| Код ТН ВЭД | 212120 |
Как аккредитованный завод Evonik VESTAMID® LX9043 NC Nylon 12, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
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| Хранение |
| Application | Drying equipment | Temperature | Time | Target residual moisture | Dew point | Reference method |
|---|---|---|---|---|---|---|
| Automotive fuel vapor line | Desiccant dryer | 85 °C | 4–6 h | <0.05 wt% | −40 °C | ISO 15512 |
| Air brake coil | Desiccant dryer | 80 °C | 4 h | <0.10 wt% | −40 °C | ISO 15512 |
| Riser pressure sheath | Vacuum dryer | 90 °C | 4–6 h | <0.03 wt% | −50 °C | ISO 15512 |
| Catheter shaft | Dry-air oven | 80 °C | 4 h | <0.05 wt% | −40 °C | ISO 15512 |
| Pneumatic fitting | Desiccant dryer | 80 °C | 4 h | <0.10 wt% | −40 °C | ISO 15512 |
| Fiber optic jacket | Desiccant dryer | 80 °C | 3–4 h | <0.08 wt% | −40 °C | ISO 15512 |
| Standard | Scope | Test or method | Key pass criterion |
|---|---|---|---|
| SAE J2260 | Multilayer nonmetallic fuel system tubing | Permeation at 40 °C | Below OEM emission limit |
| DIN 73378 | Polyamide tubing for motor vehicles | Dimensional stability | Wall tolerance ±0.05 mm |
| SAE J844 | Nonmetallic air brake tubing | Heat aging 100 °C for 72 h; cold impact at −40 °C | No cracking; burst retention |
| FMVSS 571.106 | Brake hose assemblies | Pressure retention and whip test | No leakage at 1.0 MPa |
| API 17J | Unbonded flexible pipe | Hydrostatic pressure and peel tests | Long-term failure probability consistent with 20-year service |
| ISO 10993-1 | Biological evaluation of medical devices | Cytotoxicity per ISO 10993-5 | Cell viability ≥70% |
| ISO 14743 | Push-in connectors for thermoplastic tubes | Leak tightness | No bubble at 1.0 MPa for 30 s |
| UL 1581 | Electrical wires, cables, and flexible cords | Tensile and elongation | Elongation ≥150% |
Конкурентные цены Evonik VESTAMID® LX9043 NC Nylon 12, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.
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Evonik VESTAMID® LX9043 NC is a natural-colour, plasticizer-free polyamide 12 (PA12) extrusion grade supplied as cylindrical pellets. The polymer is produced from laurolactam by hydrolytic ring-opening polymerisation; the resulting PA12 backbone places eleven methylene units between amide linkages, which lowers amide density and equilibrium water affinity relative to PA6 or PA66. The grade is classified as a low-viscosity, semi-flexible extrusion resin within the VESTAMID L series. Because no external plasticizer is added, flexibility and low-temperature impact response are derived from the PA12 backbone and controlled crystallisation rather than from migratory benzenesulfonamide or phthalate-type plasticisers. Dry-as-molded property data published by the manufacturer include density 1.01 g/cm³ (ISO 1183), tensile modulus 1.5–1.7 GPa (ISO 527-1/-2), tensile stress at yield 42–45 MPa, nominal strain at break >200%, and Charpy notched impact strength at 23 °C reported as no break (ISO 179/1eA). Flexural modulus is 1.2–1.5 GPa (ISO 178), Shore D hardness is 70–72 (ISO 868), Vicat softening temperature VST/A/50 is 165–170 °C (ISO 306), and the crystalline melting peak is 174–178 °C (ISO 3146). Melt volume-flow rate at 235 °C and 5 kg load is 6–10 cm³/10 min (ISO 1133-1:2022). Water absorption at saturation in 23 °C water is 1.5–1.8 wt% (ISO 62), compared with 9–10 wt% for PA6 at equilibrium. The glass transition temperature is typically 45–55 °C by dynamic mechanical analysis at 1 Hz.
Differentiation from plasticized PA12 compounds is most visible after thermal aging. Plasticized compounds containing 8–15 wt% benzenesulfonamide plasticiser lose mass and increase in stiffness after 1,000 h at 100 °C, whereas LX9043 NC retains tensile elongation above 150% and shows no additive migration to die lips, vacuum-tank water, or downstream fitting surfaces. Compared with unmodified VESTAMID L1670, LX9043 NC has lower melt viscosity and higher notched impact at −30 °C, at the expense of a slightly lower continuous-use temperature under load. The following table compiles representative comparative values; lot-to-lot variation and conditioning state must be verified for each production tool.
| Material attribute | VESTAMID LX9043 NC | Plasticized PA12 | VESTAMID L1670 |
|---|---|---|---|
| Plasticizer content | 0 wt% | 8–15 wt% | 0 wt% |
| Tensile modulus (ISO 527-1/-2) | 1.5–1.7 GPa | 0.8–1.2 GPa | 1.6–1.8 GPa |
| Charpy notched impact at −30 °C (ISO 179/1eA) | 10–14 kJ/m² | 15–25 kJ/m² | 5–8 kJ/m² |
| Water absorption at saturation (ISO 62) | 1.5–1.8 wt% | 1.4–1.7 wt% | 1.4–1.7 wt% |
| Coefficient of linear thermal expansion (ISO 11359-2) | 1.1–1.3 ×10-4 K-1 | 1.2–1.5 ×10-4 K-1 | 1.0–1.3 ×10-4 K-1 |
Compared with PA11, PA12 contains one additional methylene unit per repeat unit, reducing amide density further at comparable crystallinity; PA11 may offer higher renewable-carbon content in some supply chains. Compared with PA6 and PA66, PA12 gives lower equilibrium moisture uptake and better retention of impact below 0 °C, but lower tensile strength and lower heat deflection temperature under load. Melting points of PA6 and PA66 are 220–225 °C and 260–265 °C respectively; PA12 processes at 220–230 °C, reducing thermal degradation risk and energy input in thin-wall profile extrusion.
Residual moisture is the controlling variable in thin-wall extrusion because hydrolysis of the amide linkage proceeds rapidly above 200 °C. The recommended moisture content before processing is below 0.1 wt%. At 0.15 wt%, melt-pressure variation and surface pinholes are observed on 8 mm outer diameter tubing with 1 mm wall thickness. A desiccant-hopper dryer set to 80–85 °C with inlet-air dew point below −30 °C and residence time of 4–6 h is adequate for sealed bags. Dried pellets are conveyed with dry-air purge to the extruder throat. On a 30:1 L/D single-screw extruder of 45 mm diameter with a three-zone barrier screw and compression ratio 2.5:1–3.0:1, a representative barrel profile from feed to metering is 200 °C, 220 °C, 230 °C, 225 °C, with head and die at 220–230 °C. Melt temperature measured by needle thermocouple should be 225–235 °C and must not exceed 240 °C. Residence time above 230 °C is kept below 10 min to limit thermo-oxidative chain scission, which reduces burst strength and promotes yellowing. A screen pack of 40/60/80 mesh is placed before the breaker plate. At shear rates from 100 s-1 to 1,000 s-1, the melt is pseudoplastic, permitting stable wall-thickness control with vacuum sizing. The water-bath temperature is maintained at 40–60 °C to avoid quench-induced amorphous orientation that later crystallises and shrinks.
Air-brake and pneumatic-control tubing constitute a primary application. The grade is evaluated against SAE J844 for non-metallic air brake tubing and DIN 74324 for polyamide tubing in compressed-air braking systems. Low moisture uptake stabilises tube inner diameter at 23 °C and 50% RH; after 168 h conditioning, moisture content is 0.5–0.8 wt%, which alters flexural modulus by less than 15% relative to dry-as-molded material. Burst-pressure retention after heat aging at 100 °C for 1,000 h is a critical validation point. Plasticizer-free construction removes additive migration that can leave internal surface films and reduce fitting retentive force. In multi-layer fuel-vapour lines, LX9043 NC may serve as a tie or outer layer where resistance to zinc chloride and road salt is required. On production lines, dimensional tolerance of ±0.05 mm on outer diameter is maintained when vacuum calibration is set between −0.02 MPa and −0.04 MPa and haul-off speed is controlled to ±0.5%.
| Requirement | Standard or test method | Condition or limit |
|---|---|---|
| Air brake tubing performance | SAE J844 Type A/B | Burst pressure, impact at −40 °C, heat aging |
| Polyamide tubing for compressed-air braking systems | DIN 74324 | Tensile, low-temperature impact, boiling-water aging |
| Food contact for nylon resins | FDA 21 CFR 177.1500 | PA12 as nylon resin for repeated contact; end-use conditions govern |
| European plastics food contact | Regulation (EU) 10/2011 | Overall migration limit 10 mg/dm²; laurolactam authorised |
| Hazardous substances restriction | Directive 2011/65/EU Annex II | Pb, Cd, Hg, Cr VI, PBB, PBDE below maximum concentration |
| REACH registration | Regulation (EC) 1907/2006 | Polymer exempt; monomer registered; no SVHC above 0.1% |
Chemical resistance follows aliphatic polyamide behaviour: the grade is resistant to greases, oils, fuels, zinc chloride solutions, and many solvents. It is not recommended for strong mineral acids above 10% concentration, phenols, or formic acid at elevated processing temperatures. Stress-cracking resistance in zinc chloride solution is evaluated by ISO 22088-3 or OEM-specific bent-strip methods. For fuel-contact service, permeation must be measured according to SAE J1737 or equivalent test method.
Substitution of a plasticised PA12 with LX9043 NC requires process and design adjustments. Because the plasticizer-free grade has higher flexural modulus, the minimum bend radius in convoluted or spiral-wrap tube should be increased by 10–15% compared with a 12 wt% plasticised compound to prevent stress whitening at the outer bend surface. Low-temperature notched Charpy impact at −40 °C (ISO 179/1eA) is typically 8–10 kJ/m² lower than that of a heavily plasticised PA12, so wall thickness cannot be reduced without repeating OEM impact tests. Production experience on a 45 mm grooved-feed single-screw extruder with 30:1 L/D shows that screw torque decreases 8–12% when barrel temperature increases from 210 °C to 230 °C; melt-pressure instability appears if screw speed changes faster than 5 rpm/min because pellet feed and melt compressibility interact with low melt viscosity. Die-lip temperature uniformity is more critical for plasticizer-free grades: circumferential lip temperature differences greater than 3 °C generate visible wall-thickness banding in thin-wall tube. When downstream printing or marking is used, adhesion is influenced by the absence of surface plasticizer; corona treatment at 2–4 kW and 60–80 W·min/m² is required to raise dyne level above 40 mN/m (ISO 8296). Die swell must be characterised on target tooling because plasticizer-free and plasticised grades differ in melt elasticity; no universal correction factor is available. Published data for specific line configurations is limited, so processor validation on the intended tooling remains necessary.