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BigRep TPU Filament

    • Название продукта: BigRep TPU Filament
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД 459989

    Как аккредитованный завод BigRep TPU Filament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    Применение BigRep TPU нити

    In automotive cabin air distribution ducting and gear-lever gaiter bellows, BigRep TPU Filament is processed as a 2.85 mm feedstock at a nozzle temperature of 230–245 °C with a build plate setting of 60 °C. Spool pre-drying at 80 °C for 4 h is mandatory when ambient relative humidity exceeds 55 %; un-dried TPU produces hydrolytic foaming at the 0.6 mm nozzle tip and interlayer porosity at the fold roots. Duct bellows are produced with 4 perimeters, 0.25 mm layer height, 100 % infill in the hinge flex zone, and a total wall thickness of 1.8–2.5 mm. Extrusion multiplier is held at 1.02 because TPU filament can slip in the feed gear below that setting, causing under-extrusion in tall unsupported convolutions. Part cooling fan output is disabled for the first 20 layers and limited to 20 % thereafter; higher fan speed prevents interlayer diffusion and creates delamination at the tangent of each convolution. Flammability for cabin components is evaluated according to DIN 75200 or FMVSS 302, and emissions are screened by VDA 278 thermal desorption. Resistance to media is tested on printed coupons under ISO 1817 after 14 days at 23 °C in ASTM Reference Fuel C; if volume swell exceeds 10 %, the duct part is restricted from underhood service. Terminal products are low-volume commercial vehicle HVAC duct segments and replacement gear-lever gaiter bellows where multipart molding and skin welding are not available for short-run builds.

    When Does Shore 85A TPU Replace EPDM in Pump Skid Isolators?

    Printing of vibration isolators from Shore 85A TPU is undertaken only when static deflection remains below 4 mm and continuous ambient temperature is below 50 °C. The material cannot match the compression set recovery of EPDM after 72 h at 70 °C, but it permits one-piece integration of bolt holes, anti-slip ribs and nonlinear beam springs. The component is laid out with a 0.6 mm nozzle at 230 °C, bed 60 °C, layer height 0.2 mm, outline speed 20 mm/s and infill speed 35 mm/s. Core fill is 16 % gyroid, the outer shell is 100 % concentric, and the solid shell-to-overall thickness ratio is kept at 3:1 to reduce localized deformation beneath metallic clamping plates. Dynamic stiffness is measured on a servo-hydraulic shaker using ISO 10846-2, with a displacement amplitude of 0.1 mm across 10–80 Hz. Printed isolators display anisotropic behavior: z-axis compressive stiffness is generally lower than xy-plane values because each layer boundary adds compliance; this ratio must be measured on printed coupons according to ISO 604 and inserted into the finite-element model. Continuous static load is limited to 0.2 MPa to avoid creep and hardness drift. Terminal products include pump skid mounts, fan coil isolators and light robotic base pads used on non-continuous-duty machinery.

    If a 0.6 mm Nozzle Is Operated at 245 °C Without Prior Spool Drying

    For CNC machine way-cover bellows, the most common failure appears at the fold root when a 0.6 mm nozzle is operated at 245 °C on spools that have not been pre-dried. Ester-based TPU degrades hydrolytically under melt moisture above 0.03 % by weight, so the spool is dried at 80 °C for 4 h in a desiccant dryer with a dew point of −40 °C. The bellows geometry maintains a wall thickness of 1.6 mm, a convolution height-to-pitch ratio of 1.5:1, 5 perimeters, 0.2 mm layer height, and no infill in the fold zone. Retraction distance is set to 1.5 mm at 25 mm/s; longer retraction pulls air into the nozzle and creates z-axis porosity. Part cooling fan power is capped at 30 % because fold-root delamination rises sharply when the skin solidifies before the following layer diffuses into it. Build orientation is vertical, and the unsupported convolution overhang angle must not exceed 55° from horizontal to maintain a clean interior surface. Tear resistance is tested on printed crescent specimens under ISO 34-1, and abrasion is measured by ISO 4649-A at 10 N. Machine-guarding geometry is checked against ISO 13857 before installation. Terminal products are linear-axis way covers and metering auger dust sleeves for CNC machining centers and powder handling stations.

    PropertyTest methodConditionTypical Shore 85A class value
    HardnessISO 86823 °C, 3 s reading85A nominal
    Tensile strengthISO 527-250 mm/min18–25 MPa
    Elongation at breakISO 527-250 mm/min450–600 %
    Tear strengthISO 34-1500 mm/min, trouser45–60 kN/m
    Abrasion lossISO 4649-A10 N, 40 m path25–50 mm³
    Compression setASTM D395 Method B23 °C, 72 h20–35 %

    Values are class ranges for unfilled Shore 85A thermoplastic polyurethane feedstocks and must be confirmed against the batch certificate supplied with each spool.

    Custom ankle-foot orthosis shells are printed from BigRep TPU Filament with a shell thickness of 3 mm, 4 top and bottom solid layers, and nonuniform infill: 45 % triangular infill in lateral flexure zones and 70 % infill beneath load-bearing struts. Ventilation perforations of 3 mm diameter are spaced 8 mm apart to prevent tear migration between cut edges. Print settings are 235 °C nozzle, 60 °C bed, 0.25 mm layer height, and 0.55 mm line width. Support structures are not used because the gyroid regions can be oriented as self-supporting transition fills. Post-processing includes dry sanding with 80–120 grit abrasive, followed by edge rounding at 120 °C for 5 min. Biocompatibility is the device manufacturer’s responsibility under ISO 10993-1; skin-contact orthoses may require ISO 10993-5 and ISO 10993-10 testing because the as-supplied spool is not sterile and processing residues can remain on as-printed surfaces. Terminal products are custom ankle-foot orthosis shells and wrist immobilization splint shells produced in low-volume orthopedic clinics.

    Cleanroom Linear Rail Bellows: Particulate and Tear Acceptance Criteria

    Cleanroom linear rail bellows are built vertically from BigRep TPU Filament with a wall thickness of 2.0 mm, convolution radius of 4 mm, end collar compression of 10 %, and bonding overlap of 20 mm at the mounting rings. Six perimeters are used at 0.2 mm layer height to eliminate infiltration paths along the folded wall. The first 20 layers are printed without active part cooling; after that, fan output is capped at 40 %, and passive chamber heat keeps the local air temperature above 30 °C. On large-format machines without a heated chamber, a mid-print pause is not acceptable because TPU loses interlayer diffusion at the interface during cooling. Cleanroom suitability is assessed by airborne particle emission under ISO 14644-14, while tear specimens are cut parallel to the z-axis and tested under ISO 34-1; z-oriented tear strength is commonly 55–75 % of xy-oriented coupons, so acceptance limits must be based on the worst orientation. Solvent wiping resistance is verified by ISO 2812-1 with 70 % isopropyl alcohol at 23 °C for 24 h. Terminal products are cleanroom axis covers for PCB pick-and-place handlers and medical dispenser way covers where shed particles and fold cracks are the primary rejection modes.

    Footwear Midsole Prototypes With Lattice Density Gradients

    Large-format additive manufacturing from BigRep TPU Filament replaces split-mold midsole prototyping by printing a full-length athletic midsole in one operation. Lattice density is graded into three zones: 12 % in the heel crash pad, 28 % in the midfoot transition, and 55 % in the forefoot support. Cell size is held at 7 mm with strut diameter 1.5 mm; perimeter walls are 1.5 mm thick, with 3 top and bottom solid layers. The build uses a 0.6 mm nozzle at 235 °C, bed 60 °C, layer height 0.2 mm, perimeter speed 20 mm/s, and lattice speed 25 mm/s. Spools are dried at 80 °C for 4 h before the run. After printing, soles are heat-set at 100 °C for 20 min under flat platens to reduce thermoplastic shape recovery from stored stress. Flexural fatigue is assessed with SATRA TM133, and compression set is measured according to ASTM D395 Method B for 22 h at 23 °C. REACH and California Proposition 65 documentation apply; no food or medical contact is claimed. Terminal products are athletic midsole prototypes and heel cushion inserts for safety footwear trials.

    On high-speed pick-and-place cells for automotive connectors, BigRep TPU Filament is printed into vacuum cup adapter pads and soft gripper jaws. The elastomer contact lip is 1.2 mm thick, the backing plate is 4 mm, the hexagonal infill density is 70 %, and the lip angle is 25° from vertical to produce controlled spring-back after part release. Print settings are 0.2 mm layer height, 0.6 mm nozzle, 230 °C nozzle, 60 °C bed, and 35 % fan. The TPU pad is bonded to a rigid ABS or PA6 backing with a methacrylate adhesive at a 0.05 mm bond line; dovetail grooves 2 mm wide and 1.5 mm deep are designed into the backing to improve peel resistance. Robot cell safety is verified under EN ISO 10218-1, but the pad material is not automatically compliant for direct food contact under FDA 21 CFR 177.1680; if food product contact is expected, migration testing on the finished assembly is required. Terminal products include gripper jaws for electronics assembly, vacuum cup pads for porous sheet metal handling, and soft locating pads for vision inspection fixtures where rigid tooling would mark the part surface.

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    Более подробное введение

    BigRep TPU Filament is supplied as a 2.85 ± 0.05 mm thermoplastic polyurethane monofilament for large-format fused filament fabrication systems with constrained direct-drive extrusion. The product is wound on 2.5 kg, 4.5 kg, and 8 kg spools, with batch-specific diameter and ovality records. Manufacturer-published typical values include density of 1.12 g/cm³ per ISO 1183-1, hardness of 98 Shore A per ISO 7619-1/ASTM D2240, tensile elongation at break above 600% under ISO 527-2, tear strength of 65 kN/m under ISO 34-1, and abrasion loss of 70 mm³ under ISO 4649. These values are typical datasheet values for the current revision and should be confirmed against the batch certificate before release for production. The material is not specified as a structural replacement for rigid polyamides or fiber-reinforced grades; its selection is driven by high elongation, abrasion tolerance, and compliance in large-format flexible parts.

    What Extruder Settings Prevent Feed-Path Buckling in Flexible Filament?

    Production-scale large-format FFF experience with flexible TPU indicates that the dominant failure mode is not melt temperature but feed-path buckling between the extruder drive gear and the hot zone. The low compressive modulus of the 2.85 mm strand reduces its unsupported column strength. Feed paths with long exposed transitions, idler pressure set for rigid filaments, or high retraction distances can ovalize the filament and produce inconsistent volumetric output. The extruder idler force is therefore set to the minimum required to prevent drive-gear slip, and the filament path from spool to hot zone is constrained. Retraction is reduced to 0.5–2.0 mm or disabled entirely, print speed is limited to 20–40 mm/s, and nozzle diameters of 0.6–1.0 mm are selected to reduce backpressure. Nozzle temperature is maintained at 220–240 °C, and build plate temperature is set at 30–60 °C. Part cooling is typically off or kept below 30% fan speed because high airflow reduces interlayer fusion. These parameters are equipment-specific and require re-establishment when the melt chamber length, nozzle geometry, or extruder motor current limit changes. When extruder motor current limits are low or the feed path exceeds 300 mm, a constrained filament guide tube is used to prevent lateral displacement of the strand before the drive gear.

    First-layer adhesion on large-format glass, PEI, or polycarbonate build surfaces is achieved with a thin polyvinylpyrrolidone-based adhesive layer. Nozzle-to-bed offset is typically increased by 0.05–0.10 mm relative to rigid PLA to prevent smearing. Bed temperatures above 60 °C can reduce first-layer stiffness and increase the risk of edge lifting on parts longer than 500 mm. In draft-prone production rooms, perimeter warpage is controlled by enclosing the build volume or reducing X/Y travel speed for the first 2–4 layers. Large-format parts with long XY spans benefit from a first-layer speed below 25 mm/s and a first-layer height of 0.25–0.30 mm to maintain uniform contact pressure across the build plate. For repeated parts, a brim of 5–10 mm improves edge stability, but removal on flexible material requires a sharp blade and low peel angle to avoid tearing the part edge.

    Moisture uptake in TPU is a process control variable rather than a storage recommendation. The filament is dried at 60–70 °C in a desiccant dryer with a dew point of -30 °C for 4–8 h to reduce moisture below 0.02 wt%. At ambient relative humidity above 60%, pre-drying is mandatory because hydrolysis of urethane linkages during melt processing creates voids and lowers z-direction tensile properties under ISO 527-2. Spools should remain sealed with desiccant when not in use, and production lines should transfer dried filament directly to the extruder without long exposed dwell. Compared with PLA and PETG, TPU has higher hygroscopicity; moisture-related surface porosity, steam ejection from the nozzle, and inconsistent diameter are observed if drying is omitted. Saturated spools may require 8–12 h of drying before processing.

    TPU melt viscosity is shear-rate dependent and more temperature-sensitive than PLA. In large-format extrusion with nozzle diameters of 0.6–1.0 mm and speeds of 20–40 mm/s, volumetric throughput is kept moderate to avoid melt fracture and rough surface finish. At nozzle temperatures above 240 °C, surface gloss increases but tear strength can decline because urethane bond scission. At temperatures below 220 °C, incomplete fusion between layers produces delamination under tensile loading. Melt residence time in the hot zone is minimized by avoiding prolonged idle periods at processing temperature. Melt flow rate per ISO 1133-1:2022 is not a primary QC parameter for TPU because moisture-sensitive degradation can dominate the measurement. Because FFF parts are anisotropic, z-direction tensile strength and elongation are lower than XY values. When printing at 0.2–0.3 mm layer height, z-direction tensile strength may be 50–70% of XY strength. Design allowables should be generated from printed coupons tested under ISO 527-2 with orientation reported, rather than from datasheet values derived from molded plaques. Published data for FFF-grade TPU under capillary rheometry is limited.

    Dynamic Seal Tear, Abrasion, and Compression Set Boundaries

    Hardness measured by ISO 7619-1/ASTM D2240 is a lot-to-lot consistency check, but it does not predict functional performance in dynamic seals or gaskets. For sealing applications the more relevant published values are tear strength under ISO 34-1 at 65 kN/m and abrasion loss under ISO 4649 at 70 mm³. These values indicate resistance to sharp-particle wear and tear propagation at seal edges. Published data for compression set under ISO 815 on FFF-printed specimens is limited, so users should generate application-specific recovery data after long-term compressive loading, especially for seals operating above 40 °C. The segmented block copolymer structure provides a balance of hard aromatic urethane domains and soft polyol segments, but hardness alone does not capture hysteresis, stress relaxation, or the effect of extrusion-induced anisotropy on sealing force retention. North American users may also report tensile properties under ASTM D638-14; cross-method comparison requires identical conditioning and specimen orientation.

    Material substitution decisions in large-format FFF compare BigRep TPU with rigid PLA, PETG, and polyamide grades. The table below uses published typical values and standard test methods to show selection differences. Direct numerical equivalence between brands is not implied.

    Material Hardness Tensile elongation Wear resistance Moisture sensitivity Processing speed
    BigRep TPU 98 Shore A >600% High under ISO 4649 High; dry at 60–70 °C Low; 20–40 mm/s
    BigRep PLA 80–85 Shore D 2–10% Low Low High; 60–100 mm/s
    BigRep PETG 75–80 Shore D 15–25% Moderate Moderate Medium; 40–80 mm/s
    BigRep PA6/66 ~80 Shore D 20–50% conditioned Good Very high Medium

    Compared with PLA, TPU provides higher impact tolerance and lower flexural modulus. Compared with PETG, TPU has improved abrasion and tear resistance but lower heat deflection and lower print speed. Compared with PA6/66, TPU offers higher elongation and better room-temperature impact absorption but cannot match continuous-use temperature or creep resistance. These differences make direct substitution valid only when the function is compliance, impact isolation, or wear contact rather than structural rigidity. PLA tensile modulus is typically 3.0–3.5 GPa under ISO 527-2; TPU tensile modulus is typically below 50 MPa, which changes part deflection behavior by orders of magnitude.

    When BigRep TPU Replaces Rigid PLA or PETG in Impact-Prone Assemblies

    In assembly fixtures, robotic end-effector covers, cable management parts, and soft-jaw interfaces, TPU is selected when the service environment includes repeated bending, impact, or abrasive contact. Under ISO 527-2, PLA typically exhibits tensile elongation of 2–10% and PETG 15–25%, whereas BigRep TPU exceeds 600%. Under notched impact testing to ISO 180/A, flexible TPU frequently reports no break at 3 mm thickness, while PLA may fall below 5 kJ/m². However, the low flexural modulus of TPU, typically below 50 MPa, prevents direct substitution in structural load paths where deflection must remain small. In those locations, rigid PLA, PETG, or polyamide remains the structural member, and TPU is used as a compliant interface, bushing, or impact cover. The processing speed penalty for TPU is accepted only when the part function requires repeated deformation or abrasive contact; otherwise PETG or rigid materials are more economical for large-format production.

    Chemical resistance of TPU is generally stronger than PETG and PLA in contact with non-polar oils, aliphatic hydrocarbons, and dilute acids, but esters, ketones, chlorinated solvents, and strong polar solvents cause swelling and loss of mechanical properties. The material is not specified for continuous service above 80 °C, and heat deflection under load is below the continuous-use rating of PA6/66. Compliance documentation should be verified against the current safety data sheet and applicable REACH/RoHS declarations. No food-contact or medical certification under FDA 21 CFR or EU 10/2011 is transferred to printed parts automatically; the effect of FFF porosity, surface roughness, and post-processing on migration behavior must be evaluated for the finished article. For parts requiring hydrolysis resistance in humid service above 60% RH, sealant or coating selection must be tested because the exposed TPU surface can absorb moisture over time.

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