PA66 GF30 versus GF50: Volledig gegevensblad, eigenschappen en selectiegids

This pa66 gf30 gf50 guide explains practical considerations for material selection, design review, manufacturing, and sourcing decisions.

PA66 GF30 vs GF50 injection molded test specimens side by side
PA66 GF30 and GF50 injection molded test specimens for mechanical property evaluation

When engineers design structural components in automotive, industrial equipment, or electrical housings, the first question is often: “Where do I find the datasheet for PA66 GF30?” And the second question usually follows within minutes: “Should I use GF50 instead?”

PA66 reinforced with 30% or 50% glass fiber represents two of the most widely specified engineering thermoplastics in the world. Both offer the heat resistance of polyamide 66 combined with the dramatic stiffness and strength improvements that glass fiber reinforcement delivers. But the numerical gap — 30% vs 50% — does not translate linearly to performance, and assuming “more glass is always better” leads to tooling surprises, warpage problems, and cost overruns.

This article consolidates the key datasheet values for PA66 GF30 and GF50 in one place, explains what each property means in practical design terms, maps out the major commercial grades from BASF, DuPont, and DSM, and gives you a clear decision framework for choosing between them.

Quick Comparison Table: PA66 GF30 vs GF50 Datasheet Values

The values below represent typical injection molded specimens tested at 23°C in the dry-as-molded condition (DAM). Always consult the specific grade datasheet for your selected material, as formulation differences — heat stabilization, impact modification, lubricant packages — can shift individual properties by 5–15%.

Eigendom Eenheid PA66 GF30 PA66 GF50 Testmethode
Dichtheid g/cm³ 1.35 – 1.38 1.55 – 1.58 ISO 1183
Tensile Strength (Break) MPa 180 – 195 220 – 240 ISO 527
Trekmodulus MPa 9,500 – 10,500 16,000 – 17,500 ISO 527
Buigsterkte MPa 270 – 290 340 – 370 ISO 178
Flexural Modulus MPa 8,500 – 9,200 14,000 – 15,500 ISO 178
Charpy-slagproef met inkeping (23 °C) kJ/m² 10 – 13 14 – 17 ISO 179/1eA
Charpy Notched Impact (−30°C) kJ/m² 7 – 9 10 – 13 ISO 179/1eA
HDT (1,8 MPa) °C 245 – 250 250 – 255 ISO 75-2/Af
Melting Point (DSC) °C 255 – 265 255 – 265 ISO 11357
Mold Shrinkage (Flow) % 0.30 – 0.55 0.15 – 0.30 ISO 294-4
Mold Shrinkage (Transverse) % 0.60 – 0.90 0.35 – 0.55 ISO 294-4
Surface Resistivity Ω 10¹² – 10¹³ 10¹² – 10¹³ IEC 60093

What Each Property Means in Practice

Tensile test curve chart comparing PA66 GF30 and GF50 stress-strain behavior
Typical stress-strain curves for PA66 GF30 and GF50 at 23°C, dry-as-molded condition

Tensile Strength and Modulus: The Core Stiffness Numbers

Tensile strength is the maximum stress the material can withstand while being pulled before it breaks. The jump from GF30 (approximately 185 MPa) to GF50 (approximately 230 MPa) represents a roughly 25% increase in ultimate strength. However, the tensile modulus — the material’s resistance to elastic deformation — nearly doubles. GF50 is dramatically stiffer: it stretches less under a given load. This matters for structural brackets, pump housings, and any application where deflection under load is the limiting design criterion rather than ultimate failure.

A practical consequence: if you are replacing die-cast aluminium with PA66, GF50 comes much closer to matching the stiffness of light metals. GF30 often requires ribbing or thicker wall sections to achieve equivalent structural rigidity.

HDT: Heat Deflection Under Load

The HDT at 1.8 MPa (ISO 75-Af) for both GF30 and GF50 sits in the 245–255°C range — close to the crystalline melting point of PA66 itself. The glass fibers create a rigid skeletal network that resists deformation even as the PA66 matrix softens. The 5°C advantage GF50 holds at the upper end is real but small. In practice, both grades are rated for similar continuous-use temperature windows. The HDT value confirms that short-term exposure to 240°C+ is feasible, but above 220°C oxidative degradation of the polyamide matrix accelerates regardless of glass content.

Shrinkage and Warpage: The Hidden Differentiator

This is where the GF30 vs GF50 decision gets interesting. GF30 exhibits mold shrinkage of 0.3–0.55% in the flow direction and 0.6–0.9% transverse — a roughly 2:1 anisotropy ratio. GF50 shrinks less overall (0.15–0.3% flow, 0.35–0.55% transverse), and the anisotropy ratio tightens to approximately 1.7:1.

Lower absolute shrinkage means GF50 molds closer to nominal dimensions. But higher glass content also means higher melt viscosity, which requires higher injection pressures and can increase residual stress if the part has abrupt wall thickness transitions. For large, flat parts, GF50’s lower and more isotropic shrinkage is a genuine advantage. For thin-walled parts with long flow paths, GF30 may fill more easily and warp less in practice despite the higher datasheet shrinkage numbers.

Verwerkingsoverwegingen

GF50 demands more from the molding process: higher barrel temperatures (290–310°C recommended vs 280–300°C for GF30), higher injection pressures, and faster screw wear. Standard nitrided screws will wear noticeably faster processing GF50; bimetallic screws and barrels are strongly recommended for sustained production. Gate design matters more with GF50 because the higher viscosity and fiber content increase the risk of jetting and poor knit-line strength.

Conditioned vs Dry: The Moisture Effect

Polyamide 66 absorbs moisture from the environment — typically 1.5–2.5% by weight at equilibrium in 50% RH air. This absorbed water acts as a plasticizer, reducing stiffness and strength but dramatically increasing toughness. The table below shows typical property shifts from dry-as-molded (DAM) to equilibrium at 23°C / 50% RH.

Eigendom Eenheid GF30 Dry GF30 Cond. GF50 Dry GF50 Cond.
Treksterkte MPa 185 120 230 155
Trekmodulus MPa 10,000 6,800 17,000 11,500
Charpy Notched (23°C) kJ/m² 12 18 15 22
Charpy Notched (−30°C) kJ/m² 8 7 12 10
Flexural Modulus MPa 9,000 5,800 15,000 10,000

Two observations stand out. First, the property loss from moisture absorption is significant for both grades — tensile strength drops roughly 35% and modulus approximately 32% whether you start at GF30 or GF50. Second, and critically, the conditioned GF50 still outperforms dry GF30 in modulus (11,500 vs 10,000 MPa) and tensile strength (155 vs 185 MPa — roughly comparable). This means that in a humid application environment, the practical stiffness advantage of GF50 over GF30 narrows but does not disappear.

Moisture absorption curve chart for PA66 GF grades at different relative humidity levels
Equilibrium moisture content vs. relative humidity for PA66 glass-filled grades

Commercial Grades and Equivalents

Most PA66 GF30 and GF50 grades on the market are formulated around a standard set of reference products. If your datasheet lists one of the grades below, the properties in this guide should align closely. For cross-referencing, always verify the specific additive package — heat-stabilized (H), impact-modified, or lubricated variants shift individual values.

Supplier PA66 GF30 Grade PA66 GF50 Grade
BASF Ultramid A3EG6 (standard), A3EG7 (35%) A3EG10
DuPont Zytel 70G30HSL, 70G30HSLR 70G50HSLR
DSM Akulon K224-G6, S223-G6 K224-G10, S223-G10
Radici Radilon A RV300 A RV500
Domo Technyl A 218 V30 A 218 V50
Ascend Vydyne R533, R533H R550

BASF’s A3EG6 (GF30) and A3EG10 (GF50) are the most commonly cross-referenced grades worldwide. DuPont’s 70G30HSLR and 70G50HSLR add heat stabilization and lubricant for reduced mold deposit. DSM’s Akulon S223 series targets injection molding with excellent surface finish; the K224 variants are formulated for higher flow. If your application requires UL certification, grades with the “H” suffix from BASF and DuPont carry UL94 HB or V-2 listings by default and V-0 with additional flame-retardant packages.

Commercial PA66 GF resin pellets from major suppliers arranged for comparison
PA66 glass-filled resin pellets: GF30 (left) and GF50 (right) from major suppliers

When to Choose GF50 Over GF30

The decision often comes down to three engineering scenarios where the premium for higher glass loading pays for itself:

Scenario 1: Metal replacement where stiffness is non-negotiable. When your design is drop-in replacing a die-cast aluminum or stamped steel bracket and the existing wall thickness budget is fixed, GF30 may deflect unacceptably. GF50’s modulus of 16,000–17,500 MPa gets you into the stiffness territory of magnesium alloys. The weight savings over metal remain substantial — GF50 is still roughly one-quarter the density of aluminium.

Scenario 2: High-temperature structural load at elevated humidity. Components inside engine bays, turbocharger ducting, or industrial pump housings see both heat and moisture. As shown in the conditioned properties table, GF50 retains approximately 11,500 MPa modulus at equilibrium moisture — still above dry GF30. If your FEA model uses conditioned properties and shows marginal safety factors with GF30, stepping to GF50 is the most direct fix without redesigning geometry.

Scenario 3: Tight dimensional window with low post-mold movement. Parts that must hold precision tolerances across seasonal humidity cycles benefit from GF50’s lower absolute shrinkage and reduced moisture-induced dimensional change. Automotive sensor housings, electronic connector bodies, and precision gear carriers are classic examples.

When to Stay with GF30

GF30 remains the right choice when: your mold already exists and was cut for GF30 shrinkage (retrofitting is expensive); the part has thin walls under 1.5 mm where GF50 might short-shot; you need better surface aesthetics (lower glass content gives smoother as-molded surfaces); or the cost delta matters — GF50 typically commands a 15–25% price premium per kilogram, and molded part weight is also roughly 15% higher due to density.

Selection decision flowchart for choosing between PA66 GF30 and GF50
Decision flowchart for PA66 GF30 vs GF50 material selection in mechanical design

PA66 Glass Fiber Grade Comparison: GF15 to GF60

While this guide focuses on the GF30 vs GF50 decision, the broader PA66 GF family includes five common glass fiber loadings. The table below provides screening values across all grades so you can see where GF30 and GF50 sit in the full performance spectrum.

Eigendom PA66 zonder vulstof PA66 GF15 PA66 GF30 PA66 GF40 PA66 GF50 PA66 GF60
Tensile Strength (MPa, dry) 75 – 85 140 – 160 180 – 200 200 – 220 220 – 240 235 – 255
Flexural Modulus (MPa) 2,800 – 3,200 5,500 – 7,000 8,500 – 10,000 11,500 – 13,500 14,000 – 17,000 17,000 – 20,000
Rek bij breuk (%) 20 – 50 3 – 5 3 – 4 2 – 3 1.5 – 2.5 1 – 2
Charpy Notched Impact (kJ/m², 23°C) 5 – 8 9 – 12 10 – 14 12 – 15 14 – 17 15 – 18
Dichtheid (g/cm³) 1.13 – 1.15 1.22 – 1.25 1.36 – 1.38 1.44 – 1.48 1.55 – 1.58 1.65 – 1.70
HDT/A, 1.8 MPa (°C) 65 – 85 200 – 220 245 – 255 250 – 258 252 – 260 255 – 262
Mold Shrinkage — Flow (%) 1.2 – 1.8 0.5 – 0.8 0.3 – 0.55 0.2 – 0.4 0.15 – 0.30 0.10 – 0.25
Mold Shrinkage — Transverse (%) 1.2 – 1.8 0.7 – 1.0 0.6 – 0.9 0.5 – 0.7 0.35 – 0.55 0.25 – 0.45
Typical Use Case Clips, non-structural Medium-stiffness brackets Radiator tanks, connectors, structural brackets Pump bodies, high-load frames Metal replacement, load-bearing Maximum stiffness, specialized metal substitution

Where GF30 fits in the family: GF30 is the most balanced grade in the PA66 GF family. It provides a roughly 2.5× stiffness increase over unfilled PA66 while retaining enough impact toughness for structural applications. GF15 saves cost where full GF30 stiffness is unnecessary. GF40 and GF50 progressively increase stiffness at the cost of elongation and processing ease. GF60 is a specialized maximum-stiffness grade typically reserved for metal-substitution projects where every MPa of modulus is justified by weight reduction or corrosion elimination.

PA66 GF30 Injection Molding Processing Parameters

Parameter PA66 GF30 Range Opmerkingen
Pre-drying Temperature 80 – 90°C Desiccant dryer required. Moisture must be <0.10% before molding.
Pre-drying Time 4 – 6 hours Longer for material exposed to ambient air >30 minutes.
Smelttemperatuur 275 – 300°C Stay within supplier’s recommended window. Higher temps risk degradation.
Schimmel Temperatuur 80 – 110°C Higher mold temp improves crystallinity, surface finish, and dimensional stability. Use mold temperature controller.
Injectiedruk 80 – 140 MPa Adjust for cavity filling. Higher pressure improves knit-line strength.
Druk vasthouden 50 – 80% of injection pressure Compensates for glass-filled shrinkage. Adequate hold time prevents sink marks.
Tegen druk 3 – 8 MPa Moderate back pressure helps fiber dispersion. Excessive back pressure shears fibers.
Schroefsnelheid 40 – 80 rpm Slower speeds reduce fiber breakage. Use wear-resistant screw and barrel.
Type poort Direct, fan, or tab gate preferred Avoid pin gates for structural parts. Gate location controls fiber orientation.
Residual Moisture (max) 0.10% (1,000 ppm) Verify with moisture analyzer before production start.

Belangrijke opmerkingen over de verwerking: PA66 GF30 is abrasive — tool steel selection matters for production molds exceeding 50,000 shots. Hardened steel (H13, S136) or hard-chrome-plated cavities are preferred. Use Moldflow simulation before cutting steel to predict fiber orientation, weld line positions, and warpage. Fiber orientation follows flow direction: orient gates so that fiber alignment coincides with the primary load path. Avoid placing weld lines at mounting bosses or pressure-sealing surfaces.

Veelgestelde vragen

Wat is het verschil tussen PA66 GF30 en PA6 GF30?

PA6 GF30 heeft een lager smeltpunt (ongeveer 220 °C tegenover 260 °C voor PA66) en een lagere HDT (doorgaans 200–210 °C bij 1,8 MPa tegenover 245–250 °C). Ook de treksterkte is lager — PA6 GF30 haalt doorgaans 160–180 MPa tegenover 180–195 MPa voor PA66 GF30. PA6 GF30 is echter gemakkelijker te verwerken, vloeit beter in dunne wanden en heeft een mooier oppervlak. PA6 neemt ook iets sneller vocht op. Kies PA66 GF30 wanneer hittebestendigheid onder structurele belasting de prioriteit is; kies PA6 GF30 voor grote cosmetische onderdelen of wanneer het verwerkingsvenster krap is.

Welk matrijsstaal is nodig voor de productie van PA66 GF50?

PA66 GF50 is abrasive due to the high glass fiber content. For prototype or low-volume tools (under 50,000 shots), hardened P20 or 718 steel with nitriding is acceptable. For production volumes above 50,000 cycles, H13 or 1.2344 tool steel hardened to 48–52 HRC is recommended. Gate inserts and runner systems wear fastest; using replaceable inserts with D2 or M2 tool steel at high-wear points extends tool life. Venting depth should be limited to 0.01–0.02 mm to prevent flash with GF50’s low melt viscosity at processing temperatures.

Kunnen PA66 GF30 en GF50 met een laser worden gemarkeerd?

Ja, maar de resultaten lopen sterk uiteen. Natuurlijke (ongekleurde) PA66 GF-kwaliteiten kunnen met een Nd:YAG- of vezellaser worden gelasermarkeerd, waarbij een donkere markering op een lichte achtergrond ontstaat — de laser verkolt het polyamideoppervlak. De glasvezels aan het oppervlak verstrooien de laserstraal echter, waardoor het contrast afneemt. GF30 levert een beter contrast bij lasermarkering op dan GF50, omdat het hogere harsgehalte aan het oppervlak meer organisch materiaal biedt voor verkoling. Voor GF50 worden lasergevoelige additieven of een vooraf samengestelde, lasermarkeerbare kwaliteit (op aanvraag verkrijgbaar bij de meeste grote leveranciers) aanbevolen voor betrouwbare markering met een hoog contrast.

Wat is de maximale temperatuur bij continu gebruik voor PA66 GF30 en GF50?

There is no single number — it depends on the specific failure criterion. For mechanical load-bearing applications: approximately 120–140°C for GF30 and 130–150°C for GF50 when the load is moderate (under 30% of ultimate tensile strength). For purely thermal exposure without mechanical load: UL Relative Thermal Index (RTI) ratings are typically 130–140°C for both grades when heat-stabilized. Short-term excursions to 180–200°C are acceptable for minutes rather than hours. Above 220°C, oxidative degradation accelerates sharply and service life is measured in hours regardless of glass content. Heat-stabilized variants (suffix “H” or “HS”) extend the thermal aging resistance by 15–25°C over standard grades.

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