Thingiverse
Square Mesh Sieves V2 - FINAL
di Cmannucci
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FINAL UPDATE Version V2 - May 19, 2025
I have added a new print profile (Setacci_v5.3mf) encompassing all (9) sieves ranging from 0.4 mm to 5.5 mm. Criteria for determining infill percentage are summarized in the file "Foglio elettronico.jpg".
Furthermore, this new print profile incorporates a plate for printing a simplified sieve locking system, replacing screws with rubber bands. This enabled me to stack 9 sieves plus a base and cap (which would have required screws exceeding 20 cm!). While rubber bands are less robust than screws, they proved sufficiently effective (I used 4 rubber bands with a 40 mm diameter, 3 mm width, and 2 mm thickness).
FINAL CONCLUSIONS
In conclusion, the method of using modifiers to rapidly create a square-mesh “GRID” with reasonably precise mesh apertures appears reliable and reproducible. Achievable aperture sizes range from 0.4 mm (71% infill) to approximately 6 mm (11% infill); infill values (D) below 11% are poorly predictive of the actual printed mes
I have added a new print profile (Setacci_v5.3mf) encompassing all (9) sieves ranging from 0.4 mm to 5.5 mm. Criteria for determining infill percentage are summarized in the file "Foglio elettronico.jpg".
Furthermore, this new print profile incorporates a plate for printing a simplified sieve locking system, replacing screws with rubber bands. This enabled me to stack 9 sieves plus a base and cap (which would have required screws exceeding 20 cm!). While rubber bands are less robust than screws, they proved sufficiently effective (I used 4 rubber bands with a 40 mm diameter, 3 mm width, and 2 mm thickness).
FINAL CONCLUSIONS
In conclusion, the method of using modifiers to rapidly create a square-mesh “GRID” with reasonably precise mesh apertures appears reliable and reproducible. Achievable aperture sizes range from 0.4 mm (71% infill) to approximately 6 mm (11% infill); infill values (D) below 11% are poorly predictive of the actual printed mes
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