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Carbon Printers EPU 41 Elastomeric Polyurethane

    • Название продукта: Carbon Printers EPU 41 Elastomeric Polyurethane
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
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    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Код ТН ВЭД 333808

    Как аккредитованный завод по производству углеродных принтеров EPU 41 из эластомерного полиуретана, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    Применение углеродных принтеров EPU 41 Эластомерный полиуретан

    When Do Midsole Lattice Designs Require Elastomer Rebound Curves Beyond ASTM D2632-15?

    Athletic footwear midsole production using Carbon Printers EPU 41 places simultaneous demands on cyclic energy return, compression set resistance, and geometric freedom in the metatarsal and heel regions. The qualification frame typically includes ASTM D412-16 for tensile and elongation properties, ASTM D624-00 for tear strength, ASTM D395-18 compression set after 22 h at 70 °C, and ASTM D2632-15 rebound resilience; footwear-specific flex fatigue is benchmarked against SATRA TM144 because high-mileage running and streetwear-grade tooling differ in flex cycle counts. The formulation addition ratio in the resin bath is held at 100% EPU 41 because the material is supplied as a single-part photopolymer rather than a two-component cast elastomer. No external polyol, isocyanate, or amine curative is introduced; any tinting or masterbatch addition is restricted to 0.25 wt% or less until working curve recalibration has been completed on the specific DLS machine, since particulate colorants attenuate the projection wavelength and reduce green-state modulus. Downstream conversion begins with Digital Light Synthesis through an oxygen-permeable build window, using layer thicknesses between 50 µm and 100 µm depending on lattice wall-stock requirements, followed by centrifugal or immersion washing in isopropanol and forced-air drying. A subsequent UV post-cure under inert gas is required to drive residual acrylate conversion and reduce surface tack before the pads are die-cut or assembled into strobel boards. The terminal product types are lattice midsoles, removable cushioned insoles, and shank-adjacent heel inserts in athletic footwear. Field experience shows that green parts with wall thickness below 0.8 mm are prone to tearing during solvent wash if drain time is extended, and production batches with higher humidity in the wash station have exhibited increased surface adhesion at the post-cure chamber inlet, confirming the need to control ambient moisture below 60% RH in the green-to-cure transfer zone.

    Compression Set and Swell Control in Hydraulic Seal Lattices

    Hydraulic sealing applications subject EPU 41 to continuous contact with petroleum-based fluids, requiring validation of volume swell and compression set before any production approval. The relevant qualification standards are ASTM D471-16e1 for rubber property changes after immersion in IRM 901 oil and ISO 1817:2015 for resistance to liquids, while seal geometry verification follows ISO 3601-3:2005 dimensional tolerance principles for hydraulic O-rings and housings. The formulation addition ratio is set at 100% EPU 41 with 0 phr external curative, 0 wt% polytetrafluoroethylene powder, and 0 wt% paraffinic plasticizer because solid particle additives scatter the DLS imaging beam and create under-cured seal lips. If surface energy reduction is required for dry-running pneumatic seals, plasma treatment or a vapor-deposited fluoropolymer layer is applied after post-cure rather than introducing additives into the vat. Fabrication proceeds by DLS printing with a dense skin layer between 1.0 mm and 2.0 mm at the sealing lip and a lower-density lattice core in the gland body to combine radial compliance with dimensional stability. Green parts are washed in isopropanol until residual solvent is below the validated gas chromatography threshold, then UV post-cured; the post-cure step is run at higher dose to reduce compression set, as under-cured commercial parts exhibit increasing permanent set after 70 h at 100 °C. Finished product types are pneumatic piston seals, hydraulic gland packings, and flange gaskets for industrial pumps and valves. This configuration is not recommended for continuous immersion in chlorinated solvents or for hydraulic fluids above the rated thermal ceiling of the material; published data for EPU 41 in specific multi-component hydraulic fluid mixtures is limited and must be generated through ASTM D471-16e1 compatibility testing before field use.

    In robotic and light-vehicle vibration isolation, the design variable is not bulk hardness but frequency-dependent loss factor, which changes when solid elastomer blocks are replaced by lattice architectures with constrained strut bending modes. Qualification work for these components uses ISO 10846-1:2008 for dynamic transfer stiffness in resilient elements and ASTM D5992-96(2018) for dynamic properties of rubber-like materials using a dynamic mechanical analyzer, while rail-transit electronic modules are screened under IEC 61373:2010 shock and vibration test categories. For this application, the formulation addition ratio is fixed at 100% EPU 41; fumed silica, nanoclay, or other thixotropic fillers are not added because loadings above 0.2 wt% raise resin viscosity beyond the recoating limit of the DLS vat and produce build-layer streaks that degrade fatigue life. The manufacturing route uses a topology-optimized lattice with variable strut diameters and cell spacing, printed on a DLS machine with an oxygen-permeable window, washed in isopropanol, dried under vacuum, and UV post-cured under nitrogen to stabilize the network. The end components are robotic joint bumpers, drone gimbal isolation mounts, and vehicle electronic module isolators where transmitted vibration below 500 Hz must be attenuated without adding metallic spring mass. Production-scale observation has shown that using an undersized wash basket with tight packing leads to nonuniform solvent contact; downstream vibration test failures trace to residual solvent pockets that reduce loss factor reproducibility between consecutive build batches. Published data for EPU 41 loss factor at discrete frequencies across all lattice configurations is limited, so a design-of-experiments matrix with dynamic mechanical analysis is required for each new cell geometry.

    Drop-Impact Protection in Electronic Device Enclosures Moves From Foam to Continuous-Grade Lattices

    Consumer electronics impact-test protocols require repeated drop survival without permanent deformation or cosmetic fracture, which pushes elastomeric lattices toward continuous surface skins over lower-density core geometries. The qualification standards applied are MIL-STD-810H Method 516.8 for transit drop, IEC 60068-2-27:2008 for mechanical shock, and IEC 60695-11-10:2013 for a horizontal burn rating consistent with UL 94 HB in the final enclosure assembly. The DLS resin tray formulation addition ratio is 100% EPU 41, with pigment masterbatch kept below 0.3 wt% unless cure depth testing is repeated; conductive additives such as carbon black, carbon nanotubes, or antistatic metal particles are not introduced because they absorb the projection wavelength and reduce the oxygen-inhibited dead zone thickness, causing delamination at thin lattice connections. The downstream process consists of printing a skin-walled lattice structure with skin thickness between 1.0 mm and 2.5 mm, solvent washing in isopropanol, vacuum drying to remove residual alcohol from closed-cell regions, and UV post-cure followed by mechanical interlocking into a rigid polycarbonate or aluminum frame. The terminal product types are mobile phone cases, tablet corner guards, and AR/VR headstrap cushion inserts. A known production failure mode is blistering at the skin-core boundary when residual solvent is not fully removed prior to the thermal ramp of post-cure; this has been observed in parts with internal channels narrower than 1.2 mm, where capillary retention of isopropanol is higher than in open lattice designs.

    Biocompatibility screening for skin-contact orthoses shifts from supplier certification to project-specific testing because EPU 41 is supplied as an industrial photopolymer rather than a formally cleared medical device resin. The regulatory framework requires ISO 10993-5:2009 cytotoxicity testing and ISO 10993-10:2010 sensitization and irritation testing before clinical placement, with risk management conducted under ISO 14971:2019; depending on the final device classification, biocompatibility under FDA 21 CFR 177.1680 may be evaluated for polyurethane analogues but is not a substitute for medical device testing. The formulation addition ratio remains at 100% EPU 41 as received; no antimicrobial additive, solvent diluent, or external branching agent is introduced because silver- and copper-based particulate additives quench the photo-initiator and cause heterogeneous cure depth in the thin orthotic shell. The production sequence uses DLS printing, followed by a double isopropanol wash with an initial rinse in a heated bath and a second rinse in fresh solvent, forced-air drying at ambient temperature, vacuum drying to remove residual solvent from closed lattice cells, and a validated UV post-cure cycle. Finished device categories are accommodative orthotic insoles, prosthetic socket liner pads, and protective splint padding intended for short-term skin contact. A process boundary occurs at any residual isopropanol concentration above the validated detection limit, as skin sensitization and off-gassing complaints in field use have been traced to incomplete solvent removal rather than the cured polymer network itself. Published data for repeated long-term dermal contact with EPU 41 in medically regulated devices is limited; each manufacturing floor must generate its own ISO 10993-5:2009 and ISO 10993-10:2010 reports on final washed and cured parts.

    If Gas-Permeable Venting Layers Are Required, Cell Size and Skin Integrity Take Precedence Over Bulk Hardness

    Protective sport padding applications that require airflow through the printed structure impose constraints on cell geometry that are absent from solid elastomer processing. Impact attenuation is tested under EN 1077:2007 for helmet liners and similar shock-absorption layers, while repeated drop or impact protocols such as ASTM F1447-18 may be used depending on the final sporting product category. The formulation addition ratio is confined to 100% EPU 41 with 0 phr chemical blowing agent, 0 wt% diluent, and no azodicarbonamide or sodium bicarbonate because density reduction is achieved by lattice void fraction rather than gas evolution during cure. Fabrication involves printing a graded open-cell lattice with cell openings above 1.5 mm to permit airflow, washing in isopropanol with drainage intervals optimized for open-channel parts, forced-air drying, and UV post-cure under nitrogen. The terminal product types are sports helmet liner pads, shin guard inserts, and back protector padding. A processing limit is defined by the relationship between cell size and surface tension of the wash solvent; cells below 1.5 mm retain solvent by capillary force and require longer vacuum drying, while cells above 4.0 mm increase the risk of strut buckling during printing because of insufficient in-layer support. Amine-based mold-release additives or secondary coatings are not introduced because amine chemistry can accelerate premature gelation in polyurethane photopolymer storage tanks and degrade the photo-initiator shelf life.

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    Более подробное введение

    Carbon Printers EPU 41 Elastomeric Polyurethane is a photopolymerizable urethane resin formulated for Carbon Digital Light Synthesis systems. The product is supplied as a liquid resin and produces a thermoset elastomer with a Shore hardness of 68A under ASTM D2240. Supplier-reported typical data list tensile stress at break at 8.6 MPa per ASTM D412, elongation at break at 225%, tear strength at 29 kN/m per ASTM D624 Die C, and compression set of 18% after 22 h at 70 °C per ASTM D395 Method B. The material is positioned as a production-grade elastomeric polyurethane for functional prototyping and short-run manufacturing, with a property envelope that differs from lower-tear silicone resins and from rigid polyurethane formulations. Published data for all print orientations and wall thicknesses remains limited; the values cited are representative of parts printed flat and post-cured according to the supplier’s recommended cycle.

    On Carbon M2 and L1 platforms, EPU 41 is processed at a nominal layer thickness of 100 μm. Continuous liquid interface production maintains an oxygen-inhibited dead zone at the build window while a UV projection system crosslinks the acrylate-terminated urethane oligomer. The resin does not require heated reservoirs when the build chamber is maintained between 20 °C and 30 °C; chamber relative humidity above 60% RH can create surface tack and dimensional drift. After printing, residual uncured resin is removed in a two-stage bath of isopropyl alcohol or a fluorinated wash solvent. The post-cure cycle uses UV exposure followed by thermal stabilization. Batch-to-batch variation in resin age and water content can shift Shore hardness by ±2A and tensile strength by ±5%; the supplier recommends lot verification with ASTM D2240 and ASTM D412 before release of production parts.

    What Mechanical Property Envelope Distinguishes EPU 41 from Lower-Durometer Elastomers?

    PropertyTest methodRepresentative supplier-reported value
    Shore hardnessASTM D224068A
    Tensile stress at breakASTM D4128.6 MPa
    Elongation at breakASTM D412225%
    Tear strengthASTM D624 Die C29 kN/m
    Compression setASTM D395 Method B, 22 h at 70 °C18%
    Glass transitionDMA, 1 Hz-20 °C

    Under quasistatic tensile loading, EPU 41 exhibits nonlinear hyperelastic behavior typical of segmented polyurethanes. The 225% elongation at break is lower than many injection-molded TPU grades that exceed 400% under ISO 37, but the combination with 29 kN/m tear resistance permits perforated and notched features. Dynamic mechanical analysis at 1 Hz shows a glass transition near -20 °C; below this threshold the elastomer stiffens significantly and loses elastomeric recovery. The 18% compression set after 22 h at 70 °C indicates moderate recovery after sustained compressive strain, which limits long-term static sealing performance unless the seal lip is designed with additional preload.

    Continuous Digital Light Synthesis Processing Parameters

    During printing, the build platform motion, oxygen concentration, and irradiation dose interact to control crosslink density. EPU 41 is less viscous than high-modulus rigid polyurethanes and can be printed with thinner walls and finer negative features, but unsupported overhangs below 30° from horizontal may require support structures to prevent delamination. Layer thickness is fixed at 100 μm on the standard process profile; deviations from this value require a validated process parameter set. The oxygen-inhibited dead zone must remain stable across the full build area. If oxygen concentration drifts, the first layers above the build window may show increased surface roughness and reduced tear strength. Post-print cleaning is a critical control point: residual uncured resin left in blind holes or lattice nodes will polymerize during post-cure and create brittle inclusions that reduce elongation at break. Drying after washing at 23 °C to 40 °C for a minimum of 2 h is recommended before post-cure, although published data for the effect of residual solvent on EPU 41 is limited.

    The post-cure protocol modifies the final properties. Under-cured parts exhibit lower Shore hardness, higher compression set, and surface tack; over-cured parts can develop a hard skin layer that initiates crack propagation under cyclic strain. The supplier’s recommended post-cure for EPU 41 uses a UV chamber with emission in the 365–405 nm range and a thermal soak to complete urethane conversion. Parts should be allowed to cool to room temperature before mechanical testing because the glass transition is approached at higher cooling rates and residual stresses can distort thin sections.

    Solvent Resistance, Thermal Loads, and Service Boundaries

    EPU 41 is a urethane network whose chemical resistance is evaluated under ASTM D543; however, the supplier’s public datasheet does not provide complete immersion data for all production fluids. In aliphatic hydrocarbon oils, mass swell is generally low, but published data for specific EPU 41 configurations is limited. Continuous immersion in hot water above 60 °C accelerates hydrolysis. Exposure to concentrated acids, ketones, and chlorinated solvents should be avoided. The material is incompatible with amine-based additives and strong bases because these reagents attack the urethane linkages and can cause premature crosslinking or chain scission.

    Thermal service is bounded by the -20 °C glass transition and the 70 °C compression-set test temperature. Intermittent excursions above 70 °C may cause softening and accelerated oxidative attack; prolonged exposure above 90 °C is not recommended. Flame resistance is not inherent; compliance with FMVSS 302 or ISO 3795 requires additional fire-retardant coatings or fillers that may alter mechanical properties. Outdoor use requires UV-stable coatings because the urethane network is susceptible to yellowing and surface chalking under sunlight.

    When EPU 41 Is Specified for Dynamic Sealing Applications

    In dynamic sealing applications, EPU 41 is used for dust boots, rod wipers, and gasket prototypes where fluid resistance is moderate and elastomeric recovery is required. The tear strength of 29 kN/m reduces lip tear during installation on shafts with a lead-in chamfer below 20°. However, compression set of 18% after 22 h at 70 °C means that a static seal compressed to 25% will not fully recover; flange preload must compensate for permanent set. The coefficient of friction is not provided in the supplier datasheet; sliding wear against steel or anodized aluminum must be measured under ASTM D5963 or customer-specific conditions. The material’s resistance to mineral oil is generally acceptable, but immersion in polar solvents, ketones, or brake fluid is not recommended without validation because these fluids can swell the urethane network and lower tensile strength. Published data for specific fluid aging of EPU 41 is limited.

    For gaskets and seals, the printed surface roughness may require post-processing. As-built surfaces on the build platform side are smoother than the free surface; a gasket sealing on the free surface may leak until mechanical polishing or a conformal elastomeric coating is applied. Leak testing per ISO 22096 or customer-specific pressure decay is recommended before production release. The material’s permeability to gases is not provided in the standard datasheet.

    Footwear midsole applications use EPU 41 primarily for lattice-based cushioning structures. Shore 68A base resin can be printed into cellular architectures whose compressive modulus is controlled by cell size and beam thickness; the same material bulk property remains unchanged. Cyclic compression testing under ASTM F1976-13 or ISO 14890 is required to establish fatigue life in the specific lattice geometry. Published data for fatigue behavior of EPU 41 latticed midsoles is limited. The absence of tooling permits regional stiffness gradients and multiple midsole sizes in a single build, which is difficult with injection-molded TPU.

    Medical device housings and external components can use EPU 41 where supplier documentation for cytotoxicity per ISO 10993-5 and irritation/sensitization per ISO 10993-10 is accepted by the regulatory file. The material is not a long-term implant polyurethane; ISO 10993-6 implantation studies are required for tissue contact durations beyond the documented limits. Biocompatibility of the final printed part can be influenced by residual monomer, cleaning solvent retention, and post-cure by-products. Validation must be performed on the final geometry, not on cast test plaques.

    Comparison with Injection-Molded TPU and Cast Polyurethane

    EPU 41 differs from injection-molded thermoplastic polyurethane in that it becomes a thermoset network after post-cure. It cannot be re-melted or recycled as a thermoplastic. However, it can produce hollow lattices, blind internal channels, and undercuts without mold tooling. Injection-molded TPU grades often provide higher elongation at break, with many grades exceeding 400% under ISO 37, and better hydrolytic stability in hot water. Cast polyurethane can be formulated across a Shore range from 20A to 85A, while EPU 41 is fixed at 68A; cast formulations also allow hardness tuning through curative stoichiometry. The printed material eliminates mold cost for short-run production and reduces lead time from weeks to hours, but part-to-part consistency depends on resin lot, build chamber condition, and post-cure uniformity.

    Compared with Carbon RPU 70 rigid polyurethane, EPU 41 is not a structural material. RPU 70 exhibits heat deflection temperature near 70 °C and flexural modulus above 1700 MPa under ASTM D790, while EPU 41 is an elastomer with Shore 68A. Compared with Carbon SIL 30 silicone, EPU 41 offers higher tear strength and tensile strength, but lower service temperature and lower resistance to polar solvents. SIL 30 is specified for high-elongation soft-touch and skin-contact applications; EPU 41 is specified when higher durometer and cut resistance are required.

    Relative to the earlier EPU 40 grade, EPU 41 is positioned as a production-grade elastomeric polyurethane with updated documentation for biocompatibility and process robustness. Published side-by-side mechanical data for EPU 40 and EPU 41 are limited; therefore, material substitution requires re-validation of compression set and tear resistance on the target geometry.

    Resin storage constraints for EPU 41 are established by the supplier. The resin should be kept in sealed containers between 15 °C and 30 °C, away from UV light. Moisture uptake can reduce crosslink density and lower Shore hardness by up to 3A in extreme humidity. Amine-based additives should be avoided because they can accelerate premature urethane crosslinking and raise resin viscosity. Palladium or platinum cure systems used in some silicone rubbers are not applicable to EPU 41 and can contaminate the oxygen-permeable build window if shared tooling is used.

    For industrial vibration isolation mounts, EPU 41 can be printed as a single elastomeric component with integrated metal or rigid polymer inserts. The printed part must be washed, post-cured, and conditioned at 23 °C for 24 h before dynamic testing because residual solvent or moisture affects loss tangent and tear strength. Inserts should be pre-heated to 40 °C before printing to reduce interfacial delamination caused by thermal expansion differences. The supplier’s technical documentation does not provide a complete fatigue limit for bonded insert geometries; production-scale validation under ASTM D813 or ISO 6943 is required.

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