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CRP Technology Windform TPU Elastomer for SLS 3D Printing

    • Название продукта: CRP Technology Windform TPU Elastomer for SLS 3D Printing
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
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    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Код ТН ВЭД 198714

    Как аккредитованный CRP Technology Windform TPU Elastomer для завода SLS 3D Printing, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    Применение технологии CRP Windform TPU Elastomer для 3D-печати SLS

    For SLS builds in which the finished component is a lattice-structured midsole or orthotic insole, the elastomer selection is constrained by compression set after cyclic loading, tear resistance at strut nodes, and abrasion across the ground-contact surface. Windform TPU powder is processed on CO₂ laser powder bed fusion systems at a layer thickness of 0.10–0.12 mm; the supplier technical bulletin reports Shore A hardness below 90 and elongation at break above 300% when tested according to ASTM D638-14 Type IV conditions. The footwear-specific durability requirement is evaluated under ISO 17707:2005 for flex resistance, while tensile and tear verification follow ISO 527-2:2012 and ISO 34-1:2022. The feedstock for midsole builds is an unfilled TPU; no filler masterbatch or plasticizer is added because the powder bed process does not require compound flow modification. The production addition ratio for the hopper is maintained at 30–50 wt% virgin Windform TPU blended with recovered powder from previous builds; the exact value within that range is set by melt volume-flow rate measured according to ISO 1133-1:2022, with the lower virgin fraction accepted only when the recovered powder lot retains a melt-flow value within ±15% of the virgin reference. Build orientation places high-compression strut areas away from downward-facing surfaces because the tensile modulus of SLS TPU along the z-direction can be lower than in the XY plane; parts are packed with at least 5 mm spacing between lattice walls to allow depowdering. After the build, the parts cool in the chamber below 40°C before removal, are depowdered with compressed air at 2–4 bar, and are then glass-bead blasted to remove residual surface particles. Production escalation trials show that when walls below 1.2 mm are oriented vertically, tensile strength falls relative to XY orientation under ASTM D638-14, and the blend ratio is adjusted toward higher virgin content to maintain strut integrity. Finished component types include lattice midsoles, removable sockliners, heel cushions, and contoured orthotic insoles for athletic and occupational footwear.

    How Does Recycled Powder Reuse Affect Compression Set in Protective Sports Components?

    In impact-absorbing SLS TPU pads for protective sports equipment, compression set behaviour is the governing qualification criterion rather than tensile strength alone. The material response is evaluated under ASTM D395-18 Method B with 25% deflection at 23 ± 2°C and 70 ± 2°C for 22 h, supplemented by ASTM D2240-21 Shore A hardness and ISO 34-1:2022 tear strength. Sports-specific impact attenuation is assessed under EN 1621-1:2012 when the part contributes to motorcyclist armour performance; the specimen geometry, conditioning, and anvil configuration must match the published standard clause rather than a generic coupon. The powder formulation remains an unmodified TPU; the addition ratio for impact pads is set conservatively at 50:50 by weight virgin-to-recovered powder because recovered fractions above 60 wt% have been associated with an upward shift in compression set at 70°C of more than 5 percentage points in production-lot coupons. When a supplier changes powder batches, melt volume-flow rate is checked per ISO 1133-1:2022, and the blend ratio is revalidated on sacrificial compression set slabs measuring 20 mm × 20 mm × 6 mm. The downstream process uses CO₂ laser powder bed fusion at 0.12 mm layer thickness; internal lattice cells are designed with 2–4 mm cell widths and 1.2–2.0 mm wall thickness to balance energy return and impact protection. After depowdering, parts are conditioned for 48 h at 23 ± 2°C and 50 ± 5% RH before compression set measurement. Finished product types include helmet comfort liners, shin guard pads, shoulder protection inserts, and motorcyclist back-protector comfort layers where the elastomer layer is not the primary certified impact shield.

    AssessmentStandardConditionAcceptance criterion
    Tensile propertiesISO 527-2:2012 / ASTM D638-14 Type IV23 ± 2°C, 50 ± 5% RHElongation at break and tensile strength per part drawing
    Tear strengthISO 34-1:2022Graves specimenMinimum value per application specification
    Compression setASTM D395-18 Method B25% deflection, 22 h, 23°C/70°C≤ 35% for impact pads
    AbrasionISO 4649:2022 Method A5 N contact forceMass loss reported
    FlammabilityFMVSS 302 / ISO 3795:2020Horizontal burn≤ 100 mm/min or SE
    Skin contactISO 10993-5:2009, ISO 10993-10:2021Cytotoxicity and irritationGrade ≤ 2; no irritation
    Restricted substancesREACH EC 1907/2006, RoHS 2011/65/EUSVHC and heavy metalsSVHC < 0.1% w/w; Pb/Hg/Cd/Cr6+ limits per RoHS

    Automotive Interior Low-volume Elastomer Components Use SLS to Eliminate Tooling Constraints

    When automotive interior programmes require tooling-free flexible parts below 2,000 units, the SLS route is specified for HVAC bellows, seatbelt guides, grommets, and door handle seals where injection mould tooling cannot be justified. Compliance documentation includes FMVSS 302 / ISO 3795:2020 for horizontal burning rate of occupant compartment materials, REACH Regulation EC 1907/2006 Article 33 and Annex XVII restricted substances, and 2011/65/EU RoHS for any component adjacent to electrical wiring. The supplier’s REACH declaration is requested for each powder lot; absence of SVHCs above 0.1% w/w per article must be confirmed before serial production. The feedstock blend for automotive interior parts uses 60 wt% virgin Windform TPU to 40 wt% recovered powder from the same material and colour, because visible exterior surfaces require consistent white colour and reduced surface porosity; the recovered fraction is sieved at 125 µm and dried below 0.5% moisture before blending. The production process runs a CO₂ laser PBF system with layer thickness 0.10 mm, build chamber temperature maintained within ±1.5°C of the TPU crystallisation window, and soft-part orientation rules that place large flat surfaces at 15–30° from the XY plane to reduce curling. After powder removal, critical sealing surfaces are vapor-smoothed or coated with a water-based TPU finish only after adhesion tests; solvents containing ketones or aromatic hydrocarbons are avoided because they swell the TPU matrix. Terminal part types include HVAC drain grommets, flexible air duct bellows, seatbelt sleeve cushions, wiring pass-through grommets, and low-volume door handle seals.

    Industrial flexible couplings produced by powder bed fusion from TPU elastomer are specified where chemical compatibility with mineral oil, abrasion resistance in sliding contact, and freedom from tooling-induced knit lines are simultaneous requirements. The relevant material test method for fluid compatibility is ISO 1817:2022, using ASTM Oil No. 3 at 70°C for 70 h, with volume change and hardness change reported rather than assumed. Compression stress relaxation is evaluated under ISO 3384-1:2019 to distinguish genuine seal performance from simple compression set; wear resistance is measured under ISO 4649:2022 Method A with a 5 N contact force. The powder blend for sealing parts uses 70 wt% virgin Windform TPU and 30 wt% recovered powder of identical lot history; this is lower than in footwear because seal surfaces must maintain low porosity and uniform Shore A hardness across the part. Recovered powder is rejected if visual contamination from foreign polymer particles is detected above 0.1% by sieving inspection. Machine parameters are developed on a production SLS platform with a 60 W CO₂ laser or higher, layer thickness 0.10 mm, and two-stage cooling below 50°C before extraction to minimise warpage in thin bellows sections. Sealing components receive a post-process shaft-abrasion treatment on the sintered lip surfaces to reduce initial leak; all parts are leak-tested at 0.02 MPa air pressure for low-pressure applications. Finished products include robotic gripper fingers, suction cups, flexible couplings for automated assembly lines, dust boots for ball joints, and low-pressure pneumatic bellows.

    Wearable device enclosures, 0.10 mm layer thickness, and skin-contact compliance documentation

    For body-worn consumer electronics enclosures with living hinges and skin-contact surfaces, TPU powder bed fusion is evaluated under the end-use requirements of repeated bending, sebum and perspiration exposure, and restricted substance compliance. Chemical resistance to artificial sweat is tested under ISO 105-E04:2013; colour fastness and surface degradation after 24–72 h immersion are recorded. Cytotoxicity and skin irritation screening follow ISO 10993-5:2009 and ISO 10993-10:2021; however, published data for Windform TPU in this specific skin-contact configuration is limited, and material qualification must be repeated by the finished-device manufacturer under ISO 10993-1:2018. RoHS 2011/65/EU applies when the product is part of an electronic assembly, and REACH EC 1907/2006 Annex XVII applies to skin-contact articles. The powder blend for thin-walled wearable parts uses 80 wt% virgin Windform TPU and 20 wt% recovered powder from the same build lot, because wall thicknesses of 0.8–1.5 mm cannot tolerate surface porosity or melt-flow drift. For wearables with snap-fit closures, the addition ratio is validated by ISO 178:2019 flexural modulus measurements on printed bars at 23°C and 55% RH. The production process uses CO₂ laser PBF at 0.10 mm layer thickness, with orientation of living hinges parallel to the XY plane to avoid z-axis tensile weakness. Post-processing includes compressed air depowdering, 0.5 mm glass bead blasting at 2 bar, and optionally aqueous vapor smoothing for sealed outer surfaces. Finished products include watch strap links, earbud charging case bumpers, camera body covers, and custom headset cushion rings.

    When Windform TPU Replaces Machined Silicone in Rehabilitative Device Fabrication

    Within external-use rehabilitative device fabrication, Windform TPU is processed for check sockets, protective hand splints, positioning pads, and short-term ankle-foot orthosis liners; it is not used for permanent implant applications. The compliance framework is ISO 13485:2016 for device manufacturers and ISO 10993-1:2018 for biological evaluation of external skin-contacting devices, with cytotoxicity screening under ISO 10993-5:2009 and sensitisation under ISO 10993-10:2021 performed on the finished printed part because SLS residual powder and post-process media can alter biological response. The formulation addition ratio is stricter than in industrial applications: only 30 wt% recovered powder from the same lot is permitted, and the blend is recorded by lot number in the device history record; recovered powder from mixed builds or unknown colour history is not introduced. The downstream process starts with CT or optical scan data, followed by CAD surface offset of 0.2–0.4 mm to compensate for localised shrinkage, and then SLS at 0.10 mm layer thickness. Build orientation places the patient-contact surface on the upward-facing XY plane to minimise surface roughness; any downward-facing surfaces that will contact skin are post-processed by solvent-free mass finishing to reduce Ra below 10 µm where technically possible. Cleaning uses validated washing with mild detergent and drying at 40–50°C; solvent residuals are controlled because TPU sorption can alter Shore A hardness. Terminal products are limited to external-use test sockets, protective splints, sleeping foot drop splints, positioning pads for wheelchair seating, and short-wear AFO liners.

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    The selective laser sintering elastomer sold under the designation Windform TPU is a thermoplastic polyurethane powder formulated for polymer powder-bed fusion systems. Unlike polyamide-11 and polyamide-12 powders that dominate general SLS production, this grade is developed to deliver rubber-like elongation and low tensile modulus after laser consolidation. The powder is supplied as a free-flowing, near-white elastomer raw material with a bulk density of approximately 0.60 g/cm³; the sintered part density is reported in the range 1.03–1.10 g/cm³ when measured by displacement methods based on ISO 1183-1. Mechanical characterization is usually performed according to ASTM D412 or ISO 37, and the grade is typically associated with a Shore A hardness of 65–70, tensile strength from 5 MPa to 8 MPa, and elongation at break from 200% to 350%. These ranges are not deterministic specification limits; they shift with build orientation, powder-reuse fraction, and the laser scan strategy selected on the SLS machine. The material is intended for parts that require repeated bending, impact recovery, sealing compliance, or abrasion resistance without the stiff reinforcement found in carbon- or glass-filled Windform composites.

    Reported property ranges for Windform TPU consolidated by SLS
    PropertyTest standardReported range
    DensityISO 1183-1, ASTM D7921.03–1.10 g/cm³
    Shore A hardnessISO 868, ASTM D224065–70
    Tensile strengthISO 37, ASTM D4125–8 MPa
    Elongation at breakISO 37, ASTM D412200–350%
    Tear strengthISO 34-1, ASTM D62425–40 kN/m
    Abrasion lossISO 464920–40 mm³

    The tabulated values are drawn from public technical-data compilations and should be treated as engineering reference points rather than guaranteed acceptance criteria. For production, the current supplier technical data sheet, powder batch certificate, and ISO 9001-controlled measurements on the target SLS platform provide the binding values.

    What separates Windform TPU from rigid laser-sintering grades?

    The closest reference points in the Windform product portfolio are filled and unfilled polyamide-based powders. Rigid Windform grades such as Windform LX 3.0 and Windform XT 2.0 are measured with ISO 527-2 tensile-bar methods and show tensile moduli in the gigapascal range after glass or carbon reinforcement. Windform TPU, by contrast, is characterized with elastomer test methods such as ASTM D412, and its modulus is lower by two to three orders of magnitude. This difference is visible in part design: a clip or hinge made from Windform TPU accepts large recoverable deflection, whereas a glass-filled grade would fracture or require a live hinge. Compared with commodity unfilled polyamide-12 SLS powders, the TPU grade provides lower tensile strength and lower stiffness but much higher elongation and elastic recovery after strain; a PA-12 part may exhibit 10–30% elongation at break, while the TPU elastomer commonly exceeds 200%. The main trade-off is creep resistance: the TPU is not dimensionally stable under sustained load at elevated temperature, and it is not recommended as a load-bearing structural replacement for polyamide composites.

    Within the broader SLS elastomer market, high-hardness TPU powders formulated for Shore A 85–90 are available. Windform TPU is positioned below that hardness band, which reduces spring force and sealing compression load but also lowers abrasion resistance relative to harder TPU chemistries. Users selecting between elastomer powders should test the specific compression force, recovery, and dynamic wear under the application duty cycle rather than relying on hardness alone.

    In production, Windform TPU is used for convoluted bellows, dust boots, gaskets, protective covers, cable-management sleeves, and hand-held instrument grips. Because SLS does not require mold tooling, elastomer parts can be produced with internal return flanges, undercut sealing lips, and lattice padding that would require complex split molds or secondary bonding in liquid silicone or injection-molded rubber. A common production route involves building the part at 100–120 µm layer thickness, removing loose powder with compressed air, and then applying a light solvent or aqueous clean without aggressive alkaline detergent. The primary process benefit is geometric freedom; the main limitation is that sintered TPU surfaces have a characteristic granular texture and require tumbling or coating if low friction or smooth sealing contact is required.

    Typical SLS machine settings for this material class involve a part-bed temperature close to the onset of the polyurethane melting endotherm, laser power density sufficient to fuse the current layer without bubbling, and a scan spacing that creates overlapping melt tracks. On 100 W-class CO₂ laser systems with 300–400 mm build dimensions, the part-bed temperature commonly falls in the 80–105 °C range, but the exact value depends on powder batch molecular weight, machine thermal calibration, and ambient humidity. Parts built in Z orientation usually show lower elongation at break than XY-oriented parts, and the difference can exceed 20% of the XY value in thin wall sections because interlayer fusion is less complete than in-plane fusion. These anisotropies require the designer to orient peel lips and flexure zones in the XY plane when possible.

    Tear resistance and elastic recovery after repeated loading

    Dynamic sealing and bellows applications load the material in repeated tension, compression, and shear. TPU elastomers exhibit stress softening and hysteresis in the first loading cycles; after cyclic conditioning, the force-stroke curve stabilizes and recovered energy improves. For quality control, tear strength is measured using ASTM D624 or ISO 34-1, and published Windform TPU-type materials typically fall between 25 kN/m and 40 kN/m. Compression set is evaluated with ISO 815-1 under controlled deflection and temperature; values for laser-sintered unfilled TPU are commonly reported in the 20–45% range after 24 h at 70 °C, but powder porosity and build orientation can shift this value substantially. For elastomer seals, users should specify compression set, stress-relaxation, and recovery after load removal, not only hardness and tensile properties, because a seal can pass hardness testing yet fail to maintain contact pressure after thermal ageing.

    Windform TPU is not suited to continuous service above the softening region of the polyurethane hard segments. The exact upper service temperature should be derived from the application rather than a single heat-deflection value, because elastomer performance is load-dependent. For dynamic parts, the user should carry out fatigue testing under expected strain amplitude; there are no universal SLS fatigue curves that transfer directly from one powder lot to another. Chemical compatibility with fuels, brake fluids, and strong polar solvents should be tested; thermoplastic polyurethane can swell or hydrolyse in humid or acidic environments, especially at elevated temperature.

    When powder refresh rate and moisture control shift batch-to-batch properties

    Windform TPU is hygroscopic, and powder storage procedures have a direct effect on melt quality. The supplier’s handling guidance for TPU-class powders normally requires drying in a dry-air hopper or convection oven before use when powder has been exposed to ambient humidity above 60% RH. A typical drying condition for unfilled TPU powder is 70–80 °C for 8–12 h; higher temperatures may cause powder blocking or premature degradation. Moisture content should be kept below 0.08–0.10% by mass before feeding to the SLS system, because entrapped moisture can produce porosity, cratering, and inconsistent melt tracks. Recycled powder from breakout stations must be sieved to remove agglomerates and contamination, then blended with virgin material in a controlled ratio. The optimal refresh ratio is machine- and application-specific; if recycled powder fractions exceed the validated range, the part may show reduced elongation at break and lower tear strength due to molecular weight loss and oxidized surface species. Monitoring melt flow index or solution viscosity is less informative for TPU than for polyamides; instead, the supplier and experienced service bureaus track tensile elongation and tear strength against the used-powder fraction using lot-level test coupons.

    The final surface of Windform TPU parts can be sealed by solvent smoothing, but mild process conditions are required because the elastomer can absorb solvent and become sticky. Painting, bonding, and flame-lamination must account for the low surface energy and flexible substrate. Mechanical fastening is usually preferred over adhesive bonding; when adhesive bonding is unavoidable, the joint area should be cleaned with isopropyl alcohol and tested for peel strength using ISO 11339 or ASTM D6862. Dimensional control follows SLS norms: the measured part dimensions should be checked against the build geometry using a coordinate measuring machine, because shrinkage compensation factors for TPU differ from those for polyamide powders. Typical shrinkage in the XY plane is lower than in the Z direction, and the exact values depend on the powder bed temperature, part wall thickness, and scan speed.

    Clamped elastomer joints such as housing seals and vibration-isolation mounts subject the material to a fixed compressive deflection. Under constant strain, thermoplastic polyurethane exhibits stress relaxation, and the residual sealing force decreases over time. The rate of decay is temperature-dependent and can be measured with ISO 3384-1. In Windform TPU parts, as with most unfilled TPU elastomers, the stress remaining after 72 h at 23 °C under a fixed compression is generally lower than the initial sealing force; after elevated-temperature exposure the remaining stress may be lower still. This behavior means that a gasket designed only from room-temperature compression force can lose sealing contact after thermal cycling. Production drawings for safety-relevant sealing parts should define the minimum residual force after accelerated ageing rather than the initial assembly force. Published stress-relaxation data for laser-sintered Windform TPU specifically are limited; qualified suppliers often generate internal data with the actual part geometry and service medium.

    Transferring a validated build from a laboratory-scale SLS machine to a production system requires more than scaling laser power. The part bed temperature stability, roller or recoater geometry, and inert gas flow in the build chamber influence the local cooling rate of the melt track. A process that produces acceptable elongation on a small machine may generate unacceptable interlayer porosity on a large machine if the build chamber has non-uniform temperature across the build area. For Windform TPU, large flat sections are especially sensitive to curl because the low elastic modulus does not resist thermal shrinkage stress. Production runs should include test coupons in the corners and center of the build, and the tensile strength, elongation at break, and Shore A hardness of those coupons should be recorded against build date, powder lot, and machine operating parameters. This lot-level data is necessary because no single property value is sufficient to predict the fatigue life of an elastomer part under end-use conditions.

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