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Как аккредитованный завод Clariant Natural Color High Impact Polystyrene 3D Printer Filament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
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In industrial FFF cells running ABS and ASA components with trapped channels, snap-fit recesses, and through-holes that cannot be machined after printing, Clariant natural-color high-impact polystyrene 3D printer filament is consumed as a sacrificial support phase. Incoming filament diameter is verified by two-axis laser micrometer against 1.75 mm ± 0.05 mm or 2.85 mm ± 0.10 mm before the spool is released to the cell. The standard processing window on commercial dual-drive extruder toolheads is a nozzle setpoint of 235–245°C, a borosilicate glass or PEI bed at 100–110°C, and a chamber stabilized at 60–80°C to prevent ABS delamination. The HIPS support fraction is held between 20 vol% and 40 vol% of the total build envelope; the interface is printed at 100% density for 2 to 4 layers, while bulk support is stepped down to 15–30% rectilinear or gyroid fill. Support separation is performed in a stirred d-limonene bath at 40–60°C and 70–100% concentration, typically 2–6 h for small parts; ultrasonic excitation below 40 kHz shortens cycle time but may induce environmental stress cracking in thin ABS walls above 0.8 mm unsupported span, so validation is required. Regulatory compliance for the support-removal work cell includes reviewing terpene solvent classification under Regulation (EC) No 1272/2008 (CLP), verifying the filament and printed part against Directive 2011/65/EU Annex II and REACH Regulation 1907/2006, and auditing printed-part residue by gravimetric extract after drying. Terminal output includes chemical-resistant ABS air-handling housings, ASA automotive sensor brackets, robotic end-effector ducting, and low-pressure pneumatic manifolds.
Injection molders that convert high-impact polystyrene for appliance housings, point-of-purchase displays, and consumer electronics covers use natural-color HIPS filament prototypes to interrogate wall thickness, snap-fit deflection, and assembly interference before the core and cavity are machined. The material is extruded neat at 100% HIPS by mass; fill ratio is a controlled process variable rather than a formulation variable, and test bars are printed with 100% infill, 4–6 perimeters, 5–8 top and bottom layers, and a 0.2 mm layer height to align with ISO 527-2:2012 type 1B specimen geometry. Dimensional acceptance follows ISO 20457:2018; mechanical property references are ASTM D638-22, ISO 178:2019, and ISO 75-2:2013 method A for deflection under load. On production-grade FFF equipment with heated cabinet, nozzle temperature is profiled between 230°C and 245°C, bed temperature at 95–110°C, and chamber air at 60–70°C, with the part oriented so that tensile loading occurs in the XY plane because Z-axis interlaminar strength is typically only 50–65% of XY tensile strength. Batch-to-batch melt flow index variation of ±1 g/10 min under ISO 1133-1:2022 changes die swell and stringing behavior, requiring pressure-advance and retraction re-characterization before each lot is released to dimensional prototyping. Terminal finished products include pre-production HIPS appliance side panels, toy housing shells, writing instrument barrels, and consumer electronics enclosure mock-ups that undergo CMM inspection and assembly stack validation.
For short-run thermoforming of PS, PETG, and HIPS sheet up to 1.5 mm gauge, a natural-color HIPS printed master serves as a replaceable tool on single-station shuttle formers and semi-automatic clamp-frame machines. Tool shell construction is governed by ISO 20457:2018 for general clearance and draft definitions and by ISO 75-2:2013 for heat deflection temperature validation under the forming temperature; the tooling master itself is printed at 100% HIPS, with 4–6 perimeter walls, 40–60% internal infill, and 0.20–0.30 mm layer height, then sealed with a filled epoxy face coat of 0.3–0.5 mm thickness to close macro-porosity. Post-processing includes mechanical removal of support, solvent-free sanding to 400–600 grit, and drilling vacuum holes of 0.8–1.2 mm diameter at 30–50 mm spacing on non-visible surfaces. The operating boundary is explicit: sheet surface temperatures must not exceed 160°C during draw, and localized contact with the tool should stay below the HIPS Vicat softening range of 90–100°C because dwell heat transfer from the hot sheet can plasticize the shell surface. Tool life on a 500 mm × 500 mm clamp frame is typically 50–150 cycles for sheet thicknesses up to 1.0 mm and decreases when gloss or edge sharpness is critical; published data for Clariant natural-color HIPS filaments in long-lifetime vacuum forming tools is limited. Terminal output includes low-volume display trays, clamshell inserts, point-of-purchase packaging blanks, and protective cavity liners.
Lost foam casting cells that require one-to-three aluminum or cast iron castings with internal passageways frequently machine patterns from EPS block; natural-color HIPS filament offers an alternative when the pattern geometry includes undercuts or when CNC chip evacuation is problematic. The sacrificial pattern is printed as a thin shell with 1.2–2.0 mm outer walls at 100% perimeter density and a reduced internal infill of 10–20% to limit gas evolution when the metal front contacts the polymer. Pattern volume is maintained between 3% and 8% of the cavity volume; this is not a formulation addition but a gas management ratio derived from pouring temperature and coating permeability. Industry compliance for the casting dimension is referenced to ISO 8062-3:2022 for required machining allowances and surface texture, while the polymer residue after pyrolysis is evaluated by thermogravimetric analysis according to ISO 11358-1:2022 as an in-house control, not as a direct substitute for foundry-specific pattern approval. Processing involves FFF at 230–240°C, solvent-welding sub-sections with d-limonene or MEK under local exhaust ventilation, assembling with wax gating, coating in a refractory slurry of 2–4 layers, air-drying to 0.5–1.0% moisture, and compacting in unbonded sand before aluminum pouring at 680–750°C. Because HIPS contains a higher aromatic fraction than EPS, vents and coating permeability must be increased; pattern burn-out can generate higher char residue, and published data for Clariant natural-color HIPS in lost foam casting is limited. Terminal parts are aluminum intake manifold prototypes, cast iron impeller housings, and replacement bronze valve bodies for short-run maintenance repair operations.
Rigid packaging lines that run thermoformed HIPS tubs, lids, and clamshells use natural-color FFF-printed HIPS prototypes to verify denester feed, lid closure force, and stacking height weeks before final thermoforming tooling is returned from the toolmaker. The prototype is printed as a neat HIPS shell with 1.5–2.0 mm wall sections, 3–4 perimeters, and 15–25% infill to approximate the mass and bending response of a thermoformed HIPS cup lid; no colorant or filler is added because natural resin is used to simulate photoelectric sensor response on filling lines running below 120 packs per minute. Compliance for the packaging application is dual: food-contact suitability of the base resin is reported under FDA 21 CFR 177.1640 and Commission Regulation (EU) No 10/2011, but the FFF-printed part itself is not automatically food-contact compliant and must be treated as a non-food-contact trial fixture unless post-processing and migration testing are performed for the specific line. Dimensional acceptance uses ISO 20457:2018; flexural data are referenced to ISO 178:2019 for comparative non-standard specimen screening only. Processing includes FFF at 230–240°C, bed 95–105°C, and cooling fan output no higher than 20% to avoid warping on long side walls; after printing, supports are removed mechanically or with d-limonene, and mating surfaces are lightly sanded to 240–320 grit. Terminal finished products are not saleable packaging but process-proving aids for single-serve HIPS dairy tubs, lid-under-cup geometries, display clamshell preforms, and dry-goods dosing scoops.
Assembly cells that handle parts below 2 kg and tool contact temperatures below 65°C can use natural-color HIPS FFF prints as low-cost locating and receiving fixtures, provided the fixture is not a safety guard or load-bearing structure. The build composition is 100% HIPS by mass with 4–6 perimeters, 50–75% gyroid infill, and 0.2 mm layer height; brass threaded inserts of M3 through M6 are installed by thermal insertion at 180–200°C, which is below the onset of rapid HIPS degradation. Fixture accuracy is evaluated under ISO 20457:2018, and the inherent RoHS compliance of the unfilled natural material is documented against Directive 2011/65/EU Annex II with supporting REACH Article 33 declarations under Regulation (EC) No 1907/2006 for any candidate substances from colorants or processing aids. Processing begins with FFF at nozzle 235–245°C and bed 100–110°C, followed by d-limonene or mechanical support removal, hole reaming to H7 tolerance, and insert installation with a temperature-controlled press. The operating boundary is explicit: continuous exposure to cutting fluids, alcohols, or methylene chloride will craze HIPS, and service above 65°C cannot be accepted because creep modulus declines sharply near the heat deflection region reported under ISO 75-2:2013. Terminal product types include CMM holding fixtures, non-ESD receiving trays, drill-guide bushings for pilot holes, and assembly alignment jigs for consumer electronics and medical device subassemblies that do not contact the patient or the product stream.
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Clariant Natural Color High Impact Polystyrene 3D Printer Filament is a pre-compounded, unfilled, impact-modified styrene thermoplastic supplied for fused filament fabrication and material extrusion on open-architecture and enclosed platforms. The resin consists of a continuous polystyrene matrix with dispersed polybutadiene domains, commonly reported in the 0.5 µm to 5.0 µm range for extrusion grades; this two-phase structure converts crack propagation from brittle crazing to shear-yield deformation, yielding notched Charpy impact values of 8 kJ/m² to 15 kJ/m² under ISO 179-1/1eA at 23 °C. The natural-color designation means the compound is formulated without carbon black, titanium dioxide, or organic pigments, which removes particulate contrast agents that complicate solvent-support separation and optical dimensional verification. The filament is supplied in nominal diameters of 1.75 mm ± 0.05 mm and 2.85 mm ± 0.10 mm. Batch certificates typically report density of 1.03 g/cm³ to 1.06 g/cm³ by ISO 1183-1:2019 and melt flow rate of 4 g/10 min to 7 g/10 min at 200 °C with 5.00 kg using ISO 1133-1:2022. Published lot-specific data for this Clariant configuration are limited; the numerical ranges cited here are representative for unfilled high-impact polystyrene extrusion grades and should be checked against the spool label or batch certificate.
The primary differentiation is selective dissolution. Unlike PLA, which has no practical low-temperature solvent for fused-deposition support structures without attacking the part, HIPS can be removed by immersion in d-limonene at 30 °C to 40 °C. Polyvinyl alcohol and butanediol vinyl alcohol copolymer supports are water-soluble, but their equilibrium moisture uptake at 23 °C and 50 % RH is often 8 % to 12 % by weight, requiring sealed storage; HIPS absorbs approximately 0.1 % to 0.3 % under the same conditions when measured by ISO 62:2008. ABS shares hydrocarbon solvent sensitivity, but commercial ABS filament is almost always pigmented or compounded with processing aids that slow solvent penetration at the support-part interface. The natural HIPS grade also sits between ABS and PLA in tensile modulus: representative unfilled filament values are 1500 MPa to 2200 MPa for HIPS, 1900 MPa to 2600 MPa for ABS, and 3000 MPa to 3500 MPa for PLA, all measured according to ISO 527-2:2012 at 23 °C. The lower modulus reduces warping forces on large, flat layers, but the Vicat softening temperature of 85 °C to 100 °C under ISO 306/B50 is lower than many ABS grades and limits continuous service above 80 °C in load-bearing geometries.
In dual-extrusion use, this grade functions as a breakaway support for ABS and, to a lesser extent, for styrene-based terpolymers. Its value relative to acid-soluble or water-soluble support materials is that the support can remain dimensionally stable in a non-climate-controlled build room for longer periods than PVA or butanediol vinyl alcohol copolymer. Open spool exposure at 55 % RH and 23 °C for 24 h typically produces surface moisture below the threshold required to cause nozzle steam blistering, whereas PVA under the same condition may become unprintable. Micrographs of support-interface cross sections from dual-extruder parts printed with ABS reveal a sharp phase boundary when the HIPS layer is applied at 240 °C and the ABS layer at 250 °C. The absence of pigment reduces entrained solid particles at this boundary.
Drying is not optional when previously opened spools have been stored at ambient relative humidity above 60 %. A recirculating dehumidified air dryer at 70 °C for 4 h reduces moisture to an acceptable level; a convection oven without desiccant air exchange is less effective because the humidity inside the chamber is not swept away. Vacuum drying at 80 °C and −0.09 MPa for 2 h is suitable for lot sizes under 1 kg. Hot-end oozing, diameter expansion at the nozzle, and surface splay on the first layer are field indicators that moisture has exceeded 0.1 % by weight. If the first layer is printed on a borosilicate glass plate with a polycarbonate adhesion film, the bed temperature should be 100 °C to 110 °C for the first three layers and 90 °C to 100 °C thereafter. Build-chamber air temperature should be kept at 40 °C to 60 °C for parts with long straight walls longer than 150 mm. An enclosure is required below 35 °C ambient temperature to prevent corner delamination; a polycarbonate or polypropylene enclosure panel reduces drafts but does not replace a heated chamber. Bed adhesion can be enhanced with a thin styrene-acrylonitrile copolymer film or high-temperature polyester tape; silicone release agents are not recommended because migration to the part surface interferes with d-limonene wetting during support removal.
The linear coefficient of thermal expansion for unfilled HIPS is typically 8 × 10⁻⁵ K⁻¹ to 2 × 10⁻⁴ K⁻¹ between 23 °C and 80 °C under ISO 11359-2:2021. This value is higher than many ABS grades in the print direction and explains why large flat parts require an actively heated chamber or high-temperature bed on open machines.
Inline two-axis laser micrometers operating at 1 m/min to 3 m/min measure diameter and ovality. The production specification for the 1.75 mm filament is a maximum ovality of 0.03 mm; for 2.85 mm, maximum ovality is 0.05 mm. Spool winding tension is maintained at 1.5 N to 3.0 N to prevent interlayer stretching and self-overlap binding. Batch-release testing includes melt flow rate under ISO 1133-1:2022, density under ISO 1183-1:2019, tensile yield and modulus under ISO 527-2:2012, and notched Charpy impact under ISO 179-1/1eA. A batch is non-conforming if moisture after 24 h water immersion at 23 °C exceeds 0.15 % by weight, as that indicates microvoids or surface contamination that will cause nozzle outgassing.
On the melt-processing side, polybutadiene domain coalescence is the critical degradation mode. In twin-screw compounding trials using a co-rotating 40:1 L/D extruder with vacuum devolatilization at −0.08 MPa, melt temperatures above 240 °C for residence times exceeding 90 s produced a reduction of notched Charpy impact from 12 kJ/m² to 7 kJ/m² in subsequent injection-moulded test specimens. Fused-filament printers should therefore limit nozzle setpoint to 220 °C to 245 °C and keep the heat-break cooling fan at the manufacturer-specified speed. Direct-drive extruders with hardened steel gears are preferred for the 2.85 mm diameter because the lower melt-flow grade creates feed-roll slip on poorly tensioned Bowden tubes.
Mixing of this grade is not performed by the end user.
| Property | Test method | HIPS Natural | ABS | PLA |
|---|---|---|---|---|
| Density at 23 °C | ISO 1183-1:2019 | 1.03–1.06 g/cm³ | 1.03–1.07 g/cm³ | 1.24–1.26 g/cm³ |
| Tensile yield strength | ISO 527-2:2012 | 18–28 MPa | 35–45 MPa | 45–60 MPa |
| Tensile modulus | ISO 527-2:2012 | 1500–2200 MPa | 1900–2600 MPa | 3000–3500 MPa |
| Notched Charpy impact | ISO 179-1/1eA | 8–15 kJ/m² | 10–25 kJ/m² | 3–5 kJ/m² |
| Vicat softening temperature | ISO 306/B50 | 85–100 °C | 95–105 °C | 55–65 °C |
| Equilibrium moisture at 23 °C/50 % RH | ISO 62:2008 | 0.1–0.3 % | 0.2–0.6 % | 0.4–0.8 % |
| Sacrificial support removal medium | — | d-limonene | d-limonene possible but pigment-dependent | not practical without part attack |
The comparative data in the table are not a substitute for lot-specific batch certificates. The Clariant natural HIPS grade is typically selected when the part requires low moisture sensitivity, hydrocarbon-solvent support removal, or translucent dimensional-reference features. It is not selected when tensile yield strength above 30 MPa or continuous service above 80 °C is required.
Support dissolution follows a mass-transfer-limited process that depends on solvent temperature, support wall thickness, and agitation. At 30 °C, a solid HIPS support block 10 mm thick may require 8 h to 12 h to soften; the same volume in an ultrasonic bath operating at 40 kHz to 80 kHz and 35 °C softens within 2 h to 4 h. Thin support walls below 0.8 mm dissolve first, while enclosed cavities and blind holes retain a gel layer of swollen HIPS. Mechanical removal of the gel is performed with brass or acrylic scrapers; steel tools can score the ABS part surface. d-Limonene is a skin and respiratory irritant; extraction should be performed under local exhaust ventilation with nitrile gloves and polycarbonate splash goggles. The solvent should not be heated above 45 °C because oxidation products can deposit on the part. Post-dissolution rinsing with isopropanol or ethyl alcohol at 20 °C to 25 °C removes residual terpene oils before sanding or priming.
Unpigmented HIPS is not an outdoor or high-temperature material. Continuous exposure to air at 70 °C for 500 h can embrittle the polybutadiene phase, reducing notched Charpy impact from 12 kJ/m² to below 6 kJ/m² in unconditioned specimens. UV exposure causes yellowing and surface crazing within 200 h to 400 h under ASTM D4329-13 cycle A or equivalent xenon arc conditions; a clear acrylic lacquer can slow this but is not a substitute for a styrene-acrylonitrile shell. The material is attacked by aromatic hydrocarbons, chlorinated solvents, ketones, and gasoline; it is resistant to aqueous acids and bases only at low concentrations and low temperatures. Stress-cracking can occur when a printed part is bolted to a metal fixture while solvent residue is present. Users should pre-drill holes with 0.1 mm to 0.2 mm clearance to reduce clamping stress.
A compliance checklist matrix is provided below for regulatory and test-standard traceability.
| Regulation or standard | Designation | Relevance | Expected status |
|---|---|---|---|
| RoHS | 2011/65/EU Annex II | Lead, mercury, cadmium, hexavalent chromium, PBB, PBDE | Pass for clause 4(1) when lot traceable |
| REACH | Regulation (EC) No 1907/2006 Annex XVII and SVHC | Article 33 communication for substances above 0.1 % w/w | No SVHC above threshold in supplier declaration |
| Flammability | IEC 60695-11-10 / UL 94 HB | Thickness 1.5 mm and 3.0 mm | HB classification |
| Tensile properties | ISO 527-2:2012 | Yield strength and modulus | Batch-specific |
| Thermal performance | ISO 306:2022 | Vicat B50 | 85–100 °C |
| Melt flow | ISO 1133-1:2022 | 200 °C / 5.00 kg | 4–7 g/10 min |
| Density | ISO 1183-1:2019 | 23 °C | 1.03–1.06 g/cm³ |
The natural HIPS filament should be stored in a sealed moisture-barrier pouch with silica gel or molecular sieve desiccant at 15 °C to 25 °C. Once opened, the spool should be returned to the pouch within 8 h if ambient relative humidity exceeds 60 %. The grade is not suitable for direct food-contact applications unless migration testing under Regulation (EU) No 10/2011 has been completed for the specific printed shape. Flammability is classified at HB under UL 94 for thicknesses 1.5 mm and 3.0 mm; this is not a V-0 or V-2 rated material. REACH and RoHS compliance for the natural color compound should be confirmed by supplier declaration; the absence of heavy-metal pigments and brominated flame retardants is consistent with the natural high-impact polystyrene compound, but processing aids and mineral oil residues may be present at levels below regulatory thresholds. For industrial users with ISO 13485 or IATF 16949 quality systems, the batch certificate should be retained for traceability. Published data for this specific Clariant configuration are limited, and the numerical values in this document are representative engineering data for unfilled high-impact polystyrene extrusion grades rather than a substitute for the manufacturer’s lot-specific datasheet.