---
title: "A \\( 0.150 \\) \\( \\text{kg} \\) cart that is attached to an ideal spring with a force constant (spring constant) of \\( 3.58 \\) \\( \\text{N/m} \\) undergoes simple harmonic oscillations with an amplitude of \\( 7.50 \\) \\( \\text{cm} \\). What is the total energy of the system?"
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url: "https://nerd-notes.com/ubq/88590/"
date_modified: "2026-08-18T02:40:08+00:00"
---

# A \( 0.150 \) \( \text{kg} \) cart that is attached to an ideal spring with a force constant (spring constant) of \( 3.58 \) \( \text{N/m} \) undergoes simple harmonic oscillations with an amplitude of \( 7.50 \) \( \text{cm} \). What is the total energy of the system?

A \( 0.150 \) \( \text{kg} \) cart that is attached to an ideal spring with a force constant (spring constant) of \( 3.58 \) \( \text{N/m} \) undergoes simple harmonic oscillations with an amplitude of \( 7.50 \) \( \text{cm} \). What is the total energy of the system?

*The answer key and step-by-step explanation are available to logged-in users at https://nerd-notes.com/ubq/88590/*
