Tallest Paper Tower Challenge for Grades 6-8
Summary
This engineering challenge is based on an internal competition designed by employees at Fluor Corporation.
Overview
Teach your students about the engineering design process with this fun lesson plan. They will design and build the tallest possible tower using nothing but paper and tape, but there's an additional twist on this classic activity. The tower must support a heavy weight at the top without collapsing! Teachers, note that elementary and high school versions of this lesson plan are also available. The 2021 Engineering Challenge is over, but you can still try out this fun challenge with your students, or check out the latest version of the Engineering Challenge.
Remote learning adaptation: Students can watch the introductory video and follow the instructions on the Student Worksheet to build and test their towers independently at home. If you would like students to work collaboratively, students can share their design ideas and testing results with each other via video conferencing or shared documents and photos iteratively before settling on a final tower to test and submit as their entry.
Learning Objectives
- Design and build a paper tower based on specific criteria.
- Iteratively test and modify the tower to improve its performance.
NGSS Alignment
This lesson helps students prepare for these Next Generation Science Standards Performance Expectations:- MS-ETS1-4. Develop a model to generate data for iterative testing and modification of a proposed object, tool, or process such that an optimal design can be achieved.
|
Science & Engineering Practices
Constructing Explanations and Designing Solutions.
Undertake a design project, engaging in the design cycle, to construct and/or implement a solution that meets specific design criteria and constraints.
|
Disciplinary Core Ideas
ETS1.B: Developing Possible Solutions.
A solution needs to be tested, and then modified on the basis of the test results, in order to improve it.
|
Crosscutting Concepts
Structure and Function.
Structures can be designed to serve particular functions by taking into account properties of different materials, and how materials can be shaped and used.
|
Materials

If you want to enter your design in the 2021 Engineering Challenge, you can only use the materials listed below.
- Construction materials
- Paper (maximum 30 sheets). Printer, construction, graph, and notebook paper are allowed (letter or A4 size; 9" x 12" or 22 x 30-cm construction paper also allowed). Cardstock and newspaper are not allowed.
- Tape (maximum one roll), maximum 1" (2.5 cm) wide. Clear office tape (e.g. Scotch®), masking, and painter's tape are allowed. Double-sided tape, duct tape, and packing tape are not allowed.
- Hard, smooth surface, such as table or countertop
- Tools
- Scissors
- Ruler
- Pencil
- Metric tape measure or meterstick
- Stopwatch
- Unopened can of food, 14–16 oz or 400–450 g. Glass jars are not allowed for safety reasons (they could shatter if they fall off your tower).
Background Information for Teachers
This section contains a quick review for teachers of the science and concepts covered in this lesson.Throughout the world, engineers have designed a wide variety of observation towers in different shapes and sizes (Figure 1). Unlike regular buildings and skyscrapers, which typically have rooms (offices, apartments, etc.) on every floor, observation towers may have a mostly "hollow" structure with an observation deck on top. Other similar structures that have a hollow frame with a heavy load at the top include water towers and radio towers (Figure 2). You can download a Towers of the World Slideshow for more pictures.




Figure 1. From left to right: the Space Needle (USA), the Pitampura TV tower (India), the Eiffel Tower (France), and the CN Tower (Canada).


Figure 2. Radio towers (left) and a water tower (right).
The 2021 Engineering Challenge is inspired by towers like those in Figures 1 and 2. As shown in the following video, the goal is for students to build the tallest possible tower using only paper and tape, but the tower must also support a can of food at the top.
You can use this project to explore several topics in physics and engineering with your students. For example:
- Beams are long, skinny elements used to make many structures like towers and bridges. Multiple beams can be combined to make trusses. Certain truss shapes can be very strong. Can your students identify any trusses in Figures 1 and 2?
- An object that is being "squished" is in compression and an object that is being pulled on is in tension. Beams can be in either tension or compression, depending on how a tower is designed.
- Sometimes towers include ropes, cables, or chains as part of the design. These parts can only be in tension (think about what happens if you try to "push" a rope), but they can still be useful. For example, the long cables connected to the top of the radio towers in Figure 2 are called guy wires. They are anchored to the ground and prevent the tall, skinny towers from falling over.
- The shape of a beam can dramatically affect its strength. For example, it is very easy to bend a flat piece of paper. It becomes much harder to bend the paper if you fold it in half multiple times or roll it into a tube. This resistance to bending is determined by the beam's cross section. For example, the cross section of a flat piece of paper is a (very thin) rectangle. This rectangle bends very easily in the thin direction. The cross section of a piece of paper rolled into a tube is a circle. An I-beam (where the cross section looks like a capital letter I) is a common shape used in many structures.
You can also use this project to demonstrate the engineering design process. It is unlikely that your students' towers will work perfectly on the first try—they might even collapse! Your students might need to iterate by testing and tweaking their designs multiple times so they can continually improve them. You can use this video to review the steps of the engineering design process with your students.
Additional Background Links
- Tension and Compression: Two Forces Every Bridge Knows Well, HowStuffWorks
- Mini-Activity: Toothpick Truss, PBS
- The Engineering Design Process, Science Buddies
Prep Work (15 minutes)
- Gather all the construction materials in a central location for students.
- Print the Student Worksheets if you will be using them (one for each student, not student group).
- Optional: Assign the Introductory Video for your students to watch before class.
Teacher Tool Box
Engage (5 minutes)
Introduce the challenge to your students. Explain that their main goal is to build a tower that is as tall as possible and can support a can of food at the top, using nothing but paper and tape. Show your students the following introductory video:
Then, go over the Student Worksheet, including the rules (also listed below).
Optional: Show your students the Towers of the World Slideshow. You can also have students do their own research online to look for pictures of different towers.
- The tower can only be built from paper and tape. See the materials list for allowable types of paper and tape. Tools cannot be used as structural elements of the tower.
- You cannot use more than 30 pieces of paper.
- You cannot use more than one roll of tape.
- The bottom of the tower can only be taped to the horizontal surface that it rests on (floor, table, etc.). It cannot be taped to anything else (like the vertical leg of a table or a wall) or supported by a person.
- You are allowed to fold, bend, roll, cut, etc. the pieces of paper.
- Material cost is not prorated. If you cut a sheet of paper in half and only use half the sheet, it still counts as a whole sheet.
- For scoring purposes, 1 piece of paper is 1 sheet of paper.
- The tower must support one can of food (14–16 oz or 400–500 g) for at least 1 minute without collapsing. You cannot touch, modify, or repair the tower during this minute.
- The can must rest freely on the tower and be removable. It cannot be taped to the tower.



Figure 3. Three examples of paper towers that comply with the contest rules.
Explore (1-2 hours)
- Design: Before they start building, encourage your students to sketch at least two potential designs for their towers. If they are working in a group, each student can start by drawing their own ideas, then they can compare designs. Students should consider how the shape of the tower can affect its strength. They should also consider how the final score is calculated—using a lot of paper will decrease their score. Can they design a tall, sturdy tower that uses as little paper as possible? Before proceeding, students should agree on a single design to build. The design they choose can include a combination of features from multiple designs.
- Build: After agreeing on a design, students should start building. Remind them that they might want to build the tower in stages, i.e. build and test one "level" before trying to make it taller. They might discover right away that things do not always go as planned. Remind students that this is OK! They are allowed to modify their tower design to improve it when they discover problems.
- Test: After building, students should test their tower by carefully placing the can of food on top. They should carefully observe their tower to look for weak spots or ways to improve it. Do any parts of the tower sag or buckle? How could they improve the design to make these parts sturdier?
- Iterate: Engineers rarely get something right on the first try! If the tower could not support the weight of the can, they will need to re-evaluate their design to make it strong enough to meet the design criteria. For example, maybe they can add more diagonal supports to form trusses and to strengthen weak areas of the tower. If the tower supported the can and students have more time, they can consider how to improve their score. There are two ways they can do this: making the tower taller and using less paper. Can they add another level to their tower to make it taller? Can they remove extra or unnecessary beams that do not contribute significantly to the tower's strength? What about using lighter beams; for example, cutting pieces of paper in half, lengthwise, before rolling them into tubes? Students can try as many times as they would like to achieve a high score.
Reflect (20 minutes)
Once all students have finished building their towers, have a class-wide competition to calculate official scores.
- Make sure each group has counted the number of sheets of paper used in their final tower design. Sheets used in earlier prototypes do not count. Record this value on the Student Worksheet.
- One at a time, while the whole class watches, place a can of food on top of the tower and start the stopwatch.
- Make sure the tower holds the can for 1 minute without collapsing. It is okay if the tower begins to sag or buckle, as long as the can does not touch the ground. Students are not allowed to touch, repair, or modify the tower during this minute.
- After 1 minute has elapsed, use a tape measure or meterstick to measure the distance (in centimeters) from the supporting surface (floor, tabletop, etc.) to the bottom of the can. If necessary, you are allowed to use your hands to stabilize the tower or the can when taking your measurement, but do not lift the can to a higher height (this helps ensure that you do not accidentally knock the can over with the tape measure or meterstick—that would be frustrating!). Record this height on the Student Worksheet.
- Each group can calculate their score using the equation on the Student Worksheet.
Discuss the results of the competition as a class.
- Did any students draw tower designs that looked the same?
- Did anyone draw a design that no one else thought of?
- What problems did groups encounter during the building/testing process?
- Do the best designs have anything in common?
Assess
- Collect your students' worksheets and use them to assess how they worked through the design process.
- Ask each group to do an oral presentation about their design, including the engineering challenges they faced and how they addressed them.
Make Career Connections
Discussing or reading about these careers can help students make important connections between the in-class lesson and STEM job opportunities in the real world.
Lesson Plan Variations
Did your students enjoy this type of hands-on project? Check out the other Engineering Challenges and try them in your classroom!

















