# ForgeFIRM bring-up status & cold-start runbook Last updated: **2026-08-03** — camera service (forgectrl MJPEG on :8080) implemented and bench-verified, including motion-coexistence (clamped 0 while streaming). Previous milestone: factory-true motion tuning + promotion to the canonical grblHAL driver repo (**grblHAL-glowforge**). Read together with `AUDIT_ACTION_PLAN.md` in the project root (sibling of this repo; per-finding status of the 2026-07-03 audit) and `kernel-module-glowforge/UAPI.md` (the pulse-stream feeder contract). ## Where the project stands **Audit phases 0–5: complete and hardware-verified.** Both motion blockers fixed (cnc probe / 40v-supply; SDMA script relocated to `<26 0xF00>` with a pre-run integrity guard); the end-of-data protocol reworked and bench-proven (underrun is a first-class `underrun` state behind the `streaming` attr; 16/16 protocol bench); laser PWM verified at 39.98 kHz (register level); `CONFIG_PREEMPT=y`; uEnv/u-boot/ulfius build integrity restored; legacy cloud mode repaired (nvmem identity → hostname XXX-XXX verified on fuses; deadman/safety loop; camera error paths). **Phase 6 spike: achieved.** - grblHAL (unmodified core) runs on the board, speaking Grbl 1.1f over **TCP port 23** (LightBurn-confirmed). - Underrun proof: 100 kHz × 120 s under full load, 150 ms queue, 0.2 ms worst write latency, zero underruns. Measured SDMA script ceiling: **~165 kHz effective** (~6 µs/byte). - **The step backend works**: the driver resamples grblHAL's step events into pulse bytes and live-feeds `/dev/glowforge`. X and Y jogs from TCP G-code move the real gantry; grblHAL and kernel position counters agree step-for-step. Motion-only: the laser latch is forced locked, byte bit 4 is never emitted. **First real LightBurn job: 2026-08-02, operator-verified.** Device setup per `LIGHTBURN.md` (GRBL over TCP:23); a full design job — rapid in, M4 dynamic-power cut trace at commanded speed, return rapid — ran smoothly end to end on grblHAL-glowforge (laser locked, motion only). Two driver fixes came out of the first attempts: the locked laser spindle (M4/$32 support without fire capability) and the continuation-wakeup cursor alignment (back-to-back cycles previously clamped into step bursts — jerky, step-losing rapids; found via the per-run `clamped` stat from the operator's own job log). **Milestone 2 (motion quality): bench-verified 2026-08-02.** The factory motion constants were extracted from the `_RESOURCES` pulse files (`scripts/bench/puls_profile.py`) and applied end-to-end: - grblHAL defaults now factory-true: 12000 mm/min max rate (X/Y), 700/590 mm/s² accel (X/Y). Machine tick default 28160 Hz (the factory's own travel-move tick; 10 kHz caps an axis at 187.5 mm/s). - The sink now applies the whole analog machine config itself at init (modes, decay, motor_lock, PIC currents) and switches PIC currents run↔hold around motion like the factory did (135/22 running, 33/5 idle, drop deferred until the kernel queue has drained). - Bench (`scripts/bench/bench_m2.py`, all green): sustained 200 mm/s on a 120 mm jog, exact round-trip positioning, feed-hold parks and resumes cleanly, current switching observed live, zero underruns at 28160 Hz. - NOTE: stored $-settings beat freshly baked defaults — after changing `GLOWFORGE_DEFAULTS` values, run `$RST=$` once on the board (the sim persists settings in its eeprom file in /data). ## The bench - **Board**: SSH `root@172.16.1.97` (fixed DHCP lease since 2026-08-02; was .130), empty password (`ssh -o PreferredAuthentications=none` logs straight in). Dev image (`forgefirm-image-dev`) on SD; BusyBox userland + python3 + gdb/strace. Serial console on ttymxc0 available at the bench. - **Deploying kernels**: re-burn the SD with the freshly built `forgefirm-image-dev-glowforge.rootfs.wic.gz` (deploy dir below). Where the boot flow loads the kernel from was never fully traced (the wic has no boot partition; the eMMC env area reads empty) — re-burning works and is the procedure. **Module-only changes hot-swap**: scp `glowforge.ko` over `/lib/modules//extras/`, then `rmmod glowforge && modprobe glowforge`. NOTE: a module reload turns off the lid LED (relight via `/sys/class/leds/lid_led*/target`) and resets analog config (below). - **Build host**: WSL2 distro `forge-yocto`, tree at `~/dev/openglow-forgefirm`. `~/src-sync.sh` rsyncs the Windows repos in (includes `python3-gfhardware` and `grblHAL-glowforge`). Build: `cd ~/dev/openglow-forgefirm/forgefirm && kas shell kas/forgefirm-glowforge.yml -c 'bitbake forgefirm-image forgefirm-image-dev'`. Artifacts: `forgefirm/build/tmp/deploy/images/glowforge/`. - **Shell gotchas** (cost real time): PowerShell mangles embedded double quotes in git-commit here-strings (avoid `"` in messages); `wsl -- bash -c '...'` eats `$VAR` expansions (use script files run via PowerShell, not Git Bash, which MSYS-mangles `/mnt/c` paths). ## Running the controller (grblHAL-glowforge on the board) Source: `C:\dev\openglow-forgefirm\grblHAL-glowforge` — the **canonical grblHAL driver repo** (github.com/ScottW514/grblHAL-glowforge, branch `main`): core as a submodule at `src/grbl` (→ ScottW514/core fork, branch `forgefirm`, carrying the settings-write crash fix, PR'd upstream as grblHAL/core#999), `driver.c` implementing the HAL, machine constants in `src/boards/glowforge.h`. Architecture: a wall-paced producer thread runs the core stepper ISR against a virtual step clock (1000× machine tick) and maps step events to pulse bytes; a SCHED_FIFO shipper feeds `/dev/glowforge` with the bounded queue; a recursive core mutex stands in for interrupt masking. `GFSINK` unset = null-sink mode (full engine, no hardware I/O — host testing). 1. Build: `wsl -d forge-yocto -- bash /forgefirm/scripts/bench/build-glowforge.sh` (from PowerShell). Produces `build-arm/grblHAL_glowforge` in the WSL tree (`-O1 -g`; machine constants live in `src/boards/glowforge.h`, force-included into the core: 53.333 µsteps/mm XY @ ×8, 2.832 half-steps/mm Z, 0.417" Z travel, 12000 mm/min max, 700/590 mm/s² accel — factory-derived, see `puls_profile.py`). 2. Deploy to `/usr/bin/grblHAL_glowforge` on the board (kill the running instance first — the binary can't be overwritten while executing). 3. Start: `cd /data && GFSINK=/dev/glowforge grblHAL_glowforge -p 23 -e /data/EEPROM-glowforge.DAT` (no `-t` — real-time pacing is intrinsic now). Env knobs: `GFSINK_RATE` (machine tick, default 28160 Hz = factory travel tick), `GFSINK_DEPTH_MS` (queue depth = feed-hold latency, default 200). The driver applies the full analog machine config itself at init (×8 modes, decay 1, motor_lock 8, laser latched, PIC hold currents) and swaps PIC run/hold currents around motion. If the baked $-defaults changed since the last run, `$RST=$` once (stored settings win). Each motion run logs a producer-stats line to stderr (callbacks, µs/call, max-behind, clamped) — clamped should stay 0. 4. Connect LightBurn/UGS to `172.16.1.97:23`, or jog raw: `$J=G91X40F1200`. `^X` mid-motion aborts via kernel `cnc/stop` (controlled decel) and raises an alarm; TCP disconnects never kill the process (the deadman fd stays held). ## The camera service (forgectrl, port 8080) Source: `C:\dev\openglow-forgefirm\forgectrl` — the **canonical repo** (github.com/ScottW514/forgectrl, branch `main`, MIT). forgectrl is the ForgeFIRM control daemon: camera service today; realtime hardware status/settings, hardware control, and GRBL-vs-cloud mode selection are its planned scope. The meta-forgefirm recipe pins its SRCREV (bump deliberately after pushing) and installs the sysvinit script from the repo's `init/`; bench builds cross-compile with `forgefirm/scripts/bench/build-forgectrl.sh` (same toolchain-borrow pattern as build-glowforge.sh). One ulfius daemon exposes both OV5648 cameras as MJPEG over the mainline imx-media pipeline: - `GET /` — index page with a live view; `/?action=stream|snapshot` are the mjpg-streamer-compatible aliases (lid camera). - `GET /cam/stream?cam=lid|head` — multipart MJPEG at 1296×972 (2×2 Bayer-superpixel demosaic, JPEG q75; `FORGECTRL_STREAM_Q` overrides). - `GET /cam/snapshot?cam=lid|head&res=full|half&q=1..100` — single JPEG, default full 2592×1944 (own MIT bilinear demosaic, output verified against the gfhardware reference grab). - `GET /cam/status` — JSON (running/cam/clients/frames/fps). Engine model: one worker owns the V4L2 node persistently (media-ctl / v4l2-ctl configure sequences identical to gfhardware/cam.py, factory exposure/gain/WB, software hflip in the demosaic); starts on demand, full teardown after 10 s idle so gfhardware one-shot grabs still work. The cameras share the hardware video-mux; the NEWEST request wins it (single-operator model): - **Streams preempt.** A STREAM request for the other camera kicks the current stream clients - their streams end cleanly (viewers freeze on the last frame) - and switches. The only stream failure mode is a switch timeout (a kicked client not draining within 3 s). - **Snapshots borrow.** A snapshot of the other camera does not switch: the worker pauses the stream, switches, grabs one frame, switches back (~1-2 s freeze; "Head peek" on the index page uses this). Arbitration compares against the engine's home camera, so stream requests racing the borrow window preempt correctly. The per-camera lamp (`pic/lid_led` / `head/white_led`) is raised to `FORGECTRL_LAMP` (default 132) while capturing and restored on idle. Bench (2026-08-03, on the board): stream **15.0 fps** sustained at 1296×972 (NEON demosaic + VPU encode; 3.2 fps on the full software fallback); full-res snapshot 2.4 s warm / 2.7 s cold (cold includes the pipeline bring-up); two parallel same-camera clients share the frame rate; idle teardown observed. Borrow verified: head snapshot 200 during a lid stream, the stream riding through the ~1-2 s gap. Preemption verified: a head-stream request ended the lid viewer's stream cleanly (curl exit 0 mid-stream) and was serving head frames within ~2 s; switching back likewise. **Motion coexistence proven**: X round-trip jogs at F1200 with an active stream — producer stats `clamped 0`, max behind 4.5 ms (the daemon runs at nice +5, single core). Run by hand: `/usr/bin/forgectrl >> /data/forgectrl.log 2>&1 &` (kill before scp when redeploying, text-file-busy). **LightBurn consumes the stream directly — operator-verified 2026-08-03** ("without issue", via the mjpg-streamer-compatible `/?action=stream` alias) while jogging the machine from the same LightBurn session. **VPU JPEG offload: DONE 2026-08-03, bench-verified — 7.9 fps** (2.5× the software rate). The stream path demosaics the 2×2 superpixels straight to planar YUV420 (JFIF full-range 601) and the **CODA960 VPU JPEG encoder** (mainline coda, V4L2 mem2mem; found by personality, not node number) does the encode: per-frame **copy 43 ms + convert 75 ms + encode 7 ms**. Two hard-won facts: - **V4L2 MMAP capture buffers are uncached** — demosaicing in-place out of one costs ~340 ms/frame at this resolution; one bulk memcpy into a cached bounce buffer first (43 ms) makes the same demosaic run in 75 ms. All camera paths (stream, snapshot, borrow) read from the bounce copy. - The VPU encoder accepts 1296×972 exactly (no MCU-alignment padding needed) with quality via V4L2_CID_JPEG_COMPRESSION_QUALITY. libjpeg remains the automatic fallback (`FORGECTRL_NO_VPU=1` forces it) and the snapshot path; `/cam/status` reports `"encoder"`. **NEON demosaic: DONE 2026-08-03 — 15.0 fps, sensor-limited.** The YUV420 superpixel convert has a NEON kernel (vld2q deinterleave, vrhaddq greens, vmlal/vrshrn luma, vpaddlq block sums for chroma; `FORGECTRL_NO_NEON=1` forces scalar): convert 75 → 18 ms, per-frame copy 34 + convert 18 + encode 7 ≈ 59 ms against the sensor's 66 ms frame period. The NEON and scalar paths are bit-identical — proven on a live frame via `FORGECTRL_NEON_CHECK=1` (one-shot memcmp, logs IDENTICAL). Motion coexistence re-proven at 15 fps: jogs with an active stream show clamped 0, max behind 7.2 ms (~4 % of the 200 ms queue) — the worst-case contention signature so far; if real jobs ever clamp, a stream-fps cap knob is the relief valve. The IPU cannot help with demosaic (its IC is CSC/scale only — the `imx-csc-scaler` at /dev/video8 matters only for a future full-res stream). Not yet done: lens calibration / bed alignment (the fisheye needs LightBurn's camera calibration pass), and the deferred 5.6 emulator homing-image smoke (the cloud emulator can now be pointed at live snapshots). ## Hardware facts bank (measured) - SDMA pulse engine: ring free = 128 MiB − 32 KiB gap; script effective ceiling ~165 kHz; position counters (`sdma_context` sc0/1/2 = X/Y/Z steps, sc3 = bytes) match grblHAL exactly. - Byte layout & rules: see the UAPI.md feeder contract (authoritative). - Z: bit 6 SET = lens UP = +Z (hardware-verified; pulsedata.py was the inverted party, fixed). Home = hall trigger at TOP; usable travel ≈ 30 half-steps ≈ 10.6 mm ≈ 0.417"; 0.3534 mm/half-step. Never blind-drive Z — hall-supervised only. - XY: 0.15 mm per full step; DIR bit set = −X / +Y (Y1/Y2 complementary). **+Y physically moves the gantry toward the FRONT** (operator-verified 2026-08-03). Homing corner = back-left (X min, Y min); after $H the workspace is all-positive from that corner. - Factory motion profile (measured from `_RESOURCES` pulse streams with `puls_profile.py`): accel ≈ 700 mm/s² X / 590 mm/s² Y on v2.6.0 firmware (2018 firmware used ≈1000); header HAxr=132/HAyr=112/HAar=133 ⇒ ≈5.3 mm/s² per HA unit. Travel moves peak 202 mm/s vector (≈ 8 in/s) at STfr=28160 Hz; prints/hunts run STfr=10000. Cut feed in the sample print: 145 mm/s. Z cadence ≈ 61–115 ms per half-step (≈ 5.7 mm/s max). - Factory analog config (constant across all captured jobs, 2018→2026): PIC currents X 135 run / 33 hold, Y 22 run / 5 hold (axis DAC scales differ by design); x/y_decay=1; ×8 microstepping; run currents applied only while motion plays, hold otherwise. - Laser PWM: 39.98 kHz register-verified (divider 13 × 127 counts). - Switches: truthy = closed/OK; SW_INTERLOCK reads False on units without the rear plug — must NOT gate motion (beam is hardware-gated). - Machine identity from OCOTP nvmem: serial 00000000 → hostname XXX-XXX (matches the factory label). ## Next work (in rough order) 1. **Backend milestone 2 — motion quality: DONE and human-verified 2026-08-02.** Operator confirmed motion is "butter smooth" (and near silent) on a full observation run — slow/fast/diagonal/zigzag jogs at up to 200 mm/s under grblHAL-glowforge with the factory-true analog config. The pre-tuning loudness was the 150/150 currents + unset decay mode. Milestone closed. 2. **Laser mapping** (gated on the scope session): spindle → power bytes (bit 7) + bit 4 laser-enable, M3/M4/$32 semantics, PWM-reset rule per the contract. **No live fire before the standing scope gates.** Gate status: - **LASER_PWM waveform: PASSED 2026-08-02** (scope on the physical pin). Method: direct PWMSAR duty steps (`scripts/bench/pwm_sweep.py` / `pwm_hold.py`) with the controller stopped, cnc `disabled` (steppers unpowered), laser latch locked, lid closed; `laser_on_sampled` stayed 0 throughout. Measured: 25.0 µs period / 40 kHz at every duty; 50/25/75 % confirmed visually; low end cursor-measured **6.4 % vs 6.3 % commanded** (PWMSAR=8) — clean pulse, no runts, carrier stable across the full range. Matches the register-level audit numbers (divider 13 × 127 counts, 39.98 kHz). - **Stream-path power bytes: PASSED 2026-08-02** (scope on LASER_PWM, `scripts/bench/pwm_stream_test.py`: power-bytes-only program preloaded and played by the pulse engine; steppers energized but motor_lock=15 + zero step bits — position counters pinned at 0). Operator observed the full staircase AND both contract rules on the pin: **run-start duty reset to 100%** (first pulses would fire at full power unless the stream's first power byte precedes its first FIRE bit) and **consecutive power bytes dropped** (saw 25 % where a 75 % byte rode directly behind; 75 % applied only after a spacer). Also measured: **duty persists after end-of-data** (PWMSAR retains the last value; the end-of-data backstop forces FIRE/step lines low, not the power setpoint) — the laser-off guarantee rests entirely on FIRE. - **Laser latch + safety-chain gating: scope-verified 2026-08-02** (`scripts/bench/fire_test.py`, probe on the PSU-connector LASER_ON pin; power byte 0 throughout, zero step bytes, HV unpowered, operator at the power switch; phase B latch-unlock executed by the operator). Phase A (latch LOCKED): 40,000 streamed FIRE bits → pin dead flat AND kernel `laser_enable` stayed 0 — the latch severs the FIRE drive entirely. Phase B (latch unlocked, chain unarmed): kernel `laser_enable=1` mid-window, but the PSU pin stayed flat and `laser_on`/`laser_on_sampled` stayed 0 — the factory board gates LASER_ON behind OK_2_FIRE exactly like the OpenGlow AND design (FIRE ∧ OK_2_FIRE, active high at the PSU pin). **Interlock snapshot semantics pinned by experiment** (13→7 during the unlocked FIRE window): b0 = SoC-side LASER_ON monitor, active LOW (1 = not lasing); b1 = FIRE, active high; b3 = latch, 1 = locked/0 = unlocked. - **≤1-tick FIRE drop at underrun/end-of-data: PASSED 2026-08-02** (scope on GPIO2_IO30, the SoC FIRE drive feeding the safing logic; `fire_test.py` B and U, operator-executed, duty 0, chain unarmed). Stream: two 2.000 s FIRE windows, the second ending exactly at end-of-data so its falling edge IS the SDMA backstop. Measured: **both pulses 2.0000 s exactly, clean edges, on BOTH termination paths** — normal completion (streaming=0) and true underrun (streaming=1, kernel `underrun` state reached and acked). The backstop drops FIRE within one tick (≤100 µs at 10 kHz) regardless of how the stream dies. Signal naming (per the OpenGlow LASER SAFING sheet, confirmed to match the factory board): FIRE = per-tick request (kernel `laser_enable`, GPIO2_IO30); OK_2_FIRE = chain verdict; LASER_ON = FIRE∧OK_2_FIRE to the PSU; HV_EN = HV enable, safing-driven only. - **ALL STANDING SCOPE GATES ARE NOW PASSED.** Live fire remains gated on the laser-milestone software itself (power-byte + FIRE emission in the stream engine with power-before-fire ordering, HV_WDOG retriggering only while genuinely cutting, M3/M4/$32 mapping) plus a chain-armed first-light procedure; the hardware verification prerequisites are complete. Interlock-trip recovery behavior remains to be exercised (non-scope check). - **Fan/thermal control (operator-mandated laser-on prerequisite): DONE 2026-08-02, bench-verified** (`glowforge_cooling.c` in the driver; test `scripts/bench/fan_test.py`). Factory pulse-header values throughout: init = pump on / TEC off / purge on / idle fans (air assist 204); **M8** (coolant flood — LightBurn's per-layer Air Assist) = cut profile (air 1023, exhaust 65535, intake 43278); **M9** = 15 s cooldown (`GFCOOL_COOLDOWN_S`) then idle. Water temp polled at 1 Hz vs the ~31 °C factory run ceiling → one-shot controller warning (laser milestone upgrades it to a hard fire gate). Verified via tach readbacks: air tach period 4439→699 under M8, exhaust stopped→full, intakes ~3×, cooldown hold, clean return to idle; coolant temp visibly dropped during the blast. Absolute ceiling 33 °C (job-header CMrx). **Coolant temperature conversion CORRECTED 2026-08-02** — the UAPI "best guess" `raw*-0.09653+94` was wrong (3–5 °C high, wrong slope); the real one is the factory B-equation recovered from the v2.6.0 binary (10 k B3380 NTC, 10 k divider, ×1.3 gain, 10-bit ADC), proven by reproducing this machine's `WT*` cloud settings exactly, and thermometer-checked to ~1 °C. Full derivation now in `kernel-module-glowforge/UAPI.md`. Consequence: the 33 °C ceiling had been firing at a real ~29 °C, and **anything derived from the old formula had to be re-derived** — which is how the flow check below got rebuilt. **Coolant flow verification — REBUILT ON A 60-RUN DESIGN MATRIX (2026-08-02 overnight).** Everything below supersedes the earlier ΔT-based designs; the tools are `scripts/bench/flow_matrix.py` (+`flow_sampler.py` on the board), `flow_sustained.py`, `flow_warm_validate.py`, `flow_recheck_char.py`. - **Duty is the decisive parameter.** Below ~40 % the stagnant loop sheds the heater's output by natural convection well enough to **mimic flow**: at 30 %/50 s the five pump-stopped trials read 8.15, 8.69, 8.78, 12.25, 13.33 °C while flow never exceeded 9.08 — three of five dead-pump cases looked *healthier* than a working pump. At 40 % heat input outruns convection (flow ≤11.46, no-flow ≥16.04, d′ 8.4) and it is also the cheapest viable option (~0.8 °C of loop heating per check vs ~2.0 °C at 50 %). - **Operating point: 40 % duty, 50 s window, threshold 14.4 °C** (balanced midpoint of 17 flow observations peaking at 12.75 and 8 no-flow observations bottoming at 16.04). - **Periodic re-checks every 150 s** (`GFCOOL_RECHECK_S`), because a stopped pump is undetectable any other way — absolute temperature only tracks a *circulating* loop, and "coolant should warm while cutting" is ambiguous (a light engrave may add no measurable heat). Sustained 40-minute run: zero false faults, and **no thermal accumulation** — with cut-profile fans the loop *cooled* 2 °C while being interrogated throughout. - **Settle gate (safety-critical).** The check measures a rise from a baseline; capturing that baseline while the loop is still cooling from earlier heat produces garbage and was bench-proven to **miss** (reported flow with the pump stopped). Checks are now requested, and start only once the sensors agree **and** the downstream reading is stationary. Stationarity uses a **split-half mean difference**, not peak-to-peak: measured noise on a settled loop is 0.52 °C p-p (0.70 worst) but only 0.11 °C split-half (0.21 worst), so any p-p threshold tight enough to catch drift sits *below the noise floor* and the gate never opens. - **Record: 25/25 correct classifications at 40 %**, plus all three settle cases (settled/flow, settled/no-flow, and the unsettled no-flow case that previously missed → now defers, then faults). - **NOT YET VALIDATED (first-light commissioning items):** all baselines were 19–23 °C (an overnight-cool room; the loop equilibrates near ambient and the heater cannot reach a cutting-session loop temperature — 100 % duty drives the downstream sensor past 50 °C in 30 s while the bulk barely moves). Behaviour at 27–32 °C baselines, and under real laser heating, must be characterized at first light. Physics argues the dependence is weak — with forced flow ΔT = P/(ṁ·c), which carries no absolute-temperature term — but that is reasoning, not measurement. - **OBSERVED 2026-08-03 (needs triage):** `/data/glowforge.log` carries, from a prior controller run, a passing check (rise 11.4 °C) followed by TWO `COOLANT FLOW FAULT` lines (rise 16.5 / 15.9 °C vs the 14.4 limit, dT 11.6). Undated (raw stderr log). Either the pump genuinely faltered or this is the warm-baseline false-positive mode above — check the pump and re-run a supervised verification before trusting the loop. *(Superseded earlier text kept below for context.)* **Coolant flow verification (first attempt, live-verified both ways).** Continuous 10 % heating was never viable on the corrected curve: flow ΔT ≤3.69 vs no-flow ΔT ≥3.74 — a 0.04 °C gap against ~0.9 °C of sensor noise. At 30 % the ΔT bands separate (≤9.32 / ≥10.99) but a ΔT threshold still **failed a live pump-off drill** (8.8 °C vs a 10.2 °C limit), because a check starting from a cold heater never reaches the steady-state delta. Final design: a **one-shot check at job start (M8)** — heater to 30 % for 50 s — with the discriminator being **downstream temperature RISE** (flow ≈10.3 °C vs no-flow ≈15.1 °C, ~6 °C separation; threshold 12.7 °C, `GFCOOL_FLOW_RISE`). Heater goes off afterwards, so the loop is not warmed for the rest of the job, and absolute over-temp monitoring carries protection from there (a pump failure mid-cut shows as a temperature climb far faster than any heater delta). Verified twice each way from a cooled loop. **v2 (same day): heater job-scoped** (M8..M9 only — an always-on heater eats headroom below the 31 °C start gate at idle; flow faulting arms 30 s after heater-on), **two-phase cooldown** (15 s smoke clear at run duty, then half-duty airflow until the upstream temp is under the 31 °C resume gate or `GFCOOL_COOLDOWN_MAX_S`), and **factory-style over-temp pause** using the factory coolant windows (run ceiling 33 °C / resume 31 °C, env-adjustable: `GFCOOL_TEMP_MAX`/`GFCOOL_TEMP_RESUME`): a CYCLE over the ceiling gets a feed hold + forced cooling airflow + auto-resume on recovery; a JOG gets a jog-cancel (grblHAL refuses HOLD from the jog state by design). Senders see the Hold state and [MSG:Warning:…] lines. Drilled live with test limits: jog canceled mid-move, cycle held and auto-resumed, fan profiles restored on stand-down. TEC control remains for the laser milestone; these warnings/holds become hard fire gates there. - **Interlock readback semantics cross-check: OPEN** (see factory-laser-safety-readbacks notes). 3. **Homing: DONE 2026-08-03 — $H works** (accelerometer bump-detect; the factory machine has NO X/Y home switches). Driver integration (`glowforge_homing.c` in grblHAL-glowforge): a monitor thread reads the head accel over direct I2C and feeds the core's standard homing cycle as a virtual limit switch on `limits.min`; the core's `on_homing_rate_set` event scopes detection to approach phases — each Seek/Locate runs a fresh ramp-skip (150 ms) + baseline-learn (350 ms) + detect session, pull-offs suspend detection entirely (their reversal/stop jerks read as contact otherwise: the first Y integration attempt failed exactly that way). The cycle mask is tracked live ($H chains cycles under one arm — a stale mask attributed Y's contact to X once, grinding Y to the over-travel alarm; a 5 s contact-not-acted-on watchdog now aborts instead). Pressed-at-start approaches trigger immediately off their grinding baseline. Config: $22=11, $23=3 (home to X min / Y min = back-left), seek 300 latch 60 mm/min, pull-off 4 mm, force-origin → all-positive workspace. **Verified: full $H from mid-bed and again from the home corner, both clean (8/8 approach detections, contacts 20-47k vs thresholds 6.5-20k), ending at machine 0,0 with both axes flagged homed; jogs return to exact zero.** Z excluded ($H never moves Z; hall-supervised Z homing is a later item). Spike record (tools `scripts/bench/accel_fast.py`, `bump_seek.py`; machine driven via grblHAL TCP jogs + 0x85 cancel): - **Sensors**: three lis2hh12 bind via mainline st_accel. The HEAD accel is **i2c-3 addr 0x1e** (proven by jog discrimination; Z reads −1 g). 0x1d on the same bus is a static board part (+1 g); i2c-0 0x1e is the lid. **st_accel sysfs one-shot reads are ~6 Hz** (the driver power-cycles per read) and this kernel has no IIO triggers — the working path is **direct I2C via /dev/i2c-3** (unbind st-accel first): CTRL1=0x6F (800 Hz ODR), burst-read OUT_X..Z → **~530 Hz** from Python, faster from C. - **Contact signature is unmistakable**: creep (F120) moving baseline ≈0.5–2 k counts (summed 3-axis |dev| from an EMA gravity tracker); rail contact jumps to **29–42 k within two samples (~4 ms)** — 20–40× over baseline. Detector: per-cycle learned threshold max(mean+8σ, floor), 2-sample confirm. - **Results: 3/3 hits, zero false positives over ~180 mm** of accumulated creep. Detection latency ≈4–6 ms ≈ 0.01 mm at 2 mm/s. Post-cancel push-through is dominated by the **200 ms stream queue (~0.4 mm at F120)**, visible as counter drift between repeat hits (skipped steps against the rail). - **Implementation design**: detection lives in the driver as a virtual limit switch feeding grblHAL's homing cycle (direct-I2C read thread during homing only); homing runs with a shallow queue (small GFSINK_DEPTH) to cut push-through; **zero at the pressed position** so counter drift from skipped steps cancels; dual-phase seek/latch like standard Grbl. Fallback soft-bump (weak-current grind) remains available but likely unnecessary. Camera homing (the factory's actual method) is a future option. Z homes against the hall sensor (top), hall-supervised only. 4. **6.5 safety mapping**: door/estop evdev → feed-hold/halt in the backend; underrun → grblHAL alarm; interlock-trip recovery check. 5. **6.6 camera service: DONE 2026-08-03, bench- and operator-verified** (see "The camera service" section above; LightBurn streams it directly). Remaining camera work: lens calibration / bed alignment, the deferred 5.6 emulator homing-image smoke. 6. **Housekeeping**: ~~pick the controller's remote home~~ **DONE 2026-08-02** — the controller is now the canonical driver repo `github.com/ScottW514/grblHAL-glowforge` (+ `ScottW514/core` fork; the settings-write crash fix is upstream PR grblHAL/core#999; repoint the submodule to upstream when it merges). Remaining: a Yocto recipe for grblHAL-glowforge in meta-forgefirm (pin SRCREV; fills the `forgectrl` slot per kas/README.md), Phase 7 doc sweep (CLAUDE.md charter refresh, README roadmap), kas flip + first GitHub release per kas/README.md once ready to publish.