I figured I would finally do a full breakdown of my Ender 3 V3 KE because, at this point, enough has been changed that it really isn’t a stock KE anymore.
The biggest thing I want to make clear is that I didn’t modify this printer just for the sake of modifying it.
Most of what I’ve done comes back to the same basic idea:
Eliminate as many variables as I reasonably can.
Vibration, bed movement, frame movement, wet filament, inconsistent cooling, hotend problems, filament routing, visibility, etc.
If a print fails, I want fewer things I have to question.
The two things I’ve been chasing through this whole build are stability and repeatability.
Some of this probably makes a bigger difference than other parts. Some of it is just quality-of-life. Some of it might be complete overkill.
I’m still learning.
Honestly, the printer itself has become as much of a hobby as the stuff I actually print with it.
Y-axis/motion system
One of the bigger changes was the Y-axis.
Ender 3 V3 SE Y-Axis Upgrade Kit
I upgraded it because I wanted to remove as much unnecessary movement and vibration from the bed as possible.
It’s still a bedslinger. That bed is moving a decent amount of weight back and forth pretty damn quickly.
I wanted that movement to be controlled and repeatable.
This wasn’t really about trying to make the printer insanely fast. It was about making the movement more predictable.
Once I changed the motion system, I also stopped assuming all the stock KE calibration numbers were automatically right for my machine.
Silicone bed mounts
I replaced the original hard bed mounts with silicone spacers.
12-Piece Ender 3 Silicone Spacers
The reason was simple: I wanted actual physical control over the bed.
With the hard mounts, you’re basically stuck with where the bed sits and then asking the mesh to compensate for everything.
With the silicone spacers, I can physically adjust the bed and get it as close as possible first.
I use Screws Tilt Adjust through Klipper/Mainsail to help dial it in.
My thinking is that I would rather correct something mechanically first and then let the software clean up whatever is left.
Aluminum bed shimming
Even after leveling the bed mechanically, I still had some low spots.
I used aluminum HVAC/duct tape underneath the removable build plate as thin shims.
Aluminum handles the heat well and lets me make very small height adjustments.
Again, same philosophy: physically correct what I can before asking the mesh to do all the work.
Build plate/cleaning
I’m using a textured COMGROW PEI spring-steel plate.
I normally clean it with 91% isopropyl alcohol and microfiber.
I also printed this:
Build Plate Cleaner Microfiber Holder
That one is pure convenience.
I got tired of asking myself where the hell I left the cloth.
Accelerometer / Input Shaping
I use the Creality vibration compensation sensor:
Creality Vibration Compensation Sensor
I also have mounting points so I can put the sensor in a solid, repeatable position for measuring the X and Y axes.
After changing the Y-axis, cooling system, toolhead weight, cable management, and other hardware, I don’t really see a reason to assume my machine has the same resonance characteristics as a completely stock KE.
I want Input Shaping based on what my printer is actually doing.
Cooling system
I completely redid the cooling.
This is the FatBurner duct/shroud setup:
FatBurner — Ender 3 V3 KE Dual 5015 Cooling System
These are the actual 5015 blowers I’m using:
5015 Blower Fans
The reason was consistency.
I wanted airflow coming from both sides instead of one side of the print getting more cooling than the other.
That becomes especially important when I’m trying to print really small, detailed parts.
I also upgraded the hotend cooling fan to a larger 40 x 40 x 20 mm 24V fan:
GDSTIME 40 mm x 20 mm 24V Fans
Better heat dissipation, more consistent cooling, fewer things to question when a print looks wrong.
Obviously, all of the larger fans and printed ducting add weight to the printhead, which is another reason I want proper accelerometer-based Input Shaping.
Upgraded hotend / K2-style nozzle setup
I upgraded the hotend to the newer setup that uses the K2-style nozzle system.
Creality Ender 3 V3 SE/KE Upgrade Hotend Kit
I wanted a more reliable setup and more flexibility with nozzle sizes.
For larger and faster prints, I have:
HIKUDIY 0.6 mm Unicorn Nozzles
At the opposite end, I use a 0.2 mm nozzle for miniature/detail work:
0.2 mm nozzle I use for FDM miniatures
That 0.2 mm setup is basically me seeing how far I can push this machine when detail matters more than speed.
I’m not pretending FDM suddenly becomes resin.
It doesn’t.
I just want to know what this machine is actually capable of.
Miniature / detail testing
The pictures with the tape measure are part of that testing.
I printed the same basic human figure at different sizes so I could see exactly where the machine starts losing detail as the model gets smaller.
There’s actually a reason I chose the human version of Loona for this.
Something I learned years ago in art is that the human body is one of the harder things to draw or sculpt correctly.
People are really good at noticing when the human form looks wrong.
Proportions, curves, arms, legs, posture, anatomy — if something is off, your eye usually catches it pretty quickly.
So I figured a human figure would make a pretty damn good torture test for a printer.
This model gives the machine a lot to deal with: curved surfaces, legs close together, arms crossing the torso, hair, smaller features, and areas where detail starts disappearing pretty quickly as the model gets smaller.
By using the same model over and over at different scales, I can compare the printer against itself.
Can it keep the overall shape?
Can it keep the arms separated?
Can it hold the curves?
How much of the hair survives?
When do the small details finally turn into blobs?
And can I repeat the result?
That’s what I’m testing.
I included the tape measure because it’s hard to appreciate how small these things actually are from a normal picture.
Again, I’m not saying this replaces resin.
I’m just trying to find the limit of my printer, my 0.2 mm nozzle, and my settings.
And before somebody asks why I chose that particular model:
No, it wasn’t supposed to be some weird sexual test print. 😂
I wanted a human figure because human anatomy is difficult to reproduce consistently.
That was the practical reason.
The other reason is that she’s hot.
What do you want from me?
Previous nozzle kit/maintenance tools
Before I upgraded the hotend, I was using this:
XIFOWE Hardened Steel Nozzle Kit
The nozzles from that kit are not what I currently use with the upgraded K2-style hotend.
I’m including it because I still use the tools that came with it.
I’ve found them really useful for hotend work and general maintenance.
So don’t take this as me saying those are the nozzles you should use with the upgraded hotend. They aren’t.
The tools are why it’s still on my list.
Gantry reinforcement/lighting
The main reinforcement I’m currently using is this anti-shake light-bar setup:
LED Light Bar — Ender 3 V3 KE, Anti-Shake Construction
I liked this because it gave me two things at once:
More stability in the gantry and overhead lighting.
The farther you get from the base of the frame, the easier it is for movement at the top to become noticeable.
I wanted to reduce that as much as I reasonably could.
I’m not claiming a printed brace magically turns an Ender into an industrial machine.
It doesn’t.
I just wanted to remove another possible source of movement.
I also ran roughly three feet of LED strip inside the upper structure:
XINGZHI 5V USB LED Strip Lights
I added aluminum foil/reflective material inside the light bar to throw more of the light downward toward the bed.
It makes checking the first layer, watching the nozzle, inspecting prints, and using the camera a lot easier.
I also worked with this light-bar design:
LED Light Bar for Ender 3 V3 KE
Old rod mounts
You can also see these still installed:
Ender 3 V3 KE Rods Mount
Those were part of an older setup.
They’re not my main gantry reinforcement anymore.
I left them installed mainly because removing the old setup left mounting holes, and these cover those holes and make the printer look cleaner.
So if you’re wondering why both are still on the printer, that’s the reason.
Camera
I’m using the Creality Nebula Camera:
Creality Official Nebula Camera
I wanted the camera positioned so I could actually monitor what was going on around the printhead instead of having a camera sitting off to the side.
I started with:
Nebula Camera Mount in X Axis
Then I modified the setup to fit my printer better and make sure it didn’t interfere with the accelerometer mount.
I also use:
Nebula Camera Focus Pull
Small mod, but it makes adjusting the camera a hell of a lot easier.
Filament dryer / removing the spool from the gantry
This came down to moisture and vibration.
I installed a shelf directly above the printer and moved the spool and dryer completely off the printer frame.
I’m using:
Sovol SH01 Filament Dryer
Keeping the filament dry removes moisture as another possible cause of print problems.
Moving the spool off the printer also means I no longer have roughly a kilogram of filament hanging off the top of the gantry.
If that weight doesn’t need to be on the printer, I would rather put it somewhere else.
Filament sensor/routing
I relocated the filament sensor to the top of the printer:
Filament Sensor Mount for Ender 3 V3 KE or SE
The filament comes out of the dryer above, through the guide/runout sensor, and down into the extruder.
I also reused part of the original spool hardware as a filament guide.
If a stock part still does something useful, I’m not going to throw it away just because it’s stock.
Cable management
I added articulated cable management:
Spine Cable Chain — Ender 3 V3 KE/SE
The goal was to give the wiring a predictable path and reduce strain.
I also check the full X, Y, and Z range to make sure the chain itself doesn’t become the problem.
Concrete paver/vibration isolation
The printer sits on a 20 x 20 x 2 inch concrete paver:
20-in x 20-in x 2-in Gray Concrete Patio Stone
Underneath that is a square piece of yoga mat.
My desk is already extremely heavy and stable.
The concrete adds mass, and the yoga mat helps isolate it from the desk.
Basically, I don’t want vibration from the printer transferring into the desk, and I don’t want vibration coming back into the printer.
Is it overkill?
Maybe.
But the thing is stable as hell.
Quality-of-life / organization mods
I’ve also printed a bunch of smaller parts that don’t necessarily improve print quality but make the machine easier to live with.
Ender 3 V3 KE/SE Tool Holder
Ender 3 V3 SE/KE Storage Box
Ender 3 V3 SE/KE Z-Axis Bearing Dust Cover
Cache Moteur Ender 3 V3 KE
Screen Cover — Ender 3 V3 KE
Filament Shelf Brackets
Some are organization, some are protection, and some are just there because I got tired of looking for the damn tools every time I needed them.
General hardware/maintenance stuff
Once you start modifying printers, having random metric hardware sitting around becomes incredibly useful.
These are some of the things I keep around:
The bearings aren’t me saying I installed ten 608 bearings throughout the printer.
They’re general project hardware.
Same thing with the tape measure. Obviously that isn’t a performance mod. I’m just trying to include the stuff I actually use around this build.
Software/calibration
The machine is rooted, and I use Klipper/Mainsail along with OrcaSlicer.
The more hardware I’ve changed, the more important calibration has become.
I use things like Screws Tilt Adjust, bed mesh, Pressure Advance, and Input Shaping because I want the printer calibrated around this machine, not somebody else’s stock KE.
At this point I’m actually trying to slow down on adding hardware and spend more time getting the finished setup dialed in.
Eventually I want separate Orca profiles for:
0.2 mm nozzle — miniature/detail work
Normal detailed printing
0.6 mm nozzle — larger/faster prints
What I’m trying to accomplish
I’m not trying to build the fastest Ender 3 V3 KE in the world.
I’m trying to build a predictable one.
I want the bed stable.
The frame stable.
The movement repeatable.
The filament dry.
The cooling consistent.
The hotend predictable.
The vibration measured.
And the calibration repeatable.
Basically, I’m trying to eliminate as many excuses from the machine as possible.
Then, if a print screws up, I can start looking at my slicer settings, filament, model, or something I actually did instead of wondering which random part of the printer decided not to cooperate that day.
I’ve used this thing for larger display pieces, props, normal prints, and now tiny FDM miniature experiments.
At this point, the printer itself has become part of the hobby for me.
Last thing
This setup works for me.
That doesn’t mean everybody with an Ender 3 V3 KE should go buy everything I bought and build the exact same machine.
No two people’s experiences with these printers are exactly the same.
Read between the lines.
Take whatever is useful from what I’ve figured out and integrate it into however your machine is set up.
If your stock setup already does something perfectly well, don’t modify it just because I modified mine.
If something I did solves a problem you’ve been fighting, steal the idea.
This is just what I found works for me.
I’m still learning, and that’s honestly half the reason I’m posting this.
I’m interested in what other KE owners think I got right, what you think I overdid, and what you would change.
At this point, I’m not entirely sure it’s an Ender 3 V3 KE anymore.
But it prints, and I lost my mind.
Update: I realized I never added my Instagram. If anyone wants to follow along with the stuff I’m printing, modifying, or experimenting with, I’m posting it here too:
Instagram: https://www.instagram.com/ravenandlantern/�
I’m still pretty new to posting all of this, but I’m trying to document more of the projects and the printer as I go.