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The function E(d)=0.25d√ approximates the number of seconds it takes a dropped object to fall d feet on Earth. The function J(d)=0.64⋅E(d) approximates the number of seconds it takes a dropped object to fall d feet on Jupiter. How long (in seconds) does it take a dropped object to fall 50 feet on Jupiter? Round your answer to the nearest hundredth.

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calculista

Answer:

1.13 seconds

Step-by-step explanation:

step 1

Find out how (in seconds) does it take a dropped object to fall 50 feet on Earth

we have

[tex]E(d)=0.25\sqrt{d}[/tex]

we have

[tex]d=50\ ft[/tex]

substitute

[tex]E(50)=0.25\sqrt{50}\ sec[/tex]

step 2

Find out how (in seconds) does it take a dropped object to fall 50 feet on Jupiter

we have

[tex]J(d)=0.64E(d)[/tex]

For

[tex]d=50\ ft[/tex]

[tex]J(50)=0.64E(50)[/tex]

Remember that

[tex]E(50)=0.25\sqrt{50}\ sec[/tex]

substitute

[tex]J(50)=0.64(0.25\sqrt{50})=1.13\ sec[/tex]

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