QIDI UltraPA Nylon Filament for Strong 3D Prints | Qidi Tech Qidi 3D Printer
QIDI UltraPA Nylon Filament (PPA) for Strong 3D Prints QIDI UltraPA is a PPA-based high-temperature nylon filament with 69.29 MPa tensile strength, 2-3x the layer bonding of ABS, 5x lower moisture...
QIDI UltraPA Nylon Filament (PPA) for Strong 3D Prints
QIDI UltraPA is a PPA-based high-temperature nylon filament with 69.29 MPa tensile strength, 2-3x the layer bonding of ABS, 5x lower moisture absorption than standard PA6, and 112.64 MPa bending strength — engineered for industrial-grade functional parts that require heat resistance, abrasion resistance, and dimensional stability.
At $109.99 per 1kg spool, QIDI UltraPA targets engineers, makers, and industrial users who need nylon-level strength without the warping and moisture headaches of standard PA6. The filament comes vacuum-sealed in aluminum foil (0.014% water vapor transmission rate vs 4.76% for standard packaging), includes a high-temperature spool, and requires a hardened steel or bimetal nozzle with an enclosed printer.
Product Specifications
| Parameter | Value |
|---|---|
| Product Name | QIDI UltraPA Nylon Filament |
| Base Material | PPA (Polyphthalamide / High-Temperature Nylon) |
| Diameter | 1.75mm ± 0.02mm |
| Spool Weight | 1 kg (2.2 lbs) |
| Color | Natural (off-white) |
| Price | $109.99 USD |
| Density | 1.21 g/cm³ |
| Water Absorption (saturated) | 2.10% (1/5 of standard PA6) |
| Melting Temperature | 231°C |
| Heat Deflection Temperature (HDT) | 72.5°C |
| Melt Index | 9.4 g/10 min |
| Tensile Strength | 69.29 ± 1.17 MPa |
| Breaking Elongation | 9.77 ± 1.68% |
| Bending Modulus | 3202.24 ± 115.78 MPa |
| Bending Strength | 112.64 ± 1.60 MPa |
| Impact Strength (Charpy) | 9.74 ± 0.84 kJ/m² |
| Layer Adhesion vs ABS | 2-3x stronger |
| Layer Adhesion vs PLA | 1.5x stronger |
| Recommended Nozzle Temp | 260-280°C (up to 300°C) |
| Recommended Bed Temp | 70-80°C (with PVP glue or 3D LAC) |
| Print Speed | 30-120 mm/s |
| Cooling Fan | Off (0%) |
| Drying Requirements | 80-100°C for 4-6 hours before use |
| Storage Humidity | Below 15% RH (sealed with desiccant) |
| Recommended Nozzle | Hardened steel or bimetal (0.4/0.6/0.8mm) |
| Not Recommended | Brass or copper-plated nozzle |
| Build Plate | QIDI PEI plate, HF plate, smooth plate (NOT PC plate) |
| Printer Requirement | Enclosed chamber with active heating recommended |
| Packaging | Vacuum aluminum foil (0.014% WVTR) |
| Spool Type | High-temperature resistant spool |
| Annealing | 80-100°C for 4-6 hours, natural cool |
Mechanical Performance Comparison
| Property | QIDI UltraPA (PPA) | Standard PA6 | ABS | PLA |
|---|---|---|---|---|
| Tensile Strength | 69.29 MPa | 50-60 MPa | 30-40 MPa | 50-60 MPa |
| Bending Strength | 112.64 MPa | 80-100 MPa | 50-70 MPa | 80-100 MPa |
| Heat Deflection Temp | 72.5°C | 60-70°C | 85-100°C | 55-60°C |
| Water Absorption | 2.10% | 9-10% | 0.2-0.4% | 0.1-0.3% |
| Layer Adhesion | Excellent (2-3x ABS) | Good | Moderate | Poor-Moderate |
| Abrasion Resistance | Excellent (self-lubricating) | Good | Moderate | Poor |
| Chemical Resistance | Excellent | Good | Moderate | Poor |
Key Features
Low Moisture Sensitivity
QIDI UltraPA is based on modified PPA (polyphthalamide), with a saturated moisture absorption rate of only 2.10% — one-fifth that of standard PA6 (9-10%). This dramatically reduces warping, dimensional instability, and mechanical property degradation caused by moisture absorption. Standard nylon absorbs enough water in 24 hours to reduce tensile strength by 20-30%; UltraPA maintains its properties far longer.
Exceptional Layer Bonding
UltraPA delivers the strongest layer adhesion in the QIDI filament lineup. Single-wall layer bond strength is 2-3 times that of ABS and 1.5 times that of PLA. This means printed parts are less likely to delaminate under stress, making UltraPA suitable for load-bearing functional parts where layer separation is a failure mode.
Super Abrasive Resistance
With a low coefficient of friction, self-lubricating properties, and excellent wear resistance, UltraPA is engineered for high-wear applications including gears, bushings, bearings, and industrial components. The PPA base material provides inherent lubricity that reduces friction without external coatings.
Robust Thermal Resistance
The PPA substrate gives UltraPA a heat deflection temperature of 72.5°C and a melting point of 231°C. Parts can withstand elevated temperatures without warping or softening, expanding the application range beyond what PLA or standard nylon can handle. Annealing at 80-100°C further improves thermal stability and strength.
Vacuum Aluminum Foil Packaging
UltraPA ships in vacuum-sealed aluminum foil packaging with a water vapor transmission rate of just 0.014% — compared to 4.76% for standard sealed packaging. This means the filament arrives dry and stays dry during storage. The high-temperature spool resists deformation in dryers and heated chambers.
Pros & Cons
Pros
- 5x lower moisture absorption than standard PA6 (2.10% vs 9-10%), reducing warping and print failures
- 2-3x stronger layer bonding than ABS, 1.5x stronger than PLA — parts resist delamination
- 69.29 MPa tensile strength and 112.64 MPa bending strength for load-bearing parts
- Self-lubricating with low friction coefficient — ideal for gears and bearings
- 72.5°C HDT for heat-resistant functional parts
- Vacuum aluminum foil packaging (0.014% WVTR) keeps filament dry in storage
- High-temperature spool resists deformation in dryers and enclosures
- ±0.02mm diameter tolerance for consistent extrusion
- Excellent chemical resistance against oils, fuels, and solvents
- Annealing compatible — 80-100°C for 4-6h further improves strength
- 1kg spool with reusable vacuum packaging
- TDS and MSDS documentation available for industrial users
Cons
- $109.99 price — significantly more expensive than PLA ($20-30) and standard nylon ($40-60)
- Requires hardened steel or bimetal nozzle — brass nozzles wear quickly and are not recommended
- Enclosed printer required — open-frame printers will experience warping and layer separation
- Active chamber heating recommended — passive enclosures may not suffice for large parts
- Must dry before every use — 80-100°C for 4-6 hours, even with low moisture sensitivity
- Cooling fan must be off — part cooling causes warping and poor layer adhesion
- Requires PVP glue or 3D LAC on build plate for adhesion — PEI alone may not hold
- Only natural color available — no color options at launch
- PC build plate not compatible — use PEI, HF, or smooth plate only
- Slow print speed recommended (30-60mm/s) for best layer bonding — not ideal for rapid prototyping
- Not beginner-friendly — requires enclosure, drying, and tuned settings
- Post-processing needed for optimal strength — annealing adds 4-6 hours
Recommended Printing Settings
| Setting | Value | Notes |
|---|---|---|
| Nozzle Temperature | 260-280°C (up to 300°C) | Higher temp improves layer bonding; start at 270°C |
| Bed Temperature | 70-80°C | Use with PVP glue or 3D LAC adhesive spray |
| Chamber Temperature | 40-60°C (active heating) | Prevents warping and improves layer adhesion |
| Print Speed | 30-60 mm/s (optimal), up to 120 mm/s | Slower = better layer bonding for functional parts |
| Cooling Fan | Off (0%) | Fan causes warping and layer separation |
| Layer Height | 0.15-0.25mm | 0.2mm recommended for strength/speed balance |
| Infill | 20-100% depending on application | 100% for maximum strength functional parts |
| Infill Pattern | Gyroid or cubic for strength | Avoid rectilinear for load-bearing parts |
| Wall Count | 3-4 walls | More walls = stronger outer shell |
| Top/Bottom Layers | 5-6 layers | Ensures watertight and strong surfaces |
| Retraction Distance | 1-3mm (direct drive), 4-7mm (bowden) | Nylon oozes more; tune with retraction tower |
| Drying Before Print | 80-100°C, 4-6 hours | Use filament dryer or convection oven |
| Storage Humidity | Below 15% RH | Sealed container with desiccant during printing |
| Nozzle Type | Hardened steel or bimetal | 0.4/0.6/0.8mm; NOT brass or copper-plated |
| Annealing (optional) | 80-100°C, 4-6 hours, natural cool | Improves strength and thermal stability |
Compatible Printers & Accessories
| Category | Recommended | Not Recommended |
|---|---|---|
| 3D Printer | QIDI Max 4, QIDI X-MAX 3, QIDI X-Plus 3, Bambu Lab X1C/P1S, Prusa XL (enclosed), any enclosed printer with 300°C+ hot end | Open-frame printers (Ender 3, Prusa Mini without enclosure), printers max 250°C hot end |
| Nozzle | Hardened steel (0.4/0.6/0.8mm), Bimetal nozzle (0.4/0.6/0.8mm) | Brass nozzle, copper-plated nozzle (any size) |
| Build Plate | QIDI PEI plate, HF plate, smooth plate (with PVP glue or 3D LAC) | PC plate (polycarbonate) |
| Adhesion Aid | PVP glue stick, 3D LAC adhesive spray | None (will not adhere reliably without glue) |
| Drying | QIDI Dryer Box, filament dryer at 80-100°C | Room air drying (insufficient) |
Applications
- Industrial gears and pinions — self-lubricating PPA reduces friction and wear
- Bushings and bearings — low coefficient of friction for moving parts
- Functional prototypes — engineering-grade strength for testing
- Jigs and fixtures — heat and chemical resistance for manufacturing environments
- Automotive components — under-hood parts requiring heat resistance
- Drone and RC parts — high strength-to-weight ratio
- Tool handles and components — impact and abrasion resistance
- Electrical enclosures — chemical resistance and insulating properties
Frequently Asked Questions
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