Theory
Frame the trade using performance criteria and bounded policy/language where allowed. Stage intent: tune.
For teachers
Everything you need to run the lesson: the prompts for this academic depth, the diagnostic answer key, the misconceptions to watch for, and the truth boundary to hold.
A spacecraft pushed out of a launcher is tumbling, and until that stops nothing else can happen. No pointing, no charging, no contact. Your team will try two ways of bringing the spin under control and find out that one of them makes things worse before it makes them better.
These prompts come from the academic layer, so they change with the depth you selected.
Frame the trade using performance criteria and bounded policy/language where allowed. Stage intent: tune.
Predict the trade outcome against named criteria.
Use existing safe grammar or bounded controls only; never arbitrary hosted code. Runtime remains the frozen Twin; this plan does not execute physics.
Check criteria, uncertainty, and forbidden claims.
Evaluate and optimise within the frozen Twin limits. Evidence intent: angle-time/performance plots + criterion-based recommendation.
Record an engineering memo decision that remains software-authoritative.
Name at least one frozen-model limitation that this experiment cannot answer.
Keep simulated, simulated_sensor, estimator_state, derived, reference, and measured distinct. Never label simulated as measured.
A spacecraft is tumbling in space. Why can it not just grab something to stop?
One session of 55–70 minutes. Adjust freely — the sequence matters more than the clock.
| When | Stage | What you are doing |
|---|---|---|
| 0 → 5–6 min | Mission | Set the role, objective, mission question, and success criterion. |
| 5–6 → 17–21 min | Preparation | Diagnostic, theory, and a written prediction before any run. |
| 17–21 → 20–25 min | Readiness | Learners confirm the local formative gate after preparation passes. |
| 20–25 → 35–45 min | Operate | Run the bounded baseline, then the candidate where comparison is disclosed. |
| 35–45 → 47–60 min | Evidence | Inspect provenance, select evidence, decide, state a limitation, and complete the formative assessment. |
| 47–60 → 53–68 min | Complete | Review the result band, reflect, and finalize local practice at any band. |
| 53–68 → 55–70 min | Recognition | Explain the local record and the separate future verified-recognition boundary. |
Authored lesson design — what a class reliably gets wrong here, and where you can catch it. Not a claim about any learner.
“Lighter damping is gentler, so it must be the safer setting.”
Follow the light-damping trace: it peaks higher than it started and never settles. Gentle here means the tumble outlasts the mission.
Watch: the decision option "Recommend the gentler setting because it sounds safer" · Code: cause_effect_or_control_logic_reversal
“The light-damping run has no settling time because the data is missing.”
Never settling is a result. Press any learner who leaves the field blank to write it down as a finding.
Watch: evidence — The spin comparison for the two amounts of damping · Code: evidence_provenance_or_verification_gap
“Stabilising and pointing are the same job.”
Here the target is zero rotation; in the pointing mission it is a direction. Ask what 'success' looks like on the chart in each case — they are different shapes.
Watch: the "spin" diagnostic · Code: reference_frame_or_axis_confusion
What trade-off mattered most in stopping the tumble, and what hardware effect is outside this model?
Between the two runs there is a damping level that settles the spin without overshooting. Describe how you would search for it and what evidence would tell you that you had found it.
Write an explanation, for someone who has not done this mission, of why a tumbling spacecraft has to use its own wheels. Use the word 'push' at least twice and make both uses correct.
Can the learner describe the overshoot, and say why never settling matters for the rest of the mission?
Home mission: the swinging door
Push a door and try to stop it exactly half open, using only one hand and one push. Try it gently and firmly. Write down which overshot, which settled, and what that tells you about damping.
Ten questions, answered locally. Nothing is submitted or tracked — you download the file and send it if you want to.
This local-first form contains the ten approved pilot-review questions. It does not submit, track, or store data remotely. Optional name/contact should be handled outside this form only if a reviewer volunteers it.