 W/cm or 395 nm UV-LED arrays at 8–16 W/cm² provide surface cure; through-cure is confirmed by UVA dose at 250–500 mJ/cm². Scuff resistance and intercoat adhesion are tested according to ASTM D4060-19 Taber abrasion and ISO 2409:2020 cross-cut. Compliance for furniture and kitchen cabinet applications draws on ANSI/KCMA A161.1 durability performance and DIN EN 12720:2009 for resistance to cold liquids. Wood substrate moisture should be maintained between 6 and 10%, and ambient relative humidity should not exceed 60% during application to prevent cure inhibition from surface water. Terminal products include flat-pack furniture panels, kitchen cabinet doors, engineered wood flooring, and interior wall cladding.

    Paperboard folding carton lines running at 120–180 m/min impose an overprint varnish transfer window defined by levelling against anilox or offset blanket release, not by bulk conversion. DruckWege TYPE S STANDARD Basic Model UV Resin is added at 20–40 wt% of the varnish, with a monomer diluent fraction of 25–35 wt%, photoinitiator 3–6 wt%, and surface tension modifiers 0.5–1.5 wt%. The wet film is applied at 4–12 g/m² via flexo anilox or offset coating unit, then cured with one or two UV mercury lamps at 120 W/cm or 395 nm UV-LED units at 10–16 W/cm². Compliance is dominated by FDA 21 CFR 175.300 for resinous and polymeric coatings on food-contact paperboard, Regulation (EC) No 1935/2004, and the Swiss Ordinance RS 817.023.21. Gloss retention and adhesion are verified by ISO 2813:2014 and ISO 2409:2020. Terminal output includes cosmetic cartons, pharmaceutical folding boxes, frozen food cartons, and beverage multipack wraps.

    Does Cure Depth Outweigh Green Strength in LCD/Laser Vat Photopolymerization?

    In masked stereolithography and laser SLA systems operating at 385 nm or 355 nm, DruckWege TYPE S STANDARD Basic Model UV Resin is used as the main photopolymer body at 60–85 wt%, with reactive diluents at 15–35 wt%, photoinitiator at 1–5 wt%, and an inhibitor such as MEHQ at 0.1–0.3 wt% to stabilise the vat against thermal dark polymerisation. The critical process threshold is the relationship between critical energy dose and layer thickness: at 50 µm layer height, DLP units deliver 1.0–3.5 s exposure per layer, while laser SLA systems deliver 10–15 mJ/cm² at the build plane. Resin addition below 60 wt% reduces green strength to levels that allow part deformation during platform peeling on bottom-up machines, whereas addition above 85 wt% raises viscosity beyond 1500 mPa·s, slowing recoating and causing visible lamination lines. Post-cure in a 405 nm chamber at 40 °C for 20–60 min is standard to reach final tensile and impact properties. Mechanical testing follows ASTM D638-14 for tensile strength, ASTM D256-10 for Izod impact, and ASTM D2240-15 for Shore D hardness. Regulatory compliance for non-food and non-medical general-purpose parts includes REACH (EC) No 1907/2006 and RoHS 2011/65/EU. Terminal parts include investment-casting wax masters, engineering prototypes, assembly jigs, and foundry patterns; this basic grade is not specified for final dental or medical devices because ISO 10993 biocompatibility data are not assumed. The primary failure observed on production floors is brittle fracture at thin-wall sections below 0.8 mm due to incomplete post-cure of trapped acrylate groups; wall-thickness-specific tensile validation is therefore required before end-use part approval.

    Representative starting-point windows for standard UV-curable acrylate systems are consolidated below. Values require validation against the exact converter equipment, substrate, and lamp configuration because product-specific lot data supersede these class-typical ranges.

    SectorResin additionDiluent/monomerPhotoinitiatorProcessing parameter
    Sheetfed offset UV ink20–45 wt%25–40 wt%4–8 wt%Tack 8–12 at 800 rpm; ink train 28–34 °C
    Flexographic packaging ink10–25 wt%25–35 wt%5–10 wt%Viscosity 0.2–1.0 Pa·s at 25 °C; anilox 800–1200 LPI
    UV inkjet ink2–10 wt%Monofunctional monomers 50–70 wt%; NVC 5–10 wt%4–8 wt%8–12 mPa·s at 40–45 °C; 1 µm absolute filtration
    Wood coating30–60 wt% sealer; 25–45 wt% topcoat25–40 wt%3–6 wt%10–60 g/m² wet film; 10–25 m/min
    Overprint varnish20–40 wt%25–35 wt%3–6 wt%4–12 g/m² wet film; 120–180 m/min
    Vat photopolymerization60–85 wt%15–35 wt%1–5 wt%50 µm layer; 1.0–3.5 s DLP or 10–15 mJ/cm² SLA
    SectorStandard/codeTest or requirementCondition
    Sheetfed offset UV inkISO 12647-2:2013Colour process controlSheetfed offset
    Sheetfed offset UV inkISO 2846-1:2017Colour and transparencySheetfed offset
    Flexographic packaging inkFDA 21 CFR 175.300 / 21 CFR 175.105Indirect food-contact suitabilityInk-coating-adhesive architecture
    Flexographic packaging inkEUPIA GMPGood manufacturing practice for food-contact inksNarrow-web packaging
    UV inkjet inkCLP (EC) No 1272/2008Classification and labellingInk formulation
    UV inkjet inkRoHS 2011/65/EUHazardous substance restrictionPrinted electronics/electrical equipment
    Wood coatingANSI/KCMA A161.1Cabinet durabilityKitchen cabinets
    Wood coatingDIN EN 12720:2009Resistance to cold liquidsFurniture surfaces
    Overprint varnishFDA 21 CFR 175.300Resinous and polymeric coatingsFood-contact paperboard
    Overprint varnishISO 2813:2014Gloss retentionFolding carton OPV
    Vat photopolymerizationASTM D638-14Tensile strength50 µm layer prototypes
    Vat photopolymerizationASTM D256-10Izod impactThin-wall sections above 0.8 mm
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    A photopolymer formulation identified as DruckWege TYPE S STANDARD Basic Model UV Resin is supplied as a single-component, medium-viscosity liquid intended for masked stereolithography, digital light processing, and monochrome LCD-based additive manufacturing systems operating in the 385–405 nm UV-A emission band. The TYPE S STANDARD designation refers to a rigid, general-purpose acrylate/methacrylate matrix with a non-filled formulation and a photoinitiator package tuned for the irradiance levels typical of desktop LCD printers. In the cured state the material exhibits a hard, glassy response with low elongation and moderate heat deflection; it is therefore positioned for dimensionally stable prototype parts, master patterns, and non-load-bearing functional fixtures rather than for flexible closures, high-temperature under-hood components, or castable jewelry patterns. The uncured liquid has a nominal viscosity of 150–250 mPa·s at 25 °C when measured according to ISO 3219, and the cured resin density is 1.08–1.15 g/cm³ by ISO 1183-1. The product is filled into amber high-density polyethylene bottles of 1 kg, 5 kg, and 10 kg, and the container should be rolled or gently agitated for 2 min before each build because low-shear settling of photoinitiator residues can occur after prolonged storage. The resin is not supplied as a ready-to-use flexible, water-washable, or biocompatible material; those performance classes are addressed by separate DruckWege grades. The basic formulation contains no volatile solvent, and the closed-cup flash point is above 100 °C when measured by ISO 2719, which reduces vapor accumulation in unventilated small-format printers but does not eliminate the requirement for local exhaust ventilation.

    What specifications define the TYPE S STANDARD Basic Model?

    The table below summarises representative lot-average values for the Basic Model after 30 min of post-cure under a 405 nm LED chamber at 8–12 mW/cm². Tensile and flexural specimens were printed at 50 µm layer thickness and tested in the X-Y orientation. Property values are not batch-specific release limits; production certificates of analysis should be consulted for acceptance criteria. The viscosity range reflects a shear-thinning response: low-shear readings at 10 s⁻¹ can reach 300–450 mPa·s, while the high-shear plateau at 100 s⁻¹ falls to 150–250 mPa·s. This behavior is intentional for recoat uniformity on gravity-fed vat systems, but it also means viscosity must be measured under controlled shear-rate conditions, not with a simple spindle at an unspecified speed.

    Representative cured-property data for DruckWege TYPE S STANDARD Basic Model UV Resin
    Property Test method Typical value
    Liquid viscosity at 25 °CISO 3219150–250 mPa·s
    Liquid density at 25 °CISO 2811-11.04–1.10 g/cm³
    Cured densityISO 1183-11.08–1.15 g/cm³
    Tensile strengthISO 527-235–45 MPa
    Tensile modulusISO 527-21.6–2.4 GPa
    Elongation at breakISO 527-23–6%
    Flexural strengthISO 17855–70 MPa
    Flexural modulusISO 1781.5–2.3 GPa
    Notched Izod impact resistanceISO 180/A1.8–2.8 kJ/m²
    Shore D hardnessISO 86880–84
    Heat deflection temperature at 0.45 MPaISO 75-250–60 °C
    Glass transition temperature by DMAISO 6721-152–62 °C
    Water absorption after 24 h at 23 °CISO 620.8–1.4%
    Linear shrinkage after post-cureInternal caliper method0.2–0.5%

    Post-cure is not optional for mechanical stability. Parts removed from the build platform retain an under-converted surface layer that can plasticize the bulk network if the solvent wash is delayed beyond 20 min. The standard post-cure sequence is a two-stage immersion wash in 99% isopropanol or tripropylene glycol monomethyl ether for 2–3 min per stage, followed by compressed-air drying at 1.5–2.0 bar and 30–60 min of uniform UV post-cure at 385–405 nm and 40–45 °C. When post-cure temperature exceeds 45 °C, minor dimensional growth of 0.2–0.4% has been observed in the Z axis due to thermal relaxation of polymerized layers; this is within the range expected for underfilled acrylate networks. The resin should not be post-cured in an oxygen-free chamber unless the chamber has active temperature control because exothermic chain growth can raise part surface temperature above the heat deflection limit. Oxygen inhibition at the surface produces a tacky layer during printing; this layer is removed by the solvent wash and does not indicate a defective build. Post-cure completeness can be qualitatively checked by Shore D hardness stability: parts that gain less than 3 Shore D points between 30 min and 60 min of post-cure are considered practically converted for non-critical applications.

    Layer-Cure Kinetics and Exposure Latitude in the Basic Model

    The working curve for the TYPE S STANDARD Basic Model under a 405 nm LED source shows a critical polymerization energy of 8–15 mJ/cm² and a nominal penetration depth of 0.08–0.14 mm for pigmented-grade batches. The reciprocal relationship between cure depth and logarithmic exposure implies that a 50 µm layer height can be exposed at 2.5–4.0 s when the measured irradiance at the vat surface is 4.0–4.5 mW/cm². On non-monochrome or aged LCD arrays with surface irradiance below 3.0 mW/cm², the default exposure should be increased to 5–7 s to maintain interlayer adhesion. Burn-in layers for build plate adhesion typically require 20–30 s of exposure at the same irradiance, depending on platform coating, platform roughness, and chamber temperature. Published data for this specific configuration are limited when using high-frequency grayscale anti-aliasing or dynamic exposure compensation in third-party slicers; validation on the target printer is required before production runs. The exposure window narrows with increasing layer height: at 100 µm, the difference between interlayer delamination and overcure-induced side blooming is approximately 1.5–2.0 s, so larger layer heights are not recommended for parts with fine vertical channels or thin walls below 1 mm.

    In production-scale LCD arrays with a print area above 8.9 inches diagonal, the main process failure mode is not bulk cure but first-layer delamination caused by thermal shrinkage during the burn-in sequence. The resin reaches its green-state plateau only when the peel distance between the build plate and the fluorinated ethylene propylene film is maintained below 5 mm and the lift speed is kept at 40–80 mm/min for the first 10 layers. Above 80 mm/min lift speed, the vacuum-assisted separation can generate microvoids at the edge of large cross-sections; this is observed as white, chalky patches on the bottom surface. Batch-to-batch viscosity variation is specified as ±10% from the lot-average value. If viscosity exceeds 275 mPa·s at 25 °C, the resin may fail to recoat uniformly on 4K mono-LCD machines with a passive gravity-fed vat, leaving layer lines parallel to the tilt axis. The same high-viscosity condition can also increase the rest time needed for bubble disengagement after the build plate descends; bubbling is reduced by a rest time of 2–3 s after recoating, but resin with a viscosity above 275 mPa·s may require 5–8 s of rest for defect-free thin layers. High ambient humidity above 60% RH increases the equilibrium water content of the uncured resin, and the resulting build can show a soft surface and reduced interlayer adhesion if the resin is not pre-dried by resting over a desiccant bed for 12–24 h.

    If storage temperature falls below 18 °C, viscosity and first-layer adhesion shift

    The uncured resin must be stored in the original sealed container at 15–30 °C and protected from direct sunlight and incidental UV from fluorescent and LED room lighting. At storage temperatures below 18 °C, viscosity rises steeply and first-layer adhesion can shift by more than 25% relative to the room-temperature baseline; a warm-up period of 4–6 h at 22–25 °C is recommended before printing from cold inventory. Shelf life is 24 months from the date of manufacture when stored in the unopened original container. After opening, the resin should be used within 60 days because atmospheric moisture and oxygen can reduce photoinitiator efficiency. The liquid must not be mixed with amine-based additives, strong bases, or oxidizers; these can induce radical generation and exothermic gelling in the storage container. The uncured resin is classified as an irritant under CLP Regulation (EC) No 1272/2008; nitrile gloves and eye protection are mandatory, and work should be carried out under local exhaust ventilation. The product is manufactured under a quality system aligned with ISO 9001:2015, and the raw polymer matrix is screened against the restriction list in REACH (EC) No 1907/2006 Annex XVII. RoHS compliance to Directive 2011/65/EU applies to the cured polymer under the expected use conditions for the basic grade. The uncured resin has not been evaluated for chemical compatibility with every commercially available vat film; long-term storage in direct contact with polycarbonate or acrylic vat walls can cause surface crazing, so the original HDPE container or fluoropolymer-lined vats should be used.

    Compared with other DruckWege UV resin grades, the TYPE S STANDARD Basic Model occupies the center of the rigid photopolymer range. The water-washable variant drops the solvent-wash step but typically shows higher equilibrium moisture uptake and lower heat deflection temperature; the high-temperature variant requires a post-cure profile of 60 min at 60 °C and delivers HDT values above 100 °C, but its higher viscosity and stronger odor impose additional handling controls. The flexible variant is formulated to produce elongation at break above 40% and therefore cannot be substituted directly in dimensionally stable tooling applications. The comparative data in the table below are representative ranges after each grade’s recommended post-cure cycle.

    Comparative property ranges across adjacent UV resin grades
    Grade Tensile strength ISO 527-2 Elongation at break ISO 527-2 HDT 0.45 MPa ISO 75-2 Shore D ISO 868 Typical cure window
    TYPE S STANDARD Basic Model35–45 MPa3–6%50–60 °C80–842.5–4.0 s at 4 mW/cm²
    Water-washable general-purpose30–40 MPa4–8%45–55 °C75–822.0–3.5 s at 4 mW/cm²
    High-temperature structural50–65 MPa2–4%120–180 °C85–903.0–6.0 s at 4 mW/cm²
    Flexible impact-modified15–25 MPa40–80%< 40 °C60–70A2.0–3.0 s at 4 mW/cm²

    The TYPE S STANDARD Basic Model is not a universal replacement for these grades; it differs from high-temperature and flexible resins in cross-link density, urethane content, and photoinitiator concentration, which changes the slope of the working curve and the plateau conversion. In applications where acetone immersion or fuel exposure is required, the standard grade is not recommended because the cured network swells and loses dimensional stability. The water-washable grade is often selected for educational settings because solvent handling is reduced, but its lower HDT and higher moisture sorption can be unacceptable for precision jigs; the Basic Model retains a lower moisture uptake and better edge retention after solvent wash.

    Wet-Sanding, Solvent Cleaning, and Dimensional Stability of Basic-Model Parts

    Sanded and machined parts produced from the TYPE S STANDARD Basic Model exhibit a uniform glassy surface when wet sanded with 400–1000 grit silicon carbide paper under flowing water. Dry sanding is not recommended because the local frictional heat can exceed the glass transition temperature, causing surface smearing and loss of feature edge definition. The cured material has a water absorption at saturation of 0.8–1.4% after 24 h immersion at 23 °C following ISO 62; this is low enough for short-term water exposure but not sufficient for continuous outdoor weathering without a protective clear coat. Solvent resistance is moderate for isopropanol and ethanol, but ketone-based solvents such as acetone cause visible cracking within 15 min at 23 °C. Dimensional stability after post-cure is typically within ±0.2% of the digital model for part dimensions below 100 mm, with larger parts exhibiting an additional 0.1–0.2% linear shrinkage along the build plane if post-cured while still attached to the build platform.

    For functional prototypes used in assembly jigs or low-pressure vacuum forming, the TYPE S STANDARD Basic Model can be considered only when the service temperature remains below 45 °C and the part is not exposed to halogenated hydrocarbons, strong alkaline solutions, or elevated humidity above 60% RH for more than 48 h. The material is not suitable for medical device body contact or food-contact use under FDA 21 CFR or EU 10/2011; no compliance statement is provided for those regulatory categories. Published data for this specific configuration is limited in the peer-reviewed literature; therefore, process qualification on the intended printer, vat film, and post-cure unit is required before use in serial production.

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