| Код ТН ВЭД | 677695 |
Как аккредитованная фабрика Natureworks PLA Polymer 6751D Staple Fiber-Grade PLA, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Supplied in 25 kg (55 lb) paper bags or 1,000 kg bulk supersacks; palletized and stretch-wrapped for industrial handling. |
| Погрузка контейнера (20-футовый контейнер) | Container Loading (20′ FCL): palletized NatureWorks PLA Polymer 6751D Staple Fiber-Grade PLA, moisture-protected and safely secured for ocean transport. |
| Доставка | NatureWorks PLA Polymer 6751D Staple Fiber-Grade PLA is a non-hazardous polylactic acid resin. It is not regulated as dangerous goods by DOT, IATA, or IMDG. Ship in sealed 25 kg bags or 1,000 kg supersacks. Store dry, below 50°C, away from moisture. No UN number, hazard class, or packing group required. |
| Хранение | Store NatureWorks PLA Polymer 6751D in a cool, dry, well-ventilated area, away from direct sunlight, heat, and ignition sources. Keep containers tightly closed to prevent moisture absorption. Maintain temperatures below 50°C and avoid contact with strong oxidizers. Use first-in, first-out stock rotation. Protect from dust and physical damage. Follow local regulations and the manufacturer’s safety data sheet. |
| Срок годности | Shelf life is two years from date of manufacture when stored in original packaging in a cool, dry place. |
In hygiene acquisition-distribution layers, carded staple fibre webs of NatureWorks Ingeo 6751D are manufactured from fibres cut to 38 mm and 1.7 dtex with a sinusoidal crimp frequency of 10–14 crimps/cm. The finish level on the staple is controlled to 0.12–0.18 wt% to limit downstream carding static while avoiding hydrophobic transfer in the absorbent core. Fibres are opened on a high-speed card with doffer speed 120–160 m/min, producing webs with basis weight 18–25 g/m². Batch-to-batch melt-viscosity variation of ±5% shifts web cohesion and static decay, so doffer speed and antistatic-bar voltage are adjusted lot-to-lot. The polymer melt is prepared in a single-screw extruder with L/D 24:1–30:1 and compression ratio 2.5:1–3.5:1, metered by gear pump at 70–120 bar, and held at 210–230 °C. Because PLA homopolymer has a sharp melting peak and a narrow thermal-bonding window, the carded web is blended with 15–20 wt% bicomponent PLA binder fibre having a sheath melting range below 130 °C. Through-air bonding is set at 155–160 °C for 3.5–4.5 s; residence time beyond 5 s causes edge shrinkage and surface glazing, while temperatures below 150 °C produce inadequate bond point strength. Prior to extrusion, the resin must be dried to below 250 ppm moisture at 80 °C with a dew point of -40 °C for 4 h. Liquid strikethrough and rewet behaviour are evaluated by ISO 9073-13:2006 and fabric tensile by ISO 9073-3:2023; tensile strength of a 22 g/m² carded through-air bonded web is typically controlled above 30 N/50 mm in the machine direction.
Substitution of PET staple in automotive interior felt requires simultaneous evaluation of needle board density, barb geometry, and resin bonding. Ingeo 6751D at 6.7 dtex and 64 mm is carded into a cross-laid batt of 300–600 g/m², then needlepunched on a Dilo loom with needle gauge 15×18×36, barb depth 0.04 mm, penetration depth 11 mm, and punching density 220–300 punches/cm². Tensile strength is measured per ISO 9073-3:2023, tear strength per ISO 9073-4:2020, and abrasion resistance per ISO 12947-2:2016. The lower glass transition of PLA, 55–60 °C, compared with PET requires cabin heat-aging maps to be validated at component level because dimensional stability above 100 °C may show shrinkage of 2–5% unless the batt is heat-set at 130–140 °C for 6–10 min before lamination. Flame spread for automotive interior trim is assessed by FMVSS 302; PLA melts and drips under direct flame, so heavy-weight felt applications require a phosphate-based flame-retardant masterbatch or a nonwoven backcoating, and amine-based additives are avoided because they accelerate ester cleavage. Because hydrolytic degradation accelerates at relative humidity above 60%, bales must be stored in sealed packaging and conditioned for 24 h at 25 °C and 40–50% RH before carding.
| Operation | Equipment/condition | Boundary range | Limit rationale |
|---|---|---|---|
| Resin drying | Desiccant dryer with dewpoint control | 80 °C, 4 h, moisture < 250 ppm | Hydrolytic molecular weight loss |
| Extrusion | Single screw L/D 24:1–30:1, gear pump | 210–230 °C, 70–120 bar | Residence above 240 °C increases lactide reformation |
| Drawing | Two-stage hot draw | 3:1–4:1, 95–110 °C | Orientation and crystallinity development |
| Thermal bonding | Through-air oven | 155–160 °C, 3.5–4.5 s | Sharp melting peak restricts dwell window |
| Needle punch | Dilo loom | 220–300 punches/cm² | Over-punching reduces tear and fibre length |
When wet-laid forming is used for filtration media, short-cut Ingeo 6751D of 4 mm or 6 mm and 1.7 dtex is suspended at consistency of 0.05–0.15 wt% in water buffered to pH 4.5–6.0. Dispersion aids are selected from non-ionic or weakly anionic polyacrylamide classes at 0.02–0.05 wt% on dry fibre to avoid charge collapse on the wire. Stock temperature during forming is limited to 35–40 °C; higher temperatures accelerate PLA hydrolysis, particularly when pH drifts above 7. The sheet is formed on an inclined wire with dewatering vacuum 0.4–0.6 bar, then passed over drying cylinders with web surface temperature limited to 120 °C. Higher surface temperature causes softening, deposition, and pinholing. Air permeability of a 60 g/m² wet-laid PLA mat is evaluated by ISO 9073-15:2008 and typically falls between 150–300 L/m²/s at 200 Pa for uncalendered sheets. Pore-size distribution is measured by capillary flow porometry using ASTM F316-17; published data for wet-laid Ingeo 6751D in submicron filtration grades is limited, so pilot-scale validation is required before specifying retention ratings. Tensile strength after wet-lay is generally lower than needlepunch equivalents, with machine-direction tensile of 25–40 N/50 mm for 60 g/m² sheets depending on furnish and binder addition.
High-loft fibre-fill insulating batt is produced from 15 dtex, 64 mm Ingeo 6751D opened on a triple-roller garnett and cross-lapped to 12–18 layers, giving batt weight 200–600 g/m². Heat-setting in a forced-air oven at 130–140 °C for 6–10 min stabilises crimp and reduces dusting without resin bonding. Compression recovery is measured by ISO 3385:2014 after 80,000 cycles at 50% compression; residual thickness retention above 85% requires the crimp opening process to be adjusted rather than increasing binder content. Moisture uptake of PLA at 50% RH is below 0.5 wt%, which reduces fibre clumping in high-loft batt, but storage above 60% RH without sealed packaging induces chain scission before garnetting. When blending with PET or viscose for hygiene or furniture padding, the lower melting point of PLA requires carding speeds to be reduced by 15–20% relative to PET to avoid frictional surface fusion on the worker rolls.
| Attribute | Method | Application relevance |
|---|---|---|
| Melt mass-flow rate | ISO 1133-1:2022 | Fibre spinning stability |
| Fibre linear density | ISO 1973:2021 | Carded web uniformity |
| Fibre tenacity/elongation | ISO 5079:2020 | Yarn and nonwoven strength |
| Fabric tensile | ISO 9073-3:2023 | Needlepunch, wetlaid, hygiene |
| Tear resistance | ISO 9073-4:2020 | Automotive felts and geotextiles |
| Air permeability | ISO 9073-15:2008 | Filtration and ADL |
| Compression set | ISO 3385:2014 | Fibre-fill |
| Ring-spun yarn tenacity | ISO 2062:2009 | Apparel and technical yarns |
| Compostability | ISO 17088:2021 | End-of-life validation |
Staple fibre spinning of Ingeo 6751D on modified cotton ring frames uses 1.3 dtex or 1.7 dtex fibre cut to 32–38 mm, blended with 0.4 wt% antistatic lubricant. Drawframe sliver weight is controlled at 3.5–4.0 ktex, roving twist at 42–48 turns/m, and ring-spinning twist factor αe 36–42. Yarn tenacity tested per ISO 2062:2009 reaches 3.0–3.5 cN/dtex for English cotton count Ne 20–30, with elongation at break 20–25%. Traveller speed must be reduced 20–30% relative to PET because frictional heat at the traveller–ring interface can cause surface fusion and yarn breakage. Package dyeing above 70 °C at pH greater than 7 is avoided because PLA strength retention drops under alkaline hydrolysis. Sizing for weaving uses low-viscosity starch or PVA at 60–65 °C in the size box; desizing must be completed below 80 °C and neutral pH to prevent tensile loss before finishing.
Biodegradable horticultural crop netting and light geotextile substrates are produced by stitch-bonding Ingeo 6751D of 12–17 dtex and 76–90 mm into open-mesh structures with basis weights of 80–150 g/m². The stitch-bonding process uses a Malimo-type machine with stitch length 0.8–1.5 mm and gage 3–7 mm, creating tensile anisotropy that is controlled by the insertion angle. Tensile strength is measured per ISO 9073-3:2023, and knot slip resistance per ISO 9073-4:2020. In soil-contact applications, degradation is governed by ISO 17088:2021 and ASTM D6400-23 under industrial composting conditions, not by ISO 17556 soil burial unless the specific structure has been validated. If the application requires a service life longer than one growing season, UV stabilisation and hydrophobic melt additives must be added at the compounding stage; published data for long-term soil persistence of Ingeo 6751D stitch-bonded geotextiles is limited, so site-specific mulch-trial validation remains necessary.
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NatureWorks PLA Polymer 6751D Staple Fiber-Grade PLA is a polylactide resin designated for thermomechanical conversion into short-cut, crimped staple fibers. The pellet is semicrystalline, with a manufacturer-reported density of 1.24 g/cm³ (ASTM D792) and a melt flow rate of approximately 35 g/10 min measured at 210 °C under 2.16 kg load (ASTM D1238). The melt flow rate is deliberately higher than that of standard lower-flow fiber grades, allowing finer denier spinning at reduced spinblock temperatures. The resin is hydrolytically active; exposure to atmospheric moisture during storage or conveying shifts molecular weight distribution before extrusion unless predrying is enforced as a hard process boundary.
The D-lactic acid content is listed as approximately 4.0% in manufacturer literature, which places the material between poly(L-lactide) homopolymers and higher-D random copolymers. The melting transition measured by differential scanning calorimetry is reported near 165 °C (ASTM D3418), and the glass transition is reported near 58 °C. These transitions define the drawing window: the fiber must be drawn above the glass transition but below the onset of cold crystallization, typically 70–85 °C for this grade. Because the D-isomer content reduces maximum crystallinity, the as-spun fiber can be subsequently crimped and cut without the embrittlement that is common in higher-crystallinity PLA homopolymers.
The primary rheological difference is melt flow rate. Lower-flow staple fiber grades are commonly specified in the 15–30 g/10 min range under 210 °C/2.16 kg, while 6751D sits near 35 g/10 min. The higher flow lowers screw torque and pack pressure on multi-hole spinnerets, but it also reduces melt strength; therefore spinline tension must be controlled through quench air rather than by relying on viscosity alone. The difference from film extrusion grades is equally direct. Film resins are typically formulated for heat-seal initiation and tear performance, whereas 6751D is formulated for orientation-induced crystallization during drawing. Film-grade PLA can develop excessive crystallinity during spinning and cause spinneret blocking; 6751D uses the 4.0% D-lactic acid content to delay crystallization until the draw stage. Relative to high-viscosity injection molding grades, 6751D has a narrower processing temperature range and is not intended for thick-section molding.
Predrying of 6751D is performed in a desiccant dryer with a dew point of -40 °C or lower. Manufacturer-published drying protocols for fiber-grade PLA commonly specify 80 °C for 4–6 hours, targeting pellet moisture below 250 ppm. Residual moisture above this threshold hydrolyzes the ester linkages in the polylactide backbone, producing chain scission that appears as melt flow rate drift and a reduction in melt viscosity. On a production staple fiber line, the practical consequence is spinneret drip, uneven filament denier, and reduced drawability. The dryer hopper must be sized so that residence time at temperature, not total convey time, meets the 4–6 hour minimum; hoppers with internal dead zones or uninsulated feed throats produce intermittent moisture excursions.
Barrel set points are profiled from 190 °C in the feed zone to 215 °C in the metering zone, with a melt temperature at the discharge of 210–225 °C. The extruder is commonly a single-screw machine with 24:1 to 36:1 L/D and a compression ratio of 2.5:1 to 3.0:1. A gear pump between the extruder and spinblock is used to damp pressure oscillations; spinblock temperature is typically held at 220–230 °C. Spinneret orifice diameters of 0.25–0.50 mm are used for staple fiber target counts of 1.7–3.3 dtex. Quench air is supplied as cross-flow at 10–25 °C and a velocity of 0.5–1.0 m/s, with the lower velocity applied to fine denier filaments to avoid aerodynamic instability. The spinline length from spinneret face to finish applicator is set between 1.5 m and 2.5 m depending on filament count and quench uniformity.
Draw on a two-stage godet system is carried out at godet temperatures from 60 °C to 80 °C and total draw ratios from 2.5:1 to 4.0:1. Orientation-induced crystallization raises fiber tenacity; as-spun tenacity is commonly 0.8–1.2 cN/dtex, while drawn staple fiber can reach 2.5–3.5 cN/dtex when measured under ASTM D3822. A subsequent annealing step at 100–120 °C under controlled tension is used when dry heat shrinkage below 5% at 120 °C is required for thermal-bonded nonwovens. Annealing must be tension-controlled because free-shrinkage annealing produces crimp reversal and uneven staple length distribution.
Mechanical crimping in a stuffer box or gear crimper is set to 8–12 crimps/cm, and cutting to staple lengths from 38 mm to 51 mm is used for carded nonwovens. The crimp count is not cosmetic; it controls carding cohesion and web uniformity. At crimp counts above 12 crimps/cm, the brittle PLA fiber surface can microcrack, while below 8 crimps/cm card web formation becomes unstable on high-speed cards. Spin finish selection must be based on downstream bonding; non-ionic antistatic finishes are generally preferred over ionic formulations because ionic finishes can increase fiber-to-fiber friction under low-humidity processing.
PLA degrades through three concurrent mechanisms during melt spinning: hydrolysis, thermal chain scission, and lactide regeneration. Hydrolysis dominates below 200 °C and is controlled by predrying; thermal chain scission becomes significant above 240 °C and is controlled by residence time and screw profile. Residence time in the extruder from feed throat to spinneret should be held below 10 minutes; longer times lead to progressive loss of molecular weight, even in a dried system. The degradation products include lactide, lactic acid, and oligomeric species; their accumulation at the spinneret face produces die drool and filament wraps. Use of a screw with deep feed channels and a low-shear barrier section reduces viscous heating, but published data for this specific configuration is limited.
Thermogravimetric analysis of PLA fiber grades typically shows a mass-loss onset near 300 °C in nitrogen; however, melt processing must avoid localized barrel hot spots because stagnant melt at hot spots degrades even when bulk melt temperature is below the onset. The practical upper melt temperature is therefore 230–235 °C for this grade, not the thermogravimetric onset. Storage of unopened pellets is recommended below 30 °C and below 60% relative humidity. Opened containers should be returned to sealed dry conditions within 24 hours if the resin is not immediately run through an on-line dryer. The product is supplied with a residual moisture specification that is not a substitute for drying; moisture regain occurs rapidly in high-humidity environments. In a production environment with ambient relative humidity above 70%, the pellets can gain sufficient surface moisture within 2–4 hours to affect spinline stability. This storage limitation is not unique to 6751D but is more visible because the grade’s lower molecular weight reduces tolerance for hydrolytic chain scission.
Regulatory status must be confirmed on the finished article. The resin data sheet does not cover spin finish, processing aids, or colorants. Compliance under REACH Regulation (EC) No 1907/2006 and RoHS Directive 2011/65/EU is generally addressed by the additive package; PLA itself is not intrinsically restricted. For hygiene nonwovens, extractables testing according to ISO 10993-13:2010 may be required if the article contacts skin or mucosal surfaces. Food-contact suitability is not inferred from resin data sheets unless a specific grade is listed under a national food-contact regulation; the fiber producer must validate migration of oligomers and process residues under final use conditions.
Because 6751D has a higher melt flow rate than general-purpose fiber grades, it is commonly selected for fine-denier staple fiber used in thermal-bonded and air-through bonded nonwovens. Equipment-specific validation remains the controlling technical requirement, since spinline stability, drawn tenacity, and finish compatibility vary with dryer performance, extruder geometry, and quench cabinet design. Published data for specific application performance across all possible line configurations is limited.