Analyzing Galileo's distance-time relationship for rolling motion on an inclined plane

Authors

  • Ishaan Sharma Science & Engineering Magnet Program, Manalapan High School
  • Blaise DeMairo Science & Engineering Magnet Program, Manalapan High School
  • Alexander Liddawi Science & Engineering Magnet Program, Manalapan High School

DOI:

https://doi.org/10.64804/yzsmqz88

Keywords:

kinematics, physics, mechanics, Galileo, acceleration, inclined plane, rolling, baseball, ping pong ball, Python, scipy, numpy, matplotlib, R, ggplot2, dplyr

Abstract

The purpose of this experiment was to determine whether the rolling motion of spherical objects on an inclined plane is consistent with a constant-acceleration model and whether displacement is proportional to the square of time elapsed. Using a setup and procedure similar to Galileo’s Renaissance-era motion on an inclined plane experiment, a ping pong ball and a baseball were rolled down a fixed inclined plane five times each, and their motion was measured using high-frame-rate video analysis. Position–time data were extracted, analyzed, and plotted to evaluate the relationship between displacement and time. Both objects exhibited displacement proportional to the square of time (t2), indicating motion consistent with constant acceleration. These results support the application of constant-acceleration kinematics to rolling motion on an incline and are consistent with Galileo’s conclusion that motion on an incline is uniformly accelerated.

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Published

2026-02-26

Data Availability Statement

Data are available at https://github.com/devangel77b/427bdemairo-lab1

Issue

Section

Articles

How to Cite

Sharma, I., DeMairo, B., & Liddawi, A. (2026). Analyzing Galileo’s distance-time relationship for rolling motion on an inclined plane. Journal of Science & Engineering, 2(2), 38-40. https://doi.org/10.64804/yzsmqz88

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