SOLUTION: A tourist can bicycle 52 miles in the same time as he can walk 20 miles. If he can ride 8 mph faster than he can walk, how much time should he allow to walk a 29 mile trail? (Hint:

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Question 316580: A tourist can bicycle 52 miles in the same time as he can walk 20 miles. If he can ride 8 mph faster than he can walk, how much time should he allow to walk a 29 mile trail? (Hint: How fast can he walk?)
Answer by texttutoring(324) (Show Source):
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We need to use the formula D=VT, where D=distance, V=velocity (or speed) and T=time

I will use subscript b for biking, and w for walking:
Db = 52 miles
Dw = 20 miles
Vb = Vw +8

The times are the same, so isolate for T in the D=VT equation:

Tw = Dw/Vw
Tb = Db/Vb

Now set Tb and Tw equal to each other:
Db/(Vw+8) = 20/Vw

Cross multiply and solve for Vw:
52*Vw = 20*Vw +160
32*Vw = 160
Vw = 5

So the man's walking speed is 5 mph.

To find the time to walk a 29 mile trail, use T=D/V

T = 29 / 5
T=5.8

He should allow 5.8 hours to walk a 29 mile trail.