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BASF 3D Ultrafuse HiPS Fused Fillament

    • Название продукта: BASF 3D Ultrafuse HiPS Fused Fillament
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    Код ТН ВЭД 478871

    Как аккредитованный завод BASF 3D Ultrafuse HiPS Fused Fillament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    Применение плавленного наполнения BASF 3D Ultrafuse HiPS

    The use of BASF 3D Ultrafuse HiPS Fused Filament as a sacrificial support body in dual-extrusion fused filament fabrication of ABS or ASA parts is governed by the selective solubility of high-impact polystyrene in technical-grade d-limonene CAS 5989-27-5. A dedicated support extruder with a 0.4 mm brass or hardened nozzle is normally operated at 230 °C to 245 °C. The ABS or ASA model extruder is held at 240 °C to 255 °C. The build plate is heated to 95 °C to 105 °C. An enclosed chamber, if available, is maintained at 45 °C to 60 °C to reduce differential shrinkage between the two polymers. When the filament has been exposed to relative humidity above 60% for more than 24 h, drying at 80 °C for 4 h is advised before support printing. Retraction on the HIPS nozzle is set to 1.5 mm to 2.5 mm at 30 mm/s. A wipe tower or prime pillar is used to reduce cross-contamination because residual HIPS in the model nozzle can create local weak interfaces in the ABS component. The support profile is generated with a grid or zig-zag structure at 20% to 30% density, 1 to 2 interface layers, a Z-contact gap of 0.1 mm to 0.15 mm, and an XY offset of 0.2 mm. A smaller Z-contact gap improves down-facing surface flatness but raises separation force after solidification. A larger gap weakens support anchoring and can cause support delamination during prolonged printing of tall ABS cores. In production-size enclosures, the support-to-part contact is deliberately confined to shallow regions because large contact areas may not release reliably in the dissolution bath. Removal is performed in technical-grade d-limonene at 50 °C to 60 °C in an agitated or ultrasonic bath. Dissolution rate is geometry-dependent. Blind internal channels require longer residence than exposed support ribs. A sacrificial panel with equivalent support density and contact gap is validated before a full build. Higher bath temperature accelerates dissolution but can soften the ABS component near its glass transition region, causing distortion if the part is not supported on a cooling rack. After removal, porous residues are removed by hot-air drying at 60 °C for 2 h. The terminal output is an ABS or ASA functional component with closed internal channels, snap features, or undercuts that cannot be printed without support. Compliance requires a verified REACH registration for d-limonene and a RoHS Directive 2011/65/EU certificate for the HIPS filament. The support material is not regarded as food-contact grade, and the use of recycled d-limonene for cleaning is outside the supplier's controlled application window.

    What Processing Window Limits a Printed HIPS Vacuum Forming Master Before Surface Degradation Occurs?

    A printed HIPS master plug can be used for low-run thermoforming of polystyrene or polyethylene sheet when the plug temperature is kept below the heat deflection temperature of the high-impact polystyrene matrix. The printed body is built with a solid infill density of 100% or with a shell count of 8 and a rectilinear internal fill of 35%. Wall thickness at the plug face is maintained at 4 mm to 6 mm to resist clamping force and plug assist load. The draft angle is set to 3° to 5° to permit sheet release. Lower draft angles are tolerated only after surface polishing to an average roughness below 1.6 µm Ra. The printed surface is sealed with a 0.5 mm to 1.5 mm epoxy patty or primer layer before use. Direct contact with sheet heated to 160 °C to 180 °C is limited to 5 s to 10 s per cycle. Prolonged contact causes local softening, gloss loss, and dimensional drift. Published durability data for FFF-printed HIPS master plugs under repeated thermoforming contact is limited. A pilot plug should therefore be tested for 10 to 20 cycles before a short production run. Terminal parts are prototype packaging trays, shallow covers, and display blisters. The master is a process aid and does not govern the food-contact status of the formed sheet. If a formed article is intended for food contact, the sheet supplier's Declaration of Compliance under EU 10/2011 applies independently of the HIPS master. Operational limits apply to plug-assisted forming; free-drawn forming without plug contact is less sensitive to surface thermal degradation but may produce higher material distribution variance.

    On low-voltage electronic assembly lines, printed HIPS enclosure prototypes are evaluated mainly for fit, connector placement, and drop-test durability at ambient temperature. The part is printed with an infill density of 25% to 35%, a gyroid or cubic infill pattern, 3 perimeters, and 5 top and bottom layers. Wall thickness is kept between 2.0 mm and 2.5 mm for mounting bosses and snap features. Heat-stake threaded inserts require a boss outer diameter of 2.0× the insert outer diameter and a minimum wall thickness of 1.5 mm. The hole depth is the insert length plus 0.4 mm to prevent bottom-out cracking. The high-impact polystyrene matrix normally achieves only a UL 94 HB horizontal burn rating. Therefore the printed housing is not suitable for a UL 94 V-0 application. Continuous service above 55 °C is not recommended because of creep at load-bearing bosses and connector pressure points. Terminal components include bench-top instrument housings, power supply covers, and sensor enclosures used in non-radiative development environments. If the assembly will reach an internal temperature above 60 °C due to battery or transformer losses, the material selection must be replaced by a higher-heat polymer. Tolerance on mounting hole location is validated on a coordinate measuring machine to ±0.2 mm before the design is released for injection moulding.

    Application segmentNormative referenceMethod or clauseBoundary condition
    Soluble support removalEU 1907/2006d-limonene CAS 5989-27-5Bath temperature not above 60 °C to avoid ABS distortion
    Flame class verificationUL 94 HBHorizontal burn, 3.0 mm specimenNot valid for a V-0 enclosure requirement
    Tensile property comparisonISO 527-2Type 1A, 5 mm/minFDM anisotropy must be quantified on printed specimens
    Heat deflection assessmentISO 75-2Method B, 0.45 MPaLoad-bearing use limited to below 55 °C
    Restricted substance control2011/65/EUMaterial supplier declarationVerification required for pigment and additive package

    When a HIPS Fixture Must Not Be Deployed in Continuous Contact with a Heated Platen

    Printed HIPS fixtures on assembly lines are limited to room-temperature positioning, routing, drilling, and inspection tasks. The fixture body is produced with a cubic infill density of 30%, 3 perimeters, and 4 top and bottom layers. For reusable drill bushings or insert retention, the boss outer diameter is maintained at 2.0× the insert outer diameter. The receiving hole is drilled or reamed to a depth of the insert length plus 0.5 mm. Minimum remaining wall under the insert is 1.5 mm. Continuous exposure to a heated platen above 55 °C produces creep at clamping points. The fixture must not be placed in reflow ovens, wave-solder pallets, or adhesive curing stations where the air temperature exceeds 60 °C. Terminal devices are wire harness routing boards, drilling templates, and benchtop inspection gauges. HIPS has no inherent ESD-safety classification. If electrostatic discharge protection is required, a temporary antistatic coating with a surface resistivity between 10^6 ohm/square and 10^9 ohm/square is applied, but this coating is not a permanent ESD guarantee. DIN EN 61340-5-1 requires verification of dissipative behavior for the complete assembly before use in an EPA.

    For low-run RTV silicone tooling, a printed HIPS master is solvent-smoothed and sealed before the mould cavity is poured. The master is sanded from 400 to 600 grit, coated with a two-component epoxy sealer at 0.3 mm to 0.5 mm dry film thickness, and treated with a suitable mould release. A platinum-cure RTV silicone is mixed at 10:1 base-to-catalyst by weight and vacuum-degassed at -0.09 MPa for 5 min. The mixture is poured over the HIPS master and cured at 25 °C for 24 h. The cured mould is then used for casting polyurethane parts in quantities from 10 to 50 units. Terminal parts are short-run functional prototypes, soft-touch overmoulds, and test-market housings. The dimensional fidelity of the silicone cavity is affected by the sealer thickness and the HIPS coefficient of thermal expansion. If the casting polyurethane is intended for prolonged skin contact, the polyurethane supplier's migration and sensitisation data apply under ISO 10993-10; the HIPS master does not transfer a biocompatibility claim to the cast part.

    Primer and Topcoat Adhesion on Solvent-Smoothed HIPS Appearance Models

    FFF layer striations on HIPS models are removed by dry sanding with 320 to 600 grit paper, followed by degreasing with isopropanol. A two-component polyurethane primer is mixed at 3:1 by volume as supplied by the coating formulator and sprayed to a dry film thickness of 25 µm to 50 µm per coat. After curing, the primer is sanded with 800 grit paper before a two-component topcoat mixed at 2:1 by volume is applied. Solvent vapour smoothing with d-limonene at 45 °C for 10 min to 15 min is possible but is not recommended for fine features below 1.0 mm because the vapour attack rounds edges and closes small recesses. Terminal products are automotive interior appearance models, consumer electronics design mock-ups, and medical housing form studies. The painted HIPS model is not suitable for continuous skin contact in a clinical environment without separate biocompatibility assessment of the coating stack. VOC content of the primers and topcoats is governed by Directive 2004/42/CE; the operator must verify the formulation category and use the appropriate spray booth air extraction rate.

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    Более подробное введение

    BASF 3D Ultrafuse HiPS Fused Fillament (commercially listed as Ultrafuse HiPS Fused Filament) is an unfilled high-impact polystyrene extrusion feedstock for fused filament fabrication. The product model is supplied in 1.75 mm and 2.85 mm nominal diameters with a diameter tolerance of ±0.05 mm. Published processing guidance defines a nozzle set-point range of 230–250 °C, a heated-bed range of 90–110 °C, and a print-speed envelope of 30–80 mm/s for a 0.4 mm nozzle. Although the butadiene-modified styrene backbone absorbs moisture more slowly than PLA, spools held at relative humidity above 60% for more than 48 h should be dried at 80 °C for 4 h before extrusion. The unfilled material has a density of 1.04 g/cm³ when tested in accordance with ISO 1183-1, a tensile modulus near 2100 MPa under ISO 527-2, and a Vicat softening temperature of 96 °C under ISO 306/B50. Because the grade is amorphous, it lacks a crystalline melting peak; the processing window is therefore defined by melt viscosity and thermal stability rather than by a melting transition. The standard safety data sheet classifies the solid filament as non-hazardous in supplied form, but local exhaust ventilation is required during extrusion because styrenic decomposition products are released at the upper end of the processing window.

    Why Does Ultrafuse HiPS Occupy a Separate Processing Niche from PLA and ABS?

    Unlike PLA, which loses dimensional stability above its glass-transition range of 55–60 °C and bubbles during extrusion after modest moisture exposure, HiPS maintains a Vicat softening point near 96 °C and does not require vacuum-sealed desiccant storage for routine printing. The styrene-rich matrix also forms a stronger interfacial bond with styrenic part materials such as ABS and ASA than with polyolefin or PETG counterparts, because interlayer chain entanglement occurs across the melt boundary. Compared with ABS, HiPS displays lower warpage on open-frame build plates because the dispersed rubber phase reduces shrinkage stress, but the trade-off is a lower heat deflection temperature: commercial ABS grades often exceed 100 °C under ISO 75-2/A, whereas HiPS is specified in the 84–96 °C range depending on test method. The most operationally significant difference is solubility. HiPS dissolves in d-limonene under mild heating, enabling support-removal protocols that are impractical with water-soluble PVA unless the operator maintains PVA storage below 30% RH to avoid spool blocking. This makes HiPS a rigid, moisture-tolerant support choice for complex styrenic builds, whereas PLA and PETG support structures typically require mechanical separation or alkaline hydrolysis.

    Published datasheet values for specimens printed at 250 °C, bed temperature 100 °C, and 40 mm/s in a 0.4 mm direct-drive FFF system are summarized in the following matrix. Specimens were conditioned at 23 °C and 50% RH for 24 h before mechanical testing; the values are typical lot averages and not batch-release limits.

    PropertyTest methodTypical value
    DensityISO 1183-11.04 g/cm³
    Tensile modulusISO 527-2/1A/12100 MPa
    Tensile stress at yieldISO 527-2/1A/5021 MPa
    Tensile strain at breakISO 527-2/1A/5040%
    Flexural modulusISO 1781900 MPa
    Flexural strengthISO 17835 MPa
    Charpy notched impact strengthISO 179-1/1eA10 kJ/m²
    Vicat softening temperatureISO 306/B5096 °C
    Heat deflection temperature at 0.45 MPaISO 75-2/B85 °C

    Tensile values obtained under ASTM D638-14 are not directly interchangeable with ISO 527-2 results because of differences in specimen gauge geometry and extensometer practice. The reported modulus and yield values reflect the butadiene-toughened styrene architecture: the material yields before extensive cold flow, and the break strain remains high enough for snap-fit geometries that would fracture brittle standard PS homopolymer at similar thickness.

    Nozzle Wear, Feed Tension, and Open-Frame Bed Adhesion in Production-Scale HiPS Runs

    On production FFF equipment with Bowden feed paths longer than 400 mm, HiPS can show feed inconsistency because the rubber-modified matrix has lower column stiffness in the melt-transition zone than ABS. Feed-roller idler pressure should be reduced to avoid shaving the filament surface; visible surface deformation from the feed roller is an early failure indicator. Direct-drive toolheads or constrained filament paths provide the most stable output. Brass nozzles are acceptable because the unfilled grade is non-abrasive; hardened steel is necessary only when the same toolhead is shared with abrasive carbon-fiber or glass-fiber materials. For open-frame systems, first-layer adhesion is more reproducible at 105–110 °C on glass with PVP-based adhesive or polyimide tape. Corner lift on parts with z-height above 120 mm is a known failure mode when the build surface is below 95 °C; reducing first-layer speed to 10–20 mm/s and increasing first-layer extrusion width to 120% of nozzle diameter reduce peel initiation. Because HiPS solidifies with less volumetric shrinkage than ABS, enclosed chamber temperatures of 35–50 °C are sufficient for most parts; polycarbonate requires substantially higher chamber temperatures. A heated chamber is not mandatory for small parts below 50 mm in z-height, but temperature fluctuations above 5 °C during a build can create visible layer banding because the amorphous polymer expands and contracts uniformly with the build plate.

    Under ISO 1133-1:2022, the melt volume rate of the standard HiPS grade is typically evaluated in the range 5–8 cm³/10 min at 200 °C/5 kg. This moderate viscosity supports extrusion at 230–250 °C, but prolonged residence above 270 °C is not recommended because the butadiene impact modifier begins to oxidize and deposits a tacky film on the nozzle exterior. The amorphous nature of HiPS removes crystallization-related layer fusion limitations; interlayer strength is controlled by melt temperature, contact pressure, and cooling rate. At cooling rates above 30 K/min, frozen-in orientation increases tensile modulus but reduces notched impact strength. Annealing printed parts at 70–80 °C for 2 h reduces residual stress in thick sections and improves dimensional stability before machining.

    Free-shrinkage values measured on printed bars are typically 0.4–0.6% in the X and Y directions, lower than the 0.7–1.0% range commonly reported for ABS under similar open-frame conditions. The lower shrinkage is a direct consequence of the rubber-toughened morphology: the dispersed polybutadiene particles act as stress concentrators that initiate multiple microvoids rather than permitting large-scale orientation relaxation. This behaviour reduces visible warp on large flat parts but also lowers the modulus relative to glass-filled styrenic materials. For applications requiring higher stiffness, the unfilled HiPS grade should be substituted with a glass-filled or carbon-fiber-filled material in the Ultrafuse range rather than by increasing shell count alone, because additional perimeters do not change the matrix modulus.

    When D-Limonene Support Removal Is Required but Solvent Exposure Limits Build Envelope

    In multi-material builds where HiPS is printed as sacrificial support beneath ABS or ASA, the support is removed by immersion in d-limonene heated to 40–60 °C. Dissolution time is governed by solvent access and support density. Open lattice support with 2 mm channels typically clears within 2–6 h, whereas closed cavities and internal ducts may require 12–24 h or forced solvent circulation. Dissolution rate is not linear with temperature; raising the bath temperature from 40 °C to 60 °C can reduce clearing time by approximately half, but heat accelerates solvent evaporation and increases the volatile organic compound load on the workspace. The solvent does not attack ABS or ASA at the same immersion time, but it can swell polycarbonate sight windows, silicone seals, and some elastomeric gaskets; processing equipment should therefore be dedicated or inspected before multi-material use. d-Limonene has a flash point near 48 °C and requires local exhaust ventilation, spark-resistant heating, and grounded ultrasonic bath controls. Because the solvent is a terpene, waste removal must follow local volatile organic compound disposal rules. Solvent-soluble support stacks are not compatible with PLA part materials because PLA softens in hot d-limonene and the differential extraction rate can distort thin part walls. The use of HiPS support therefore imposes a material compatibility boundary: it is best paired with styrene-rich part materials, and it is not a universal support solution for polyolefin or polyester build platforms.

    Operational incompatibilities centre on solvent exposure and service temperature. Parts should not be cleaned with acetone, methyl ethyl ketone, or chlorinated solvents because these agents induce environmental stress crazing in the polystyrene matrix. Continuous service above 85 °C under load is not recommended for load-bearing geometries because the heat deflection temperature is below that of ABS and ASA. The standard processing datasheet does not include an FDA 21 CFR food-contact statement or an EU 10/2011 migration listing; food-contact, medical, and toy uses require explicit supplier documentation under the applicable regulation. Under Regulation (EC) No 1907/2006, the safety data sheet lists the standard grade as non-hazardous in supplied solid form, but processing emissions from styrenic polymer at 230–250 °C require local ventilation. For UV-exposed outdoor components, HiPS is not a direct substitute for ASA because the butadiene-rich impact-modifier phase undergoes photo-oxidation unless a UV-stable coating or black pigment is applied.

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