Answer:
101.66 cm far in front of the lens the object is placed
Step-by-step explanation:
given data
distance = 23.6 cm
magnitude = 11.8 cm
factor = 4.20
to find out
how far in front of lens
solution
we will apply here lens formula that is
1/f = 1/p + 1/q ...................1
so here
q = f×p / ( p-f)
put here all value and get q
q = (-11.8 × 23.6) / 23.6 - (-11.8)
q = - −7.866 cm
q = −7.866 show image is on same side
and magnification here is
m = h1 / h2 = - q / p ......................2
here h1 = h2 (-q/p )
so h1 = - h2 ( −7.866 / 18 )
h1 = 0.437 h2
and we know new image factor is 4.20 time small
so
h3 / h2 = -q1 / p1
(h1/4.20) / h2 = -q1 / p1
(0.437 h2 / 4.20) / h2 = -q1 / p1
q1 = 0.1040 p1
so from equation 1
1/f = 1/p + 1/q
1/f = 1/p1 + 1/q1
- 1 /11.8 = 1/ p1 - 1 / 0.1040p1
so here
p1 = 101.66 cm
so 101.66 cm far in front of the lens the object is placed