From a speed of 75 kph, a car decelerates at the rate of 500 m/min^2 along a straight line.How far in meters, will it travel in 45 sec?

Firstly, we need to convert the deceleration rate from m/min^2 to m/s^2.

1 m/min^2 is equal to 0.01667 m/s^2.

Therefore, the deceleration rate is -8.33 m/s^2 (negative sign indicates deceleration).

Next, we convert the speed from kph to m/s.

1 kph is equal to 0.27778 m/s.

So, the initial speed of 75 kph is equal to 20.833 m/s.

Now, we can use the equation of motion to find the distance traveled:

v^2 = u^2 + 2as

Where:
v = final velocity (0 m/s, as the car comes to a stop)
u = initial velocity (20.833 m/s)
a = acceleration/deceleration (-8.33 m/s^2)
s = distance traveled

Substitute the values into the equation:

0 = (20.833)^2 + 2*(-8.33)*s

0 = 434.93 - 16.66*s

16.66*s = 434.93

s = 26.09 m

Therefore, the car will travel 26.09 meters in 45 seconds.