Question1: A man leaves his house at H1:X ( at a time X minutes past H1
hours) and returns home after a few hours at H2:Y ( at Y minutes
past H2 hours). He finds that the position of the minutes hands and
hour hands had interchanged during this period. In other words the angle
between the hands was the same just when he left the house and when he just
returned home. Find the value of X and Y in terms of H1 and H2.
Solution: We know
the speed of minute hand = 60 per minute, and
Speed of Hour hand = 300 per hour or ½0 per
minute
Angle made by the Minute hand with vertical line ( 12-6 line
in the clock) when he left the home at H1:X=
Angle made by the Hour hand with vertical line when he
returned home.
Therefore,
6X = 30 H2+ Y/2……………. Equation 1
Similarly;
Angle made by the Hour hand with vertical line ( 12-6 line
in the clock) when he left the home at H1:X=
Angle made by the Minute hand with vertical line when he
returned home.
Therefore,
30H1+X/2 = 6Y…………. Equation 2
Solving the above two equations we get
X= (720H2 +60H1)/143
Y= (720H1 +60H2)/143
From the above two values of X and Y, it can be found for how much time was the man away from his home. Apart from the above, we can also derive a few more short cuts as mentioned below:
The angle between the hands=(H2-H1)360/13
Time Away=(H2-H1)+(60/13)(H1-H2)