| Код ТН ВЭД | 525902 |
Как аккредитованный завод Ensinger TECAFIL PVDF натурального - 1,75 мм - нити поливинилиден фторида, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
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Ensinger TECAFIL PVDF natural 1.75 mm filament is processed into annular sealing elements for low-pressure hydrochloric acid and demineralized water transfer lines. Incoming spool diameter is checked with a laser micrometer; ovality outside 1.75 mm ± 0.05 mm is rejected because it causes extruder slippage. The supplier-documented density is 1.78 g/cm³ per ISO 1183-1, tensile stress at yield is 54 MPa per ISO 527-2, melting peak is 175 °C per ISO 11357-3, and Shore D hardness is 78. Incoming spools are dried at 80 °C for 4 h until residual moisture is below 0.02 % by Karl Fischer analysis per ISO 15512. Extrusion through a 0.4 mm hardened steel nozzle at 240–260 °C with a direct-drive extruder and heated chamber at 80–100 °C is used to reduce warpage. The build plate is held at 110–120 °C; cooling fans are disabled for the first 20 layers, then set to 30 % after layer 20. A 0.15 mm layer height, 100 % rectilinear infill, and 6 perimeter shells maintain sealing land flatness within 0.2 mm across a 100 mm diameter face. After build, the sealing rings are annealed at 130 °C for 2 h before the contact face is machined. In flanged joints with DN50 PVDF-lined backing flanges, bolt preload is limited to 8–12 N·m because higher torque produces creep indentation within 100 h. Chemical compatibility is qualified by immersion testing per ISO 175:2010 and stain testing per ASTM D543-20; continuous service temperature in air is 150 °C, but acid service under sustained hoop stress is derated to 120 °C. Fuming sulfuric acid, molten alkali metals, and acetone are outside the operating envelope.
In chromium plating and anodizing lines, fused-filament-built rack bodies in TECAFIL PVDF natural are exposed to 250 g/L chromic acid with 2.5 g/L sulfuric acid at 55 °C. The natural grade is specified because carbon black filled PVDF would introduce conductive particulate into the bath. Pre-extrusion drying at 80 °C for 4 h is mandatory; moisture above 0.02 % by weight decomposes at nozzle temperatures above 230 °C and creates internal microvoids that retain bath chemistry. Rack bodies with 15 mm wall thickness survive 3,000 h immersion when annealed at 135 °C for 2 h; sharp corners below 1.0 mm radius exhibit stress microcracking if annealing is omitted. Drilling and tapping of PVDF are performed at spindle speeds below 200 RPM without coolant because water-based cutting fluids can leave residual surface contamination that requires additional cleaning. The creep modulus at 60 °C is in the range 600–900 MPa, limiting unsupported horizontal spans to 200 mm on 20 mm × 30 mm rectangular sections. Post-process machining includes reaming to H7 tolerance and mechanical deburring; flame deburring is not permitted because PVDF liberates hydrogen fluoride when overheated above 300 °C.
| Chemical environment | Concentration | Temperature | Rating | Test reference |
|---|---|---|---|---|
| Hydrochloric acid | 37 % | 23 °C | Resistant | ISO 175:2010 |
| Hydrochloric acid | 37 % | 60 °C | Limited resistance | ISO 175:2010 |
| Sulfuric acid | 30 % | 23 °C | Resistant | ISO 175:2010 |
| Sodium hydroxide | 50 % | 23 °C | Resistant | ISO 175:2010 |
| Sodium hydroxide | 50 % | 80 °C | Not recommended under stress | ISO 175:2010 |
| Sodium hypochlorite | 10 % | 23 °C | Resistant | ASTM D543-20 |
| LiPF₆ in EC:DMC | 1 M | 45 °C | Limited for continuous immersion | ASTM D543-20 |
| Acetone | 100 % | 23 °C | Not recommended | ISO 175:2010 |
High-purity water and chemical distribution components in semiconductor wet benches require low extractables and surface roughness below Ra 0.8 μm per ISO 21920-2. In fused-filament PVDF builds, the Z-direction interlayer boundary is the primary contaminant attraction site because microvoids and spherulite-size differences at layer interfaces retain rinse water. A heated chamber set at 80–100 °C promotes interlayer diffusion; published data for Z-direction tensile strength of printed PVDF is limited, so lot-specific verification per ISO 527-2 is required. Printed manifolds are annealed at 130–135 °C for 2 h to increase crystallinity and stabilize bore roundness. Internal flow paths are machined with a single-flute end mill at 6,000 RPM and 0.05 mm chip load to avoid melted burrs. Extraction testing per SEMI F57 at 85 °C in ultrapure water for 7 days is used to establish total organic carbon and cation release; published data for this specific configuration is limited, so acceptance limits are set by the end user. Hydrostatic qualification of 20 mm OD × 2.5 mm wall manifolds is performed to 4.0 bar at 20 °C, derated to 2.5 bar at 80 °C. The unfilled natural grade contains no pigments, carbon black, or metallic additives that could leach into ozonated ultrapure water.
Installed in chlor-alkali cell rooms and flue gas desulfurization ducts, printed PVDF clamps and junction box lids are exposed to wet chlorine, sodium hydroxide mist, and sulfurous acid condensate. The material has a limiting oxygen index of 44 % and achieves UL 94 V-0 at 3.0 mm without antimony or brominated flame retardants. Volume resistivity remains above 10¹⁴ Ω·cm after 48 h at 95 % RH per ASTM D257 / IEC 62631-3-1. In SO₂ scrubber ducts at 30–40 °C, clamp bodies with 60 % rectilinear infill show no surface tack after 12 months exposure, but stainless steel threaded inserts are isolated with PVDF collars to prevent crevice acid concentration at the metal-polymer interface. Pull-out strength for heat-stake M4 brass inserts in 6 mm wall PVDF is typically 350–500 N; cable loads are limited to 5 kg per clamp with a safety factor of 3. Dimensional inspection after exposure records hole elongation; an increase above 0.15 mm indicates creep and requires replacement. The PVDF parts are not recommended for continuous contact with butyl acetate, methyl ethyl ketone, or acetone. The natural PVDF homopolymer is covered by supplier declarations for RoHS 2011/65/EU and REACH SVHC compliance.
For pouch cell electrolyte filling fixtures, the natural PVDF filament is evaluated after splash exposure to 1 M lithium hexafluorophosphate in ethylene carbonate/dimethyl carbonate at 20–40 °C. PVDF is selected because its semicrystalline fluoropolymer structure does not dissolve in carbonate solvents, but continuous immersion at 45 °C can produce mass uptake above 3 % after 72 h; qualification is run under ASTM D543-20 for splash, wipe, and immersion conditions separately. The natural color is specified because carbon-black filled grades introduce conductive particulate into dry-room assembly areas. Fixture bodies are printed with 100 % infill and annealed at 130 °C for 2 h before use. Tapped holes in PVDF are replaced by through-holes and PVDF shoulder washers because tapped holes can strip under repeated torque. The fixtures tolerate short-term contact with dimethyl carbonate but are not exposed to N-methyl-2-pyrrolidone because NMP swells PVDF and initiates microcracking. After exposure, surfaces are inspected for whitening, which is an early indicator of solvent-induced crystallization change preceding crack formation.
Outdoor weir plates and chemical dosing lance holders in sodium hypochlorite and ferric chloride dosing zones are printed from PVDF because the material has no plasticizer that can migrate and no paint film that can delaminate. Accelerated weathering is conducted per ISO 4892-2 with a xenon-arc source at 0.51 W/m² at 340 nm and black-standard temperature 65 °C for 2,000 h. Unfilled PVDF typically retains tensile stress at yield above 45 MPa after UV exposure when stabilization is adequate; published data for this specific filament grade under long-term outdoor service is limited, so site-specific coupons are recommended. The natural color permits visual detection of iron oxide staining from upstream steel piping. Weir plates above 12 mm thickness are printed with 0.20 mm layer height to reduce build time, then annealed at 130 °C for 2 h before flatness inspection. Mounting holes are drilled oversize by 0.3 mm to accommodate thermal expansion, because the coefficient of linear thermal expansion is approximately 120 × 10⁻⁶ K⁻¹. Slotted mounting patterns rather than rigid bolt circles are used to prevent plate bowing under solar heating.
Printed PVDF fume hood damper shafts and bearing cups in perchloric acid exhaust systems operate at 30–50 °C with acid condensation. The material is used because polypropylene loses stiffness at elevated acid temperatures and stainless steel is corroded by chloride-containing acid vapor. Drying at 80 °C for 4 h is required before extrusion; the filament is printed through a 0.4 mm hardened steel nozzle at 250–260 °C. Nozzle temperatures above 300 °C release hydrogen fluoride and damage hot-end components. PVDF bearings run against PTFE sleeves without external lubrication; the limiting PV value is approximately 0.05 MPa·m/s for continuous dry operation, so shaft rotational speed is kept below 100 RPM for 20 mm diameter shafts. Support spacing is set at 300 mm to limit radial deflection below 0.25 mm. Before cleanroom installation, machined surfaces are extracted with methanol for 24 h to remove low molecular weight oligomers. Out-of-roundness on a 20 mm bearing seat is checked after annealing; deviation greater than 0.05 mm is rejected.
In marine oily bilge water separators, printed PVDF couplings are exposed to diesel oil, seawater, and light fuel oil at 20–40 °C. The material is resistant to aliphatic hydrocarbons and has water absorption below 0.04 % per ISO 62. However, PVDF has limited resistance to aromatic hydrocarbons and ketones, so bilge water containing high toluene or xylene from solvent spills requires compatibility testing. Couplings are printed with 100 % infill and annealed before thread cutting. Pipe threads are cut with a manual die to prevent melt run and to avoid local overheating. Continuous pressure rating is limited to 3.0 bar at 23 °C for 1-inch NPT-threaded PVDF couplings, derated to 1.5 bar at 60 °C. The natural color is specified so that no carbon black can be released into oil content monitors.
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For fused filament fabrication of fluoropolymer components in low-volume and prototype chemical-service environments, Ensinger TECAFIL PVDF natural 1,75 mm filament is a polyvinylidene fluoride feedstock that avoids the process controls of powder-bed fluoropolymer sintering and the material losses of machining PVDF stock shapes. The nominal 1,75 mm diameter is intended for direct-drive and Bowden extruders with tight filament-path tolerances, and the diameter tolerance should be confirmed against the producer’s certificate of analysis because a shift of 0,05 mm is sufficient to alter extruder steps per millimetre and bead width on open-loop machines. Typical published values for unfilled PVDF homopolymer include density 1,78 g/cm³ (ISO 1183-1), a melting peak near 171°C (ISO 11357-3), tensile stress at yield around 50 MPa (ISO 527-2), and flexural modulus close to 2000 MPa (ISO 178). Product-specific data from the current Ensinger datasheet should take precedence over generic PVDF literature values because molecular weight and comonomer content shift viscosity and crystallinity; published data for this exact spool configuration is limited beyond the producer’s product page. The natural colour omits pigment dispersion, leaving the melt viscosity and extractables profile closer to the base resin, but natural PVDF can develop surface whitening after prolonged ultraviolet exposure without a proportional loss in tensile strength.
Substitution of a commodity filament by this PVDF feedstock is governed by chemical resistance and flammability requirements rather than stiffness or print speed. PVDF homopolymer typically shows a limiting oxygen index near 44% (ASTM D2863) and can achieve V-0 performance at 3 mm under UL 94, while unfilled ABS and PLA are normally HB-rated. The associated process constraint is a rapid crystallization and higher solidification shrinkage that produce warped corners and interlayer delamination on unheated open-frame machines. A heated bed at 90–120°C and an enclosure air temperature of 50–80°C are practical screening conditions for parts with Z-height above 10 mm; nozzle setpoints between 220°C and 250°C are common, with the exact operating point determined by hot-end thermal calibration. Part-cooling fans are limited to a low duty cycle until the crystalline skin has formed, otherwise the surface freezes before the weld zone has coalesced with the previous layer. In production practice, weak interlayer fusion appears as low Z-direction tensile values relative to XY values; the failure is controlled by polymer diffusion and chain entanglement at the weld interface rather than by moisture alone.
At melt temperatures above 260°C, polyvinylidene fluoride degradation accelerates, releasing hydrogen fluoride and creating yellow or black discolouration. For a 1,75 mm feedstock, hot-end selection must avoid stagnation zones and low-flow regions where melt temperature can locally exceed the setpoint. All-metal hot ends with polished heat breaks are preferred over PTFE-lined designs because the shorter thermal transition reduces the volume of polymer held at intermediate temperatures. Melt-temperature verification with a fine-wire thermocouple at the nozzle is recommended because heater-block thermistor placement can underreport actual polymer temperature by 5–15°C. On the filament-production side, compounding on a 25 mm twin-screw extruder with a 36:1 L/D ratio is representative for fluoropolymer processing, but the TECAFIL product is supplied as finished monofilament rather than pellets. The barrel profile for PVDF is normally kept below 250°C in the metering zone, and the lower practical window is set by the crystallization temperature near 135°C, below which the melt thickens into a high-viscosity semicrystalline gel that causes underextrusion and stepper stalls. Reported production-scale failure modes include thermal degradation at barrel-wall stagnation points when extruder output falls below 20% of maximum screw speed, and die-lip buildup from low-molecular-weight fractions generated by excessive shear. Those defects become black specks in the filament and later translate into nozzle clogging and weak weld points in printed parts. Technicians monitor melt pressure at the breaker plate and set alert limits at 10% above the clean-die baseline; a rising pressure trend at stable output indicates die-lip fouling, while a falling trend suggests feed slippage or degradation.
Moisture absorption is below 0,04% after 24 h at 23°C (ASTM D570), so PVDF does not require the aggressive drying used for polyamides. Surface moisture, however, can produce steam voids and spurting at the nozzle. Pre-drying at 80°C for 4–8 h in a desiccant dryer with a dew point below -30°C is appropriate after storage in uncontrolled humidity above 60% relative humidity. Storage in sealed containers with desiccant is sufficient for routine handling; dryer temperatures above 90°C risk spool deformation.
After deposition, the cooling path determines crystallinity and residual stress. The critical thermal window lies between 140°C and 90°C. Fast cooling produces fine spherulites and lower Z-axis ductility; slow cooling raises crystallinity and chemical resistance but increases shrinkage and warpage. If an immersion application requires low residual stress, an annealing cycle at 140°C for 2 h can be assessed, but dimensional change should be quantified on a reference coupon because annealing alters part geometry. Extruder force is another practical constraint: PVDF has a higher melt viscosity than PLA at 230°C, and the semicrystalline transition creates a sharp viscosity increase near solidification. Direct-drive extruders with a hardened steel drive gear and a constrained filament path reduce surface grinding. Bowden systems may require reduced retraction length and speed to avoid buckling; retraction distances above 2 mm in a Bowden tube can pull molten polymer into the cold zone and cause plugging. Short, rapid retractions with a wipe move perform better, but the final setting is hot-end specific.
Polyvinylidene fluoride withstands mineral acids, saline solutions, and many aliphatic hydrocarbons at ambient and moderately elevated temperatures. It is not appropriate for extended contact with strongly polar solvents such as acetone, methyl ethyl ketone, or N-methyl-2-pyrrolidone, which can swell or dissolve the polymer. Hot concentrated sulfuric acid, hot concentrated alkaline solutions, and primary amines attack the chain and can produce embrittlement or mass loss; exposure above pH 10 at temperatures above 60°C requires immersion testing under load, not extrapolation from room-temperature coupons. Continuous service under mechanical load is typically limited to 140°C for unfilled PVDF, with creep modulus declining rapidly above that threshold. These boundaries make the filament relevant for wet-bench components, chemical process equipment, pump and valve internals, filtration prototypes, and inspection fixtures where ABS, PLA, PMMA, and PETG fail by hydrolysis, stress cracking, or solvent crazing.
In high-purity fluid handling, the absence of pigment and the fluoropolymer surface improve extractables consistency compared with commodity filaments, but FFF parts are porous unless sealed. Layer-line interfaces and microvoids prevent printed PVDF from acting as a pressure boundary, and leakage paths are commonly observed at 0,2–0,4 mm layer-height interfaces before post-treatment. Vapour polishing or thermal sealing reduces microporosity but can introduce dimensional variation exceeding 0,5% on complex geometries. Printed PVDF is therefore used as brackets, clips, wetted guards, jigs, inspection fixtures, and non-pressurized fluid-contact prototypes; pressure-retaining components should be machined from PVDF stock or produced by moulding.
PVDF differs from ABS and PLA in outdoor exposure because the carbon-fluorine bond resists ultraviolet abstraction; ABS loses toughness through butadiene-phase oxidation, and PLA undergoes hydrolysis and molecular weight reduction. The limiting oxygen index near 44% (ASTM D2863) and V-0 classification under UL 94 support use as small electrical and appliance enclosure parts where low smoke and restricted flame propagation are required. Compliance depends on the complete part geometry and thickness, not on the filament alone.
Qualification for OEM use requires documentary verification of the polymer’s regulatory status in the intended application. The matrix below lists the reference framework and typical scope for unfilled PVDF homopolymer; a product-specific declaration from the filament producer remains mandatory because additives and processing aids can alter extractables even when the base resin is compliant.
| Framework | Scope | Applicable designation |
|---|---|---|
| Food-contact resin guidance | Polyvinylidene fluoride resins for repeat-use food-contact articles | 21 CFR 177.2510 |
| EU plastic food-contact materials | Overall migration and specific migration limits for food-contact plastics | EU Regulation 10/2011 |
| Restriction of hazardous substances | Electrical and electronic equipment | RoHS Directive 2011/65/EU |
| Chemical registration and SVHC information | European market supply | REACH Regulation 1907/2006 |
| Flammability classification | Enclosure and insulator components | UL 94 |
The following generic literature values establish the departure from commodity filaments. They are not design allowables and should not replace product-specific datasheet values.
| Property | PVDF | ABS | PLA | Test method |
|---|---|---|---|---|
| Density | 1,78 g/cm³ | 1,04 g/cm³ | 1,24 g/cm³ | ISO 1183-1 |
| Tensile stress at yield | 50 MPa | 40 MPa | 60 MPa | ISO 527-2 |
| Flexural modulus | 2000 MPa | 2200 MPa | 3500 MPa | ISO 178 |
| Heat deflection temperature at 1,8 MPa | 110°C | 95°C | 55°C | ASTM D648 |
| Water absorption after 24 h at 23°C | 0,03–0,04% | 0,2–0,4% | 0,5% | ASTM D570 |
| Flammability classification | V-0 | HB | HB | UL 94 |
For equipment configured for 2,85 mm filament, this 1,75 mm PVDF format reduces feed force and improves retraction response in direct-drive heads but requires recalculation of extrusion multipliers and retraction distances. A smaller cross-section also changes the melt volume per millimetre and can make nozzle pressure more responsive to extruder acceleration. The 1,75 mm diameter is selected when the existing printer hardware cannot manage the feed force of a larger fluoropolymer filament; users with long Bowden tubes should verify drive-gear engagement and filament ovality before committing to a production run.