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Question

A train is scheduled to run from Delhi to Pune at an average speed of 80 km/h but due to repairs of track , it looses 2 hrs in the first part of the journey. It then accelerates at a rate of 20 km/h2 till the speed reaches 100 km/h. This speed is now maintained till the end of the journey. If the train now reaches station on time, then find the distance from pune to a point when it starts accelerating.

A
840 km
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B
640 km
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C
550 km
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D
Data insufficient
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Solution

The correct option is A 840 km
Given,
Average speed =80 km/hr


Let l be the total distance between Delhi and Pune. From the figure,

Scheduled time , texp=l80

For travelling x1 distance it looses 2 hrs from expected time. So,

t1=x180+2......(1)

For travelling x2 it goes under acceleration from 80 km/h to 100 km/h .

So, applying equation of motion for x2 distance,

t2=vua=1008020=1 hr

x2=ut2+12at22=80×1+12×20×12=90 km

For travelling (x3=lx1x2) it continues with 100 km/h,

t3=x3100=lx1x2100

Finally it reaches on time. So,

texp=t1+t2+t3

Now, substituting the values,

l80=(x180+2)+1+(lx1x2100)

Substituting the value of x2 as 90 km,

l80=x180+3+lx190100

l80x180=3+lx190100

(lx1)(1801100)=390100

(lx1)(2080)=210

lx1=840 km

Distance of point A from Pune =lx1

=840 km

Hence, option (a) is the correct answer.

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