Control Bambu Lab printers, slice models, manage AMS filament, and connect Blender over your LAN.
Thank you, FULU Foundation, Louis Rossmann, and the OrcaSlicer-bambulab contributors. We stand with open-source developers, the right to repair, and your right to control hardware you own. You should be able to choose your software and print without a vendor cloud standing in the way.
Want to skip Bambu's software and cloud? Use FULU OrcaSlicer-bambulab to slice and export, then this MCP's direct LAN path on supported printers and firmware. That workflow does not require Bambu Studio, Bambu Connect, or Bambu Cloud. Start with the FULU setup guide. The optional BambuNetwork bridge is a separate path that still uses Bambu's networking runtime; cloud jobs still use Bambu's services.
A Bambu Lab-focused MCP server for controlling Bambu printers, manipulating STL files, and managing end-to-end 3MF print workflows from Claude Desktop, Claude Code, or any MCP-compatible client.
Browse the documentation site for searchable setup guides, slicing and AMS guidance, and the full tool reference. It is generated from this README and the docs folder.
Built with help from our contributors. Huge thanks to everyone sharing fixes, careful bug reports, and real printer testing!
This is a stripped-down, Bambu-only fork of mcp-3D-printer-server. All OctoPrint, Klipper, Duet, Repetier, Prusa Connect, and Creality Cloud support has been removed. What remains is a focused, lean implementation for Bambu Lab hardware.
Tell your agent your printer's model and LAN address, if you know them, then copy and paste this:
Install bambu-printer-mcp in the agent/harness I'm using now.
Read https://github.com/DMontgomery40/bambu-printer-mcp/blob/main/docs/SETUP.md
and https://github.com/DMontgomery40/bambu-printer-mcp/blob/main/docs/FULU.md
for the current setup instructions and supported workflows.
Detect my OS and harness, then use its native MCP configuration or installer.
Preserve my existing servers and settings. Prefer the published npm package
(npx -y bambu-printer-mcp, stdio); use Node.js 24 if a runtime is needed.
Find existing printer settings in relevant local configuration or available
LAN discovery. Confirm the detected printer's model, address, and identity
with me before connecting. Ask only for values you cannot find:
PRINTER_HOST, BAMBU_MODEL, BAMBU_SERIAL, and BAMBU_TOKEN (the LAN access code).
Keep credentials in local/private configuration; do not repeat access codes
or tokens in chat. Never guess the printer model.
Use direct LAN printing by default. Explain any LAN/Developer Mode setting
I need to enable. Prefer FULU OrcaSlicer-bambulab GUI slicing/export; discover
an existing slicer before suggesting an install. For FULU/Orca CLI auto-slicing,
require MCP 1.1.11+ and its matching installed profile tree (see guide).
A slicer is not needed here to print a pre-sliced file. Configure the optional FULU
BambuNetwork bridge only if I choose it, and explain its runtime/auth needs.
X2D supports status and slicing; native printing requires macOS and a locally built helper.
If this harness does not already provide code mode or an equivalent, suggest
a compatible code-mode integration as an optional addition. It is not required;
finish ordinary MCP setup without it unless I choose to add it.
Verify that the MCP initializes, lists its tools, and reads printer status.
Do not start a print or change printer settings as a setup test. Tell me what
worked and whether I need to restart or reload the harness.
Setup reference · FULU guide · Optional code mode
Ask for the result you want, not the steps. Current models plan across tools: they search the web, read photos, look up exact dimensions, edit models, slice, and print. Expect a question or two when a choice matters, such as which filament to use or whether to start the print.
This server provides the printer, slicing, AMS, and mesh tools. Web search, photos, and Blender edits come from your agent and its other connections, such as a Blender MCP server. Printing a model your agent edited uses CLI slicing with your installed slicer presets; see the slicing guide.
If your agent is always on, such as OpenClaw or Hermes Agent running on a computer at home, message it from Telegram or any other chat app. For direct LAN printing, the server runs on the printer's local network; you don't have to.
| I want to… | Read next |
|---|---|
| Use open-source slicing and a cloud-free print workflow | FULU setup: slicer, LAN, and optional bridge |
| Connect this MCP to my agent | Copy the setup request |
| See what my agent can do with it | What to ask your agent |
| Troubleshoot setup or configure it manually | Installation, environment variables, and LAN reference |
| Prepare a printable file or troubleshoot slicing | Slicing guide and model routing |
| Choose filament trays or inspect a printer | AMS setup and printer tools |
| Edit an STL through Blender | Blender MCP setup |
| See release changes or contributor credit | Changelog, releases, and contributors |
See the changelog for versioned changes. Recent releases add reliable npm and desktop-extension installs, standard Blender MCP integration, corrected P2S/A1 routing, and safer multi-filament CLI slicing. X2D status and slicing are available, with optional native printing on macOS through the installed Bambu Studio networking plug-in.
bambu-printer-mcp is a Model Context Protocol server for Bambu Lab 3D printers. A straightforward workflow is: slice in FULU OrcaSlicer-bambulab, OrcaSlicer, or Bambu Studio, export a sliced .gcode.3mf, then pass its path to print_3mf. The default direct LAN path uploads via FTPS and chooses the MQTT command for the target model. See the slicing guide for CLI options, model routing, and validation limits.
What this is not. This package intentionally supports only Bambu Lab printers. It does not include adapters for OctoPrint, Klipper (Moonraker), Duet, Repetier, Prusa Connect, or Creality Cloud. If you need multi-printer support, use the parent project mcp-3D-printer-server instead.
Why a separate package? The parent project carries all printer adapters in a single binary. When working exclusively with Bambu hardware, that breadth adds unnecessary weight. This fork strips the project to its Bambu core for a smaller, faster install. See each project's changelog for its current fixes and supported workflows.
Note on resource usage. STL manipulation loads entire mesh geometry into memory. For large or complex STL files (greater than 10 MB), these operations can be memory-intensive. See General Limitations and Considerations for details.
FULU OrcaSlicer-bambulab is a supported slicer target (SLICER_TYPE=orcaslicer-bambulab; aliases include fulu-orca and orca-studio). Use its GUI to export a sliced project for direct LAN printing, or configure its CLI with matching installed profiles. From 1.1.11, FULU/Orca share the machine-preset gate and profile safety checks.
The optional FULU BambuNetwork bridge exposes bambu_network_bridge_status, bambu_network_call, and print_3mf_bambu_network, also reachable through print_3mf with connection_mode: "bambu_network". Slicer selection does not enable the bridge. It needs a separately installed FULU runtime and an explicit launch command; cloud printing also needs an authenticated BambuNetwork session.
Follow the FULU setup guide for the direct LAN recipe, Linux/Windows/macOS bridge setup, connection probes, authentication, and troubleshooting. Bridge protocol tests and a successful handshake do not establish a successful physical print.
get_printer_filaments. Includes per-tray display names, match confidence (high/medium/low/none), resolution tier (exact-model-nozzle/model/generic/unresolved), and a summary with recommended auto-slice filament. Retries automatically when AMS data hasn't arrived yet (common on first MQTT push from idle printers)..3mf projects with checked plate selection and calibration flags. Legacy .gcode.3mf routes require a single external-spool-only plate; see the slicing guide.BAMBU_MODEL=x2d). On macOS, print_3mf selects the native eMMC route after resolving the model, including an elicited model. Install the optional helper as described below; Linux/Windows native print requests fail before slicing or contacting the printer. Legacy FTPS and remote G-code starts remain unsupported for X2D.Metadata/plate_<n>.json + gcode filament header) and send it correctly formatted per the OpenBambuAPI spec, with correct H2S/H2D/H2C ams_mapping2 parallel array formatauto_match_ams flag on print_3mf). Resolves required tray_info_idx from the sliced 3MF against live AMS inventory. Handles same-SKU different-color filaments by matching on (tray_info_idx, tray_color) and tracking already-claimed slots. Dry-run with resolve_3mf_ams_slots before printing.skip_objects (use list_3mf_plate_objects to find object IDs first)silent/standard/sport/ludicrous), clear HMS/print errors, trigger AMS RFID re-read, and control H2/P2 airduct mode (cooling/heating) via MQTTset_ams_drying) on heated AMS units (AMS Pro / AMS-HT). Sends print.ams_control MQTT command.printer://{host}/hms — read-only error summary from the printer, with automatic settle retryprint_collar_charm) — specialized two-color workflow with fixed tray policy for inner (black, AMS 1 slot 1) and outer (white, AMS 2 slot 1) charm partsget_slice_settingslist_templatessave_templateslice_with_templateload_filaments override is providedThe Bambu AMS is a multi-spool feeder that lets you assign different filaments to different parts of a multi-color or multi-material print. This section explains how AMS slot mapping works with this MCP server.
The AMS has 4 slots per unit, numbered 0 through 3. If you have multiple AMS units chained together, the second unit's slots are 4 through 7, and so on. When you slice a model in Bambu Studio or OrcaSlicer, each color/material in the print is assigned to a specific AMS slot.
When you slice a model in Bambu Studio, the slicer embeds AMS mapping information inside the 3MF file at Metadata/project_settings.config. The print_3mf tool reads this file automatically and extracts the correct mapping. In most cases, you do not need to specify ams_mapping manually -- the tool handles it.
If you need to override the embedded mapping (for example, you swapped filament positions since slicing), pass the ams_mapping array to print_3mf:
{
"three_mf_path": "/path/to/model.3mf",
"ams_mapping": [0, 2],
"use_ams": true
}
Each element in the array corresponds to a filament slot used in the print file, in the order they appear in the slicer. The value is the physical AMS slot number (0-based) where that filament is currently loaded. In the example above, the first filament in the print uses AMS slot 0, and the second uses AMS slot 2.
Mapping is positional: each entry corresponds to a project filament, and -1 means unused. H2/P2S project-file commands use project-length mapping plus a parallel ams_mapping2; other project-file routes retain at least five positions without truncating longer projects. Prefer ams_slots in plate filament order or auto_match_ams: true when you do not already have the full project mapping.
For a single-material plate, explicitly select its loaded tray. For example, use AMS slot 2:
{
"three_mf_path": "/path/to/model.3mf",
"ams_slots": [2]
}
This expands slot 2 into the correct project filament position. There is no universal fixed default mapping for every model and project.
If you are using the direct-feed spool holder (no AMS attached) or want to bypass the AMS entirely, set use_ams to false:
{
"three_mf_path": "/path/to/model.3mf",
"use_ams": false
}
For H2 projects with declared filaments, also provide the required mapping; use_ams: false alone does not remove the firmware's mapping requirement. See print_3mf.
For pre-sliced 3MFs that declare filament types, the auto_match_ams flag on print_3mf (or the standalone resolve_3mf_ams_slots dry-run tool) automatically resolves the required filaments against your live AMS inventory. The matcher works as follows:
tray_info_idx values from the 3MF's Metadata/slice_info.config and Metadata/plate_<n>.json(tray_info_idx, tray_color) — so two filaments of the same SKU but different colors (e.g. two GFG02 PETG HF spools in black and white) resolve to different slotsIf resolution fails, returns a structured missing report with per-requirement reasons:
no_loaded_match — no AMS tray of that SKU is loadedcolor_mismatch — the SKU matches but the loaded color differsexhausted — all matching trays are already claimed by other requirementsno_sku — the 3MF doesn't declare a tray_info_idx for this filamentDry-run with resolve_3mf_ams_slots before printing to preview the match without uploading or starting a job.
The first MQTT status push from an idle printer is often sparse (model/module info only) — AMS slot data arrives on a second push. The server's filament inventory and HMS handlers both retry after a 1.5-second settle window when the expected data isn't present in the first response. This is transparent to the caller.
Use get_printer_filaments for the parsed, enriched view (profile paths, display names, match confidence) or get_printer_status for the raw AMS data from the printer:
"What filaments are loaded in my AMS right now?"
Bambu Lab printers do not use a conventional REST API. Instead, they expose two local protocols that this server uses directly:
MQTT (port 8883, TLS): All printer commands and state reports flow over an MQTT broker running on the printer itself. Authentication uses username bblp and your LAN access code; the serial number identifies the device topics. Commands like starting a print, cancelling a job, and dispatching G-code lines are all MQTT publishes to the device topic. Status data is received by subscribing to the printer's report topic and requesting a push_all refresh. This implementation is based on community reverse engineering documented in the OpenBambuAPI project.
FTPS (port 990, implicit TLS): File operations (upload and directory listing) use FTPS. The printer's SD card is accessible as a filesystem with directories including cache/ (for 3MF and G-code print files), timelapse/, and logs/. Authentication uses the username bblp and your access token as the password.
This package works around two protocol-level issues in the underlying bambu-js library.
Bug 1: FTP double-path error in bambu-js.
The bambu-js library's sendFile method has a path construction bug. It calls ensureDir to change the working directory into the target directory (e.g., /cache), and then calls uploadFrom with the full relative path including the directory prefix (e.g., cache/file.3mf). The result is that the file lands at the wrong path on the printer (e.g., /cache/cache/file.3mf instead of /cache/file.3mf), and the subsequent print command fails because it references a file that does not exist at the expected path.
This fork bypasses bambu-js for all uploads and uses basic-ftp directly. The upload function (ftpUpload) connects to the printer, resolves the absolute remote path, changes to the correct directory with ensureDir, and then uploads using only the basename -- avoiding the double-path construction entirely.
// From src/printers/bambu.ts
private async ftpUpload(host, token, localPath, remotePath): Promise<void> {
const client = new FTPClient(15_000);
await client.access({ host, port: 990, user: "bblp", password: token,
secure: "implicit", secureOptions: { rejectUnauthorized: false } });
const absoluteRemote = remotePath.startsWith("/") ? remotePath : `/${remotePath}`;
const remoteDir = path.posix.dirname(absoluteRemote);
await client.ensureDir(remoteDir);
// basename only -- no double-path
await client.uploadFrom(localPath, path.posix.basename(absoluteRemote));
client.close();
}
Bug 2: AMS mapping format in the project_file MQTT command.
The bambu-js library's project file command hardcodes use_ams: true and does not support the ams_mapping field at all. Without the fix, the mapping is a simple array of slot indices (e.g., [0, 2]), which does not match the OpenBambuAPI specification.
For the non-H2/P2S project-file route, this implementation retains at least five positions in the ams_mapping array where position i is the project filament index and the value is the AMS slot feeding that filament. For example, a single-filament print from AMS slot 0 sends [0, -1, -1, -1, -1].
This fork sends the project_file command directly via bambu-node (bypassing bambu-js entirely for print initiation) and constructs the mapping in the format the target firmware expects:
// Non-H2/P2S project_file: at least five entries; preserve longer projects
ams_mapping = [0, -1, -1, -1, -1];
// H2S/H2D/H2C/P2S: project-length lookup table + parallel ams_mapping2
ams_mapping = [-1, 1, -1, -1];
ams_mapping2 = [
{ ams_id: 255, slot_id: 255 },
{ ams_id: 0, slot_id: 1 },
{ ams_id: 255, slot_id: 255 },
{ ams_id: 255, slot_id: 255 }
];
The command payload also includes all required fields per the OpenBambuAPI spec: param (the internal gcode path within the 3MF), url (the sdcard path), md5 (computed from the plate's embedded gcode), and all calibration flags.
This is the sequence that successfully started a print on an H2S in the original LAN-only test. It's documented here because several common approaches fail on this firmware, and this fork's transport is what makes it reliable.
Result: print started in RUNNING state, printer accepted the MQTT project_file command, no client certificate was required. Authentication was plain bblp + LAN access code over TLS with rejectUnauthorized: false.
What doesn't work on stock bambu-cli:
bambu-cli print start <file> and bambu-cli files upload both fail with 522 SSL connection failed: session reuse required. Bambu's FTPS server requires TLS session reuse between the control and data channels, which the Go FTPS client in bambu-cli does not negotiate correctly.bambu-cli print start --no-upload still opens an FTPS session (to stat the remote file) and hits the same 522.What works — two-step upload + MQTT dispatch:
Upload the .gcode.3mf via curl (curl's OpenSSL backend negotiates FTPS session reuse correctly):
curl -k --ftp-pasv --ssl-reqd \
-u "bblp:<ACCESS_CODE>" \
-T /path/to/file.gcode.3mf \
"ftps://<PRINTER_IP>:990/<remote-name>.gcode.3mf"
Keep <remote-name> simple ASCII, ending in .gcode.3mf. The file lands at the FTP root, which corresponds to /data/ on the printer's SD card.
Send the project_file command over MQTT to device/<SERIAL>/request:
import mqtt from "mqtt";
const payload = {
print: {
sequence_id: "0",
command: "project_file",
param: "Metadata/plate_1.gcode", // path inside the 3MF
subtask_name: "<remote-name>.gcode.3mf",
file: "<remote-name>.gcode.3mf",
url: "ftp:///<remote-name>.gcode.3mf", // three slashes, FTP root
md5: "",
project_id: "0", profile_id: "0", task_id: "0", subtask_id: "0",
timelapse: false,
bed_type: "auto",
bed_leveling: true, bed_levelling: true,
flow_cali: true, vibration_cali: true, layer_inspect: true,
use_ams: true,
ams_mapping: [0, -1, -1, -1, -1]
}
};
const client = mqtt.connect(`mqtts://<PRINTER_IP>:8883`, {
username: "bblp",
password: "<ACCESS_CODE>",
rejectUnauthorized: false,
});
client.on("connect", () => {
client.publish(`device/<SERIAL>/request`, JSON.stringify(payload));
});
Notes:
url must be ftp:///<filename> (three slashes) — the empty host component is required; the printer rejects ftp://<filename> as "unsupported print file path or name".param uses the internal plate path inside the 3MF (Metadata/plate_1.gcode for plate 1), not a filesystem path.md5: "" is accepted; populating it is optional.use_ams: false does not suppress mapping lookup if the sliced file declares filaments. The working H2 path is to send use_ams: true plus a valid mapping. For H2, the mapping length must match the project-level filament declaration length, and the populated positions must match plate_<n>.json.filament_ids. Prefer ams_slots at the tool layer and let the server expand it. If no mapping is provided for an H2 pre-sliced job with declared filaments, the server fails before sending; pass explicit ams_slots, raw ams_mapping, or auto_match_ams: true.ftpUpload helper (basic-ftp with secure: "implicit" and a short idle timeout) performs the equivalent upload natively and is the preferred path when using the server itself; the curl form is the manual-debug equivalent.All STL tools load the full mesh geometry into memory. For files larger than 10 MB, monitor memory usage and prefer testing on smaller files first.
Inspect an STL file without modifying it. Returns bounding box dimensions, face count, vertex count, and model center.
{
"stl_path": "/path/to/model.stl"
}
Scale an STL model along individual axes. Omit any axis to leave it unchanged (defaults to 1.0).
{
"stl_path": "/path/to/model.stl",
"scale_x": 1.5,
"scale_y": 1.5,
"scale_z": 1.0
}
For uniform scaling, set all three axes to the same value:
{
"stl_path": "/path/to/model.stl",
"scale_x": 2.0,
"scale_y": 2.0,
"scale_z": 2.0
}
Rotate an STL model around one or more axes. Angles are in degrees. Omitted axes default to 0.
{
"stl_path": "/path/to/model.stl",
"angle_x": 0,
"angle_y": 0,
"angle_z": 90
}
Add solid geometry underneath the model to increase its base height. Useful for improving bed adhesion on models with a small or unstable footprint.
{
"stl_path": "/path/to/model.stl",
"extension_height": 3.0
}
extension_height is in millimeters.
Merge vertices that are closer together than the specified tolerance. This can close small gaps in a mesh and slightly reduce file size. Useful as a cleanup step before slicing.
{
"stl_path": "/path/to/model.stl",
"tolerance": 0.01
}
tolerance is in millimeters and defaults to 0.01 if omitted.
Translate the model so the center of its bounding box sits at the world origin (0, 0, 0). Useful before applying transformations or exporting for use in another tool.
{
"stl_path": "/path/to/model.stl"
}
Identify the largest flat surface on the model and rotate the model so that face is oriented downward on the XY plane (Z = 0). This is a common preparation step before slicing to minimize the need for supports.
{
"stl_path": "/path/to/model.stl"
}
Note: this works best on models with a clearly dominant flat face. Results on organic or rounded shapes may be unpredictable.
All printer tools accept optional host, bambu_serial, and bambu_token arguments. If omitted, values fall back to the environment variables PRINTER_HOST, BAMBU_SERIAL, and BAMBU_TOKEN. Passing them explicitly is useful when working with more than one printer.
The server also accepts the alias variables BAMBU_PRINTER_HOST, BAMBU_PRINTER_SERIAL, and BAMBU_PRINTER_ACCESS_TOKEN, plus BAMBU_PRINTER_MODEL and BAMBU_STUDIO_PATH.
Retrieve current printer state including temperatures, print progress, layer count, time remaining, and AMS slot data. Internally sends a push_all MQTT command to force a fresh status report before reading cached state.
{
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Returns a structured object with fields including status (gcode_state string), temperatures.nozzle, temperatures.bed, temperatures.chamber, print.progress, print.currentLayer, print.totalLayers, print.timeRemaining, and ams (raw AMS data from the printer).
Read the live AMS inventory and resolve each loaded tray to Bambu Studio
filament profile JSON paths when bambu_model is known. The result includes a
summary, per-slot display labels, profile match confidence, and a recommended
load_filaments value for simple single-material CLI slicing.
{
"bambu_model": "h2d",
"nozzle_diameter": "0.4",
"host": "192.168.1.100",
"bambu_serial": "094...",
"bambu_token": "your_access_token"
}
High-signal fields:
summary.loaded_slots, summary.resolved_profile_slots,
summary.unresolved_loaded_slots, summary.empty_slotstrays[].display_name, trays[].tray_color, trays[].remain_percenttrays[].resolved_profile_pathtrays[].profile_resolution: exact-model-nozzle, model, generic, or
unresolvedtrays[].match_confidence: high, medium, low, or nonerecommended.load_filaments: the profile path the MCP will use for
auto-slicing when no explicit filament override is providedList files stored on the printer's SD card. Scans the cache/, timelapse/, and logs/ directories and returns both a flat list and a directory-grouped breakdown.
This is a read-only query: it never creates directories. Optional directories absent from a successful root listing return empty lists. Authentication, TLS, permission, and transfer failures are reported as errors rather than empty or partial results.
{
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Capture a single JPEG frame from the printer's chamber camera. Read-only.
Two transports are wired in, picked by bambu_model:
bblp + access token), repeating 16-byte frame header + JPEG payload.rtsps://bblp:<token>@<host>:322/streaming/live/1 -frames:v 1. The H2 series wasn't documented in OpenBambuAPI's video.md but its firmware uses the same RTSP endpoint as X1 (verified live against an H2S, 2026-04-27).Requires ffmpeg in PATH for the RTSP path. Install with brew install ffmpeg on macOS. Configure a trusted custom binary with the server-side FFMPEG_PATH environment variable, or set MCP_ALLOW_EXECUTABLE_ARG=1 before using the ffmpeg_path tool argument. The TCP-on-6000 path uses native Node TLS and does not require ffmpeg.
{
"save_path": "/tmp/snap.jpg",
"timeout_ms": 8000,
"bambu_model": "h2s",
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Returns { status, format: "image/jpeg", sizeBytes, base64, savedTo?, transport }. transport is "tcp-6000" or "rtsps-322" so callers can tell which path produced the frame. Pass save_path to also write the bytes to disk; otherwise only the base64 payload is returned.
Delete a single file from the printer's SD card via FTPS. Destructive. Requires confirm: true — without it the call returns status: "skipped" and does not contact the printer. Path traversal segments (..) are rejected. Only files under cache/, timelapse/, and logs/ can be deleted.
{
"filename": "old_print.gcode.3mf",
"confirm": true,
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
A bare filename defaults to cache/<filename>. To target other directories pass a relative path:
{ "filename": "timelapse/2026-04-26_12-00.mp4", "confirm": true }
{ "filename": "logs/printer.log", "confirm": true }
Write G-code content from a string directly to the printer's cache/ directory. The content is written to a temporary file and uploaded via FTPS.
{
"filename": "calibration.gcode",
"gcode": "G28\nM104 S210\nG1 X100 Y100 Z10 F3000\n",
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Upload a local file (G-code or 3MF) to the printer. If print is true and the file is a .gcode file, start_print_job is called automatically after a successful upload. For .3mf files, upload completes normally but you must use print_3mf to initiate the print (which handles plate selection and metadata).
{
"file_path": "/Users/yourname/Downloads/part.3mf",
"filename": "part.3mf",
"print": false,
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Start printing a .gcode file that is already on the printer's SD card. Do not use this for .3mf files -- use print_3mf instead, which handles the project_file MQTT command with proper metadata.
{
"filename": "cache/calibration.gcode",
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
If filename does not include a directory prefix, the server prepends cache/ automatically.
Cancel the currently running print job. Sends an UpdateState MQTT command with state: "stop". Not resumable — use pause_print if you may want to continue.
{
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Pause the currently running print job. Sends an UpdateState MQTT command with state: "pause". Resumable via resume_print.
{
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Resume a paused print job. Sends an UpdateState MQTT command with state: "resume".
{
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Clear HMS or print error state on the printer. Sends Bambu's clean_print_error MQTT command.
{
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Set the active print speed mode. Accepted mode values are silent, standard, sport, ludicrous, or their numeric equivalents 1, 2, 3, and 4.
{
"mode": "sport",
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Set H2/P2 airduct mode to cooling or heating. This is intended for supported printers only.
{
"mode": "cooling",
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Trigger a Bambu AMS RFID re-read for one AMS slot. This can move AMS filament; use it only when the printer is idle and unloaded.
{
"ams_id": 0,
"slot_id": 1,
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Set a checked target temperature for the bed or nozzle through MQTT. Positive targets require the printer model and fresh matching printer telemetry; nozzle heating also requires the declared loaded material and matching nozzle_diameter (default 0.4). Independent model/component and material ceilings apply. A target of zero turns the heater off without requiring material or nozzle metadata. Accepted component values are bed, nozzle, extruder, tool, and tool0.
Manual nozzle heating checks the reported currently loaded AMS tray or external spool. It refuses ambiguous active-nozzle/material selection on multi-nozzle printers; use a checked sliced job or the printer's own controls there. Stop and heater-off commands cancel pending server print/heating operations. Resuming through MCP requires the same paused job inspected and started by this server instance, with fresh matching telemetry; other paused jobs remain controllable at the printer.
{
"component": "nozzle",
"temperature": 220,
"bambu_model": "p1s",
"material": "PLA",
"nozzle_diameter": 0.4,
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Set a printer fan speed from 0 to 100 percent. Accepted fan values are part, auxiliary, chamber, 1, 2, and 3.
{
"fan": "chamber",
"speed": 40,
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Set a printer light node mode. Common Bambu firmware reports the chamber light as chamber_light; valid modes are on, off, and flashing.
{
"light": "chamber_light",
"mode": "on",
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Skip specific object IDs during a running multi-object print. Use list_3mf_plate_objects on the sliced 3MF to find the IDs first.
{
"object_ids": [6495, 6496],
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
Start or stop the AMS filament drying cycle on heated AMS units (AMS Pro / AMS-HT). The action parameter accepts start or stop. The ams_id must be an integer from 0 to 3.
{
"action": "start",
"ams_id": 0,
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token"
}
To stop drying:
{
"action": "stop",
"ams_id": 0
}
The primary tool for starting a Bambu print. Recommended input: a pre-sliced .gcode.3mf exported from FULU OrcaSlicer-bambulab, OrcaSlicer, or Bambu Studio — see slicing guide. This tool handles the complete workflow:
Metadata/plate_<n>.gcode entries).basic-ftp to the model-specific location: SD root for H2/full-size A1, cache/ for P1/X1/A1 mini/P2S. X2D print_3mf instead uses its checked native eMMC route on macOS.project_file with project-length ams_mapping, parallel ams_mapping2, and H2-compatible calibration flags.{
"three_mf_path": "/Users/yourname/Downloads/bracket.3mf",
"bambu_model": "p1s",
"bed_type": "textured_plate",
"host": "192.168.1.100",
"bambu_serial": "01P00A123456789",
"bambu_token": "your_access_token",
"bed_leveling": true,
"flow_calibration": true,
"vibration_calibration": true,
"timelapse": false,
"use_ams": true,
"ams_mapping": [0, 1]
}
bambu_model is required for model-specific routing and preset selection. It does not by itself validate pre-sliced G-code. BambuStudio, FULU, and Orca CLI preparation additionally require the exact model/nozzle machine preset and reject incomplete profiles. Using the wrong model can damage hardware. If bambu_model is not provided in the tool call and BAMBU_MODEL is not set in the environment, the server will ask you interactively via MCP elicitation (if your client supports it) or return a clear error.
bed_type defaults to textured_plate if omitted. nozzle_type (stainless_steel, hardened_steel, tungsten_carbide, brass; default BAMBU_NOZZLE_TYPE) sets the installed nozzle when the project must be auto-sliced; the job's nozzle type must match the printer's report, and stock P1S/P1P/A1 presets assume stainless steel. After an MQTT print command the server listens to the printer's pushed reports for up to 15 seconds (BAMBU_DISPATCH_CHECK_MS) and returns dispatch: "started" or "unconfirmed"; if firmware 01.08.05+ refuses the command (HMS 0500-0500-0001-0007, needs LAN Only Mode and Developer Mode), the call fails and says so; clear that fatal HMS entry with clear_hms_errors before printing again. ams_slots is the preferred override input; ams_mapping remains the raw escape hatch. On AMS-equipped H2 printers, use_ams: false does not suppress mapping lookup if the sliced file declares filaments. If no mapping is provided for an H2 pre-sliced job with declared filaments, the server fails before sending; pass explicit ams_slots, raw ams_mapping, or auto_match_ams: true.
Set auto_match_ams: true to match the sliced 3MF's tray_info_idx values against the live AMS inventory and use the matching ams_slots. The matcher joins on (tray_info_idx, tray_color) and tracks already-claimed slots, so prints with two filaments of the same SKU but different colors (e.g. two GFG02 PETG HF in black and white) resolve correctly. Falls back to SKU-only when the 3MF's filament has no color set or only one tray of that SKU is loaded. Returns a structured missing report (reason: "no_loaded_match" | "color_mismatch" | "exhausted" | "no_sku") when a filament can't be resolved. Ignored when you provide ams_slots or ams_mapping explicitly.
Layer height, nozzle temperature, and other slicer parameters cannot be overridden via this tool -- they are baked into the 3MF's G-code at slice time. Apply those settings in your slicer before generating the 3MF.
For the optional FULU bridge, set connection_mode: "bambu_network" and explicitly choose connection_type: "cloud" or "lan"; see FULU setup. A successful command submission is not proof that the printer accepted it: inspect printer state, HMS errors, and the printer itself.
Inspect the configured FULU bridge without starting it using {}. Use {"connect": true} to launch the host, handshake, and initialize an agent. See bridge probes for interpreting the result.
Call an allowed read-only probe such as {"method": "net.is_user_login", "payload": {}}. The default injects the initialized agent;
This listing does not have a supported local package template. Use the maintainer’s documentation for its hosted endpoint, authentication, and client-specific setup. No install command has been inferred.
https://github.com/DMontgomery40/bambu-printer-mcp/releases/download/v1.1.20/bambu-printer-mcp.mcpbotherBambu Printer MCP works with any MCP-compatible client. Copy the config snippet from the Configuration section above and add it to the file shown for your client, then restart the application.
~/Library/Application Support/Claude/claude_desktop_config.jsonRestart Claude Desktop completely for changes to take effect.~/.cursor/mcp.jsonRestart Cursor for changes to take effect..vscode/mcp.jsonReload VS Code window for changes to take effect.~/.codeium/windsurf/mcp_config.jsonRestart Windsurf for changes to take effect..mcp.jsonSave at the project root, then start Claude Code in that project and review the MCP server approval prompt. Keep real credentials out of shared files.