| HS Code | 837461 |
| Materialtype | Polypropylene copolymer |
| Additivemanufacturingtechnology | Laser Sintering (SLS) |
| Color | White |
| Density | 0.90 g/cm³ |
| Bulkdensity | 0.45 g/cm³ |
| Particlesize | 50-100 µm |
| Meltingpoint | 130-160 °C |
| Tensilestrength | 20-25 MPa |
| Tensilemodulus | 800-1200 MPa |
| Elongationatbreak | 250-350% |
| Flexuralmodulus | 700-1000 MPa |
| Hardness | 60 Shore D |
| Heatdeflectiontemperature | 50-60 °C |
| Waterabsorption | <0.1% |
| Chemicalresistance | Good |
As an accredited Lehvoss LUVOSINT PP 9703 L WT Polypropylene copolymer for Additive Manufacturing factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Lehvoss LUVOSINT PP 9703 L WT is supplied in 10 kg moisture-barrier foil bags, palletized for safe storage and transport. |
| Container Loading (20′ FCL) | 20′ FCL container loading: Lehvoss LUVOSINT PP 9703 L WT polypropylene copolymer for additive manufacturing, palletized, shrink-wrapped, and secured for transport. |
| Shipping | Lehvoss LUVOSINT PP 9703 L WT ships as a non-hazardous polypropylene copolymer powder, not regulated for transport. Use sealed, moisture-resistant containers, protect from ignition sources and static discharge, and keep cool and dry. No UN number, hazard class, or packing group required. Handle as combustible dust; avoid dust clouds. |
| Storage | Store Lehvoss LUVOSINT PP 9703 L WT in a cool, dry, well-ventilated area away from direct sunlight, heat, flames, and ignition sources. Keep containers tightly closed in original packaging to prevent moisture uptake and contamination. Avoid dust generation and static discharge. Separate from strong oxidizers. Follow the supplier safety data sheet and local regulations for safe storage. |
| Shelf Life | Shelf life is 12 months when stored in original sealed packaging at 15–25°C, protected from moisture, heat, and direct sunlight. |
| Application Domain | Primary Regulatory Standard | Secondary Test Method | Virgin Powder Ratio | Max Service Temperature |
|---|---|---|---|---|
| Automotive under-hood | FMVSS 302 / ISO 3795 | SAE J369 / ASTM D256-23 | 30–40 wt% | 105°C |
| Chemical processing | ISO 15494:2015 | ASTM D543-21 | 40–50 wt% | 80°C |
| Medical device prototypes | ISO 10993-5:2009 | USP Class VI | 100 wt% | 121°C (sterilization) |
| Potable water contact | NSF/ANSI 61 | ASTM G154-23 | 50–70 wt% | 60°C |
| Living-hinge consumer goods | REACH Annex XVII | ASTM D790-17 | 50–60 wt% | 80°C |
| Returnable logistics / packaging | FDA 21 CFR 177.1520(c) | EU 10/2011 | 20–30 wt% | 70°C |
| Parameter | Single-Laser 30W System | Dual-Laser 70W System | Multi-Laser High-Throughput System |
|---|---|---|---|
| Chamber set point | 130–135°C | 128–134°C | 126–132°C |
| Laser power (per source) | 22–28 W | 30–38 W | 40–50 W |
| Scan speed | 4.5–5.5 m/s | 5.0–6.5 m/s | 6.0–8.0 m/s |
| Layer thickness range | 0.10–0.12 mm | 0.10–0.14 mm | 0.10–0.15 mm |
| Refresh rate (virgin) | 30–40 wt% | 35–45 wt% | 20–30 wt% |
| Recommended build volume utilization | ≤60% of platform area | ≤75% of platform area | ≤85% of platform area |
Competitive Lehvoss LUVOSINT PP 9703 L WT Polypropylene copolymer for Additive Manufacturing prices that fit your budget—flexible terms and customized quotes for every order.
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Lehvoss LUVOSINT PP 9703 L WT is a white polypropylene copolymer powder formulated for laser-based powder bed fusion additive manufacturing. The grade is supplied as a semi-crystalline thermoplastic with a melting peak determined by ISO 11357-3 near 165 °C and a sintered density of approximately 0.91 g/cm³ under ISO 1183-1. Particle size distribution is controlled for layer thicknesses between 0.08 mm and 0.12 mm; typical D50 values fall within 80–110 μm as measured by ISO 13320-1. The material is used in unfilled polypropylene applications where lower mass, resistance to aqueous chemical attack, and high ductility under repeated flexural loading are required, and where the thermal service ceiling of polypropylene is acceptable.
The powder is supplied with a bulk density of 0.40–0.46 g/cm³ under ISO 60, which influences recoater dosing and the consolidation of thin powder layers. The specification window for the as-sintered material is derived from specimens built in the X/Y orientation at a layer thickness of 0.10 mm and conditioned for 48 h at 23 °C and 50% relative humidity. Under these conditions, tensile modulus is reported between 1200 MPa and 1500 MPa and tensile strength between 20 MPa and 28 MPa when tested to ISO 527-2. Elongation at break varies with build orientation; X/Y specimens typically fall between 15% and 40%, while Z-orientation values may be lower by 30–50% because interlayer diffusion is incomplete at the processing temperatures. Notched Charpy impact is reported in the 8–20 kJ/m² range under ISO 179-1/1eA, with the upper bound obtained on annealed specimens.
| Property | Test method | Reported typical value |
|---|---|---|
| Bulk density | ISO 60 | 0.40–0.46 g/cm³ |
| Particle size D50 | ISO 13320-1 | 80–110 μm |
| Particle size D90 | ISO 13320-1 | 150–180 μm |
| Melting temperature | ISO 11357-3 | 160–168 °C |
| Crystallisation temperature | ISO 11357-3 | 120–128 °C |
| Sintered density | ISO 1183-1 | 0.90–0.92 g/cm³ |
| Tensile modulus, X/Y | ISO 527-2 | 1200–1500 MPa |
| Tensile strength, X/Y | ISO 527-2 | 20–28 MPa |
| Elongation at break, X/Y | ISO 527-2 | 15–40% |
| Notched Charpy impact | ISO 179-1/1eA | 8–20 kJ/m² |
| Heat deflection temperature B | ISO 75-2/B | 70–85 °C |
| Moisture absorption, 24 h water | ISO 62 | <0.1% |
On production-scale laser sintering equipment with a build envelope of at least 300 mm × 300 mm × 300 mm, stable processing of LUVOSINT PP 9703 L WT requires separate control of feed bed, process bed, and exchangeable cooling frame temperatures. The build bed is normally maintained between 130 °C and 150 °C, close to but below the crystallisation onset determined by ISO 11357-3 between 120 °C and 128 °C. The feed bed is set to 80–100 °C and the exchangeable frame to 120–135 °C; deviations above 5 °C on the build surface during recoating produce delamination, curl at part corners, or abrupt density changes. Laser energy density is constrained because the polypropylene copolymer exhibits a narrow melt-flow window at elevated chamber temperatures. Typical scan speeds are reduced relative to PA12, and outline scans are run with lower beam power to reduce surface oxidation. Nitrogen inertisation with residual oxygen below 0.5% is recommended for exposures longer than 10 h; above this limit, discolouration from thermo-oxidative degradation is observed on white powders, and the melt flow rate shifts upward, reducing part definition.
The narrow thermal window is the main production constraint reported from manufacturing lines. If the process bed temperature is set below 125 °C, first-layer adhesion to the build platform is insufficient and part edges lift before the second scan pass. If the bed exceeds 152 °C, the powder fuses outside the laser contour and the white material develops a yellowish tint from partial melting and additive decomposition. For build jobs with large cross-sections exceeding 200 mm × 200 mm, thermal gradients between the centre and edge of the part bed can reach 8–15 °C, producing warped bases and non-uniform Z tensile properties. A heated build plate with zoned ceramic elements and an infrared pyrometer with ±2 °C accuracy is therefore a prerequisite for repeatable production on machines with powder bed surface temperatures above 140 °C. Printed parts should remain in the powder cake until the cake centreline temperature falls below 80 °C; removal at higher temperatures can induce warpage of thin walls greater than 0.5 mm deflection per 100 mm of length.
The decision to substitute this polypropylene copolymer for PA12 should treat thermal resistance, dimensional stability, and impact performance as coupled variables rather than independent pass/fail criteria. The PP grade has a density of 0.91 g/cm³, which is approximately 10% lower than the 1.01 g/cm³ typical of unfilled PA12, enabling mass reduction without changing wall sections. Moisture uptake after 24 h immersion in water at 23 °C is below 0.1% by ISO 62, while PA12 can absorb 1.0–1.5%; dimensional changes due to humidity are therefore smaller in the PP grade. The penalty appears in the heat deflection temperature. Under ISO 75-2/B, LUVOSINT PP 9703 L WT is reported in the 70–85 °C range, whereas unfilled PA12 is usually reported at 140–160 °C. Living-hinge performance is a differentiation point for the copolymer; repeated flexural loading of thin sections produced from the powder shows higher cycles to crack initiation than isotactic PP homopolymer grades in the same build orientation. However, published fatigue data for this specific white copolymer configuration is limited to internal manufacturer reports and should be verified with application-specific coupons.
| Property | LUVOSINT PP 9703 L WT | Unfilled PA12 laser-sintered | Unfilled PP injection-moulded |
|---|---|---|---|
| Density, ISO 1183-1 | 0.91 g/cm³ | 1.01 g/cm³ | 0.90 g/cm³ |
| Tensile modulus, ISO 527-2 | 1200–1500 MPa | 1500–1800 MPa | 1300–1800 MPa |
| Tensile strength, ISO 527-2 | 20–28 MPa | 40–50 MPa | 25–35 MPa |
| Elongation at break, ISO 527-2 | 15–40%, X/Y | 20–50%, X/Y | 50–200% |
| Notched Charpy, ISO 179-1/1eA | 8–20 kJ/m² | 5–15 kJ/m² | 10–30 kJ/m² |
| Moisture absorption, 24 h, ISO 62 | <0.1% | 1.0–1.5% | <0.1% |
| HDT B, ISO 75-2/B | 70–85 °C | 140–160 °C | 75–90 °C |
Powder reuse in long-duration manufacturing campaigns follows a different trajectory from PA12 because polypropylene is more prone to thermo-oxidative chain scission than to post-condensation. After 10 build jobs with a 30% refresh rate, the melt volume-flow rate measured to ISO 1133-1:2022 at 230 °C and 2.16 kg shifts upward as the molecular weight distribution narrows. Operators should therefore monitor MVR and tensile elongation of X/Y specimens rather than relying only on particle size distribution; elongation loss below 10% at the X/Y orientation indicates that the in-process powder blend has degraded beyond acceptable limits for ductile applications. The white variant also requires strict exclusion of dark pigments and carbon-fibre residues from other laser-sintering powders, because surface contamination above 0.05 wt% produces visible specks and local changes in laser absorption.
Post-build annealing can alter the semi-crystalline morphology and relieve residual stress. Annealing at 120 °C for 2 h in circulating air increases crystallinity, reduces Z-axis tensile strength by an additional 5–10%, and shrinks large parts by 0.3–0.8% in the build direction. The annealing step must be conducted with parts restrained or supported because unsupported thin walls can distort above the crystallisation onset. The annealing temperature should not exceed 125 °C unless dimensional verification has been carried out; above this threshold, partial melting of the low molecular weight fraction occurs and part surface edge definition is lost.
Powder storage conditions affect recoating and part density. LUVOSINT PP 9703 L WT should be stored in sealed containers at 15–25 °C and below 40% relative humidity. If the powder has been exposed to humidity above 60% RH, drying in a vacuum oven at 80 °C for 4–6 h is required before use; residual moisture above 0.05% can produce surface voids and reduce X/Y elongation by 10–20%. Dry compressed air should be used for powder transfer and sieve cleaning to avoid moisture pickup and contamination.
The olefinic structure of LUVOSINT PP 9703 L WT imparts resistance to dilute aqueous acids, alkalis, and saline solutions at service temperatures up to 60 °C, but continuous contact with strong oxidising acids such as nitric acid above 20% concentration, aromatic hydrocarbons, and chlorinated solvents is not recommended. Permeation of nonpolar organic compounds is higher than in PA12; barrier applications should not rely on the unfilled PP grade alone when permeation rates below 0.1 g·mm/m²·day under ISO 15106-1 or ASTM F1249 are required. Vapour polishing and polymer-based surface sealing can reduce open porosity on the sintered surface, but the added coating typically changes dimensions by 0.02–0.08 mm and alters the coefficient of friction from the as-built condition. Surface resistivity is above 1013 Ω by ASTM D257, so static charge management is necessary during powder transfer and depowdering, particularly when relative humidity is below 30%. Compliance for the European market is supported by REACH Regulation (EC) No 1907/2006, including Article 33 candidate list communication duties, and by RoHS Directive 2011/65/EU Annex II restrictions for lead, mercury, cadmium, hexavalent chromium, PBB, and PBDE.