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A 60 W lightbulb is on for 24 hours. A stereo with a power of 150 W is on for 2 hours. Which statement correctly compares the energy used by these devices?

A 60 W lightbulb is on for 24 hours. A stereo with a power of 150 W is on for 2 hours. Which statement correctly compares the energy used by these devices?
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A 60 W lightbulb is on for 24 hours. A stereo with a power of 150 W is on for 2 hours. Which statement correctly compares the energy used by these devices?

User Jakub Kubrynski
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2 Answers

3 votes
P=∆E/∆t. ∆E=P×∆t
Lightbulb: ∆E=60×(24×3600) the unit of the time has to be seconds
Stereo: ∆E= 50×(2×3600)
User Daniel Rotter
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8.2k points
0 votes

Answer:

The lightbulb uses 4,104,000 J more than the stereo.

Step-by-step explanation:

User Greg Ostry
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7.5k points
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