far point of a person is 100 cm. what is the focal length of the lens used to Correct the eye defeat and namethe eye defect?
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Answer:
Given: The focal length of a lens suggested to a person with Hypermetropia is 100cm.
To find the distance of near point and power of the lens.
Solution:
Let the distance of near point be ’d’ and focal length be 'f=100cm' then
f=
d−25
25d
cm
⟹100(d−25)=25d
⟹100d−25d=2500
⟹d=
75
2500
⟹d=
3
100
=33.33cm
Hence the distance of near point will be 33.33cm
We know,
Power, P=
f
1
D, f is in metres
⟹P=
100×10
−2
1
⟹P=1D
is the power of the lens
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