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An unmarked police car traveling a constant 80.0 km/h is passed by a speeder traveling 140 km/h . Precisely 2.50 s after the speeder passes, the police officer steps on the accelerator; if the police car's acceleration is 2.40 m/s^2 , how much time passes before the police car overtakes the speeder after the speeder passes (assumed moving at constant speed)?

Respuesta :

Answer:18.55 s

Explanation:

Given

Police car velocity[tex]=80 km/h\approx 38.889 m/s[/tex]

speeder velocity[tex]=140 km/h\approx 22.22 m/s[/tex]

After 2.5 s Police car steps on accelerator to produce an acceleration of [tex]2.40 m/s^2[/tex]

In 5 sec speeder has traveled an additional distance of

=(38.889-22.22)2.5

=41.67 m

Therefore Police needs to travel a distance of 41.67 + distance traveled by speeder in next t sec

Distance traveled by speeder is s

[tex]s=38.889\times t[/tex]---1

By police car

[tex]s+41.67=22.22\times t+\frac{2.4\times t^2}{2}[/tex]---2

Subtract 1 from 2

[tex]41.67=22.22t+1.2t^2-38.889t[/tex]

[tex]1.2t^2-16.67-41.67=0[/tex]

t=16.05 s

Thus a total of 2.5+16.054=18.55 s

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