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© 2026 University of Washington Bothell, Cornell University, Alder Science Education Association. Funded by the National Science Foundation.

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Pendulum Lab: Measuring and Reducing Uncertainty, Comparing Data Sets (3 Parts)

23 viewsAdded 2026-07-01Updated 2026-07-23v9: This is the latest version.

Overview

Summary

Students iteratively refine pendulum period measurements across three weeks, learning to quantify, reduce, and compare uncertainty while practicing collaborative, evidence-based experimental reasoning.

Description

This three-week introductory mechanics lab sequence uses a simple pendulum to teach foundational experimental skills: quantifying uncertainty, reducing it systematically, and comparing data sets to draw evidence-based conclusions. Students investigate whether the period of a pendulum depends on amplitude (10° vs. 20°), a question with a subtle real answer that motivates increasingly precise measurement.

Student Learning Objectives

Learning Goals Session 1:

  • Generate, discuss, and reflect on a team agreement, including how to distribute or share a range of productive team roles
  • Generate a histogram of repeated measurements
  • Calculate statistical uncertainty associated with a measurement or set of measurements using standard deviation and standard uncertainty, as appropriate
  • Identify and distinguish sources of uncertainty and sources of human errors (mistakes) and use them to find and implement methods for reducing uncertainty

Learning Goals Session 2:

  • Generate, discuss, and reflect on a team agreement, including how to distribute or share a range of productive team roles
  • Calculate statistical uncertainty associated with a measurement or set of measurements using standard deviation and standard uncertainty, as appropriate
  • Identify and distinguish sources of uncertainty and sources of human errors (mistakes) and use them to find and implement methods for reducing uncertainty
  • Articulate the benefits of measuring multiple consecutive periods in terms of the sources of uncertainty

Learning Goals Session 3:

  • Calculate statistical uncertainty associated with a measurement or set of measurements using standard deviation and standard uncertainty, as appropriate
  • Identify and distinguish sources of uncertainty and sources of human errors (mistakes) and use them to find and implement methods for reducing uncertainty
  • Quantitatively compare pairs of measurements using differences in units of uncertainty and interpret the comparisons using appropriate argumentation practices, including multiple, reasonable, and possible interpretations.

Lab Profile

Experimentation Goals

These experimentation goals are most strongly represented in the explicit learning goals described above:

Quantify UncertaintyCompare Uncertain MeasurementsReduce UncertaintyRefine and Expand ProceduresCollaborateVisualize DataCompare Data DistributionsKeep a Lab NotebookDesign Procedures

Student Decision Making

In this lab, students have the opportunity to:

Design ProceduresDecide PrecisionDecide When Done

Discovery

Determine results previously known to:

Instructors

Instructor Guide

Duration

3 sessions of 2 hours/session

Equipment Required

Basic Physics Lab EquipmentComputers / Software

Implementation Tips

The Week 1 demonstration pendulum should be large and centrally located so all students can see it. Use a protractor mounted at the pivot to set release angles. Release silently with no timing instructions — the resulting messiness in student data (typically spread over several tenths of a second) is the point and motivates everything that follows.


Have students write their individual measurements on the board immediately; this builds a shared class data set and makes the spread viscerally obvious.


In Week 2, put a shared table on the board (or a projected spreadsheet) where groups post their mean, number of consecutive swings, number of trials, standard deviation, and standard uncertainty. This drives productive between-group comparison and helps groups calibrate whether their uncertainty is competitive. Target precision is better than 0.01 s — tell students this is what's needed to potentially distinguish 10° from 20°.

In Week 3, provide the sharing table (T ± δT, t′, interpretation) partway through the session rather than at the start, so groups commit to their own analysis first.


Common pitfalls: students confuse histograms with bar charts — have a reference image handy. Students may conflate "human error" with random uncertainty; spend time on the distinction in Week 1. When timing many consecutive swings, students sometimes lose count — suggest they verbalize or tap counts.

Desmos histogram links are provided in the lab materials, but Google Sheets or Excel also work. No specialized software is required.


The team agreement and color-coded font contributions in the shared Google Doc are easy to underestimate — enforce them early, as they establish accountability and make grading contributions visible.

How This Fits in Your Course

This is the opening sequence of an introductory mechanics lab and assumes no prior lab experience or statistics knowledge. Students need only basic algebra and a qualitative understanding that pendulums swing — no knowledge of the period formula T = 2π√(L/g) is required or desired. In fact, the instructor notes explicitly say to pretend you don't know the small-angle approximation, since the goal is for students to reason from their own data rather than confirm a textbook result.


The sequence builds cumulatively: Week 1 introduces measurement, uncertainty, and histograms; Week 2 develops uncertainty reduction techniques; Week 3 introduces quantitative comparison (t′) and student-designed experiments. Each week's homework prepares students for the next session.


After this three-week pendulum unit, the course moves to a two-week "Tossed Objects" unit that introduces scientific integrity and model testing, followed by a "Stretchy Objects" unit on research questions and Hooke's law, and finally a multi-week student-designed investigation with presentations. The pendulum sequence thus establishes the foundational experimental reasoning skills — quantifying uncertainty, iterative refinement, evidence-based argumentation — that students apply with increasing independence throughout the rest of the quarter.

Files & Links (10)

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2025-04 (Au) 117-121 lab schedule.docx

10 KB

Overview of all my labs for 1 course.

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Lab 2 Pendulum - Reducing uncertainty.docx

Hands-on Lab9 KB
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Lab 1 Pendulum - Measuring uncertainty.docx

Hands-on Lab151 KB
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Lab 3 Pendulum - Comparing data sets.docx

Hands-on Lab9 KB
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Au25 Lab 3 Pendulum - Instructor.docx

Instructor Supplement11 KB
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Au25 Lab 2 Pendulum - Instructor.docx

Instructor Supplement12 KB
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Au25 Lab 1 Pendulum - Instructor.docx

Instructor Supplement11 KB
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Lab 2 Pendulum - Sample (Au25).pptx

Lecture or Mini-lecture1.0 MB
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Lab 1 Pendulum - Sample (Au25).pptx

Lecture or Mini-lecture1.3 MB
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Lab 3 Pendulum - Sample (Au25).pptx

Lecture or Mini-lecture670 KB
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Authors

RS

Rachel Scherr

LB

Lauren Bauman

AM

Adrian Madsen

Physics Topics

Classical Mechanics

Course Level

Introductory

Student Population

Physics MajorsEngineering MajorsLife science MajorsOther STEM Majors

License

CC BY-NC-SA

Attribution, Non-Commercial, Share Alike. Others can share and adapt for non-commercial purposes, must attribute and share with the same license.

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