How far does the police car travel to overtake the speeding car?

AI Thread Summary
The discussion centers on calculating the distance a police car travels to overtake a speeding car. The speeding car moves at 120 km/h, while the police car starts from rest, taking 5 seconds to begin accelerating at 3 m/s² until it reaches a maximum speed of 150 km/h. Participants emphasize the need to account for both the distance the speeding car covers during the police car's delay and its acceleration phase. The correct approach involves setting the distances traveled by both vehicles equal to each other to find the time and distance for the police car to overtake. Understanding the contributions of both the acceleration and constant speed phases of the police car is crucial for solving the problem accurately.
iamjulius
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A car traveling @ 120 km/h passes by a parked police car. If it takes 5 seconds to start the police car, which then accelerates @ 3 m/s^2 to a maximum speed of 150 km/h, how far does the police car travel in overtaking the speeding car, which maintains a speed of 120 km/h?

The 5 seconds is giving me trouble... I assume they will have equal distance (change in X) when the police car overtakes the speeding car, so I set them equal to each other and solved for time...I am stumped.
 
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Did you remember to add the distance that the bandits car travels?

distance traveled by bandit = (5 seconds + t) * 33.3 m/s

The police cars distance is just a simple kinematic equation:
distance traveled by police = (3 m/s^2 * t)

Then set the distances equal. Is that what you did?
 
dmahmoudi said:
Did you remember to add the distance that the bandits car travels?

distance traveled by bandit = (5 seconds + t) * 33.3 m/s

The police cars distance is just a simple kinematic equation:
distance traveled by police = (3 m/s^2 * t)

Then set the distances equal. Is that what you did?

distance traveled by police = (3 m/s^2 * t)

No it's not, but if you get this distance correct and set the two distances equal you will find the solution to the problem. The distance the police car travels has two contributions: the constant acceleration interval and the constant velocity interval after it reaches top speed. Your expression does not give either of these distances; it gives the velocity of the police car at any time during the constant acceleration interval.
 

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