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प्रश्न
Find the maximum magnifying power of a compound microscope having a 25 diopter lens as the objective, a 5 diopter lens as the eyepiece and the separation 30 cm between the two lenses. The least distance for clear vision is 25 cm.
उत्तर
For the compound microscope, we have:
Power of the objective lens = 25 D
The focal length of the objective lens is given by
`f_0 = 1/(25 D) = 0.04 m = 4 cm`
Power of the eyepiece = 5 D
The focal length of the eyepiece is given by
`f_e = 1/(5D) =0.2 m =20 cm`
Least distance of clear vision, D = 25 cm
Separation between the objective and the eyepiece, L = 30 cm
Magnifying power is maximum when the image is formed by the eyepiece at the least distance of clear vision, i.e., D = 25 cm.
For the eyepiece, we have:
ve = -25 cm and fe = 20 cm
The lens formula is given by
`1/v_e = 1/u_e + 1/f_e`
`=> 1/u_e = 1/v_e -1/f_e`
`=>1/-25 -1/20= -((4+5))/100`
⇒ ue = `(-100)/9` = 11.11 cm
Let uo and vo be the object and image distance for the objective lens.
So, for the objective lens, the image distance will be
V0 = L - u0
v0 = 30 -11.11
⇒ v0 = 18.89 cm ....(1)
As the image produced is real , v0 =+18.89 cm
`1/u_0 = 1/v_0 -1/f_0`
=`1/18.89 - 1/4 = -0.197`
`u_0 =-5.07 cm` .....(2)
Maximum magnifying power of the compound microscope:
m=`v_0/u_0(1+D/f_e)`
=` -(18.89/-5.07) (1+25/20)`
=3.7225 × 2.25 =8.376
So, the maximum magnifying power of the compound microscope is 8.376.
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