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Vulpercentage bij grote onderdelen: wat het werkelijk betekent

10-10-2026
De verbanden die wel standhouden, zijn de eenvoudige: vuldichtheid en printtijd bewegen samen, evenals het gewicht van het onderdeel en de vulgraad. 

volgt een andere lijn en reageert op de afstand tot het midden van de sectie in plaats van op de hoeveelheid. Van de drie 

Wat betreft de vragen, de context geeft slechts aan één persoon betrouwbaar antwoord.

De keuze tussen een volledig gevulde en een spaarzaam gevulde ruimte is een kwestie van welke van die vragen doorslaggevend is, en geen keuze over de kwaliteit. 


Wat er van een 3D-printer wordt gevraagd, of het nu gaat om het behouden van een vorm of het weerstaan ​​van een klap, bepaalt welke printer nog bruikbaar is.large format 3d printer asked to fill 20 percent of that interior still traces every outline in full. The silhouette 

it produces is not 20 percent solid, and everything the figure does follows from that one arrangement.


What the Percentage Applies To, and What It Leaves


Every slicer does the same thing first. It traces the outline of each layer, then fills the region left inside those loops. 

The loops are the perimeter. The region is the only thing the percentage addresses.


The two ends are unambiguous: 0 leaves the interior empty, and 100 fills it solid. Between them, grid, triangles, 

and honeycomb describe the same occupancy in different shapes, and none of those patterns changes what the 

number measures. The setting describes the same interior; however, the feedstock is supplied as filament or as 

pellets.


Infill percentage explained properly is a statement about volume. Read as a promise about a finished part, the 

same figure overstates what it controls, because a large part is mostly perimeter, surface, and joints.


What Density Changes First: Mass and Deposition Time


Raising the percentage adds polymer, and polymer has to be deposited. Both consequences track the interior 

volume closely, which makes them the most dependable effects of the setting. Doubling the interior density 

roughly doubles the mass the interior accounts for, and the deposition time that belongs to the interior grows 

with it. On an industrial 3d printer, the second effect shows up in the schedule rather than in the parts.


The perimeter, the solid layers at the top and bottom, and the travel between features are largely unmoved by 

the figure. What the setting owns is the volume between them, and everything else on that list is decided by 

other settings.


Shell vs Core: Which One Carries Bending


Bending is decided by distance. A section resists bending in proportion to how far its polymer sits from the 

middle, and that contribution grows with the square of that distance. Doubling that distance multiplies the 

contribution by 4, and moving it 3 times further out multiplies it by 9. The outermost polymer does the most 

work. The polymer at the centre does the least.


The interior is not useless for that. It holds the inner wall against folding inward, and it supports the top surface 

while it closes. Both are genuine structural duties, and neither appears in a stiffness figure.


Scaled Up 2 Times, the Same Setting Does Less


Perimeter and area do not grow together. Scale a cross-section 2 times in width, and the perimeter grows 2 times 

while the enclosed area grows 4 times. Scale it 10 times and the perimeter grows 10 times while the area grows 

100 times. Scale a whole part in all three directions and its volume grows 8 times, which is why mass is what 

climbs fastest on a large build.


This is why infill for large 3d prints is a different question from the same setting on a small one. The bigger the 

section, the smaller the share of it the perimeter can influence, and the more the interior becomes a structural 

matter in its own right instead of a detail sitting behind a wall. Moving a setting from 20 percent to 60 percent 

adds polymer everywhere, and the load path has not moved.


Why Direction Beats Percentage


Two parts built at the same density can behave differently, because infill pattern direction is a separate decision. 

Strands crossing a bending load act as ribs and add resistance where it counts. The same density aligned along 

the load direction adds polymer the perimeter was already carrying.


The joint matters as much as the geometry. Where the infill meets the inner wall, the connection either transfers 

load across the gap or it does not, and a dense core joined weakly to the shell is a heavier part with unchanged 

stiffness. That failure is invisible from the outside and common in parts approved on density alone.


PatternBest ForWhy
Grid / LinesSpeed, general useFast to print, decent strength, but can split along one axis
TriangularShear resistanceBest strength-to-weight for large parts under varied loads
GyroidIsotropy, no weak axesExcellent all-around, but slower to print on large parts
CubicVertical loadsGreat for compression, less so for bending
LightningVisual parts, max speedSacrifices strength for minimal material—terrible for structural use


Does Infill Make a Part Stronger?


The interior has a genuine job when a part is struck across its face, or loaded in compression where buckling sets 

the limit. Infill for load bearing parts is a question about position, and density is the right lever for it only then. 

A 3d printer is told how full to make the interior, but not what the part will be asked to do.


Surface work runs the other way. A mould or a forming tool is judged by its face, and a fixture by the position it holds. 

In both, the perimeter and the joints decide the result, and polymer in the middle only has to keep the face from 

flexing while it is worked. Extra density changes nothing an inspector can find once that is satisfied. The relation 

between infill percentage and stiffness is not proportional, and in that class of work it is barely present.


Infill %Relative Strength GainWhat's Happening
0–15%High per-percent gainWalls are the primary load path; infill mainly prevents wall deflection
15–40%Moderate gainsInfill starts sharing meaningful load with walls
40–60%Diminishing returnsMost strength now comes from wall count, not infill
60–100%Minimal extra strengthYou're mostly burning filament and time

On large parts specifically: The bigger the part, the more infill acts as a spacer/brace between top/bottom shells 

rather than a load-bearing structure. A large 20% infill part with 4–5 walls will often be stronger than a 50% infill 

part with 2 walls.


Stiffness, Strength, and Toughness: Answer 3 Different Questions


Stiffness is resistance to deflection. Strength is the load at which something gives, and toughness is how much 

energy a part absorbs before it does. The three are usually quoted as a single property, and they behave differently.


The links that do hold are the simple ones: infill density and print time move together, and part weight and infill 

follow the same line, because both track the volume of polymer placed rather than where it is placed. Stiffness 

follows a different line, answering to distance from the middle of the section instead of to quantity. Of the three 

questions, the setting speaks reliably to only one.


Solid infill vs sparse infill is a choice about which of those questions matters, and not a choice about quality. 

What a 3d printing machine is asked to do, hold a shape or survive a blow, decides which one is live.



volgen dezelfde lijn, omdat beide het volume van het aangebrachte polymeer meten in plaats van de plaats waar het is aangebracht. Stijfheid 
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