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deTerra PR146-E84 Flame Retardant Extrusion Polylactic Acid

    • Название продукта: deTerra PR146-E84 Flame Retardant Extrusion Polylactic Acid
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    Код ТН ВЭД 576618

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    deTerra PR146-E84 Flame Retardant Extrusion Polylactic Acid is a compounded PLA-based extrusion material in which the E84 suffix is commonly associated with surface burning evaluation under ASTM E84; the certification status and exact classification must be confirmed through the supplier technical datasheet. Published multi-lot data for this exact deTerra formulation are limited, and the processing limits presented here are therefore drawn from industrial practice for flame-retardant PLA extrusion compounds of the same melt-flow class rather than from a complete supplier-lot data set. The product is intended for profile, sheet, and conduit extrusion where renewable-carbon polymer content and flame-retardant performance are specified simultaneously. Typical application fields include architectural interior trim, electrical conduit, edge-banding, transit interior profiles, and enclosures that do not require continuous high-temperature exposure. Processing requires desiccant drying and an extrusion line with sufficient shear to disperse phosphorus-based or phosphorus-nitrogen flame-retardant packages without causing hydrolytic degradation.

    What Distinguishes PR146-E84 From General-Purpose PLA and Halogenated FR Systems?

    General-purpose PLA extrusion grades classified under UL 94 HB burn with flaming drips and contribute fuel load; they are unsuitable for enclosures, conduit, and interior finish profiles where vertical burning ratings or surface flame spread criteria apply. A flame-retardant PLA compound in the PR146-E84 class is modified with non-halogenated phosphorus or phosphorus-nitrogen intumescent systems. Upon exposure to heat flux, these additives promote char formation, lower peak heat release rate, and reduce dripping. In contrast to brominated flame-retardant systems, halogen-free PLA compounds do not rely on antimony trioxide synergy and generally produce less acidic combustion gas; however, the exact additive package of deTerra PR146-E84 must be verified from the supplier rather than inferred from the product designation.

    Compared with flame-retardant polycarbonate/acrylonitrile-butadiene-styrene blends, PLA-based FR compounds exhibit lower heat deflection temperature unless the part is annealed or crystallized. Unmodified amorphous PLA typically has a heat deflection temperature below 60 °C at 0.45 MPa; FR PLA extrusion grades may remain in this range unless nucleating agents and post-extrusion crystallization are employed. The thermal capability difference means that PR146-E84 is not a drop-in replacement for FR-PC/ABS in components exposed to sustained service temperatures above approximately 55–60 °C. Conversely, PR146-E84 offers a bio-based polymer backbone for processors seeking renewable-content procurement compliance and lower fossil-carbon feedstock use. The flow behavior also differs from unmodified PLA: FR additives generally reduce zero-shear viscosity and may reduce melt strength, requiring line configuration adjustments described in subsequent sections.

    The melt flow rate of PLA-based FR extrusion grades is generally measured under ISO 1133-1:2022 at 210 °C and 2.16 kg. A value in the range of 4–12 g/10 min is typical for profile and sheet extrusion; however, the published value for deTerra PR146-E84 must be obtained from the supplier. Higher flow grades reduce head pressure but increase the risk of sag and edge instability; lower flow grades improve melt strength but may require higher barrel temperatures and increase shear heating. This trade-off is more pronounced with flame-retardant additives than with general-purpose PLA because the additive phase modifies both low-shear and high-shear viscosity.

    Drying, Barrel Temperature, and Screw Configuration Constraints

    Residual moisture is the primary process variable controlling melt degradation in PLA-based FR compounds. The material should be dried to a moisture content below 250 ppm (0.025 wt%) before extrusion. Desiccant drying at 80 °C for 4 h with a dew point of −32 °C or lower is typical for PLA; hopper residence time should not create thermal degradation. Drying temperatures above 90 °C can soften the pellets and cause bridging in the hopper. A closed-loop desiccant dryer with dew-point monitoring is preferred over hot-air dryers in environments where relative humidity exceeds 60% RH.

    Melt processing is normally conducted at 190–210 °C, with die temperature 200–215 °C. Barrel setpoints from the feed throat to the dosing zone are typically ramped from 150 °C to 205 °C. Residence time should be limited to less than 5 min at temperature; prolonged residence or localized gradients above 230 °C cause chain scission, lactide formation, and surface deposit on calibrators. Extruders with L/D ≥ 24:1 and 2.5:1–3.0:1 compression ratio provide sufficient plastication. However, single-screw lines with L/D < 24:1 often fail to disperse the additive package fully; operators observe surface pitting, specks, and melt pressure fluctuations of ±10 bar or greater. Co-rotating twin-screw compounding is used upstream to produce the pellet, but profile extrusion is generally performed on single-screw machines with barrier screws or Maddock mixers. Screen packs of 60/120/60 mesh or equivalent are used to trap agglomerates but may increase backpressure; pressure drop across the screen pack should be monitored and screens replaced when total head pressure exceeds 120 bar.

    On production-scale single-screw machines with L/D ≥ 24:1, flame-retardant PLA containing phosphorus-based additives can cause screw and barrel wear if free acidic species form during processing. Flight wear is typically observed first in the compression section, where localized melt temperatures are highest. Nitrided or bimetallic barrels and hard-coated screws are specified for lines running abrasive FR compounds. If wear is ignored, clearance increases and melt temperature rises, leading to black specks and lactide odor at the die. This failure mode is distinct from moisture degradation but can be confused with it: moisture-related failure appears as bubbles, surface roughness, and reduced viscosity, whereas wear-related degradation appears as progressive darkening and increasing backpressure over multiple shifts.

    Representative process envelope for flame-retardant PLA extrusion compounds of the PR146-E84 class
    Parameter Representative range Basis
    Residual moisture < 250 ppm Hydrolysis threshold for PLA
    Drying temperature 80 °C Desiccant dryer
    Drying time 4 h At inlet moisture below 0.2 wt%
    Dew point −32 °C or lower Closed-loop desiccant dryer
    Melt temperature 190–210 °C Extruder and die
    Die temperature 200–215 °C Profile/sheet die
    Screw L/D ratio ≥ 24:1 Single-screw profile extrusion
    Compression ratio 2.5:1–3.0:1 Barrier screw or Maddock mixer
    Screen pack 60/120/60 mesh Filtration of agglomerates
    Maximum head pressure 120 bar Screen pack change threshold
    Residence time < 5 min At melt temperature

    Values in Table 1 are representative of flame-retardant PLA extrusion compounds and require machine-specific adjustment. Supplier-lot data for deTerra PR146-E84 take precedence over generic class data.

    Architectural profile and sheet extrusion lines producing material for interior finish or transit applications frequently require surface burning characteristics under ASTM E84 together with a vertical burn classification under UL 94. In these settings, the deTerra PR146-E84 grade must be evaluated on the actual substrate thickness and profile geometry because flame-retardant PLA performance is thickness-dependent. Thin sections below 1.5 mm are often more difficult to classify; flame spread and smoke developed index can shift when a high-gloss cap layer or coextruded tinted layer is present. Published data for this specific configuration are limited, and full-scale ASTM E84 tunnel testing on the finished profile assembly is therefore required for code submission. The processor should not infer a Class A rating from raw pellet certifications alone.

    Cooling and calibration exert a secondary influence on flammability and mechanical performance. Rapid quenching produces an amorphous surface with lower HDT; slow cooling or in-line annealing at 40–60 °C can raise crystallinity and improve dimensional stability but may reduce elongation at break and increase notch sensitivity. When flame-retardant additives are compounded into PLA, the cold-crystallization temperature often shifts to a lower value, which can cause unpredictable crystallinity development in thick profiles. This is a known process conflict on production-scale lines running thick-wall conduit: if the core cools slowly, it can crystallize while the skin remains amorphous, producing internal stress and warpage after annular die sizing.

    When High FR Additive Loading Compromises Melt Strength on Single-Screw Lines

    Flame-retardant additive loadings in the range of 10–20 wt% can reduce the extensional viscosity and melt strength of PLA, producing sag in unsupported spans between the die and calibrator, edge tear in sheet, and poor bubble stability if a coextrusion layer is applied. This effect is most visible on single-screw profile lines that do not have closed-loop melt pumps or vertical extrusion configurations. Additives also increase the density of the melt stream and may alter die swell; the die land length may need to be increased by 10–20% to maintain surface finish. Processors should verify the exact additive loading of deTerra PR146-E84, since site-specific melt strength behavior is not captured by standard melt flow index alone.

    Melt strength reduction can be quantified on a capillary or extensional rheometer, but standard melt flow rate under 2.16 kg load does not capture sag. A more useful production check is to extrude a strand at fixed throughput and measure the unsupported distance before necking; changes of more than 15% across lots may indicate batch-to-batch variance in FR additive loading or moisture. Operators have observed that lots with higher moisture content can exhibit lower apparent viscosity, which further aggravates sag; this masks the additive effect. Therefore, drying verification should precede any melt-strength adjustment.

    Countermeasures used on production lines include addition of a branching agent or chain extender at low concentration, typically below 0.5 wt%, to restore melt elasticity; use of a melt pump to stabilize die pressure to ±2 bar; and replacement of long unsupported cooling spans with contact calibrators. Overdosing chain extender may raise viscosity beyond the shear limits of the screw and produce resin degradation at barrel wall temperatures that appear acceptable. In practice, head pressure and motor load should be recorded continuously. A rise in motor load above the baseline for unmodified PLA of equivalent melt flow rate indicates that the FR package is not fully dispersed or that chain extension has proceeded too far. This is an operational boundary rather than a material defect.

    Mechanical and Flammability Test Methods for Qualification of Extruded FR PLA Parts

    Mechanical evaluation of deTerra PR146-E84 should follow ISO 527-2 for tensile properties using Type 1A specimens cut from extruded sheet, ISO 178 for flexural modulus, and ISO 179-1 for Charpy impact. Specimens should be conditioned at 23 °C and 50% RH for at least 40 h in accordance with ISO 291. Flammability characterization should include UL 94 vertical burn at the intended end-use thickness, commonly 1.5 mm, 2.0 mm, or 3.2 mm, and cone calorimeter testing under ISO 5660-1 at 50 kW/m² irradiance if heat release data are required for transit or building code compliance. The ASTM E84 tunnel test remains a full-assembly test; it is not a raw material property and must be run on the finished profile, sheet, or composite panel.

    Qualification methods for flame-retardant PLA extrusion compounds
    Standard Property Condition/notes
    UL 94 Vertical burning classification Specimen thickness as end-use; V-0, V-1, V-2
    ASTM E84 Surface flame spread and smoke developed index Finished assembly, tunnel test
    ISO 5660-1 Heat release rate, peak heat release rate 50 kW/m² irradiance
    ISO 527-2 Tensile strength, modulus, elongation Type 1A specimen, 5 mm/min
    ISO 178 Flexural properties 3-point bending
    ISO 179-1 Charpy notched impact 80×10×4 mm; edgewise
    ISO 75-2 Heat deflection temperature 0.45 MPa and 1.8 MPa
    ISO 1133-1:2022 Melt flow rate 2.16 kg at specified temperature

    The material should not be combined with amine-based additives or certain metal stearates that accelerate PLA chain scission at processing temperatures. Avoid regrind ratios above 20% unless the regrind is dried and the melt flow rate is checked, because repeated heat history can reduce molecular weight. The PR146-E84 grade is not intended for high-temperature sterilization or hot-fill packaging; sustained exposure above 65 °C without annealing may produce creep and dimensional change. For each production lot, the supplier-lot certificate and the processor’s in-house melt flow rate and moisture analysis should be used to confirm that the material has not shifted during storage or handling.

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