---
title: "On another planet, a ball is in free fall after being released from rest at time \\( t = 0 \\). A graph of the height of the ball above the planet’s surface as a function of time \\( t \\) is shown. The acceleration due to gravity on the planet is most nearly"
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url: "https://nerd-notes.com/ubq/88515/"
date_modified: "2025-04-19T04:22:53+00:00"
---

# On another planet, a ball is in free fall after being released from rest at time \( t = 0 \). A graph of the height of the ball above the planet’s surface as a function of time \( t \) is shown. The acceleration due to gravity on the planet is most nearly

On another planet, a ball is in free fall after being released from rest at time \( t = 0 \). A graph of the height of the ball above the planet’s surface as a function of time \( t \) is shown. The acceleration due to gravity on the planet is most nearly

![Diagram](https://nerd-notes.com/wp-content/uploads/2025/04/ball-is-in-free-fallgraph.png)

- **A.** \( 8 \) \( \text{m/s}^2 \)
- **B.** \( 16 \) \( \text{m/s}^2 \)
- **C.** \( 20 \) \( \text{m/s}^2 \)
- **D.** \( 40 \) \( \text{m/s}^2 \)

*The answer key and step-by-step explanation are available to logged-in users at https://nerd-notes.com/ubq/88515/*
