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Design for Additive Manufacturing Flashcards

7 cards from real 3D Product practice questions. Tap to flip, then mark Knew It or Still Learning — missed cards come back until you master them.

Read the first 7 Design for Additive Manufacturing flashcards as text
  1. When designing holes for press-fit inserts in an FDM part, what is the recommended approach?

    Answer: Design holes 0.1–0.2mm undersized, then drill or ream to final size

    FDM holes tend to print slightly undersized due to material shrinkage and layer geometry; designing them slightly undersized and finishing to size yields the most accurate press fits.

  2. What is the primary engineering benefit of incorporating lattice structures into a 3D printed product?

    Answer: Significantly reducing mass while maintaining structural stiffness

    Lattice structures are open-cell frameworks that remove bulk material from low-stress regions, dramatically reducing weight while preserving the structural integrity demanded by the application.

  3. When designing snap-fit joints for FDM printed parts, which material property pair is most critical?

    Answer: Flexural modulus and elongation at break

    Snap fits must deflect under load (requiring low flexural modulus) and return without fracturing (requiring high elongation at break), making these two properties decisive for reliable snap joints.

  4. What does 'functional integration' mean in Design for Additive Manufacturing?

    Answer: Consolidating multiple traditionally separate components into a single printed part

    Functional integration leverages additive manufacturing's geometric freedom to merge several parts into one, reducing part count, assembly time, and potential failure points.

  5. Why must designers account for anisotropic mechanical properties when creating press-fit assemblies with FDM parts?

    Answer: FDM parts are stronger in XY than along Z, so fit forces in the build direction may cause layer delamination

    FDM parts are weakest in the Z (layer stacking) direction due to incomplete inter-layer bonding; interference fits that apply stress along Z risk delamination failure.

  6. How does layer height selection affect the design of curved surfaces on an FDM part?

    Answer: Thicker layers exaggerate the staircase effect on curved surfaces, which designers must consider for functional or aesthetic requirements

    Larger layer heights create a more pronounced staircase stepping effect on angled or curved surfaces; designers should orient critical curved features or specify finer layers when surface quality matters.

  7. What is the 'staircase effect' and how can part orientation in the slicer help mitigate it?

    Answer: Visible layer stepping on angled or curved surfaces; mitigated by orienting critical curved features closer to vertical

    The staircase effect is visible stepping on non-vertical surfaces caused by layer-by-layer deposition; rotating the part so important curves lie closer to vertical reduces the apparent stepping.