Lesson 1 of 5 · 15 min
How FDM printing works
A robot is mostly brackets, mounts, gears and covers, and a desktop 3D printer can make all of them overnight for a few cents of plastic. But a printed part is not a magic solid. It is a stack of thin plastic lines, and nearly every design and settings decision in this course comes back to that one fact. This lesson explains the machine, the material, and the safety habits that keep a printer from becoming a hazard.
The idea: melt, place, repeat
FDM (fused deposition modelling) printing pushes a plastic thread called filament through a heated nozzle and lays the melted plastic down in a line about 0.4 mm wide. The nozzle draws the outline of one slice of the part, the platform moves down (or the nozzle moves up) by one layer height, typically 0.2 mm, and the next slice is drawn on top. A 40 mm tall bracket is therefore 200 layers, and the plastic of each layer fuses to the one below because it is still hot when it lands.
The four subsystems
Extruder. A small stepper motor drives a toothed gear that grips the filament and pushes it toward the nozzle. Commonly the filament is 1.75 mm in diameter. In a direct drive extruder the motor sits right above the hotend, which gives precise control and makes flexible filament possible. In a Bowden setup the motor is on the frame and pushes the filament through a PTFE tube, which keeps the moving head light but makes the filament stretch and spring.
Hotend. This is the part that melts the plastic. A heater cartridge (often 40 W at 24 V) warms an aluminium heater block, and a thermistor reads its temperature so the controller can hold it within about 1 or 2 degrees using a PID loop. Above the block sits the heat break, a thin-walled metal tube that stops heat travelling up the filament path. If heat creeps up too far, the filament softens too early and jams. The nozzle at the bottom is usually brass with a 0.4 mm hole.
Heated bed. The first layer has to stick, and then the part has to stay stuck while 100 more layers shrink slightly as they cool. A bed at 60 degrees C for PLA, or 70 to 80 degrees C for PETG, keeps the bottom layers soft enough to bond to a textured PEI sheet and slowly cool afterwards.
Steppers and frame. Stepper motors move the head and bed. A standard motor turns 1.8 degrees per full step, so 200 steps per revolution, and the firmware counts steps to know where the nozzle is, with no encoder feedback at all. That is why a skipped step becomes a shifted layer, and why Lesson 4 spends time on steps per millimetre. Printers come as bed slingers (the bed moves in Y), CoreXY (the head moves in X and Y, the bed only in Z) and delta designs. CoreXY is faster because the heavy bed is not whipped back and forth.
Choosing a filament for robot parts
Filaments differ in the temperature they print at, how much they bend, and what temperature makes them soften. For robots the softening temperature matters more than people expect: a stepper motor commonly runs at 60 to 80 degrees C on its case, and a car dashboard in summer is hotter still.
| Material | Nozzle (C) | Bed (C) | Softens at (C) | Character | Good for |
|---|---|---|---|---|---|
| PLA | 190 to 220 | 50 to 60 | about 60 | stiff, brittle, easy to print | prototypes, covers, jigs, indoor chassis plates |
| PETG | 225 to 250 | 70 to 80 | about 80 | tougher, slightly flexible, stringy | brackets, motor mounts, gears, load-bearing parts |
| ABS | 230 to 260 | 90 to 110 | about 100 | strong, heat resistant, warps | parts near heat, if you have an enclosure |
| TPU | 210 to 230 | 40 to 60 | rubbery | soft, stretchy, slow to print | tyres, bumpers, vibration pads, grommets |
A sensible default workflow: print every first version in PLA because it is forgiving and cheap, and reprint in PETG once the shape is right and the part must survive loads, impacts or warm motors. Reserve ABS for cases where PETG is not hot enough and you can enclose the printer. Use TPU wherever the part should absorb shock, such as a wheel tread or a battery pad, but expect to print it at 20 to 30 mm/s.
Safety
A printer is a small industrial machine, and it deserves three habits.
Hot parts. The nozzle sits above 200 degrees C and the bed up to 110 degrees C. Both burn skin on contact and stay hot for minutes after a print ends. Never reach into the machine while it is heating, and let it cool before you pull a part off.
Fumes. Melting plastic releases ultrafine particles and volatile compounds. PLA is the mildest. ABS releases styrene, which is an irritant and a suspected carcinogen, so print it only in a ventilated space, ideally with the printer in an enclosure that vents outside. Do not put a printer on a desk next to your bed.
Fire. Firmware includes thermal runaway protection that cuts power if the temperature does not behave, but wiring faults and loose heater cartridges still cause real fires.
Also keep fingers out of the moving gantry and belts, and wear eye protection when you cut away supports with a blade or snips, because they can fly.
What to remember
Everything in the next lessons follows from this picture. A hot nozzle lays 0.4 mm wide lines 0.2 mm high. Steppers place them using counted steps. Layers fuse more weakly than lines run along themselves. And the material you choose sets how hot the part can get in service.
Check yourself
What is the job of the heat break in a hotend?
Check yourself
A bracket will be mounted directly against a stepper motor whose case reaches about 70 degrees C. Which material is the safest choice?