| HS Code | 660207 |
| Material Type | High Impact Polystyrene (HIPS) |
| Form | Pellets |
| Density | 1.04 g/cm3 |
| Melt Flow Rate 200 C 5 Kg | 4.5 g/10 min |
| Tensile Modulus | 1700 MPa |
| Tensile Stress At Yield | 25 MPa |
| Tensile Strain At Break | 40% |
| Flexural Modulus | 1900 MPa |
| Charpy Notched Impact Strength 23 C | 9 kJ/m2 |
| Vicat Softening Temperature A 50 | 85°C |
| Heat Deflection Temperature 0 45 Mpa | 75°C |
| Rockwell Hardness L Scale | 70 |
| Recommended Printing Temperature | 230-250°C |
| Recommended Bed Temperature | 90-110°C |
| Drying Temperature | 70-80°C |
| Drying Time | 2-4 h |
| Shrinkage | 0.4-0.7% |
As an accredited Versalis Impressio HIPS E05 3D Printing Filament Grade High Impact Polystyrene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
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Versalis Impressio HIPS E05 3D Printing Filament Grade High Impact Polystyrene is a polybutadiene-modified styrenic feedstock intended for fused filament fabrication, sacrificial support tooling, and printed prototype production. The E05 suffix is associated with a target melt flow index of 5 g/10 min under ISO 1133-1:2022 condition H at 200°C and 5 kg applied load. Density is reported at 1.04 g/cm³ under ISO 1183-1:2019. The material consists of a continuous polystyrene-rich phase and dispersed polybutadiene rubber domains; this two-phase morphology raises notched impact resistance relative to general-purpose polystyrene but lowers transparency and tensile stiffness. Filament-grade feedstocks are spooled to fused filament fabrication diameter conventions of 1.75 mm and 2.85 mm. Typical diameter control is ±0.05 mm with ovality held at 0.05 mm or less, but acceptance criteria must be taken from the lot-specific certificate of analysis. Published single-point mechanical values for this exact grade are limited; the manufacturer’s technical data sheet and CoA should be consulted before qualification.
Rubber modification changes the predominant failure mechanism from catastrophic craze propagation to multiple crazing and shear yielding. Unmodified general-purpose polystyrene typically exhibits notched Charpy impact values below 2.5 kJ/m² at 23°C under ISO 179-1:2010; high-impact polystyrene in filament use commonly falls between 8 kJ/m² and 12 kJ/m² under the same test configuration. The polybutadiene content in extruded high-impact polystyrene is usually held between 7 wt% and 12 wt%. Higher rubber levels increase energy absorption but lower flexural modulus and melt strength. Effective rubber particle diameters in high-impact polystyrene are typically between 0.5 µm and 5 µm. Particles below 0.5 µm do not craze efficiently; particles above 5 µm reduce surface gloss and tensile strength. This morphological distribution is controlled during polymerization and is not adjustable by the filament converter.
The continuous polystyrene-rich phase exhibits a glass transition near 100°C by ISO 11357-2:2020, while the dispersed rubber phase retains a glass transition near -80°C. This phase separation preserves impact resistance below room temperature but reduces load-bearing stiffness at service temperatures above 70°C. The E05 melt index of 5 g/10 min under ISO 1133-1:2022 is positioned for monofilament extrusion. A lower melt index would increase melt pressure and spool-winding induced tensile stress; a higher melt index would reduce melt strength and cause diameter sag before water-bath quenching. The rubber phase also decreases brittle failure during manual support removal and improves interlayer adhesion on acrylonitrile-butadiene-styrene substrates.
Pre-extrusion handling imposes specific operational constraints. High-impact polystyrene is less hygroscopic than ABS, but moisture above 0.05 wt% generates surface roughness and diameter fluctuation during monofilament extrusion. When ambient relative humidity exceeds 60%, pellets are dried at 70–80°C for 2–4 h in a desiccant dryer. On twin-screw compounding lines with L/D ratio 28:1–32:1, the melt-temperature set point is maintained between 200°C and 230°C. Excursions above 240°C degrade the polybutadiene phase and form gel particles that obstruct melt filtration. Melt temperatures below 190°C cause high die pressure, melt fracture, and diameter oscillation. Gear-pump discharge pressure is commonly held at 50–90 bar before the screen pack. Water-bath temperature is set at 25–40°C with haul-off tension below 0.5 N to limit draw-induced orientation. Laser diameter scanners operating at 50 Hz provide closed-loop diameter control. Regrind levels above 15 wt% can shift melt viscosity because repeated heat history crosslinks the rubber phase.
The process is not a simple single-screw operation. A twin-screw configuration with vacuum venting is preferred because it removes residual styrene monomer and entrained air before the die. The vacuum port is operated at 0.08–0.1 MPa absolute pressure. Screw profiles with low-shear mixing elements are selected to reduce frictional heating in the rubber phase. This limits melt-temperature overshoot to less than 5°C at high screw speeds. The melt is filtered through a screen pack of 80–120 mesh to remove gel particles. Gel particles above 40 µm in diameter are the main cause of filament breakage during spooling and should be monitored by pressure rise before the breaker plate. A pressure rise above 0.3 bar/h indicates gel accumulation and requires an immediate melt-temperature reduction.
Melt rheology is the most direct quality marker for lot acceptance. Oscillatory shear measurements at 210°C on high-impact polystyrene melts generally show a power-law shear-thinning index between 0.3 and 0.5 over the shear-rate range 10–1000 s⁻¹. When the polybutadiene phase begins to crosslink, the low-frequency storage modulus rises and the loss tangent falls. This is accompanied by a reduction in melt flow index from the nominal 5 g/10 min toward 3 g/10 min or lower under ISO 1133-1:2022. The ratio of melt flow index after two consecutive extrusions to the virgin value is used as a process stability test; a retention below 70% indicates excessive rubber-phase degradation.
Extended melt residence time is a more significant risk than short-term temperature spikes. At 230°C, typical residence times above 10 min produce measurable gel formation in the polybutadiene phase. Melt strength is therefore measured on a capillary rheometer or Rheotens apparatus before release. Filament draw resonance is minimized when the draw ratio is held below 6:1 and the melt temperature is not permitted to fall below 200°C at the die lip. These rheological boundaries differentiate a filament-grade HIPS from an injection-molding grade, where higher melt flow and faster cycle times are prioritized over melt strength and diameter stability.
Printer parameters for Impressio HIPS E05 are defined by the feedstock’s melt index and rubber content. Nozzle set-points from 220°C to 250°C are used on conventional fused filament fabrication machines; build plate temperatures are held between 80°C and 110°C. When a heated chamber is available, chamber air at 40–60°C reduces edge uplift on parts longer than 150 mm. Cooling fans should be disabled or limited to 30% for the first layers and then ramped gradually. Aggressive cooling increases interlayer stress and delamination. The material is used as a soluble support for ABS because d-limonene selectively dissolves high-impact polystyrene while leaving ABS intact. For printing HIPS alone, an aluminium or polyimide build surface coated with an adhesion promoter such as an ABS/acetone slurry is required. First-layer edge lifting is the dominant failure mode when bed temperature falls below 80°C or when bed tramming errors exceed 0.1 mm across the build plate.
Qualification prints are usually performed with a 20 mm × 20 mm × 25 mm notched test coupon to track layer adhesion and warpage. Infill density below 20% reduces residual stress but lowers crush resistance. Raster angles alternating at ±45° improve in-plane isotropy versus a single direction. Moisture in spooled filament above 0.05 wt% produces steam bubbles and poor interlayer healing; drying filament at 60°C for 4–6 h can recover processability. These parameter choices are printer-specific; published data for this exact configuration are limited, so each machine should be qualified with a short factorial run covering nozzle temperature, bed temperature, and cooling fan threshold.
Support dissolution in d-limonene is controlled by solvent diffusion into the styrenic matrix, swelling of the rubber phase, and convective mass transfer at the support interface. The removal rate is geometry-dependent: narrow channels with high aspect ratios show much slower extraction than open support structures. Bath temperature is typically set between 25°C and 60°C. Temperatures above 60°C accelerate solvent uptake but can distort thin ABS or PLA sections. The chemical compatibility of printed HIPS with d-limonene is screened by immersion testing under ASTM D543-20; no single ISO standard defines dissolution rate for fused filament fabrication supports.
Ultrasonic agitation at 40 kHz reduces removal time by a factor of two to three relative to static immersion at the same bath temperature, but the exact reduction depends on support density, part orientation, and cavity ventilation. Complex internal channels should be designed with minimum diameters greater than 2 mm or with multiple solvent access ports; otherwise support removal can exceed dissolution testing by an order of magnitude. d-Limonene is flammable and irritant; its closed-cup flash point is approximately 48°C. Spent d-limonene containing dissolved polystyrene is a regulated waste stream in many jurisdictions and must be handled under local hazardous-waste requirements. During printing at nozzle temperatures above 230°C, styrene off-gassing must be controlled by local exhaust ventilation.
The table summarizes representative property envelopes for high-impact polystyrene, general-purpose polystyrene, ABS, and PLA. Values are extracted from publicly available polymer data sheets and ISO 10350-1:2017 single-point reporting conventions; they are not lot-specific guarantees for Impressio HIPS E05.
| Property | Test method | HIPS filament envelope | GPPS envelope | ABS envelope | PLA envelope |
|---|---|---|---|---|---|
| Tensile yield stress | ISO 527-2/1A/50 | 18–30 MPa | 30–55 MPa | 35–50 MPa | 45–65 MPa |
| Notched Izod impact at 23°C | ISO 180/A | 8–15 kJ/m² | 1.5–3 kJ/m² | 12–30 kJ/m² | 3–8 kJ/m² |
| Flexural modulus | ISO 178 | 1500–2500 MPa | 2500–3500 MPa | 1800–2600 MPa | 2500–3500 MPa |
| Vicat softening temperature B50 | ISO 306 | 80–100°C | 95–105°C | 95–110°C | 55–65°C |
| Density | ISO 1183-1 | 1.03–1.06 g/cm³ | 1.04–1.06 g/cm³ | 1.03–1.07 g/cm³ | 1.24–1.26 g/cm³ |
From this comparison, the E05-like high-impact polystyrene filament occupies an intermediate position between GPPS and ABS in impact and stiffness. It is selected over GPPS when printed parts are subjected to snap-fit assembly or support-removal stress; it is selected over ABS when lower enclosure demands and d-limonene support dissolution are priorities. However, Vicat softening temperature is below that of ABS and GPPS, so continuous load-bearing service above 70°C is not recommended. PLA has higher stiffness but low heat resistance and is not soluble in d-limonene, so it cannot serve as a sacrificial support for ABS. The filament-grade E05 also differs from standard injection-molding HIPS by its controlled melt flow index and gel-particle level; injection-molding HIPS grades often use melt flow indices of 6–12 g/10 min, which can reduce monofilament melt strength and promote diameter variability during spooling.
Compliance documentation for Versalis Impressio HIPS E05 should include REACH Regulation (EC) No 1907/2006 Article 33 substance communication and RoHS Directive 2011/65/EU Annex II restricted substances. For food-contact applications, 21 CFR 177.1640 covers polystyrene but does not automatically cover impact modifiers, colorants, or processing aids used in filament production. Storage is recommended at 10–30°C and below 60% relative humidity in sealed barrier bags with desiccant. Pellets and filament that have absorbed moisture above 0.05 wt% should be dried before processing. The grade is not recommended for continuous service in contact with strong oxidizing agents, aromatic solvents, or ketones. These conditions represent the operational boundary, and specific application qualification remains the responsibility of the converter because printed-part mechanical performance depends on print orientation, raster angle, and interlayer fusion.
Lot-to-lot variance should be tracked through melt flow index retention, notched impact on injection-molded plaques, and filament diameter capability. The rubber-phase content and gel-particle count are not visible on a datasheet but strongly influence first-layer extrusion stability and soluble-support dissolution consistency.