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The driver of a car traveling at 42 ​ft/sec suddenly applies the brakes. The position of the car is s equals 42 t minus 3 t squared comma t seconds after the driver applies the brakes. How far does the
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The driver of a car traveling at 42 ​ft/sec suddenly applies the brakes. The position of the car is s equals 42 t minus 3 t squared comma t seconds after the driver applies the brakes. How far does the car go before coming to a​ stop?

User Rohanpm
by
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1 Answer

4 votes

Answer:

after 7 seconds the driver applied the brakes to stop the car.

Explanation:

Given:

The position of the car s(t)=
42t-3t^2

∴Speed of the car =
(ds)/(dt)=(d(42t-3t^2))/(dt)=42-6t

When car stopped the speed of car=0


\Rightarrow42-6t=0\\\Rightarrow6t=42\\\Rightarrow\ t=7

Therefore, after 7 seconds the driver applied the brakes to stop the car.

User Cederlof
by
7.9k points
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