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Question 5
A 5 m long ladder is placed leaning towards a vertical wall such that it reaches the wall at a point 4m high. If the foot of the ladder is moved 6m towards the wall then find the distance by which the top of the ladder would slide upwards on the wall.

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Solution

Let AC be the ladder of length 5 m and BC = 4m be the height of the wall on which ladder is placed. If the foot of the ladder is moved 1.6m towards the wall i.e., AD = 16m, then in the right angled Δ ABC
AC2=AB2+BC2 [by Pythagoras theorem]
(5)2=(AB)2+(4)2
AB2=2516=9AB=3m
DB=ABAD=31.6=1.4m



In right angled ΔEBD,
ED2=EB2+BD2 [by Pythagoras theorem]
(5)2=(EB)2+(1.4)2 [BD=1.4m]
25=(EB)2+1.96
(EB)2=251.96=23.04
EB=23.04=4.8
Now, EC=EBBC=4.84=0.8m
Hence, the top of the ladder would slide upwards on the wall at distance 0.8m.

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