lab-hardware-cad
Design custom laboratory hardware as parametric build123d models and export fabrication-ready STEP, STL, and DXF files - microfluidic chips and molds, optomechanical mounts and breadboard adapters, cuvette and microplate holders, tube racks, animal-behavior rigs, and 3D-printed instrument fixtures. Use when a research task needs a physical part that must mate with standardized labware, an optical table, a cage system, or a printer, CNC, or laser process.
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name lab-hardware-cad description Design custom laboratory hardware as parametric build123d models and export fabrication-ready STEP, STL, and DXF files - microfluidic chips and molds, optomechanical mounts and breadboard adapters, cuvette and microplate holders, tube racks, animal-behavior rigs, and 3D-printed instrument fixtures. Use when a research task needs a physical part that must mate with standardized labware, an optical table, a cage system, or a printer, CNC, or laser process. license MIT compatibility Python 3.10-3.14 with build123d 0.11.1 and matplotlib for snapshots. Geometry commands require build123d; the standards lookup and the interface check run on the standard library alone. No network access needed. allowed-tools Read Write Edit Bash Glob Grep metadata {"version":"1.3","skill-author":"K-Dense Inc.","last-reviewed":"2026-08-15","build123d-version":"0.11.1"} Lab Hardware CAD Design physical research hardware as parametric Python source , export STEP as the authoritative artifact, and verify the result both numerically and visually before anything is fabricated. The hard part of lab hardware is almost never the geometry. It is that the part must mate with equipment whose dimensions are fixed by a published standard or a vendor drawing. A holder that is 0.5 mm too wide does not fit the plate reader; a channel with the wrong aspect ratio collapses during bonding; a mount whose bolt pattern is 25.4 mm instead of 25.0 mm will not reach the optical table. This skill exists to keep those numbers correct and checked. When to use Use for any request to design, model, or fabricate a physical part for a lab: chip, mold, mount, adapter, holder, rack, bracket, enclosure, jig, fixture, arena, or maze. Also use to inspect or modify an existing STEP file. Do not use for finite-element analysis, computational fluid dynamics, molecular structure, or scientific plotting. Those are different skills. Setup uv venv --python 3.12 .venv-labcad uv pip install --python .venv-labcad/bin/python "build123d==0.11.1" "matplotlib>=3.8" build123d 0.11.1 requires Python >=3.10,<3.15 and pulls in the OpenCascade kernel through cadquery-ocp-novtk . The wheel is large; install once per project and reuse it. All bundled scripts take --help . check.py standards runs without build123d installed. Model files are executed, not parsed. gen.py , check.py , and snapshot.py import a *_model.py and call its build() , which runs arbitrary Python in the current environment. That is inherent to parametric CAD — the source is the design. Only run model files authored in this session or supplied by the user from a trusted location. If a model came from the internet, a shared drive, or an untrusted colleague, read it before running it and say that you did. Required workflow Follow these steps in order. Steps 5 and 6 are not optional, and step 6 is not waived by step 5 passing. 1. Route to a device family Read the request, classify it, and load exactly one family reference. Do not load all four — they are long, and mixing conventions between families is a common source of error. If the part is Load A chip, mold, channel network, flow cell, gasket, or anything with fluid ports references/microfluidics.md A mount, post, breadboard adapter, cage-system part, filter or sample holder in a beam path references/optomechanics.md An adapter, insert, rack, or holder for plates, cuvettes, tubes, slides, or dishes references/labware-adapters.md An arena, maze, head-fixation part, spout, tether, or extrusion-mounted enclosure for animal work references/behavior-rigs.md If the part genuinely spans two families — a microfluidic chip that bolts to an optical table — load the family that owns the critical interface , then read only the interface section of the second. State in your response which family you routed to. 2. Establish the interface dimensions before any geometry Every part has at least one mating interface. Before writing code, write down for each interface: the source of the dimension: a published standard, a vendor drawing, or a user measurement; the nominal value and tolerance ; the clearance or interference you intend, and why. Look the number up in assets/standards.json or the family reference. Never write an interface dimension from memory. If the number is not in the standards file or the reference, ask the user for the vendor drawing or the measurement rather than guessing. A guessed interface dimension is the single most expensive failure mode in this skill. A feature that must receive a standardised component is sized against that component's maximum material condition — nominal plus its plus-tolerance — and only then given clearance. Sized from nominal instead, it fits only the smaller half of conforming parts. python scripts/check.py standards --list python scripts/check.py standards --show slas-microplate-footprint The bundled standard IDs (exact strings; do not guess variants): slas-microplate-footprint , slas-microplate-height , slas-microplate-flange , slas-well-positions-96 , slas-well-positions-384 , slas-well-positions-1536 , cuvette-standard-10mm , optical-breadboard-metric , optical-breadboard-imperial , cage-system-30mm , sm1-lens-tube-thread . If the part mates with nothing in this list, that is common and fine: declare no interfaces, and name every interface dimension with its source (user spec, vendor drawing, measurement) as unchecked in the report. Never declare against an unrelated standard to fill the gap — a fabricated declaration is worse than an honest "nobody checked this". 3. Choose the process before choosing the geometry Read references/fabrication-limits.md . Process determines minimum wall, minimum feature, achievable tolerance, and whether the part survives autoclaving or contact with your solvent. FDM cannot hold ±0.05 mm; SLA resin is generally not safe for cell contact without post-cure and testing. Record the process and material in the model docstring. 4. Author a parametric model Write <part>_model.py . The source is the authoritative artifact — never hand-edit an exported STEP file , and never regenerate from a mesh. Requirements: Every dimension that a user might change is a module-level named constant with units in the name: bore_d_mm , wall_t_mm , post_h_mm . No bare numbers in the body except 0, 1, and 2. Expose build() -> Part . gen.py calls it. Group parameters into an INTERFACE block (dimensions fixed by a standard, annotated with the standard ID) and a DESIGN block (dimensions you are free to choose). Derive every computed dimension inside a function , never at module level, so --param overrides actually reach it. Declare an interfaces() function returning the dimensions the part must fit, each with its standard ID and intent. This is what makes the interface machine-checkable in step 5. intent is "envelope" when the feature must accept any conforming part (a pocket, bore, or slot — checked one-sided at maximum material condition plus your clearance) and "match" when this part must itself conform (symmetric band). clearance is the total intended clearance in mm and must be non-negative. Declare only dimensions that constrain this part's mating features — a property of the mating equipment (a table's edge border, a typical plate thickness) is not an interface of yours. If no bundled standard applies, return [] . Declare a checks() function of go/no-go gauges measured from the built solid : a clear region for everything that must pass through or fit in (screw shafts, beam corridors, the mating part at maximum material condition dropping into its pocket), a material region for everything that must remain (a ridge, a ledge, a screw seat), and a bbox_* bound for every size limit the user stated. Map every geometric requirement in the request to one entry; these catch the errors that is_valid , the bounding box, and declared numbers cannot see. gen.py runs them on every generation and fails the build when one fails. Schema and worked examples: references/build123d-patterns.md . Put the process, material, and every interface source in the module docstring. """SLAS microplate carrier for a custom stage insert. Process: FDM, PETG, 0.2 mm layer. Tolerance budget +/-0.3 mm. Interfaces: - Plate pocket: ANSI/SLAS 1-2004 (R2012) footprint 127.76 x 85.48 mm, +/-0.25. - Stage bolts: user-measured, 40.0 mm centres (drawing in docs/stage.pdf). """ from build123d import * # --- INTERFACE (fixed by standard; do not tune) --- plate_l_mm = 127.76 # ANSI/SLAS 1-2004 nominal plate_w_mm = 85.48 # ANSI/SLAS 1-2004 nominal plate_tol_mm = 0.25 # ANSI/SLAS 1-2004; the pocket is sized to nominal + this # --- DESIGN (free) --- pocket_clearance_mm = 0.40 # per-side; FDM, see fabrication-limits.md wall_t_mm = 3.0 floor_t_mm = 2.5 body_h_mm = 12.0 def pocket_mm () -> tuple [ float , float ]: """Pocket at the plate's maximum material condition plus clearance per side. A pocket sized from nominal jams on roughly half of conforming plates. """ growth = plate_tol_mm + 2 * pocket_clearance_mm return plate_l_mm + growth, plate_w_mm + growth def interfaces () -> list [ dict ]: """What this part must fit. `check.py interfaces` verifies every entry.""" pocket_l, pocket_w = pocket_mm() return [ { "feature" : "plate pocket length" , "standard" : "slas-microplate-footprint" , "dimension" : "footprint_length" , "value" : pocket_l, "intent" : "envelope" , "clearance" : 2 * pocket_clearance_mm}, { "feature" : "plate pocket width" , "standard" : "slas-microplate-footprint" , "dimension" : "footprint_width" , "value" : pocket_w, "intent" : "envelope" , "clearance" : 2 * pocket_clearance_mm}, ] def checks () -> list [ dict ]: """Gauges measured from the built solid. Sized from the REQUIREMENT's numbers (plate MMC, the user's height limit), not from the pocket parameters, so a wrong parameter cannot shrink the gauge to match the wrong geometry.""" depth = body_h_mm - floor_t_mm return [ { "feature" : "plate at MMC drops into the pocket" , "clear" : { "box" : (plate_l_mm + plate_tol_mm, plate_w_mm + plate_tol_mm, depth), "at" : [( 0.0 , 0.0 , floor_t_mm + depth / 2 )]}}, { "feature" : "under 15 mm for the stage" , "bbox_z" : { "max" : 15.0 }}, ] def build () -> Part: pocket_l, pocket_w = pocket_mm() with BuildPart() as carrier: Box(pocket_l + 2 * wall_t_mm, pocket_w + 2 * wall_t_mm, body_h_mm, align=(Align.CENTER, Align.CENTER, Align.MIN)) with Locations(( 0 , 0 , floor_t_mm)): Box(pocket_l, pocket_w, body_h_mm, mode=Mode.SUBTRACT, align=(Align.CENTER, Align.CENTER, Align.MIN)) return carrier.part See references/build123d-patterns.md for the builder-vs-algebra choice, the interfaces() contract, sketching, selectors, fillets, and threaded-insert bores. 5. Generate and run the checks python scripts/gen.py carrier_model.py --outdir out/ python scripts/check.py facts out/carrier.step python scripts/check.py interfaces out/carrier.manifest.json python scripts/check.py geometry out/carrier.step --model carrier_model.py gen.py also evaluates the model's checks() gauges against the solid it just built, prints each PASS/FAIL, records them in the manifest, and exits non-zero on a failure — so a part that violates its own declared geometry never silently becomes an artifact. check.py geometry re-runs the same gauges against the exported STEP, which is the authoritative artifact. out/ is a scratch convention, not a requirement. When the user asked for deliverables in a specific place, generate there ( --outdir . ) or copy the STEP, manifest, and DXF to it before finishing — a deliverable that exists only inside out/ has not been delivered. gen.py writes carrier.step (authoritative), carrier.stl (mesh preview and printing), and carrier.manifest.json recording the source hash, resolved parameters, declared interfaces, library versions, and measured bounding box, volume, and validity. The manifest is the provenance record — keep it with the artifact. check.py facts reports is_valid , bounding box, volume, surface area, centre of mass, and solid count. A part that reports is_valid: false is broken geometry; fix the source before going further. check.py interfaces evaluates every entry the model declared against the standards database and exits non-zero on failure. Be clear about what it does and does not verify: it checks the declared numbers — catching a transcribed dimension, the wrong standard, and nominal-instead-of-MMC sizing — but it never measures the built geometry, and a value computed from the same constants it is checked against passes with zero headroom by construction. Do not cite it as evidence the geometry is right; facts and the snapshot are the geometry checks. An empty declaration list passes: a part that mates with nothing in the bundled database has nothing to declare, and its interface dimensions are instead named as unchecked in the report. Use interfaces rather than check.py fit for anything internal — a pocket, bore, or slot does not appear in the part's outer bounding box, which is what fit measures. Reach for fit only to check one number by hand ( --value footprint_length=128.81 ), or when the part's own outline is the interface, such as a gasket cut to a plate footprint. For assemblies, check that parts do not interfere: python scripts/check.py clearance out/carrier.step out/lid.step --min 0.3 6. Snapshot and actually look at it python scripts/snapshot.py out/carrier.step --out out/carrier.png Then read the PNG . This step is mandatory after every generation and every modification. Deterministic checks passing is not a reason to skip it: is_valid and a correct bounding box are both fully consistent with a pocket cut on the wrong face, a boss placed outside the body, or a fillet that ate a feature. Those errors are obvious in a picture and invisible in the numbers. Know the render's limits too. A feature much smaller than the frame — a 0.3 mm mold ridge on a 40 mm part, a counterbore step on a plate — may not be decidable from the views at all. Do not report seeing something the image cannot resolve; that is worse than not looking. For such features the skill has instruments: check.py bores prints every cylindrical face (diameter, axis, position, span, sweep) so you can reconcile the drilling against the model's intent, and check.py probe answers a one-off "is this region clear / is material present here" without editing the model. Cite the measured numbers; report from the picture only what the picture actually shows. The six views are true orthographic projections, and the outlines are the model's real edges drawn without hidden-line removal . So a circle visible "through" material is a bore on the far side, not a window — the part is not transparent. Read it that way rather than reporting a hole that is not there. State in your response what you saw in the snapshot, not merely that you generated one. 7. Repair through the source If any check fails, edit the parameters or the model code, rerun gen.py , and rerun both step 5 and step 6. Never patch the STEP. 8. Report before fabrication Work through references/validation.md and give the user: the process and material, every interface dimension with its source and tolerance, the clearances chosen, what the snapshot showed, and any check that did not pass. Flag explicitly every interface the automatic check could not cover — a vendor drawing, a user measurement, a standard not in the bundled database. check.py interfaces reports only what the model declared against a known standard, so silence there is not confirmation; a dimension nobody could check has to be named as such. Units build123d is unitless internally and everything in this skill is millimetres and degrees . export_step is called with Unit.MM . Imperial hardware appears throughout optomechanics (1/4-20 screws, 1 inch grids, SM1 threads); convert to millimetres in a single named constant at the point of definition and never mix systems inside an expression. 1 inch is exactly 25.4 mm, and a 25 mm metric optical grid is not interchangeable with a 1 inch imperial grid — the error accumulates to 1.6 mm over four holes. Tolerances and fits A nominal dimension is not a fit. Every mating dimension needs a deliberate clearance chosen from the process tolerance in references/fabrication-limits.md . Common defaults, per side: Fit FDM SLA CNC Free-sliding (plate in a pocket) 0.40 mm 0.20 mm 0.10 mm Located but removable 0.25 mm 0.10 mm 0.05 mm Press / interference -0.05 mm -0.03 mm -0.02 mm These are starting points for a first article, not guarantees. Say so when you report them, and recommend printing a test coupon of the critical interface before committing to a full part. Scientific caveats Material compatibility governs. A geometrically perfect part in the wrong polymer fails in service: autoclave cycles distort PLA, many solvents craze acrylic, and uncured SLA resin is cytotoxic. Check references/fabrication-limits.md before recommending a material for anything contacting cells, tissue, solvents, or heat. Optical parts have non-geometric requirements. Autofluorescence, surface roughness, and stray-light scatter are not visible in a STEP file. Black resin is not automatically low-scatter. Vendor labware varies. The SLAS standards fix the plate footprint but not well geometry, skirt profile, or lid fit, and consumable tubes differ between suppliers. Design to the standard where one exists; otherwise require a measurement. A passing bounding box is not a passing part. fit checks the dimensions it is given. It cannot see a missing feature, and it does not replace the snapshot. References File Contents references/microfluidics.md Channel cross-sections and aspect ratios, mold vs chip polarity, minimum features by process, port and tubing interfaces, bonding lands, dead volume references/optomechanics.md Breadboard grids and screw clearances, post and pedestal heights, 30 mm cage geometry, SM lens-tube threads, beam height references/labware-adapters.md ANSI/SLAS 1-4 microplate dimensions, cuvettes, tubes, slides, dishes, deck and stage constraints references/behavior-rigs.md Arena and maze geometry, head-fixation interfaces, spouts and ports, T-slot extrusion, cleaning and durability references/fabrication-limits.md Process tolerances, minimum walls and features, clearance and thread inserts, materials, autoclave and solvent and biocompatibility references/validation.md Pre-fabrication checklist and the failure modes each item catches references/build123d-patterns.md build123d 0.11.1 API cookbook: builder vs algebra, sketches, selectors, joints, exports Scripts Command Purpose gen.py <model.py> --outdir DIR Run build() , export STEP and STL, write the provenance manifest gen.py <model.py> --dxf [--dxf-z MM] Also slice a 2D DXF profile for laser cutting (default plane: mid-height) check.py facts <step> Validity, bounding box, volume, area, centre of mass, solid count check.py interfaces <manifest|model.py> Check every declared interface number against its standard; non-zero exit on failure
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