# Parametric Feather Case An OpenSCAD enclosure generator for the Adafruit ESP32 Feather V2, stacked FeatherWings, an optional protected 18650 pack, and an optional 1/4-20 camera mount. It produces a body, removable lid, OLED button plungers, and fit calibration coupons. ## Interactive Ruby wizard The HighLine wizard asks the project-specific questions, saves the answers in YAML, and builds a self-contained case directory with OpenSCAD source, STL and/or 3MF geometry, and rendered previews. Install the Ruby dependency into this repository: ```bash bundle install ``` Then run: ```bash bin/feather-case ``` The menu can create a case, reopen one for dimensional tuning after a test print, or rebuild an existing case. Generated definitions live under `cases//`; exports, previews, revision history, and `vendor/bundle` are ignored by Git. OpenSCAD and Blender must be available on `PATH`. On Ubuntu: ```bash sudo apt-get install openscad blender ``` Set `OPENSCAD=/path/to/openscad` or `BLENDER=/path/to/blender` when either program is installed elsewhere. The wizard checks both tools before replacing an existing package. The wizard can add clearance beyond either short end of the Feather PCB for right-angle headers, plug housings, and wire bends. Front clearance moves the board and its standoffs away from the USB-C wall; rear clearance extends the opposite end of the case. USB programming access can be omitted for a closed front wall or paired with an enclosed plug guide. The guide runs from the wall toward the connector and automatically stops short based on the configured connector overhang and end gap. New cases default to a 2 mm USB connector overhang, an enabled wall opening, and an enabled guide; with the standard 2 mm front clearance the guide has no inward length and behaves as the normal wall opening. Each generated directory contains a dependency-free `build.rb`. After copying that directory to another Ubuntu machine, run `ruby build.rb` to reproduce its exports and previews. The saved generator source is used by default so a fine-tuning pass cannot silently pick up later geometry changes. OpenSCAD's 3MF output contains portable model geometry. It does not contain a Bambu printer, filament, plate, or process profile; select those settings after opening the files in Bambu Studio. The design targets support-free FDM printing with a 0.6 mm nozzle. PLA and PETG are suitable for general use; ASA is the preferred starting material for outdoor exposure. The enclosure is not weather-sealed. ## Reference geometry All dimensions are millimetres. Board coordinates come from Adafruit's source files: - [ESP32 Feather V2 PCB](https://github.com/adafruit/Adafruit-ESP32-Feather-V2-PCB) - [ESP32 Feather V2 CAD](https://github.com/adafruit/Adafruit_CAD_Parts/tree/main/5400%20ESP32%20Feather%20V2) - [128x64 OLED FeatherWing PCB](https://github.com/adafruit/Adafruit-OLED-FeatherWing-PCB) - [128x64 OLED FeatherWing CAD](https://github.com/adafruit/Adafruit_CAD_Parts/tree/main/4650%20OLED%20FeatherWing) - [Adafruit 69 x 18 mm protected 18650 pack](https://www.adafruit.com/product/1781) The board origin is its USB edge at `(0, 0)`. The case uses X from the USB wall toward the rear, Y from the plain side toward the battery/JST side, and Z up from the exterior bottom. ## Generate parts Open [feather_case.scad](feather_case.scad) in OpenSCAD and use the Customizer, or override values from the command line: ```bash # Generic one-Wing case openscad -o body.stl -D 'part="body"' feather_case.scad openscad -o lid.stl -D 'part="lid"' feather_case.scad # Three-Wing GPS case with battery and camera mount openscad -o gps-body.stl \ -D 'part="body"' \ -D 'top_profile="gps"' \ -D 'wing_count=3' \ -D 'battery_enabled=true' \ -D 'tripod_insert_enabled=true' \ feather_case.scad openscad -o gps-lid.stl \ -D 'part="lid"' \ -D 'top_profile="gps"' \ -D 'wing_count=3' \ -D 'battery_enabled=true' \ -D 'tripod_insert_enabled=true' \ feather_case.scad # 128x64 OLED lid and all four captive buttons openscad -o oled-lid.stl \ -D 'part="lid"' \ -D 'top_profile="oled128x64"' \ -D 'button_reset=true' \ feather_case.scad openscad -o oled-buttons.stl \ -D 'part="buttons"' \ -D 'top_profile="oled128x64"' \ -D 'button_reset=true' \ feather_case.scad ``` The standard stack height is `wing_count * wing_pitch`, with a 12.25 mm default pitch. Set `stack_height_override` to the measured distance from the top surface of the Feather PCB to the top surface of the uppermost FeatherWing PCB when using unusual headers. Do not include components on the Wing; profile-specific component heights and top gaps are added separately. The measured override takes precedence over the computed height. For the 128×64 OLED profile, `oled_component_height` is the height of the tallest board feature (the switch tops), while `oled_display_height` controls the display-face reference shown in the assembly preview. The defaults are 2.4 mm and 1.5 mm above the Wing PCB, respectively. The enclosure ceiling remains based on the taller switches plus `oled_face_gap`, placing the display face about 1.7 mm below the lid's inner plane. The default 0.7 mm captive-button contact extension spans most of the 0.8 mm switch-to-lid gap. ## Custom wire egress `extra_cutouts` accepts any number of entries: ```openscad // [face, shape, u, z, width, height, radius] extra_cutouts = [ ["left", "circle", 35, 10, 8, 8, 4], ["rear", "roundrect", 20, 12, 14, 7, 2], ["right", "slot", 28, 15, 18, 5, 2.5] ]; ``` Faces are `front` (the USB-C short wall), `rear` (the opposite short wall), `left` (the plain/non-JST long wall), and `right` (the JST/battery long wall). For front/rear faces, `u` is the global Y coordinate; for left/right faces it is global X. The wizard presents this as distance from the selected wall's left edge while viewing it from outside. The Z value is the opening centre. Shapes are `circle`, `rect`, `roundrect`, and `slot`. Cutouts that enter the floor or lid-lip keepout, approach another opening too closely, or overlap the USB opening or guide keepout raise an assertion instead of silently weakening those features. ## Calibration Heat-set insert holes vary significantly by insert brand, filament, nozzle, temperature, and printer calibration. Treat the supplied values as starting points. 1. Export and print `part="insert_coupon"` in the intended material. 2. Test both M2.5 and 1/4-20 inserts in the five stepped holes. 3. Set `m25_insert_hole_diameter` and `tripod_insert_hole_diameter` to the best coupon values. 4. Print `part="switch_coupon"` and choose the best hole for the actual DMWD switch batch. 5. Print `part="fit_coupon"` and tune `fit_clearance` before committing to the complete lid and body. For ASA, tune dimensional compensation with coupons rather than applying an assumed global shrink percentage. Start with four or more walls, good chamber temperature control, and the same extrusion settings intended for the case. ## Assembly 1. Heat-set the optional 1/4-20 insert from inside the case. Its threaded opening faces the exterior bottom. 2. Heat-set four M2.5 inserts into the board standoffs. 3. Fasten the ESP32 Feather V2, then install the stacking headers and Wings. 4. For battery builds, place the protected 69 x 18 mm pack in the cradle, route its lead through the partition notch, and mount the latching switch in the battery-side wall. 5. Heat-set the four lid inserts downward into the corner bosses. 6. For OLED builds, insert each enabled printed plunger through the lid from the inside. The elongated flange stays in the internal recess. 7. Engage the lid rim and fasten four standard M2.5 socket-head screws into the 2.5 mm-deep counterbores. Confirm the USB plug, switch, battery, insert, and lid fits without force before leaving a lithium-ion battery installed. The battery cradle is intended for Adafruit's protected pack, not an unprotected loose cell.