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Braskem FL900PP-CF Carbon Fiber Reinforced Polypropylene 3D Printing Filament

    • Название продукта: Braskem FL900PP-CF Carbon Fiber Reinforced Polypropylene 3D Printing 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 644877

    Как аккредитованный завод Braskem FL900PP-CF для 3D-печати из углеродного волокна, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    Применение Braskem FL900PP-CF углеродного волокна усиленного полипропиленовая 3D-печатная нить
    In automotive assembly plants, FL900PP-CF is printed at the point of use for short-run electric vehicle battery pack fixtures and body-in-white locating nests where glass-filled nylon plate and machined polyamide tooling have previously dominated. The fabrication route is fused filament fabrication on a heated-chamber machine fitted with a direct-drive extruder and a hardened tool steel nozzle of 0.6 mm diameter; the build plate is held at 95 °C, chamber air at 45 °C, extrusion temperature between 235 °C and 245 °C, and layer height at 0.2 mm. Production-scale additive cells have recorded corner lifting in PP-CF fixtures when edge-to-center bed temperature deviation exceeds 8 °C or when chamber temperature falls below 40 °C during multi-hour builds; the carbon fiber loading, fixed by the supplier at approximately 15 wt% to 20 wt%, reduces in-plane shrinkage anisotropy but does not eliminate Z-direction weakness. The shop-floor formulation is therefore not an extrusion compounding operation: FL900PP-CF is used at 100% as-received, and the only user-adjustable mixture-like variables are infill density and perimeter count. For fixtures requiring compression under CMM clamping, hexagonal infill at 60% and 5 perimeter shells are used; dilution with unfilled PP is prohibited because it lowers flexural modulus below the fixture design envelope. Mechanical verification is conducted on machined Type IV specimens per ASTM D638-14, flexural acceptance per ASTM D790-17, and dimensional control per ISO 2768-1 medium tolerance class. Manufacturing traceability is documented under IATF 16949:2016 clause 8.5.1 for control of production process changes. Terminal items in this segment include contour check gauges, CMM nesting fixtures, end-of-arm robot gripper jaws with internal vacuum channels, and battery module lifting slings.Processing experience on production-scale additive cells indicates that direct-drive extruders with hardened steel drive gears outlast brass gears by a factor of 3 when printing FL900PP-CF; Bowden paths with bend radii below 60 mm produce filament fracture because the carbon fiber reinforced PP compound is more brittle in the solid filament state than unfilled PP. The melt-processing window is narrow: extrusion below 230 °C increases backpressure and causes filament grinding at the hobbled pulley, while extrusion above 250 °C accelerates oxidative degradation of the polypropylene and interfacial sizing. Spools stored at relative humidity above 60% are dried at 60 °C for 4 h before use when surface condensation is visible; polypropylene does not absorb moisture as polyamide does, so extended drying is not a default operation. The fixture build orientation is selected so that CMM probe contact surfaces are printed in the XY plane; Z-normal surfaces are avoided for locating features because interlayer shear strength is the limiting property. When a fixture must carry a threaded insert, the insert hole is printed undersized and reamed, then a brass heat-set insert is installed at 200 °C to avoid matrix melting at the fiber-rich wall.

    Why Do Sulfate-Rich Process Fluids Favour PP-CF Over Glass-Filled Nylon for Sensor Housings?

    Chemical processing plants that evaluate printed sensor housings and process manifolds for acid sulfate streams use FL900PP-CF for its polypropylene continuous phase rather than for the carbon fiber itself; the fiber phase is discontinuous and does not provide continuous surface coverage. The feedstock is printed at 100% as-received, with carbon fiber loading fixed at the supplier’s compounding ratio; no downstream let-down with unfilled PP, no impact-modifier addition, and no amine-based flame retardant addition is allowed in this segment because these additives shift the crystallization window and can create interfacial voids at the fiber-matrix boundary. The production route uses fused filament fabrication on a high-temperature enclosed machine with a 0.4 mm hardened steel nozzle, print speed limited to 30 mm/s, extrusion at 240 °C, bed at 90 °C, and chamber at 45 °C. After printing, surfaces intended for immersion are sealed by hot-air welding at 280 °C with PP-based welding rod because solvent cementing is ineffective on the polypropylene surface and mechanical fastening creates leak paths. Chemical resistance is evaluated by ASTM D543-21 immersion in 10% sulfuric acid at 23 °C and 50 °C for 7-day exposure, with tensile retention measured on Type IV specimens under ASTM D638-14 and dimensional change recorded on 50 mm square plaques. Regulatory compliance for European chemical plant use is verified against REACH Regulation (EC) No 1907/2006 for substance registration and RoHS Directive 2011/65/EU for restricted substances. Terminal parts produced in this segment include pH electrode holders, flow-through sensor glands, weir plates, chemical dosing lance guides, and flange-mounted instrument housings in lot sizes below 50 units.Field observations from chemical plants show that unreinforced PP printed manifolds creep at continuous operating temperatures above 70 °C; the carbon fiber phase raises stiffness but does not extend the upper service temperature beyond the PP matrix. The carbon fiber also reduces cold flow, which is critical for flange sealing surfaces subjected to bolted loads. However, if the part is used with 10% sodium hypochlorite or strong oxidizing acids at elevated temperature, the polypropylene matrix oxidizes and the fiber-matrix interface fails; ASTM D543-21 immersion does not predict long-term oxidative attack from chlorinated solutions, so service compatibility must be confirmed in a pilot exposure cell. The processing operation is not equivalent to injection molding: weld lines formed by filament rasters are mechanical weak planes, and complete sealing against low-viscosity process fluids requires hot-air welding of all exterior surfaces, not simply increasing extrusion multiplier. Published data for this specific manifold configuration is limited; incoming material is therefore sampled and printed as a 100 mm test coupon before production manifolds are committed.
    Segment-specific FFF processing limits for FL900PP-CF
    Application segmentNozzle diameterExtrusion temperatureBuild plate temperatureCritical process threshold
    Automotive fixtures0.6 mm235–245 °C95 °CPlate edge-to-center ΔT > 8 °C; chamber < 40 °C
    Chemical-process housings0.4 mm240 °C90 °CPrint speed ≤ 30 mm/s; hot-air weld at 280 °C
    External orthoses0.6 mm230 °C100 °CLayer ≤ 0.15 mm; chamber 45 °C
    Vacuum forming tools0.8 mm240 °C95 °C100% infill; 6 perimeter shells
    UAV prototype brackets0.4 mm235 °C95 °C35% cubic infill; 4 outer shells
    Protective sports shells0.6 mm230 °C100 °C6 solid top/bottom layers; 20% gyroid flex zones
    Because skin-contact orthoses demand low density, repeated flexure, and resistance to perspiration, FL900PP-CF has been introduced into external orthotic and prosthetic devices, not into implantable components. The material is processed at 100% virgin feedstock with carbon fiber loading fixed by the material producer within the 15 wt% to 20 wt% range; re-extruded shop regrind is restricted to 5 wt% or less because carbon fiber length degradation after regrind reduces ISO 179-1:2010 Charpy notched impact toughness and creates fiber-rich agglomerates that score the nozzle. Printing is performed on an enclosed fused filament fabrication machine with a 0.6 mm hardened nozzle, extrusion temperature 230 °C, build plate 100 °C, chamber air 45 °C, and layer height 0.15 mm to produce smooth skin-facing surfaces; all support structures are removed by hand under magnification. Biological evaluation is limited to external device requirements: ISO 10993-5:2009 for cytotoxicity, ISO 10993-10:2010 for skin sensitization and irritation, and ISO 22523:2006 for external limb prosthesis and orthosis structural testing. Terminal products include ankle-foot orthosis anterior shells, custom toe-off plates, prosthetic check sockets, and protective socket covers; any final device intended for continuous skin contact must undergo a cleaning validation because carbon fiber ends can act as mechanical irritants if not sealed.

    When Vacuum Forming Tools Approach 120 °C Surface Temperatures

    When vacuum forming tools constructed from FL900PP-CF approach 120 °C surface contact temperatures, the operational boundary is set by the polypropylene matrix rather than by carbon fiber stiffness, and the tooling is limited to low-temperature sheet materials such as polypropylene and HDPE packaging trays. The printed tool substrate uses 100% infill, carbon fiber content fixed in the feedstock at approximately 15 wt% to 20 wt%, and 6 perimeter shells to prevent vacuum-channel leakage through side walls; no additional glass or mineral filler is compounded at the toolmaking site. Fabrication progresses with a 0.8 mm hardened nozzle at 240 °C and a 95 °C bed, followed by backfilling the non-working side with aluminum-filled epoxy to increase tooling stiffness and thermal sink capacity. Vacuum holes are drilled after printing rather than during slicing because fiber tear-out at hole edges reduces surface seal life. Thermal validation is referenced to ASTM D648-18 deflection temperature under load at 0.455 MPa; dimensional acceptance of the tooling surface follows ISO 2768-1 class m. Terminal items include low-volume vacuum form molds for polypropylene packaging trays, sheet-stock drill jigs, and foundry patterns for low-melt wax investment casting shells.For unmanned aerial vehicle prototype brackets where radiofrequency performance is not critical, FL900PP-CF is printed without dilution at 100% feedstock and with carbon fiber loading fixed at the compounder’s ratio between 15 wt% and 20 wt%; the user-adjustable formulation variables are limited to 35% cubic infill and 4 outer shells. Higher infill percentages do not increase stiffness linearly in printed brackets because fiber orientation follows the raster path, and solid infill can initiate delamination at directional changes. The production route uses fused filament fabrication with a 0.4 mm hardened steel nozzle, extrusion at 235 °C, bed at 95 °C, and chamber at 45 °C; holes are reamed to final diameter after printing rather than dry-drilled to prevent fiber bundle delamination. Drop-weight impact damage tolerance is tested per ASTM D7136/D7136M-20, and electrical equipment compliance is verified under RoHS Directive 2011/65/EU. The carbon fiber phase attenuates radiofrequency signals, so this material is not used for antenna radomes or GPS shielding compartments. Terminal parts include camera gimbal mounting plates, motor nacelle brackets, electronic speed controller housings, and non-safety flight-test fixtures.When a protective shell must resist perspiration and repeated flex, FL900PP-CF is printed as a structural core that is subsequently covered with polyurethane foam and textile layers. The material is used at 100% as-supplied feedstock, with carbon fiber loading fixed at the supplier’s specified ratio in the 15 wt% to 20 wt% range; the fabricator does not blend in unfilled PP. For regions requiring lower flexural stiffness, wall thickness is reduced locally and infill is set to 20% gyroid rather than adding elastomer, which has caused extrusion pressure spikes and nozzle clogging in hardened steel hot ends. Printing uses a 0.6 mm hardened nozzle at 230 °C, 100 °C bed temperature, and 0.2 mm layer height; solid top and bottom layers are set at 6 to prevent crack propagation from repeated flex cycles. Impact testing is carried out under EN 1621-1:2012 for motorcyclist limb joint impact protectors where applicable; otherwise, tensile and flexural values are verified under ASTM D638-14 and ASTM D790-17 before deployment. Terminal products include custom shin guards, knee shields, shoulder protectors, and motorcyclist limb joint impact protectors. Published data for full structural certification of printed PP-CF protective shells is limited; each shell configuration requires destructive batch testing.
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    Конкурентоспособные Braskem FL900PP-CF Углеродоволоконные армированные полипропиленовые 3D-печатные нити цены, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

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    Более подробное введение

    Braskem FL900PP-CF is a carbon-fiber reinforced polypropylene compound delivered as a thermoplastic filament for fused filament fabrication. The designation places the material within Braskem’s polypropylene portfolio, with the CF suffix indicating chopped carbon-fiber reinforcement and the FL900 stem distinguishing the formulation from unfilled polypropylene grades and from glass-filled variants. The product is released in nominal 1.75 mm and 2.85 mm filament diameters. Roundness and diameter variance are typically held near ±0.05 mm for the smaller diameter and ±0.10 mm for the larger diameter. Spool formats include 1 kg and 2.5 kg. The extrudate is dark grey to black because of the carbon fiber content. The filler is short fiber rather than continuous fiber; therefore, the printed part properties are direction-dependent and do not replicate continuous-fiber laminate performance.

    The base polymer is a low-density olefinic system. Supplier-published density data for FL900PP-CF, when available, cluster near 0.97 g/cm³ under ISO 1183-1:2019. Melt-flow characterization is performed under a load of 2.16 kg at 230 °C using ISO 1133-1:2022. Lot-to-lot viscosity and filler loading are not fully controlled by the trade name; the certificate of analysis and the supplier datasheet define the relevant values. Published data for this specific configuration are limited, and print-process qualification should not rely solely on generic short-carbon-fiber polypropylene datasets.

    What the FL900PP-CF Designation Encodes for Storage and Lot Acceptance

    Incoming material acceptance for Braskem FL900PP-CF should distinguish the vendor resin specification from the final printed-part performance. The filament diameter, spool mass, moisture exposure, and visual dispersion of carbon fiber are powder-bed-independent controls. The material should be inspected for diameter stability under ISO 1101-style roundness checks, although filament manufacturers commonly report dimensional checks using the test method defined in their quality plan. Lot acceptance requires confirmation that the melt mass-flow rate falls within the supplier’s release window, measured at 230 °C with 2.16 kg mass under ISO 1133-1:2022. Density verification is performed by ISO 1183-1:2019. Mechanical test data on molded or extruded specimens are not direct substitutes for printed-part data because the material undergoes additional shear and reheating in the hot end.

    A drying step is not universally mandatory for FL900PP-CF because the polypropylene matrix has low equilibrium moisture uptake. However, carbon-fiber sizing and spool-side condensation can introduce interfacial moisture. When storage humidity exceeds 60 % RH or when visible condensation forms on the spool flange, pre-drying in a forced-air dryer at 80 °C for 4 h to 8 h is required. Drying above 100 °C is not recommended because spool components may soften and the filament may lose dimensional control. Entrained moisture in carbon-fiber-reinforced polypropylene usually appears as surface voids and reduced Z-axis interlayer fusion rather than as steam-whisking or hydrolytic decomposition, unlike polyamide-carbon fiber filaments.

    Nozzle Wear, Extrusion Speed, and Fiber Breakage in Hardened Toolpaths

    The extrusion window for FL900PP-CF is bounded by the melt viscosity of polypropylene and the oxidative stability of the carbon-fiber sizing. A starting setpoint of 240 °C is used on most heated blocks, with an acceptable range from 230 °C to 260 °C depending on thermistor calibration and print speed. The lower bound is controlled by melt viscosity; processing below 230 °C can produce skipped extruder steps and fiber agglomeration at the nozzle entrance. The upper bound is controlled by polypropylene degradation and carbon-fiber surface oxidation. The material should be printed through a hardened steel nozzle or another fiber-rated nozzle body. Brass or copper nozzle bodies wear rapidly with carbon-filled filament; production-shop erosion logs show measurable bore expansion after less than 0.25 kg of filled filament processed through unhardened brass. Nozzle orifice diameters below 0.4 mm are not recommended because fiber bundles can bridge the nozzle entry and create intermittent extrusion. A direct-drive extruder with a filament path L/D ratio of 24:1 or greater is preferred, but a properly constrained Bowden path can be used when retraction distance and retraction speed are minimized. Excess retraction above 2 mm can pull hot fiber-filled polymer into the cold zone and trigger plugging. Extruder tension should be set low enough to avoid fiber crushing, because crushed fiber bundles can alter the melt viscosity at the nozzle and increase the probability of clogging.

    Polypropylene has low surface energy, and the addition of carbon fiber does not solve first-layer adhesion. Untreated glass, smooth PEI, and FR4 surfaces usually fail to hold a large polypropylene part. The bed surface should be a polypropylene-specific sheet, a co-extruded PP build plate, or a glass plate treated with a thin polypropylene-compatible primer. In production settings, a bed temperature of 90 °C to 100 °C is common. On PP-compatible surfaces, auxiliary adhesive may be avoided for small parts, but high-aspect ribs and long rectangular profiles still benefit from a polyolefin primer or a polypropylene slurry. The first layer should be printed at reduced speed, typically below 30 mm/s, with a first-layer height of no more than 60 % of the nozzle diameter.

    When Chamber Temperature Falls Below 70 °C

    Dimensional stability in FL900PP-CF is governed by polypropylene recrystallization and by the thermal gradient across the part. The crystallization peak of polypropylene is commonly observed near 115 °C to 125 °C by differential scanning calorimetry under ISO 11357-3. If the build chamber remains below 70 °C, the upper layers can cool below the crystallization range while the lower layers remain near the bed temperature, producing residual stress and corner lift. Closed-chamber operation at 70 °C to 80 °C is therefore specified for parts with long dimension greater than 150 mm. On open-frame printers, small specimens with low length-to-thickness ratios can be produced, but warpage becomes process-critical on stiffening ribs, long walls, and large flat panels. When chamber temperature cannot be raised, draft shields, reduced part cooling fan speed, and a lower printing speed are used as limited substitutes. Published data for this specific configuration are limited for open-chamber build success across machine platforms, and process qualification prints are required before production use.

    Mechanical performance of printed FL900PP-CF must be separated into XY-axis and Z-axis properties. Tensile data measured according to ISO 527-2:2012 on machined specimens printed flat typically appear in the supplier datasheet or in third-party comparative studies. For short-carbon-fiber polypropylene compounds of similar filler content, the ultimate tensile strength in the XY plane often falls in the 30 MPa to 40 MPa interval. The tensile modulus for comparable material is generally above 2.5 GPa. Z-axis tensile strength will be lower than XY strength by roughly 30 % to 50 % because interlayer adhesion is controlled by polymer fusion, not by continuous fiber bridging. Flexural modulus measured under ISO 178:2019 remains in the 2.5 GPa to 3.5 GPa range for many printed short-fiber polypropylene compounds, but the value depends strongly on raster orientation, infill density, and porosity. Impact resistance is lower than unfilled polypropylene because the carbon fibers act as stress concentrators; impact testing should be conducted under ISO 179-1 or ASTM D256 with notched printed specimens. The material does not exhibit a room-temperature brittle-to-ductile transition comparable to some engineering thermoplastics, but low-temperature impact data should be verified for end-use conditions.

    For thermal deformation and dimensional stability, heat deflection temperature is evaluated under ISO 75-2:2013 or ASTM D648-18. Carbon fiber reinforcement raises the heat deflection temperature of polypropylene but does not convert the matrix into a high-temperature polymer. Values in the 110 °C to 130 °C range under 0.45 MPa are commonly reported for short-carbon-fiber polypropylene compounds; the exact FL900PP-CF value must be taken from the current supplier datasheet or a certified lot test. Vicat softening temperature is measured under ISO 306:2013. The material should be considered a low-temperature thermoplastic relative to polycarbonate-carbon fiber or polyamide-carbon fiber grades.

    For incoming material acceptance, the following standard designations are used to verify density, melt-flow, thermal-deformation, and mechanical-property conformance:

    Property or characteristicApplicable standardRole in lot acceptance
    Density of the filament or molded plaqueISO 1183-1:2019Confirms base polymer and filler concentration within release limits
    Melt mass-flow rateISO 1133-1:2022 at 230 °C, 2.16 kgVerifies flow behavior for extrusion and lot-to-lot consistency
    Tensile propertiesISO 527-2:2012 or ASTM D638-14Establishes XY or molded-specimen strength and modulus
    Flexural propertiesISO 178:2019 or ASTM D790-17Relevant for thin-wall and ribbed part design
    Heat deflection temperatureISO 75-2:2013 or ASTM D648-18Defines short-term thermal resistance under load
    Impact resistanceISO 179-1 or ASTM D256Indicates notch sensitivity due to carbon fiber addition
    Crystalline behaviorISO 11357-3Supports chamber and cooling profile development

    When compared with unfilled Braskem polypropylene filament, FL900PP-CF has higher tensile modulus, higher flexural modulus, lower elongation at break, lower impact resistance, and reduced thermal expansion. The carbon fiber also reduces warpage relative to unfilled polypropylene because the filler decreases the apparent coefficient of thermal expansion and increases thermal conductivity through the printed track. However, the filled grade is significantly more abrasive and cannot be printed through brass nozzles. When compared with polyamide-carbon fiber filaments, FL900PP-CF has lower moisture absorption and better resistance to many aqueous chemical environments, but it generally has lower continuous-use temperature, lower tensile strength, and lower Z-axis interlaminar strength. Unlike polyamide-carbon fiber, the material does not require sealed dry storage as a primary processing condition. When compared with PC-CF or PETG-CF, the polypropylene base provides lower density and generally better resistance to hydrocarbon and acid exposure, but it requires specialized bed chemistry and a high-temperature bed surface.

    Chemical resistance is one of the main operational boundaries of the product. The polypropylene matrix resists many dilute acids, bases, and aqueous salt solutions at room temperature, but strong oxidizing acids, chlorinated solvents, and some aromatic hydrocarbons can swell or degrade the surface. The carbon fiber phase does not provide chemical resistance; it can be attacked under strongly oxidizing environments. The material is not automatically FDA-compliant for food-contact applications because the carbon fiber additive and the printing process introduce surface and migration variables outside a standard molded-polypropylene assessment. If regulatory compliance is required, the supplier documentation should be checked for REACH and RoHS Directive 2011/65/EU status, and the end-use article should be evaluated under the applicable food-contact or medical-device standard for the target region.

    The material is not a direct substitute for machined aluminum, continuous carbon-fiber laminates, or high-temperature amorphous thermoplastics. FL900PP-CF is suitable for functional prototypes, jigs, fixtures, and low-temperature end-use components where the combination of low density, chemical resistance, and moderate stiffness is more important than ultimate strength. It is not recommended for load-bearing parts if the Z-axis tensile requirement exceeds 15 MPa under ISO 527-2:2012, nor for parts requiring repeated steam sterilization above 121 °C, because the polypropylene matrix enters the softening and crystallization range under those conditions. For any production application, printed-part validation on the specific equipment is required; supplier datasheet values describe the raw material or a reference molded specimen and do not guarantee printed-part performance across all toolpaths, chamber geometries, and fleet machines.

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