How Slicer Settings Affect Your Quote: The Hidden Cost Variables
This article is available in English only.
The Slicer Is a Cost Calculator
Most people think of a slicer as a tool that converts 3D models into printer instructions. It is that — but it's also a cost calculator in disguise. Every slicer parameter that changes print time or material usage directly changes the cost of your part.
Understanding this relationship lets you make informed trade-offs: where to save cost without sacrificing function, and where investing in better settings pays off in quality. Nodefab's FDM quote reacts to several of these same parameters — infill, wall count and supports — so you can see what is driving your quote.
The Five Cost-Driving Slicer Parameters
┌─────────────────────────────────────────────────────────────────┐
│ Parameter Affects Typical Range │
├─────────────────────────────────────────────────────────────────┤
│ Layer Height Time, Surface 0.05mm - 0.4mm │
│ Infill % Material, Time 0% - 100% │
│ Infill Pattern Material, Time Gyroid, Grid, Lines... │
│ Wall Count Material, Time 1 - 6+ perimeters │
│ Support Type Material, Time Normal, Tree, None │
└─────────────────────────────────────────────────────────────────┘
1. Layer Height: The Speed/Quality Trade-off
Layer height is the most impactful single parameter for print time. A 0.2mm layer is exactly twice as fast as a 0.1mm layer for the same geometry (half as many layers, same speed per layer).
Part: 50mm tall cylinder
Layer Height | Layers | Print Time | Surface Quality
-------------|--------|------------|----------------
0.05mm | 1,000 | ~8 hours | Near-SLA quality
0.1mm | 500 | ~4 hours | Excellent
0.2mm | 250 | ~2 hours | Good (standard)
0.3mm | 167 | ~80 min | Visible lines
0.4mm | 125 | ~60 min | Coarse, fastest
Key constraint: Maximum layer height ≈ 75% of nozzle diameter. With a 0.4mm nozzle, maximum reliable layer height is ~0.3mm. For 0.4mm layers, you need a 0.6mm nozzle, which also means wider lines and lower detail.
Engineering recommendation: 0.2mm is the "production standard" — good quality, reasonable speed. Use 0.1mm for functional surfaces that require better tolerance. Use 0.3mm for large structural parts where time matters more than finish.
2. Infill: Structure, Weight, and Cost
Infill fills the interior volume of solid-looking parts with an internal lattice structure. It's one of the most misunderstood slicer settings.
Cross-section view of different infill percentages:
10% Infill 40% Infill 100% Infill
(Prototype) (Functional) (Solid)
┌───────────┐ ┌───────────┐ ┌───────────┐
│ / / /│ │ /\ /\ /\ /\│ │███████████│
│ / / / │ │/\/\/\/\/\/│ │███████████│
│/ / / │ │\/\/\/\/\/\│ │███████████│
└───────────┘ └───────────┘ └───────────┘
Lines pattern Grid/Gyroid pattern Solid
Critical insight: Infill % doesn't scale linearly with strength.
Infill % vs Compressive Strength (approximate):
10% → ~40% of solid strength
20% → ~55% of solid strength
40% → ~70% of solid strength
60% → ~80% of solid strength
80% → ~90% of solid strength
100% → 100% (but perimeters matter more than infill!)
For most structural applications, 20-40% infill with 3-4 perimeter walls provides excellent strength at significantly lower cost than 80-100% infill. The perimeter walls contribute much more to part strength than infill.
Infill patterns and their trade-offs:
| Pattern | Speed | Strength | Use Case |
|---|---|---|---|
| Lines | Fastest | Anisotropic | Prototypes |
| Grid | Fast | Good | General purpose |
| Gyroid | Medium | Isotropic | Flexible parts, fluid flow |
| Honeycomb | Slow | High XY | High-load structural |
| 3D Honeycomb | Slow | High 3D | Impact resistance |
Gyroid is the engineering-optimal infill for most functional parts: it provides isotropic strength (same in all directions), good energy absorption, and allows fluid/air to pass through (relevant for foam-replacement applications).
3. Wall Count: Where Strength Really Comes From
Part cross-section showing wall contribution:
2 Walls (Perimeters) 4 Walls
┌─────────────┐ ┌─────────────┐
│││ │││ ││││ ││││
│││ INFILL │││ ││││ INFIL ││││
│││ │││ ││││ ││││
└─────────────┘ └─────────────┘
Thin walls, brittle Thick shells, strong
The perimeter walls are continuous, high-density material. They resist bending and impact much better than infill. For parts that will be drilled, tapped, or load-bearing through their walls:
- 2 walls (0.8mm): Visual prototypes only
- 3 walls (1.2mm): Light functional use
- 4 walls (1.6mm): Standard functional parts
- 5-6 walls (2.0-2.4mm): High-stress, threaded connections
Adding a wall adds less cost than raising infill from 40% to 80% — but contributes significantly more strength. This is the counter-intuitive but important insight for cost-optimized part design.
4. Supports: The Hidden Time and Cost Multiplier
Support structures are necessary to print overhangs >45°, but they're expensive:
Support impact on cost:
No supports: Baseline cost
Standard supports: +20-40% material, +25-50% time
Dense supports: +40-80% material, +50-100% time
Tree supports: +10-20% material, +15-25% time
Soluble supports: +High material cost, +time
Tree supports (available in PrusaSlicer, OrcaSlicer, Bambu Studio) are a major innovation: they contact the part at minimal points and use far less material than traditional grid supports. For parts with complex overhangs, tree supports can reduce support material by 50-70% vs grid supports.
Design for no supports: The best support is no support. Design rules that eliminate supports:
- Fillet/chamfer overhangs to 45° or less
- Orient the part to minimize overhangs
- Use bridging (horizontal spans <50mm bridge without supports)
- Split the part at the overhang and bond after printing
Nodefab's cost model explicitly includes support material and removal labor. When you see two quotes for the same part in different orientations, the difference often traces back entirely to support requirements.
5. Print Speed: Time vs Quality
Print speed has become a hot topic with the rise of high-speed printers (Bambu Lab X1C, Creality K1, etc.). Modern machines with proper cooling can print at 200-300 mm/s vs the traditional 50-60 mm/s.
Speed vs Quality trade-off:
Speed | Layer Adhesion | Surface Quality | Reliability
---------|---------------|-----------------|------------
40 mm/s | Excellent | Excellent | Very high
80 mm/s | Very good | Very good | High
150 mm/s | Good | Good | Good (with tuning)
200 mm/s | Fair-Good | Reduced | Medium (needs HW)
300 mm/s | Variable | Reduced | Lower
High speed reduces cost — but only if the printer hardware and calibration support it. A standard printer running at 200 mm/s will produce worse parts than running at 80 mm/s. Industrial printers with enclosed, heated chambers and precise motion systems can maintain quality at higher speeds.
In Nodefab's current FDM quote, print speed doesn't change the price: the quote is built from material and handling labor, not from machine hours.
The Slicer-to-Quote Connection in Nodefab
When you upload a part to Nodefab, the FDM quote is computed like this:
Upload STL / STEP / 3MF
│
▼
Geometry:
• Volume: X cm³
• Bounding box
│
▼
Your Settings:
• Material
• Infill %
• Wall count
• Supports (generated in the editor from an overhang angle)
• Quantity
│
▼
Cost Calculation:
• Material weight (volume × density × fill from infill and walls)
• Support material (priced as solid material)
• Labor (part removal + support removal)
│
▼
Instant Quote with breakdown
Conclusion
Slicer settings are cost variables, not just quality variables. Understanding how layer height, infill, wall count, supports, and speed interact with cost lets you make intelligent trade-offs: higher layer height where surface quality isn't critical, lower infill with more walls for structural efficiency, tree supports to minimize support cost.
Nodefab makes part of these trade-offs visible right away: its instant quote splits the price into material and labor, so you can see what infill, walls and supports add — knowledge that helps you design better parts from day one.
Practical exercise: take any part, upload it to Nodefab, and compare quotes at 20% vs 60% infill, and with 2 vs 4 walls. The cost differences will make the engineering trade-offs immediately concrete.