Asked by ekaterina
A 68 student consumes 2500 Cal each day and stays the same weight. One day, he eats 3500 Cal and, wanting to keep from gaining weight, decides to "work off" the excess by jumping up and down. With each jump, he accelerates to a speed of 3.4 before leaving the ground.
Answers
Answered by
Damon
Kinetic energy of jump = (1/2) m v^2
= (1/2)(68)(3.4)^2 = 393 Joules
.25(3500-2500) = 250 food calories to burn
1 food calorie (1000 physics heat calories) = 4184 Joules
250 Cal * 4184 J/Cal = 1,046,000 Joules
so
1,046,000/393 = 2661 Jumps
= (1/2)(68)(3.4)^2 = 393 Joules
.25(3500-2500) = 250 food calories to burn
1 food calorie (1000 physics heat calories) = 4184 Joules
250 Cal * 4184 J/Cal = 1,046,000 Joules
so
1,046,000/393 = 2661 Jumps
Answered by
Damon
I was working on your final version.
Answered by
Ms. Sue
Sorry, Damon. I thought she'd posted exactly the same question a dozen times, so I deleted the extras.
Answered by
Damon
LOL - does not matter. I had already copied the last one.
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