Accuracy and comparison

Accuracy is proven by repeatable numbers,
not adjectives

“Accuracy” means different things at different stages. This page breaks out what each parameter governs, along with our actual inspection methods and the factors that most often affect results.

  • 22 μmXY projection pixel
  • ±0.03 mmFeature tolerance (≤30 mm)
  • Ra 1.6 μmSurface after finishing
  • 100%Critical dimensions can be 100% inspected

Accuracy parameters

What each parameter actually governs

“Accuracy” means different things at different stages. Each parameter is broken out below so the wrong metric is not quoted against a requirement.

25 μmMinimum layer height — governs curve smoothness and layer lines
22 μmXY projection pixel — governs planar detail resolution
±0.03 mmFeature tolerance for ≤30 mm; beyond this is quoted separately
0.4 mmMinimum through-hole; yield falls below this
0.6 mmMinimum stable wall; thinner requires sample validation
Ra 1.6 μmSurface roughness after finishing; polishing goes lower

Process comparison

How DLP, laser SLA and FDM differ

All three are called 3D printing, but different forming principles give different results. The table compares them for small hearables parts.

DLP vs. laser SLA vs. FDM
ItemDLP photopolymer (in-house)Laser SLAFDM extrusion
Forming methodWhole-layer exposureLaser point scanningMolten extrusion line
Minimum layer height25 μm25 μm100 μm
XY detail22 μm pixel80–140 μm spot400 μm nozzle
Small-batch efficiencyHigh — whole plate cures togetherMedium — point-by-point scanningLow — part-by-part deposition
Surface qualityFine — layer lines nearly invisibleFineVisible layer lines
Best suited toSmall hearables parts, fine features, 10–500 unitsLarge, high-precision single partsLarge functional prototypes

Inspection methods

How dimensions are measured and appearance judged

Inspection depth varies by order. State the application and we will define the corresponding plan instead of defaulting to a visual check.

  1. 01

    Standard sampling

    Key external dimensions measured with calipers and sampled to AQL. Suited to assembly checks and internal structural parts.

  2. 02

    Vision-system measurement

    Mating faces, tube bores and hole positions are measured on a vision system with reported actual values.

  3. 03

    100% inspection of critical dimensions

    Batch orders can specify 100% inspection of critical dimensions, with lot, material and inspection data recorded per part.

  4. 04

    Appearance sample comparison

    Once both sides approve the first-article sample, production is compared against it for colour difference, surface uniformity and support-mark placement.

Influencing factors

The same drawing can differ in these respects

Accuracy is not a single variable. These are the factors that most often affect final dimensions and appearance in real projects.

Orientation

  • Critical dimensions are more stable along the build direction
  • Support contacts leave marks and must avoid mating faces
  • Large unsupported faces are tilted to reduce distortion

Layer height selection

  • 25 μm smooths curves but nearly doubles time
  • 50 μm balances most structural parts
  • 100 μm suits large outlines and non-critical features

Post-processing intensity

  • Sanding and polishing change dimensions — allowance required
  • Over-washing affects clarity and surface of clear parts
  • Over-curing makes thin walls brittle

Material shrinkage

  • Shrinkage varies by grade and must be matched in slicing
  • Abrupt wall-thickness changes build internal stress
  • For large batches, validate shrinkage compensation on a sample first

For parts over 100 mm or cosmetic parts with extreme surface requirements, we recommend another process rather than forcing DLP.

Need a specific tolerance checked?

Send the drawing and critical dimensions; we assess the achievable range first, then set layer height and finishing tier.

Request a sample quote