Engineering package · Rev A Canberra ACT · 35.28°S Issued for manufacture 16 Aug 2026

200 mm f/4 deep-sky astrograph

A self-built Newtonian imaging telescope: optical design, structural verification by finite element analysis, a twelve-sheet ISO drawing set and a full production pack. The aperture was not a budget choice — the coma corrector's fixed backfocus makes any smaller Newtonian badly proportioned, and everything downstream follows from it.

Optics
200 f/4800 mm, 80 mm sec
Sampling
0.97″/pxmatched to seeing
Payload
9.94 kgEQ6-R class
Mirror flop
0.142″FEA verified
Sheets
12PDF, downloadable
01

The constraint that set the aperture

A Newtonian's secondary minor axis is m = l·D/F + d(F−l)/F, where l runs from the optical axis out to the focal plane. The trap is that l includes the coma corrector's backfocus — about 110 mm — and that distance is set by the corrector's optics, not by your aperture. Shrink the telescope and l barely shrinks with it.

Systeml minimumSecondary neededObstructionLight blocked
150 f/4245 mm71 mm47%22%
200 f/4270 mm78 mm39%15%
250 f/4295 mm85 mm34%12%
Design decision

200 mm is the smallest aperture at which a Newtonian astrograph is well proportioned. Below it the correct instrument is a refractor. Specify an 80 mm secondary, not the stock 70 mm, and build the 5.0 mm offset into the spider hub as machined geometry — not a shim.

02

Structural verification

CalculiX 2.23 shell and solid FEA meshed directly from the CAD, plus analytic checks where finite elements are the wrong tool.

CheckResultBudgetMethod
Tube deflection, 1.5 mm wall0.0015 mm1.41 mm16,552 S3 shell elementspass
Focuser aperture softening1.74×hole vs no-hole comparisonquantified
Spider hub sag0.332 µm141 µmanalytic, parallel stiffnesspass
Spider vane bucklingFoS 5.8> 3Euler, compression vanepass
Secondary assembly f₁865 Hz> 30 Hzanalyticpass
Primary glass on 3 points0.84 nm rms27.5 nmNelson support modelpass
Mirror flop, zenith→horizon0.142 arcsec0.485 arcsec19,511 C3D10 solid, 2 load casespass
What the analysis changed

The tube wall dropped 2.0 → 1.5 mm on the strength of the shell FEA, saving 0.75 kg. Together with printing the secondary holder in PA-CF rather than machining it, that returned the assembly from 11.01 kg to 9.94 kg — back inside the mount budget.

A note on the mirror cell: three support points cannot warp a mirror, only tilt it as a rigid body. Static tilt is absorbed by collimation, so the meaningful number is how much the tilt changes with pointing — mirror flop. At 0.142 arcsec of beam deviation that is 0.147 pixel, invisible.

03

Renders

Three-quarter view of the assembled optical tube on its rings and dovetail
General arrangement — tube, rings, dovetail, focuser board.
View toward the telescope aperture showing the flocked bore and four-vane spider
Aperture — four-vane spider and secondary in the flocked bore.
Closer view of the focuser board mounted on the tube
Focuser board at station 560, machined concave to the tube OD.
Render honesty

These are CAD visualisations of the modelled geometry, not photographs and not photorealistic product imagery. Bought-in items — focuser, corrector, camera, filter drawer and guider — are not modelled and do not appear. Surfaces are idealised: no machining marks, no anodising variation, no fasteners. Judge the drawings for buildability, not these images.

04

Drawing set

A3 landscape, first-angle ISO 128 projection, ISO 5457 frame and ISO 7200 title block, general tolerance ISO 2768-mK. Every sheet was reviewed by an independent vision model against ground-truth assertions; findings were remediated and re-judged.

Download the complete drawing set (6 sheets, PDF)

Sheet 1, general arrangement
001 — General Arrangement
Overall assembly, principal dimensions, datum and general notes.
Sheet 2, optical layout and design data
002 — Optical Layout & Data
Optical prescription, secondary sizing basis, structural verification summary.
Sheet 3, primary mirror cell
003 — Primary Mirror Cell
Plan and elevation, 3-point support, adjustment slots, critical mounting notes.
Sheet 4, spider and secondary holder
004 — Spider & Secondary Holder
Four-vane spider with the 5.0 mm offset built into the hub; printed holder.
Sheet 5, optical tube and focuser board
005 — Tube & Focuser Board
Tube layout and stations, focuser board with the 0.1° squareness requirement.
Sheet 6, bill of materials, assembly and QA
006 — BOM, Assembly & QA
Bill of materials, twelve-step assembly sequence, nine quality gates.
05

Production pack

What a workshop needs to actually make the parts: stock and cut list, machining operation sheets with setups and tooling, additive parameters, fastener schedule with torques, and an inspection record to be completed in ink.

Download the complete production pack (6 sheets, PDF)

Stock and cut list
P01 — Stock & Cut List
Stock forms, cut sizes, waste and material selection reasoning.
Machining operations, mirror cell
P02 — Machining: Mirror Cell
Twelve operations. Ops 30–90 are one setup — re-fixturing loses pad coplanarity.
Machining operations, spider and focuser board
P03 — Machining: Spider & Board
Hub, vanes and the 0.1° focuser squareness — the tightest angular tolerance in the build.
Additive manufacture, secondary holder
P04 — Additive: Secondary Holder
PAHT-CF on the H2C. Pre-dry 12 h — wet nylon prints porous and creeps.
Fastener schedule and torque
P05 — Fasteners & Torque
Ten fastener references. Mirror clips deliberately carry no torque figure.
Inspection and commissioning record
P06 — Inspection Record
Twelve measured characteristics across nine gates. No gate may be signed from a calculation.
06

CAD, analysis and source

The model is parametric. Change D, FRATIO, SEC_MINOR or BACKFOCUS at the top of ota_model.py and the whole tube regenerates — secondary size, station positions, tube length and mass all re-solve.

FileWhat it isDownload
ota_model.pyParametric OTA model (build123d)PY
scope_design.pyOptical & mechanical design calculatorPY
tube_fea.pyTube shell FEA, CalculiXPY
parts_fea.pyMirror cell & spider FEAPY
tube.stepOptical tube solidSTEP · STL
mirror_cell.stepPrimary mirror cellSTEP · STL
spider.stepFour-vane spider, offset hubSTEP · STL
secondary_holder.stepSecondary holder, for printingSTEP · STL
focuser_board.stepFocuser boardSTEP · STL
07

Limits and open items

  • Corrector backfocus is taken as 110 mm from published specifications, not measured. The 80 mm secondary stays valid across l = 240–280 mm, so the design tolerates roughly ±20 mm of error — but measure your actual corrector before cutting the tube.
  • The primary cell is axially adjustable ±15 mm by design. That is what removes the dependency on knowing the exact focal-plane position in advance.
  • Bought-in items are not modelled: focuser, corrector, camera, filter drawer and off-axis guider appear in the BOM and mass budget only.
  • Sampling at 0.97″/px is slightly oversampled against 2.0–2.5″ seeing. That is the safe direction — you can bin, you cannot un-blur.
  • Collimation at f/4 is a per-session task. The coma-free radius is 1.41 mm, 3.4× tighter than at f/6.
  • Drawings are issued at Rev A and have not been checked by a second engineer. The CHECKED field records self-check plus the vision-model gate, which is not the same thing.
08

Full assembly — 28 parts, verified

Every part modelled and positioned from a mating datum, then checked exhaustively: all 378 part pairs tested by exact boolean intersection, designed fits verified arithmetically against the driving parameters, and every printed part checked against the Bambu H2C envelope.

VerificationResultMethod
Part-pair interference0 of 378exact boolean, 40 bbox-overlapping pairs solvedpass
Designed fits8 of 8arithmetic on driving parameterspass
Designed joints1M10 stud into rear boss — interpenetration intentionaldeclared
Face contacts130 gap, 0 overlap, verified pair by pairpass
Light-path obstructionnoneradial distance of nearest vertex to optical axispass
Printed-part envelope6 of 6vs H2C 305 × 320 × 325, 5 mm marginpass
Full assembly with dew shield, tube rings, dovetail and imaging train
Complete assembly — dew shield, rings, dovetail, focuser and imaging train.
Assembly viewed toward the aperture
Toward the aperture — spider plane sits skyward of the secondary.
Close view of the spider, stalk and secondary holder
Spider hub, stalk and tilted secondary holder.

3D printed parts

PartQtyEnvelopeOverhangMaterialFilament
Secondary holder1126 × 82 × 8217.7%PAHT-CF115 g
Dew shield half2300 × 256 × 1280.4%PETG387 g
Fan shroud1132 × 132 × 1812.5%PETG31 g
Mirror clip326 × 14 × 1121.8%PAHT-CF7 g
Edge roller block221 × 21 × 1415.1%PAHT-CF4 g
Cable guide230 × 16 × 1014.9%PETG5 g
Deliberately not printed

The tube rings were modelled as printed parts and then reclassified to machined aluminium. At Ø285 a PA-CF ring warps on the plate and creeps under sustained load — and these rings carry the entire optical tube into the dovetail. Structural, so they get metal.

Assembly STEP · Full verification report · parts.py · check.py

Print-ready STEP files: secondary holder · dew shield half · fan shroud · mirror clip · edge roller · cable guide

09

Fusion 360 model

A parametric Fusion document carrying the full driving-parameter set and the verified assembly geometry, built and tested live in Fusion 2703.1.20 — imported volume 4741.2 cm³, matching the source model exactly.

The assembly loaded in Fusion 360
Loaded in Fusion 360: 10 occurrences under one rigid group, 28 driving parameters.
FileWhat it isDownload
ASTROGRAPH_200f4.f3dFusion archive — open directlyF3D
BuildAstrograph.pyFusion script: new document, 27 user parameters, STEP import, rigid groupPY
BuildAstrograph.manifestScript manifestMANIFEST
ASSEMBLY.stepNeutral assembly, any CADSTEP
Two API traps, documented in the script

Fusion works in centimetres internally, so every value is a units-tagged expression string. And a focal ratio must be unitless — if it is ever created as a length it poisons every expression that multiplies by it, which is exactly what happened during the build. The shipped expressions divide the unit out explicitly.