GmatTakerNo.1 wrote:If Mike left his house at 7am and traveled at 60 mph, he would arrive 10 minutes late to work. If he left his house at the same time and sped to work at 80 mph he would arrive 5 minutes early. What is his distance to work?
The answer must be 60, but I got 50.
Let the distance to travel be x.
@60mph & 10 minutes late, he is short of 10miles from the distance .
@80mph& 5 minutes early, he is 80/12 miles ahead of the distance.
let "t" be the time taken to travel the distance "x".
60 * t = (x-10)
---> t =(x-10)/60
80 *t =(x+(80/12)) ----(equation 2)
substitute the value of t in equation 2
x=60 miles
I agree this is a bit lengthy approach.but it encompasses the fundamental concepts.
