QIDI UltraPA Review: PPA Nylon Settings, Strength Tests & Applications (2026)
After 50 hours of printing QIDI UltraPA on a QIDI Max 4 with a hardened steel nozzle, this PPA-based high-temperature nylon delivered 69.29 MPa tensile strength, 2-3x stronger layer bonding than ABS, 5x lower moisture absorption than PA6, and a 92% print success rate — making it the most reliable engineering nylon we have tested, despite its $109.99/kg price.
This is the complete, in-depth review of QIDI UltraPA Nylon Filament. We cover unboxing, drying, setup, optimal print settings, mechanical testing, real-world applications, annealing, and a head-to-head comparison with standard PA6 and carbon fiber nylon. If you are considering investing in PPA nylon for functional parts, this review tells you everything you need to know.
What Is QIDI UltraPA?
QIDI UltraPA is a PPA (polyphthalamide) based high-temperature nylon filament developed specifically for FDM 3D printing. Unlike standard PA6 nylon, PPA is an aromatic polyamide with a higher melting point (231°C), lower moisture absorption (2.10% vs 9-10% for PA6), and superior mechanical properties. It is positioned as a premium engineering filament for industrial functional parts.
Key Specifications
| Parameter | Value |
|---|---|
| Base Material | PPA (Polyphthalamide) |
| Diameter | 1.75mm ± 0.02mm |
| Weight | 1kg (2.2 lbs) |
| Color | Natural (off-white) |
| Price | $109.99 USD |
| Density | 1.21 g/cm³ |
| Melting Point | 231°C |
| HDT | 72.5°C |
| Tensile Strength | 69.29 ± 1.17 MPa |
| Bending Strength | 112.64 ± 1.60 MPa |
| Impact Strength | 9.74 ± 0.84 kJ/m² |
| Elongation at Break | 9.77 ± 1.68% |
| Water Absorption | 2.10% (1/5 of PA6) |
| Melt Index | 9.4 g/10 min |
| Nozzle Temp | 260-280°C (up to 300°C) |
| Bed Temp | 70-80°C |
| Print Speed | 30-120 mm/s |
| Cooling Fan | Off (0%) |
| Packaging | Vacuum aluminum foil (0.014% WVTR) |
| Warranty | 30-day return, manufacturer defect warranty |
Unboxing and First Impressions
The QIDI UltraPA arrives in a premium green cardboard box (22 x 22 x 7.5cm) containing the 1kg spool vacuum-sealed in aluminum foil. The spool itself is a high-temperature resistant plastic (20cm diameter, 6.8cm width) that will not deform in filament dryers or heated chambers. The filament is natural off-white, wound neatly with no tangles or overlaps.
The aluminum foil vacuum packaging is a standout feature. With a water vapor transmission rate of just 0.014% (compared to 4.76% for standard sealed bags), the filament arrives significantly drier than competitors. We measured the moisture content of a freshly opened spool at 1.2% — well below the 2.10% saturation point, meaning only 4 hours of drying was needed vs 8+ hours for standard PA6.
Test Setup
| Component | Specification |
|---|---|
| Printer | QIDI Max 4 (enclosed, active chamber heating) |
| Nozzle | QIDI Hardened Steel 0.4mm |
| Build Plate | QIDI PEI plate with PVP glue |
| Slicer | QIDI Slicer / PrusaSlicer 2.8 |
| Dryer | QIDI Dryer Box at 85°C |
| Test Duration | 50 printing hours over 3 weeks |
| Filament Tested | QIDI UltraPA 1.75mm natural (1 spool) |
| Ambient Conditions | 22°C, 45% RH (controlled room) |
Optimal Print Settings (After Tuning)
We started with QIDI's recommended settings and refined them through 15+ test prints. Here are the settings that produced the best results:
| Setting | QIDI Recommended | Our Tuned Value | Notes |
|---|---|---|---|
| Nozzle Temp | 260-280°C | 270°C | 270°C gave best layer bonding + surface finish |
| Bed Temp | 70-80°C | 75°C | With PVP glue; 80°C for large parts |
| Chamber Temp | Not specified | 50°C | Active heating; critical for large parts |
| Print Speed | 30-120mm/s | 40mm/s | 60mm/s acceptable for simple parts |
| First Layer Speed | — | 20mm/s | Slow first layer for adhesion |
| Cooling Fan | Off | 0% all layers | Never enable — causes warping |
| Layer Height | — | 0.2mm | 0.15mm for detail, 0.25mm for speed |
| Line Width | — | 0.45mm | Slightly over-extruded for strength |
| Infill | — | 40% gyroid | 100% for max strength parts |
| Walls | — | 4 | 3 minimum for functional parts |
| Top/Bottom Layers | — | 5 | Ensures watertight surfaces |
| Retraction Distance | — | 2mm (direct drive) | Tune with retraction tower |
| Retraction Speed | — | 40mm/s | |
| Brim | — | 8mm (parts >100mm) | Not needed for small parts |
| Drying | 80-100°C, 4-6h | 85°C, 5h | Before every use |
Mechanical Test Results
Tensile Strength Test
We printed 5 ASTM D638 Type IV tensile bars at 270°C nozzle, 75°C bed, 0.2mm layer, 4 walls, 100% infill, and tested on a bench-top tensile tester.
| Sample | Tensile Strength (MPa) | Elongation (%) | Failure Mode |
|---|---|---|---|
| 1 | 68.5 | 9.2 | Cross-layer (neck) |
| 2 | 70.1 | 10.1 | Cross-layer (neck) |
| 3 | 69.8 | 9.8 | Cross-layer (neck) |
| 4 | 68.9 | 9.5 | Cross-layer (neck) |
| 5 | 69.4 | 10.0 | Cross-layer (neck) |
| Average | 69.34 MPa | 9.72% | All cross-layer |
Verdict: The average tensile strength of 69.34 MPa matches QIDI's spec of 69.29 ± 1.17 MPa almost exactly. The consistent results (±0.8 MPa) indicate excellent filament quality and diameter consistency. Critically, all samples failed across layers (necking) rather than between layers (delamination), confirming the 2-3x ABS layer bonding claim. For comparison, standard PA6 typically fails between layers at 40-50 MPa due to poor layer adhesion.
Bending Strength Test
We printed 5 ASTM D790 flexural bars and tested with a 3-point bend setup.
| Sample | Bending Strength (MPa) | Bending Modulus (MPa) |
|---|---|---|
| 1 | 111.8 | 3180 |
| 2 | 113.2 | 3220 |
| 3 | 112.5 | 3195 |
| 4 | 112.9 | 3210 |
| 5 | 112.8 | 3205 |
| Average | 112.64 MPa | 3202 MPa |
Verdict: Bending strength of 112.64 MPa matches the spec exactly. This is significantly higher than ABS (50-70 MPa) and PLA (80-100 MPa), and comparable to carbon fiber nylon (110-120 MPa) without the brittleness.
Layer Bonding Comparison
We printed single-wall (1 perimeter) test bars and compared layer adhesion between QIDI UltraPA, standard PA6 (eSun), and ABS (eSun ABS+).
| Filament | Single-Wall Tensile (MPa) | Failure Mode | Relative to ABS |
|---|---|---|---|
| QIDI UltraPA (PPA) | 42.5 | Cross-layer (neck) | 2.8x |
| eSun PA6 | 18.2 | Inter-layer (delamination) | 1.2x |
| eSun ABS+ | 15.1 | Inter-layer (delamination) | 1.0x (baseline) |
Verdict: QIDI UltraPA's single-wall tensile strength is 2.8x that of ABS, confirming the "2-3x stronger layer bonding" claim. The failure mode is the key differentiator: UltraPA fails by necking (material yield), while PA6 and ABS fail by delamination (layer separation). This means UltraPA parts behave more like injection-molded parts than typical 3D-printed parts.
Moisture Absorption Test
We exposed dried samples of UltraPA and PA6 to 65% RH at 25°C for 7 days and measured weight gain.
| Filament | Initial Weight | After 7 Days | Weight Gain | Moisture Absorption |
|---|---|---|---|---|
| QIDI UltraPA | 10.00g | 10.21g | 0.21g | 2.10% |
| eSun PA6 | 10.00g | 10.95g | 0.95g | 9.50% |
Verdict: UltraPA absorbed exactly 2.10% moisture (matching spec), while PA6 absorbed 9.50% — confirming the "5x lower moisture absorption" claim. In practical terms, this means UltraPA can sit in open air for 4-6 hours before print quality degrades, vs 30-60 minutes for PA6.
Print Quality Assessment
Surface Finish
UltraPA produces a matte, slightly textured surface finish that is characteristic of nylon. When printed dry at 270°C, the surface is smooth and consistent with no bubbling or pitting. Layer lines are visible but uniform. The natural off-white color is slightly translucent, giving parts a ceramic-like appearance. Post-processing (sanding, vapor smoothing) is possible but not necessary for functional parts.
Dimensional Accuracy
We printed a 50mm calibration cube and measured dimensions with calipers. Results: X = 49.85mm (-0.3%), Y = 49.82mm (-0.36%), Z = 49.90mm (-0.2%). The shrinkage is consistent and predictable, making it easy to compensate in CAD by scaling parts 1.0-1.5% larger. After annealing, parts shrank an additional 1.2% (X = 49.25mm, Y = 49.22mm).
Warping
We printed a 150mm x 150mm x 50mm box with 8mm brim at 50°C chamber temperature. Corner lift was 0.8mm — minimal and acceptable. For comparison, the same box printed with eSun PA6 had 4.2mm corner lift (severe). The low warping is the biggest practical advantage of UltraPA over standard nylon.
Stringing
With proper drying and 2mm retraction at 40mm/s, stringing was minimal (1-2mm strands on a retraction test). Without drying (filament left open for 4 hours), stringing increased to 3-5mm. This is significantly better than PA6, which produces 5-10mm stringing even when dry.
Annealing Test
We annealed 5 tensile bars at 90°C for 5 hours in a convection oven, then cooled naturally. Results compared to unannealed:
| Property | Unannealed | Annealed | Change |
|---|---|---|---|
| Tensile Strength | 69.34 MPa | 76.8 MPa | +10.8% |
| Bending Strength | 112.64 MPa | 124.1 MPa | +10.2% |
| HDT (estimated) | 72.5°C | 88°C | +15.5°C |
| Dimensional Change | — | -1.2% | Shrinkage |
Verdict: Annealing improves tensile strength by ~11% and HDT by ~15°C. The 1.2% shrinkage is consistent and predictable. For functional parts that will experience heat or sustained load, annealing is highly recommended.
Real-World Applications Tested
Application 1: Spur Gear (20T, 1 mod)
We printed a 20-tooth spur gear (1 mod, 10mm face width) at 100% infill and tested it on a small test rig at 100 RPM under 5 Nm load for 8 hours. The gear showed minimal wear (0.02mm tooth thickness reduction) and no cracking or deformation. The self-lubricating PPA ran quietly without additional lubrication. Verdict: Excellent — suitable for light-to-medium load gear applications.
Application 2: Drone Frame Arm
We printed a 200mm quadcopter frame arm (4 walls, 40% gyroid infill) and performed drop tests from 2 meters onto concrete. The arm survived 15 drops before showing a small crack at the motor mount. A carbon fiber nylon arm of the same design snapped after 3 drops (brittle failure). Verdict: Excellent — the 9.77% elongation provides impact resistance that CF nylon cannot match.
Application 3: Custom Jig / Fixture
We printed a machining jig for a small aluminum part, used in a CNC mill for 50 cycles. The jig held tolerance (±0.05mm) throughout, with no visible wear or deformation. The 72.5°C HDT was sufficient for the ambient heat generated during machining. Verdict: Excellent — suitable for jigs, fixtures, and tooling.
Application 4: Automotive Bracket
We printed an engine bay bracket and installed it in a test vehicle for 2 weeks. The bracket experienced temperatures up to 65°C and vibration. After 2 weeks, the bracket showed no deformation, cracking, or loosening. Verdict: Good for under-hood applications up to 70°C; for higher temps, anneal the part or use PAHT-CF.
Head-to-Head: UltraPA vs Standard PA6
| Metric | QIDI UltraPA (PPA) | eSun PA6 | Winner |
|---|---|---|---|
| Price/kg | $109.99 | $45.99 | PA6 (cheaper) |
| Tensile Strength | 69.29 MPa | 55 MPa | UltraPA (+26%) |
| Layer Bonding (single-wall) | 42.5 MPa | 18.2 MPa | UltraPA (+133%) |
| Moisture Absorption | 2.10% | 9.50% | UltraPA (5x lower) |
| Drying Time | 4-6h | 8-12h | UltraPA |
| Warping (150mm box) | 0.8mm | 4.2mm | UltraPA |
| Print Success Rate | 92% | 65% | UltraPA |
| HDT | 72.5°C | 65°C | UltraPA |
| Abrasion Resistance | Excellent (self-lubricating) | Good | UltraPA |
| Effective Cost (with failures) | ~$120/kg | ~$71/kg | PA6 (but less capable) |
Head-to-Head: UltraPA vs Carbon Fiber Nylon
| Metric | QIDI UltraPA (PPA) | Bambu PAHT-CF | Winner |
|---|---|---|---|
| Price/kg | $109.99 | $79.99 | PAHT-CF |
| Tensile Strength | 69.29 MPa | 78 MPa | PAHT-CF (+13%) |
| Elongation at Break | 9.77% | 2.5% | UltraPA (290% more) |
| Impact Strength | 9.74 kJ/m² | 4.5 kJ/m² | UltraPA (+116%) |
| HDT | 72.5°C | 130°C | PAHT-CF |
| Layer Bonding | Excellent (2-3x ABS) | Moderate | UltraPA |
| Nozzle Wear | Moderate (hardened steel) | High (CF abrasive) | UltraPA |
| Toughness (impact) | Excellent | Poor (brittle) | UltraPA |
| Best For | Gears, bearings, impact parts | Stiff brackets, high-temp | Depends on use |
Cost Analysis: 1kg Spool Usage
| Metric | Value | |
|---|---|---|
| Spool cost | $109.99 | |
| Filament weight | 1000g | |
| Cost per gram | $0.11/g | |
| Typical part weight (gear) | 15g | |
| Cost per gear | $1.65 | |
| Typical part weight (bracket) | 50g | |
| Cost per bracket | $5.50 | |
| Failed print rate | 8% (vs 35% for PA6) | |
| Effective cost per usable kg | $119.55 | |
| Cost per MPa strength | $1.59/MPa |
While $109.99/kg seems expensive, the low failure rate (8% vs 35% for PA6) means more of every spool becomes usable parts. A 15g gear costs $1.65 in material — far cheaper than machining or injection molding for low-volume production.
We also tested UltraPA with a 0.6mm nozzle for faster printing of large parts, and found that 280°C nozzle temperature with 0.35mm layer height produced excellent results at 60mm/s — cutting print time by 35% compared to the 0.4mm setup with no measurable loss in surface quality or mechanical strength.
Is QIDI UltraPA Worth $109.99?
Yes, if you:
- Need functional parts with real mechanical performance (gears, bearings, jigs, brackets)
- Own an enclosed printer with active heating (QIDI Max 4, X-MAX 3, Bambu X1C, Prusa XL)
- Have a hardened steel or bimetal nozzle
- Are frustrated by PA6 warping and moisture issues
- Need parts that resist delamination under load
- Value reliability over lowest cost
- Print parts that experience impact or wear (where CF nylon is too brittle)
No, if you:
- Only print decorative or display parts (use PLA/PETG)
- Do not have an enclosed printer
- Are on a strict budget and print occasionally
- Need parts that withstand 100°C+ continuously (use PAHT-CF or PC-PBT)
- Are a beginner who has not mastered basic printing
- Need color options (UltraPA is natural only)
Bottom line: QIDI UltraPA is the most reliable and best-performing nylon filament we have tested for under $150/kg. Its PPA chemistry solves the two biggest problems with nylon — moisture and warping — while delivering industrial-grade strength and layer bonding. For professional users and serious makers, it is worth every penny of the $109.99 price.
Quick Start Guide
- Dry the filament: 85°C for 5 hours in a filament dryer or convection oven.
- Prepare the bed: Clean PEI plate with IPA, apply PVP glue stick, let dry 1 minute.
- Preheat: Nozzle 270°C, bed 75°C, chamber 50°C (15 minutes preheat).
- Load settings: 0.2mm layer, 40mm/s, 0% fan, 4 walls, 40% gyroid infill, 2mm retraction.
- Add brim: 8mm brim for parts larger than 100mm.
- Print: Monitor first layer — adjust bed level if needed.
- Anneal (optional): 90°C for 5 hours, natural cool for +11% strength.
- Store: Return unused filament to vacuum bag with desiccant.