Продукты

Carbon Printers EPU 40 Elastomeric Polyurethane

    • Название продукта: Carbon Printers EPU 40 Elastomeric Polyurethane
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
    • Свяжитесь сейчас
    Спецификации
    Код ТН ВЭД 571275

    Как аккредитованный завод по производству углеродных принтеров EPU 40 из эластомерного полиуретана, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Carbon Printers EPU 40 Elastomeric Polyurethane is supplied in a sealed, opaque 1-kg plastic container for protected storage and handling.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL container loaded with Carbon Printers EPU 40 Elastomeric Polyurethane in sealed drums, palletized, secured, labeled for ocean freight.
    Доставка Carbon Printers EPU 40 Elastomeric Polyurethane ships as a liquid resin in sealed, labeled containers, typically cartridges or jugs. It is generally not regulated as dangerous goods for transport; verify current SDS and carrier rules. Store upright, cool, dry, away from light and ignition. Use PPE and spill containment.
    Хранение Store Carbon Printers EPU 40 Elastomeric Polyurethane in its original, tightly closed container in a cool, dry, well-ventilated area. Keep away from heat, sparks, open flames, direct sunlight, and oxidizing agents. Protect from moisture and freezing. Maintain recommended temperature, typically 15–30°C. Keep out of reach of children. Follow the manufacturer’s safety data sheet.
    Срок годности Carbon Printers EPU 40 Elastomeric Polyurethane has a shelf life of 12 months when stored sealed at 15–25°C, protected from light.
    Применение углеродных принтеров EPU 40 эластомерного полиуретана
    In footwear midsole and insole production, EPU 40 is processed on Carbon M2 or Carbon M1 Digital Light Synthesis systems with a continuous oxygen-permeable dead zone that suppresses premature photopolymerization while each 405 nm UV slice is projected. The green part is not service-ready after printing; a thermal post-cure cycle develops the published Shore 40A hardness and the tensile and tear response screened under ASTM D2240-15e1, ASTM D412-16, and ASTM D624-00(2020). For midsole lattices, the controlling process variables are unit cell type, strut diameter, relative density, and skin thickness; these dimensions are adjusted in the build file rather than by changing resin formulation. Production-scale runs on the M2 platform are constrained by the 190 mm × 118 mm × 326 mm build envelope and by vat resin temperature stability, which is typically maintained within ±2 °C of the material-specific setpoint. Relative density in the lattice core is commonly specified between 15% and 35%, with strut diameters from 0.75 mm to 1.5 mm depending on cell size and target compressive modulus. The ratio of solid elastomer skin to lattice core is a critical formulation variable: increasing skin thickness to 1.2 mm raises torsional stability and peak load at densification but reduces breathability and adds mass. Terminal footwear assemblies are screened for shock attenuation by SATRA TM142 or ASTM F1976 after the printed component is bonded or inserted into the upper; rebound resilience is measured on plaques by ASTM D2632-15 and ISO 4662. In production practice, surface tack remains the most common failure mode when ambient relative humidity exceeds 60% RH during long print jobs; sealed resin cartridge handling and conditioned build chambers reduce moisture uptake and cure-depth drift. Published energy-return data for specific consumer footwear lattice topologies is limited because final performance depends on skin-to-lattice ratio, cell gradient, and post-cure uniformity.

    What Limits Compression Set in DLS-Printed Pneumatic Seal Arrays?

    For low-pressure pneumatic seal arrays and face gaskets, DLS-printed EPU 40 replaces compression-molded polyurethane when the seal profile contains internal bypass channels, non-circular beads, or cross-sectional changes that cannot be demolded without secondary splitting. The part is usually oriented so that the sealing bead is on the upward-facing surface, since support contact on the contact face introduces surface roughness that increases leakage under low clamping force. Compression set is the primary acceptance criterion, measured by ISO 815-1:2014 Method A at 24 h and 70 °C or by ASTM D395-18 Method B at 25% constant deflection; unfilled elastomer formulations of this hardness range are sensitive to closure force, and production seals should be fixture-aged to isolate permanent deflection from thermal relaxation. Fluid swell screening is performed by ASTM D471-16a in IRM 901 oil at 70 °C for 70 h; the test is used to establish whether the seal lip geometry remains within the leakage limit after swell, not as a general chemical compatibility guarantee. For pneumatic service, leak rates are validated on the finished assembly with ISO 5208:2015 rate A or with a pressure-decay method at the service pressure. EPU 40 is not specified for continuous exposure to ketones, chlorinated solvents, or strong acids, and published data for food-contact compliance under FDA 21 CFR 177.1680 is limited; any such use requires extractables testing on the printed article rather than reliance on resin-grade statements. Terminal components include custom vacuum platen gaskets, pneumatic valve seats, manifold seals, and pick-and-place bellows. On production-scale Carbon L1 systems, arrays of seals are nested across the 400 mm × 250 mm × 460 mm build envelope with the contact face oriented upward; nesting density is limited by the need to maintain a minimum 2 mm spacing between parts to prevent vat recirculation shadows and soft-part collision during peel.
    Test standardConditionQualification purposeProcess limitation
    ASTM D2240-15e1 / ISO 868instantaneous Shore A on post-cured plaqueconfirm nominal 40A sealing compliancestacked 3 mm plaques required for thin sections
    ISO 815-1:2014 Method A24 h at 70 °C under 25% deflectioncompression set after thermal soakthin seal beads may require extrapolation from standard test slabs
    ASTM D471-16aIRM 901 oil, 70 h at 70 °Cfluid swell screeningvolume change does not scale linearly from plaque to seal geometry
    ISO 5208:2015pneumatic seat leakage at service pressureproduction part acceptancemating flange flatness controls the leakage path more than resin hardness
    When impact-attenuating structures in limb protection and sports equipment are printed from EPU 40, the design constraint is not tensile strength but the transmitted force limit of EN 1621-1:2012. The low Shore 40A hardness allows printed honeycomb or TPMS lattice cells with 0.8 mm walls to buckle sequentially under load; energy is dissipated through viscoelastic deformation and structural instability rather than by crushing permanent set. Screening is performed at 23 °C, 0 °C, and -10 °C because polyurethane stiffens at lower temperatures, and the transmitted force measured under the conditioning of EN 1621-1:2012 shifts upward when the material approaches its glass transition. Build orientation for protective pads places the outer impact face away from the support zone; any support nibs on the impact side act as stress concentrators and reduce the repeatability of transmitted force measurements. DLS printing permits multiple density zones within a single pad: a 30% relative density shell can be combined with a 12% relative density core to manage impact absorption without separate molding operations. Post-cure uniformity is critical in this application; undercured regions at the center of thick sections exhibit lower tear resistance under ASTM D624-00(2020) and may crack after repeated impacts. Terminal products include prototype and production-run guards for elbows, shins, and equestrian protective vests where the pad is encapsulated in a textile shell. Published data for specific EPU 40 transmitted-force values in full certified assemblies is limited; EN 1621-1:2012 certification applies to the complete garment system, not to the printed material alone.

    Vibration Isolation Mounts and Dynamic Mechanical Screening

    Vibration isolation mounts produced from EPU 40 on the Carbon M2 and L1 platforms are evaluated by forced-vibration transmissibility rather than by static hardness alone. A mount designed as a lattice-core cylinder with solid end plates can be tuned to a natural frequency below the excitation frequency of small pumps, fans, or drone camera gimbals; the target stiffness is achieved by adjusting unit cell relative density, with 10% to 20% relative density used for low-frequency isolation below 50 Hz. Dynamic mechanical screening follows ISO 18437-2 or ASTM D5992-96(2018) for viscoelastic materials, with storage modulus and loss factor recorded at 1 Hz, 10 Hz, and 30 Hz across -20 °C to 50 °C. Compressive static stiffness is measured under ISO 7743:2017. The damping factor of unfilled polyurethane of this hardness is moderate; where a higher loss factor is required, a constrained-layer design using a rigid printed shell and an EPU 40 core is preferred because the material alone may not provide sufficient tan δ at low strain. Mounts are post-cured before compliance testing; incomplete post-cure produces higher damping but lower resilience and increases cyclic heat build-up. Production-scale failure modes observed on the M2 include core collapse when the lattice relative density falls below 8% or when internal drain holes are omitted after solvent cleaning. Terminal components include isolator bushes for compact vacuum pumps, laser scanner mounts, and gimbal isolation rings. Continuous service above 70 °C accelerates compression set and shifts the loss factor; validation therefore includes aged transmissibility tests after ISO 815-1:2014 aging rather than ambient-only dynamic screening.Before specifying EPU 40 for underhood dust boots and wire harness strain relief, the service temperature profile and batch volume are reviewed against compression-molded TPU alternatives. Heat-aging screening follows ISO 188:2011 at 70 °C for 168 h; terminal parts are installed in intermittent heat zones rather than direct engine block contact because continuous exposure above 70 °C increases permanent set. Chemical exposure screening under ASTM D471-16a with engine oil and glycol-based coolant is required; published data for specific EPU 40 volume change in hot coolant is limited. Build orientation places the convolute peak ridges parallel to the build platform to avoid trapped resin pockets and to allow uncured resin drainage through the open throat. Terminal components include steering rack dust boots, wire harness transition sleeves, and pneumatic line grommets for off-highway service. Production batches are typically low-volume service runs, commonly below 5,000 parts, because mass-produced thermoplastic elastomer injection molding becomes more economical above that volume when tooling amortization is included.

    When EPU 40 Is Selected for Thin-Walled Electronic Enclosure Damping

    Thin-walled protective cases and damping elements for handheld electronic instruments are printed from EPU 40 when the design requires variable wall thickness and integral lattice crush zones that are not feasible with injection-molded TPU at equivalent tooling cost. Wall thickness in the elastomer shell is typically specified between 0.6 mm and 1.2 mm; below 0.6 mm, DLS green parts may deform during support removal and post-cure, while above 1.2 mm the part mass increases without proportional drop protection. Drop performance is screened by the shock test conditions in IEC 60068-2-27:2008, with the printed case assembled around a representative dummy mass; the elastomer is not a hard shell but reduces peak acceleration through controlled buckling and elastic recovery. Electrical-equipment enclosure compliance is checked against IEC 62368-1:2018 for consumer AV and ICT equipment, while substance restrictions are screened under RoHS Directive 2011/65/EU and REACH Candidate List requirements. For wearable devices, skin-contact testing must be performed because DLS resins contain residual photoreactive species until the post-cure cycle is complete, and extraction data under ISO 10993-12:2021 with irritation testing under ISO 10993-10:2013 is required for each finished device; EPU 40 is not supplied as a medical-grade resin and must be validated for the intended skin-contact use. Terminal components include handheld instrument cases, drone sensor mount dampers, camera cage grips, and portable data-logger corners. Operational boundaries include avoidance of continuous service above 60 °C due to heat distortion and compression set, and avoidance of high-energy structural connections because creep under sustained load may exceed design limits.
    Бесплатная цитата

    Конкурентные цены на углеродные принтеры EPU 40 из эластомерного полиуретана, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

    Для получения образцов, цен или более подробной информации свяжитесь с нами по адресу +8618136850665 или отправить по почте admin@ascent-chem.com.

    Мы ответим вам как можно скорее.

    Телефон: +8618136850665

    Электронная почта: admin@ascent-chem.com

    Запрос

    Получите бесплатную сметуAscent Petrochem Holdings Co., Limited

    Гибкие условия оплаты, конкурентоспособные цены, первоклассное обслуживание — обращайтесь прямо сейчас!

    Сертификация и соответствие требованиям
    Более подробное введение

    Carbon Printers EPU 40 Elastomeric Polyurethane is a photopolymerizable urethane resin produced for the Carbon Digital Light Synthesis platform and qualified for Carbon M1, M2, and M3-series printers. The fully post-cured resin is specified at nominal Shore A 40 durometer, which places it at the low-modulus end of the carbon polyurethane portfolio. Supplier documentation lists a cured density of 1.05 g/cm³ under ASTM D792-20. The material is processed through an oxygen-permeable window during printing, followed by solvent washing, drying, and forced-air thermal post-cure. This workflow distinguishes EPU 40 from thermoplastic polyurethane and cast urethane products, which rely on melt solidification or isocyanate-amine curing rather than vat photopolymerization. The product is used where repeated elastic deformation, low-modulus cushioning, tear resistance, and design-integrated lattice structures are the controlling engineering requirements.

    Product designation EPU 40 consists of the elastomeric polyurethane chemistry and the nominal Shore A 40 hardness target. The 40 suffix does not by itself define processing parameters. Each printer platform uses a separate print profile, with resin temperature, light dose, and peel parameters managed by the machine controller. Unvalidated parameter changes can shift the photopolymerization working curve and produce uncured cavities, delamination, or surface tack. In production-scale Digital Light Synthesis equipment, EPU 40 is washed in an approved solvent bath after printing to remove uncured resin from internal channels and lattice surfaces. Inadequate washing leaves residual photopolymer in the green part, which then cross-links into a brittle skin during thermal post-cure and can block open-cell lattice pores. After washing, parts require forced-air drying before entering the oven. Residual solvent that is not evaporated before the 120 °C ramp can induce subsurface porosity at wall surfaces.

    Published mechanical data for the post-cured resin, measured on laboratory coupons, report tensile strength at break of 5.5 MPa and elongation at break of 250% under ASTM D412-16 Die C. Tear strength is reported as 22 kN/m under ASTM D624-00(2012) Die C. Compression set is listed at 20% after 22 h at 70 °C according to ASTM D395-18 Method B. Hardness is specified as Shore A 40 under ASTM D2240-15e1. These values refer to solid, fully post-cured specimens and should not be transferred directly to thin-walled lattices without specimen-level validation. Anisotropy in Digital Light Synthesis parts can reduce Z-oriented elongation when compared with XY-oriented coupons, especially in sections printed below 1.5 mm thickness.

    PropertyTest methodTypical value
    HardnessASTM D2240-15e1Shore A 40
    DensityASTM D792-201.05 g/cm³
    Tensile strength at breakASTM D412-16 Die C5.5 MPa
    Elongation at breakASTM D412-16 Die C250%
    Tear strengthASTM D624-00(2012) Die C22 kN/m
    Compression setASTM D395-18 Method B, 22 h at 70 °C20%

    The reported values are typical supplier data and are not a substitute for lot-specific testing on production geometry. For gasket and seal applications, compression stress relaxation should additionally be evaluated under ISO 3384-1 using a representative gap and service temperature. Published data for EPU 40 under long-term stress relaxation are limited, particularly for lattice cells and interrupted surfaces.

    How Does EPU 40 Differ From Rigid Polyurethane and Epoxy Systems?

    At Shore A 40, EPU 40 is separated from rigid polyurethane grades such as Carbon RPU 130 by a hardness gap of nearly 80 shore points. RPU 130 is a structural, higher-durometer resin with glassy tensile response and high flexural modulus, whereas EPU 40 operates in the elastomeric plateau with gross elongation above 200%. Compared with epoxy systems, EPU 40 offers much lower modulus and higher elongation: an unfilled epoxy network may exhibit less than 10% elongation at break under ASTM D638-14, while EPU 40 absorbs local strain through polyurethane segment orientation and domain relaxation. The trade-off is absolute strength and environmental resistance. Rigid polyurethane and epoxy resins retain geometry under compressive loads that would crush an Shore A 40 elastomer unless the part is structured as a lattice or constrained within a rigid housing. The selection of EPU 40 is appropriate when the engineering requirement is not merely load bearing but reversible deformation, impact isolation, or interfacial sealing.

    Hardness alone does not capture the difference. A Shore A 40 elastomer can bend around a 1 mm radius without crack propagation, while a Shore D 72 rigid polyurethane cannot sustain that deformation mode. However, the rigid resin will carry a 50 N static load with far less displacement than a solid EPU 40 section of identical thickness. The choice between EPU 40 and a rigid polyurethane therefore depends on whether the part is expected to recover from deformation or resist deformation entirely.

    When Thermal Post-Cure Deviates From the Specified 120 °C Window

    Thermal post-cure is not a cosmetic step. Manufacturer guidance specifies 120 °C forced-air oven exposure for 12 h for full property development in production parts. Shorter dwell times or lower setpoints produce parts with incomplete photopolymer conversion, elevated compression set, and surface tack. Production ovens with poor airflow, dense rack loading, or inadequate exhaust can delay the center of the batch reaching 120 °C by 1–3 h, depending on part mass and packed volume. Operators running Carbon M2 or M3 lines therefore verify oven uniformity with embedded thermocouples before committing production batches. Overheating above the recommended window can degrade urethane bond structure, causing yellowing, hardness drift, and loss of elongation. Because the window is process-defined, post-cure oven calibration records are part of the quality release for printed EPU 40 parts.

    General reaction-kinetic behavior implies that a 10 °C reduction below the 120 °C setpoint may roughly double the required dwell time to reach equivalent conversion. This does not mean that lower temperatures can be substituted arbitrarily. At temperatures below the recommended window, side reactions become more significant relative to network formation, and the final compression set may remain elevated even after extended dwell. The post-cure process should be validated by measuring hardness, compression set, and tensile elongation on production-representative specimens, not by oven timer alone.

    In production-scale Digital Light Synthesis, the green part is washed in an approved solvent bath after printing. The solvent type and immersion duration must be controlled because EPU 40 in the green state has not yet reached its final crosslink density. Solvent exposure can produce swelling that becomes locked in if the part is not fully dried before the thermal ramp. Batch-to-batch variability in green-state hardness is typically below ±2 Shore A for equivalent post-cure conditions; parts printed at the extremes of the build platform may show larger variance because of light dose non-uniformity. These process observations are derived from production-scale M-series behavior and are not substitutes for material lot testing.

    Differences From Thermoplastic Polyurethane and Compression-Molded Elastomers

    EPU 40 differs from thermoplastic polyurethane in processing route and property control. Thermoplastic polyurethane requires pellet drying, screw plasticizing, and melt temperatures above 180–210 °C, and its achieved crystallinity depends on mold cooling rate. EPU 40 is photopolymerized at printer operating temperature and then thermally post-cured; it contains no melt-processable crystallites. This removes melt-flow constraints from geometry but introduces anisotropic green-state properties and the need for solvent handling. Compared with compression-molded elastomers such as EVA foam, EPU 40 allows solid elastomer density and lattice topology to be decoupled: an EPU 40 midsole can have a local apparent density below the bulk 1.05 g/cm³ through deliberate cell placement. However, compression-molded foam is generally lower in raw material cost and has well-established hydrolytic and fatigue testing for high-volume footwear.

    Cast polyurethane can be formulated to a wider range of durometers and often provides higher tear strength, but it requires mold tooling for every geometry iteration. The Digital Light Synthesis route used with EPU 40 removes tooling for low-volume or lattice-intensive parts, at the cost of post-print washing and thermal processing. From a molecular standpoint, EPU 40 is thermoset in nature once post-cured and cannot be reprocessed by reheating, unlike thermoplastic polyurethane regrind. Drilling or cutting fully cured EPU 40 parts at high feed rates may generate local frictional heating above the degradation onset of the urethane network; cooling and slow feed are recommended. Published data for this specific configuration is limited for highly filled or flame-retardant versions.

    Footwear Midsole Lattice Collapse and Compression Set

    EPU 40 is frequently printed as lattice midsole structures in which cell geometry, not bulk foam expansion, controls local stiffness. The material’s 250% elongation at break and 22 kN/m tear strength support thin cell wall deformation without immediate crack propagation. Compression set, specified at 20% under 22 h at 70 °C per ASTM D395-18 Method B, is the governing property for cushioning durability because repeated loading produces permanent strain in lattice nodes. In contrast to compression-molded EVA foam midsoles, EPU 40 lattice geometries can vary cell density regionally within one printed part, but this capability requires dynamic fatigue testing beyond static mechanical data. Production experience shows that strut diameters below 1.2 mm increase print-to-print dimensional scatter on some M2 systems; lattice designs for volume production are typically evaluated with process capability studies of strut width rather than with coupon tensile data alone.

    The low-durometer response is useful for vibration isolators and pads where a low natural frequency is required. However, low hardness also reduces extrusion resistance in gasket and seal applications. For gasket lip designs, compression stress relaxation under ISO 3384-1 should be measured at the upper service temperature because urethane networks can show time-dependent force decay even when static compression set is acceptable. Dynamic mechanical analysis under ISO 6721-1 can provide storage modulus and loss factor data for frequency-dependent cushioning behavior, but published data for EPU 40 across a broad frequency range are limited.

    Chemical compatibility data for EPU 40 are limited. Soft segment chemistry in polyurethane materials is generally susceptible to hydrolysis above 60 °C in continuous hot-water immersion, and polar solvents can cause swelling. Before use in automotive or industrial fluid-contact applications, swell resistance should be tested under ASTM D471-16e1 using the actual fluid and service temperature. The supplier material safety data sheet indicates compliance with REACH and RoHS 2011/65/EU, but no food-contact or medical-grade claim appears in the standard product documentation. Components requiring FDA 21 CFR 177.1680 or 177.2600 status must be validated separately with the specific print and post-cure process because the final article, not the raw resin, determines regulatory status.

    ТОП