Grade 5 · Tinkercad · Lesson 52

Geometric LED Lantern

Engineer patterned light, airflow, assembly, and a removable safe LED mount.

Time2–3 × 60 minutes + adult printingTeamsTeams of 2–3EquipmentTinkercad + Bambu P1S fleet

Project inspiration · 3 images

See, build, and test

Use these images to understand the kind of making, details, and testing involved. They are inspiration—not designs students must copy.

Student quick guide

What are we doing?

1

Meet the challenge: Create a geometric lantern for a cool battery LED that produces an intentional light pattern and opens for safe access.

2

Measure, sketch two ideas, and make a quick cardboard or clay model.

3

Build the best idea in Tinkercad, test the print, and improve one feature.

For teachers

Engineering standards

This shows how the lesson connects to the national NGSS engineering standards and what student work you can collect.

Assessed

3-5-ETS1-1

Teams define the user or purpose and set measurable size, performance, material, and print-time limits before modeling.

What students show: Problem statement, criteria, constraints, measurements, and labeled sketch.
Practiced

3-5-ETS1-2

Students sketch and compare at least two possible forms before choosing or combining features for the digital model.

What students show: Two ideas and a criteria-based design choice.
Assessed

3-5-ETS1-3

Teams use a repeatable test—use the same cool LED and room position to compare brightness, shadow clarity, temperature, and assembly—identify a failure point, revise one dimension or feature, and retest.

What students show: Test data, version comparison, and evidence-based explanation.

Materials

  • Cool LED tea lights
  • White screens and light meter app used without personal data
  • Cardstock lantern prototypes
  • Rulers or calipers
  • Graph paper, pencils, cardboard, clay, and tape for prototypes
  • Computer or tablet with educator-managed Tinkercad access
  • PLA filament; teacher sets a project-specific gram and print-time budget
  • Finished test objects appropriate to the lesson

Teacher preparation

  1. Create an educator-managed Tinkercad class and assignment link; students do not enter personal information.
  2. Prepare one navigation demonstration using drag, zoom, orbit, undo, and view cube.
  3. Set the build envelope, minimum wall thickness, minimum feature size, and maximum print time for the class.
  4. Create the file rule G5_52_Team##_v1.
  5. Prepare shared build plates and an adult review queue for dimensions, orientation, stability, material use, and safe slicing.

Step by step

How to teach it

Day 1 · 0–20

Define and measure

  1. Introduce the mission: Create a geometric lantern for a cool battery LED that produces an intentional light pattern and opens for safe access.
  2. Identify the user, criteria, constraints, and measurements that matter.
  3. Sketch two different solutions at approximately full size.
Day 1 · 20–60

Prototype and compare

  1. Build quick cardboard or clay versions.
  2. Compare both ideas against the shared criteria.
  3. Select or combine features and predict the likely failure point.
Day 2 · 0–15

Tinkercad skill warm-up

  1. Build a shell or panel frame with measured wall thickness.
  2. Duplicate and rotate hole shapes to create a repeating pattern.
  3. Add a removable base or LED pocket using a teacher-provided fit gap.
Day 2 · 15–60

Build the digital model

  1. Place the ruler and enter important dimensions instead of guessing.
  2. Use align and group to create clean, intentional geometry.
  3. Inspect from top, front, side, and underneath; name the file correctly and submit for teacher review.
Day 3

Print, test, and improve

  1. An adult slices, approves, operates printers, and removes parts.
  2. Use the same test procedure each time: use the same cool LED and room position to compare brightness, shadow clarity, temperature, and assembly.
  3. Revise one dimension or feature in a new Tinkercad version and explain the expected improvement.

Assessment

  • Problem includes a user or purpose plus measurable criteria and constraints.
  • Two sketches show meaningfully different solutions.
  • Tinkercad model uses entered dimensions and purposeful tool choices.
  • Model meets the teacher's printability and material-budget checklist.
  • Test is repeatable and the revision responds to evidence.

Supports & extensions

  • Provide a Tinkercad picture guide and a starter file containing only basic reference shapes.
  • Use mouse practice, larger grid snap, and one new tool at a time.
  • Allow a student to direct a partner or teacher who performs fine cursor movements.
  • Offer measured template objects while preserving choices about form and features.
  • Extension: reduce material, add a moving fit, or create two size variants using parameters recorded on paper.

Safety & responsible use

  • Students do not touch hot ends, heated beds, or moving printer parts.
  • An adult handles slicing approval, printer setup, monitoring, part removal, and support cleanup.
  • Use only lab-approved PLA and teacher-managed accounts; never publish student names or designs publicly without permission.
  • Check finished parts for sharp strings, weak points, and small-piece hazards before use.
  • Printed parts are prototypes—not food-safe, medical, climbing, load-bearing, or life-safety products.

No-machine alternative

Build the final version with cardboard, clay, foam, paper tubes, reusable construction pieces, or teacher-prepared shapes. Keep the same measurements, criteria, fair test, evidence, and revision cycle.

Printable student design brief

The challenge

Create a geometric lantern for a cool battery LED that produces an intentional light pattern and opens for safe access.

Success criteria

  • Creates an intentional light pattern
  • Holds the cool LED securely
  • Opens without breaking for LED access

Constraints

  • Cool battery LED only; never flame or hot bulb
  • Includes airflow and minimum wall thickness
  • Meets the class print-time budget

Engineer’s notes

Our user needs…
The measurements that matter are…
Idea A and Idea B are different because…
In Tinkercad we used…
Our test showed…
We changed… because…
Our next version would…