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Essentium High Performance PLA- Annealed Additive Manufacturing Filament

    • Product Name: Essentium High Performance PLA- Annealed Additive Manufacturing Filament
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 715464
    Product Name Essentium High Performance PLA - Annealed Additive Manufacturing Filament
    Manufacturer Essentium
    Material Polylactic Acid (PLA)
    Filament Diameter 1.75 mm
    Diameter Tolerance ±0.05 mm
    Density 1.24 g/cm³
    Tensile Strength 50 MPa
    Tensile Modulus 3.5 GPa
    Elongation At Break 3%
    Flexural Strength 85 MPa
    Flexural Modulus 3.6 GPa
    Notched Izod Impact Strength 3.5 kJ/m²
    Heat Deflection Temperature 0 45 Mpa Annealed 120 °C
    Glass Transition Temperature 60 °C
    Melting Temperature 165 °C
    Print Temperature 190–220 °C
    Bed Temperature 45–60 °C
    Annealing Temperature 80 °C
    Annealing Time 2 hours

    As an accredited Essentium High Performance PLA- Annealed Additive Manufacturing Filament factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Supplied on a 1 kg spool, vacuum-sealed in moisture-barrier packaging with desiccant and clear Essentium High Performance PLA Annealed filament labeling.
    Container Loading (20′ FCL) 20′ FCL dry container loaded with palletized Essentium High Performance PLA- Annealed Additive Manufacturing Filament spools, non-hazardous, secured, ambient conditions.
    Shipping Not regulated for transport. Essentium High Performance PLA- Annealed Additive Manufacturing Filament is a non-hazardous solid polymer filament supplied on spools. Ship in sealed moisture-barrier packaging at ambient temperature. Protect from heat, direct sunlight, moisture, and physical damage. No special DOT, IATA, or IMDG requirements. Handle as nonhazardous cargo.
    Storage Store Essentium High Performance PLA Annealed Additive Manufacturing Filament in a cool, dry, well-ventilated area away from heat, direct sunlight, and ignition sources. Keep sealed in original packaging with desiccant to prevent moisture absorption. Maintain temperatures below 30°C and relative humidity below 50%. Protect from incompatible oxidizers and physical damage. Use oldest stock first.
    Shelf Life Shelf life is 12 months from manufacture when stored sealed at 20–25°C, away from moisture and sunlight.
    Application of Essentium High Performance PLA- Annealed Additive Manufacturing Filament
    In short-run vacuum forming of 0.75–2.00 mm amorphous PETG or 1.0 mm PLA sheet, Essentium High Performance PLA tool bodies are used on semi-automatic machines with ceramic upper heaters and a single-sheet clamp frame. The printed tool is annealed at 80–100 °C in a forced-air oven for 2–6 h, supported on a borosilicate glass plate. Post-anneal linear contraction is mapped with a contact profilometer against a certified reference gauge block. The tool face is sealed with a two-part epoxy coating applied at 0.20 mm dry film thickness to close surface porosity. Tool-surface temperature in production is held below 105 °C, measured by an embedded K-type thermocouple at the vacuum hole centre. A plug assist made from syntactic polyurethane operates at 25–40 mm/s to pre-stretch the sheet. Release is a semi-permanent solvent-borne agent baked at 60 °C for 20 min. These tools produce clamshell blister inserts, temporary packaging trays, and low-volume cosmetic packaging samples. Dimensional stability is verified to ±0.15 mm on hole-to-hole pitch using a vision measuring system. The main process conflict is residual annealing shrinkage in the Z build direction. If the tool body is not annealed before face machining, subsequent thermal exposure shifts critical vacuum-hole coordinates. Published unconstrained annealed PLA data indicate Z shrinkage from 0.20% to 0.80%, depending on print density and tool wall thickness. The flexural modulus of the tool substrate is evaluated under ISO 178:2019.

    Does Annealed PLA Withstand Continuous OOA Vacuum-Bag Cure at 65 °C?

    During a 65 °C out-of-autoclave vacuum-bag-only cure, a printed Essentium High Performance PLA tool is held under continuous negative pressure of −0.85 bar for 16 h. The annealed PLA tool body is machined oversize by 0.10 mm in the pocket floor to allow for creep deflection. A thermocouple is potted into the tool with high-thermal-conductivity epoxy. The laminate stack consists of dry carbon fibre, a low-temperature OOA epoxy film, peel ply, breather, and a 75 µm nylon vacuum film. The tool operates as a single-sided mould, so gas pressure loads the vertical walls mainly in compression. Heat deflection temperature of the annealed material is assessed under ASTM D648-18 Method B at 0.455 MPa. Long-duration creep at the cure plateau is more limiting than short-term HDT. The tool should be qualified with a 24 h compressive creep test at 65 °C and 0.455 MPa. Published data for Essentium High Performance PLA under this specific OOA cure configuration are limited. The terminal parts are low-temperature composite prototypes, radome brackets, and drone shell panels. This process is not transferable to autoclave cures above 100 °C or to male tools with large unsupported span. Composite laminate tensile properties are verified under ASTM D3039/D3039M-17.

    Low-Density Polyolefin Foam Compression Tooling

    For physically crosslinked low-density polyolefin foam compression moulding at 75–95 °C, annealed PLA cavity inserts are used because the tool face sees only short thermal spikes during part transfer. A hydraulic press with platen parallelism 0.05 mm/m is set to 4–8 bar moulding pressure. The annealed PLA insert is backed by an aluminium bolster plate to prevent flexural cracking. The insert is printed with 4 perimeters and 30% gyroid infill, then annealed before final surfacing. The surface is finished to Rz 6.3 µm with 240-grit wet abrasive. The process produces closed-cell polyethylene foam liners for automotive interior trim and orthotic padding blanks. Dimensional verification uses a coordinate measuring machine with a scanning probe at 20 °C ambient. The relevant material test for compressive yield of the annealed polymer is ASTM D695-15. The main failure mode is edge chipping when the insert is ejected too cold; inserts should remain above 40 °C during demoulding. The process window is narrow because foam crosslinking exotherm can raise cavity surface by 8–15 °C above setpoint during the first 90 s.

    When a Printed Mandrel Is Pulled from a Filament-Wound Duct

    After a filament-wound duct is cured at 50–60 °C for 12 h, an annealed PLA printed mandrel is extracted with a hydraulic puller. The mandrel is used for a straight cylindrical section of 1200 mm length and 100 mm internal diameter. The printed mandrel is produced in segments, bonded with cyanoacrylate, and annealed on a V-block fixture to maintain radial runout below 0.20 mm. Winding tension is limited to 15–25 N per tow to prevent creep of the hollow PLA shell. The wet epoxy resin system is applied at ambient temperature and cured in the low-temperature oven. Extraction force is kept below 2.5 kN to avoid mandrel fragmentation. The annealed surface reduces cold-flow under winding tension compared with as-printed PLA. A paraffin wax release layer of 0.05 mm thickness is applied before winding. Terminal parts include low-pressure air intake ducts, drone arm mandrels, and prototype coolant conduits. The controlling standard for compressive strength of the mandrel material is ASTM D695-15. This approach fails when the laminate is oven-cured above 80 °C because mandrel creep allows ply wrinkling. Published data for extraction force on Essentium High Performance PLA mandrels are limited; a pull-out test on a 100 mm diameter coupon is recommended.

    Metrology nests for coordinate measuring machines are a low-temperature, high-stability application for annealed PLA. In this configuration the printed nest is annealed, then hard-milled with carbide tooling at 18,000 rpm. The inspection environment is maintained at 20 ± 0.5 °C with relative humidity below 50%. The nest holds a stamped aluminium bracket against a datum plane while a touch-trigger probe checks hole positions. The annealed material is selected because its short-term creep is lower than as-printed PLA under point loads. The static load per contact point is limited to 50 N. The governing standard for length measurement is ISO 10360-2:2009. The terminal use is incoming quality inspection tooling, not production gauging. The main process constraint is residual stress release after machining; a roughing allowance of 0.50 mm is left on critical faces before final anneal, then finished with a 0.10 mm depth of cut.

    Annealed High-Performance PLA Cannot Replace Acetal in High-Stress Assembly Fixtures

    When printed jigs are substituted for acetal homopolymer in high-cycle assembly fixtures, the operational boundary is defined by insertion force and cycle count. Annealed PLA can be used in guided bushing press nests for small brass inserts with insertion force below 800 N and cycle counts below 5,000. Above that threshold, edge wear on the polymer insert shifts the bushing position by more than 0.10 mm. The fixture is mounted on a pneumatic press with dual guide rods and a load cell. Hardened steel bushings are press-fitted only after annealing and face surfacing. Insert retention is checked by pull-out force measured with a force gauge to 500 N minimum. Acetal homopolymer tools remain necessary where impact loading or continuous service above 90 °C is present. The governing tensile property standard is ASTM D638-14. The annealed material shows higher stiffness but lower impact toughness; Izod notched impact is evaluated under ASTM D256-10. This application is limited to low-volume workcell fixtures and should not be extended to high-speed automated assembly lines.

    During investment casting burnout, a thermal ramp from 20 °C to 700 °C at 2 °C/min removes the annealed PLA pattern from a ceramic shell. Annealed PLA patterns are used for small aluminium and stainless-steel investment castings when pattern tooling is needed within 48 h. The annealed pattern is coated with a zirconium silicate primary slurry and a fused silica backup stucco. Shell cracking is driven by the coefficient of thermal expansion mismatch between unfilled PLA and the ceramic shell. Published unfilled PLA CTE values range from 60 to 80 µm/m·°C, while the shell expands at 4–6.5 µm/m·°C. A flash-fire cycle at 600–750 °C removes the polymer. The main quality risk is residual ash from pigmented filament or foreign particulate embedded during printing. Pigmented high-performance PLA must be validated for total ash content under ISO 3451-1:2019 before production release. Solid patterns with wall thickness above 6 mm tend to crack the shell during thermal expansion unless drain holes or hollow internal structure are included. Terminal castings include prototype pump housings, bracket geometries, and short-run replacement parts. This application is process-specific; published data for Essentium High Performance PLA burnout ash residue are limited and must be confirmed per lot.
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    Certification & Compliance
    More Introduction

    Essentium High Performance PLA- Annealed Additive Manufacturing Filament is a nucleation-modified polylactic acid compound supplied for material extrusion systems. The grade is identified in technical literature as PLA-HP and is intended for components that enter service only after a controlled furnace anneal cycle. Unlike commodity PLA, the material tolerates recrystallization above the glass transition of unmodified PLA without gross dimensional collapse. Published batch documentation lists filament diameters of 1.75 mm and 2.85 mm, with ovality and diameter tolerance verified by laser micrometry. Specific gravity is typically 1.24 g/cm³ under ASTM D792-20. The annealed condition is the relevant service state: heat deflection temperature at 0.455 MPa increases from approximately 50–55 °C as printed to 105–115 °C after a documented anneal cycle under ASTM D648-18. The material is not a direct substitute for polycarbonate, PEI, or PEEK, and batch-specific minima control production release.

    How does annealed PLA-HP differ from standard PLA in fused-filament processing?

    The difference is primarily crystallization kinetics. Unmodified PLA solidifies with low crystalline fraction at the cooling rates typical of open-chamber material extrusion, so as-printed heat deflection temperature remains near 50–55 °C at 0.455 MPa when tested to ASTM D648-18. Essentium PLA-HP contains a nucleating chemistry that shifts cold crystallization into a temperature window accessible in a forced-air furnace. Differential scanning calorimetry of similar nucleation-modified PLA grades shows an exothermic cold-crystallization peak between 90 °C and 110 °C when heated at 10 °C/min under ISO 11357-2:2020. The anneal cycle drives this crystallization in the printed part. The resulting crystalline fraction raises modulus and reduces viscous deformation above the glass transition. Tensile strength in the annealed condition falls near 48–58 MPa, while tensile modulus increases to 2.9–3.2 GPa under ASTM D638-14. Elongation at break remains limited at 2–4 %. Standard PLA has similar room-temperature tensile stiffness but loses dimensional utility above 55 °C; annealed PLA-HP survives short-term tooling interfaces at 90–110 °C. The trade-off is lower impact toughness and the addition of a controlled oven cycle not required for standard PLA.

    PropertyAs-printedAnnealedTest method
    Tensile strength50–60 MPa48–58 MPaASTM D638-14
    Tensile modulus2.6–2.9 GPa2.9–3.2 GPaISO 527-2:2012
    Elongation at break3–5 %2–4 %ASTM D638-14
    Heat deflection temperature at 0.455 MPa50–55 °C105–115 °CASTM D648-18
    Notched Izod impact20–35 J/m18–30 J/mASTM D256-10

    The ranges in the table are representative values from public PLA-HP technical literature and do not replace batch certificate data for critical tooling release.

    The largest dimensional deviation after annealing occurs along the Z-axis because layer interfaces relax and the part consolidates. A print strategy using solid walls, low gap fill, and monotonic infill at 40–60 % reduces internal void collapse. Cross-ply or alternating raster angles reduce in-plane anisotropy but increase XY-plane anneal shrinkage compared with aligned rasters. For fixtures with flatness requirements, the part is printed with the reference face upward, and critical holes are undersized by the measured Z-axis shrinkage before annealing. Reaming or re-machining after annealing is preferred for holes with positional tolerances below 0.10 mm.

    Thermal degradation pathways in nucleated PLA during annealing

    PLA degrades by random chain scission, hydrolysis, and oxidative degradation when held at elevated temperature. The anneal soak must remain shorter than the onset of significant molecular weight loss. For PLA, holding at 110 °C in air for 60 min can reduce melt viscosity if the material is not adequately dried. Degradation products are not always visible under ordinary inspection but reduce impact resistance and interlayer adhesion. Dry forced-air ovens with sufficient air exchange remove moisture and volatiles; still-air ovens can produce local overheating and nonuniform crystallization. Differential scanning calorimetry of the annealed part confirms crystalline fraction and detects residual cold-crystallization exotherm. An incomplete anneal leaves residual stress and can produce later distortion in service.

    On production-scale material extrusion equipment, the filament is processed through hardened tool-steel or abrasion-resistant nozzles when the nucleation system contains mineral filler; brass nozzles may wear rapidly. Direct-drive or short constrained filament paths are preferred because stiff PLA filament can snap in long Bowden systems with small guide-tube radii. The extrusion window is narrow: nozzle set temperature from 220 °C to 240 °C, build plate at 60 °C, and chamber held between 30 °C and 50 °C. Layer thickness is normally selected between 0.15 mm and 0.25 mm. Larger 0.6 mm nozzles reduce melt-pressure stability and require lower extruder speed. Drying at 60 °C for 4 h in a desiccant dryer or vacuum oven is required after exposure to 60 % relative humidity for more than 8 h. PLA hydrolyzes in the melt and produces splay, viscosity loss, and weak layer fusion. A dryer dew point below -40 °C is used for continuous production. Batch melt flow rate should be recorded under ISO 1133-1:2022 before production release because nucleator content and molecular weight affect extrusion pressure and anneal shrinkage.

    Process variableControl rangeMeasurement point
    Nozzle set temperature220–240 °CHeater block thermocouple
    Build plate temperature60 °CPlate surface thermocouple
    Chamber temperature30–50 °CEnclosure thermistor
    Drying60 °C for 4 hDesiccant dryer dew point below -40 °C
    Annealing ramp0.5–1 °C/minProgrammable oven thermocouple
    Annealing soak80–110 °C for 30–60 minPart core or oven profile thermocouple
    Cooling0.5 °C/min to below 40 °COven ramp control

    When oven annealing becomes a dimensional compensation problem

    The anneal step is not a passive bake. As the printed part crosses the cold-crystallization onset, frozen-in extrusion stress relaxes and the part shrinks anisotropically. Published annealed-PLA process evaluations report Z-direction shrinkage from 1.0 % to 2.0 %, with XY shrinkage below 0.5 %, although exact values depend on infill geometry, solid-wall count, raster orientation, and oven loading. For tooling fixtures, the scale factor is derived from measured test coupons on the same printer and oven, not from a nominal material constant. Flatness deviation is most severe when parts are placed directly on a heated steel shelf because the bottom surface heats faster than the top, producing a thermal gradient and upward bowing. Production procedures place the part on a flat aluminum or borosilicate support with low-contact pins, ramp at 0.5–1 °C/min to a soak temperature between 80 °C and 110 °C, soak for 30–60 min, and then cool at 0.5 °C/min to below 40 °C before removal. Exceeding 110 °C or applying rapid ramp rates causes warping, surface blistering, and local collapse. Forced-air ovens with a spatial uniformity of ±5 °C or better are required for critical parts. Batch-to-batch variation in nucleator concentration and extrusion residence time changes the cold-crystallization temperature and optimum soak. A sacrificial part from each batch should be annealed and inspected on a granite surface plate with dial indicators, and the resulting compensation factor stored in the part manufacturing record.

    Storage conditions before printing affect filament roundness and melt stability. Sealed bags with desiccant are required after opening. Ambient exposure above 60 % relative humidity for more than 8 h requires re-drying. A dry box at 10 % relative humidity or lower is used for continuous machine loading. Moisture uptake also changes anneal shrinkage because absorbed water plasticizes the polymer and lowers the glass transition; pre-dried and undried parts from the same batch may not share the same compensation factor.

    Post-anneal inspection consists of dimensional audit, flatness measurement, and destructive testing of witness coupons. A coordinate measuring machine or surface plate with dial indicators is used for flatness deviations below 0.10 mm. Internal voids from anneal collapse are visible as sink marks; sections may be cut and polished to examine interlayer fusion under a microscope.

    Although annealed PLA-HP is not a high-temperature polymer, production tool rooms specify it for low-volume assembly fixtures, inspection gauges, robotic end-of-arm tooling, and short-run thermoforming support surfaces where the tool interface remains below the continuous-use threshold. In composites layup, annealed PLA-HP drill fixtures and caul plates are used for room-temperature and low-temperature cure cycles up to approximately 85–90 °C; published data for autoclave exposure above 120 °C are limited, and the material should not be used as a direct replacement for filled PEEK, PEI, or metal tooling. The material is not specified for direct food-contact or medical-device applications unless regulatory article testing is completed. For industrial product-development projects, the annealed grade can replace machined acetal or aluminum in short-run assembly aids where electrically insulating, lightweight tooling is beneficial. The primary service limitation is creep under sustained load at elevated temperature; design verification under ISO 899-1:2003 is used when fixtures are loaded continuously above 60 °C.

    Documentation, compliance, and operational boundaries for production release

    Production release of Essentium PLA-HP is controlled by the batch certificate, which records diameter, ovality, moisture content, and melt flow rate. Mechanical acceptance tests are performed on annealed specimens using ASTM D638-14, ASTM D790-17, and ASTM D648-18. Industrial users should request REACH and RoHS declarations for the raw polymer; printed articles may require end-user article assessment under applicable electrical equipment, machinery, or packaging directives. The polymer remains hydrolytically sensitive, and service in humid environments above 60 % relative humidity requires dimensional stability testing because PLA absorbs moisture and swells. The material is incompatible with amine-based process chemicals, strongly alkaline cleaning solutions, and prolonged immersion in hot water above 70 °C. Continuous service above 90 °C under mechanical load is outside the documented operational boundary unless creep testing demonstrates sufficient margin for the specific geometry.

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