Equivalent focal length of coaxial lens system:
Consider two thin lenses L₁ and L₂ focal length f₁ and f₂ respectively. These are placed in air separated by a distance ‘a'. Let a light ray AB is incident on lens L₁, parallel to the principal axis at a height X above the axis. After refraction of this ray through lens L₁, it deviates through an angle δ₁ and the emergent ray ( in the absence of L₂ ), passes through second principal focus of L₁,
Which is at D. The ray AB is deviated through an angle δ₁ by the lens L₁. In figure A.
Let, O₁B = x , O₁O₂ = a, O₂ C = y
F₁ and F₂ are focal points of the optical system.
P₁ and P₂ are principal points of the optical system.
δ₁ = tan δ₁ =
O₁B =
X
O₁D f₁
.•. Derivation produced by first lens = δ₁=
x
f₁
The emergent ray from the lens L₁ meets the lens L₂ at C which is at a height y above the axis. After refraction through lens L₂ the emergent ray meets the axis at F₂ which is second focal point of the lens system. The lens L₂deviated the ray BC further through δ₂.
Geometrical Optics and Interference
.•. Deviation produced by the second lens
= δ₂ = y / f₂
When AB , the incident ray and CF₂, the emergent ray are produced, they meet at E. Then a single convex lens placed at EP₂ having focal length P₂F₂ ( = f ) is equivalent focal length of the lens system.
.•. Deviation produced by equivalent lens
= δ = EP₂ / P₂F₂
δ = x / f
Deviation produced by equivalent lens system is the algebraic sum of deviation produced by individual lens.
.•. δ = δ₁+ δ₂
.•.
x =
x +
y
f f₁ f₂ ......( 1 )
From figure A.
y = HO₂ - HC
= x - a. δ₁
{since angle = arc / radius
δ₁ = HC/ BH = HC / a }
= x - a. x /f₁
y = x (1- a/f₁ ) .....( 2 )
Putting this value of y in equation (1)
x =
x +
y (1-
a )
f f₁ f₂ f₁
1=
1 +
1 (1-
a )
f f₁ f₂ f₁
1=
1 +
1 -
a ..... (3)
f f₁ f₂ f₁f₂
Where f is the equivalent focal length of coaxial lens system.
a) power of lens :
Power of a lens is its ability to converge or diverge the rays incident on it. The power of lens is the reciprocal of its focal length in meters.
Power of lens =
1
Focal length in meters
The unit of power of lens is diopter.
A convex lens of small focal length produces a large converging effect while a convex lens of large focal length produces a small converging effect. So power of a convex lens is taken as positive. A concave lens produces divergence. Therefore, power of cancave lens produces divergence. Therefore , power of concave lens is taken as negative.
b) power of coaxial lens system:
When two thin lenses of focal lengths f₁ and f₂ are placed coaxially and separated by a distance "a" , then equivalent focal length f of lens system is given by
1=
1 +
1 -
a
f f₁ f₂ f₁f₂
But, power =
1
Focal length( in meters )
.•. P = P₁ + P₂ - aP₁P₂
.•. where P is the equivalent power of coaxial lens system.
c) Position of cardinal point :
(i) Second principal point
Let β = O₂P₂ = Distance of the second principal point from the second lens.
And ɑ = Distance of the first principal point from the first lens.
The calculate the value of β we have to produced as follows: from figure .A.
O₂P₂ = P₂F₂ - O₂F₂ = f - O₂F₂ .....(4)
Now , the triangles, ∆EP₂F₂ and ∆CO₂F₂ are similar Geometrical Optics and IntererencIn
.•.
EP₂ =
P₂F₂ i.e
x =
f .
CO₂ O₂F₂ y O₂F₂
O₂F₂ =
y. f
x
.•. putting the value of ‘y' from equation (2) we get ,
O₂F₂ =
x (1
- a )f = (
1-
a )f
f₁ f₁
x
putting the value of O₂F₂ in equation ..(4) we get,
O₂F₂ = f - (1-
a )f =
a . f
f₁ f₁
Since P₂ lies on the left side of lens L₂.
•.• O₂F₂ = - β
.•. β = -
a. f
f₁ .....(5)
So second principal point ( plane ) P₂ is at a distance "β " to the left from the second lens.
ii) First principal point : To calculate the value of ɑ we have to consider rays parallel to principal axis from the right hand side as shown in figure B.
Proceedings in the similar manner as described above we get,
O₁P₁ = ɑ =
a.f
f₂ .....(6)
So, first principal point P₁ is at a distance "ɑ" to the right from the first lens.
Now, as the medium on the two side of the lens system is same, the nodal points N₁ and N₂ coincide with P₁ and P₂.
iii ) Second focal point : The distance of the second focal point F₂ from the second lens L₂ will be O₂F₂ and is given by.
O₂F₂ = P₂F₂ - P₂O₂
= f - (- O₂P₂ )
= f + O₂P₂
= f + β
= f + (-
af )
f₁
= f + ( 1-
af )
f₁
iv) First focal point : The distance of the first focal point F₁ from the first lens L₁ will be O₁F₁ and is given by
O₁F₁ = P₁F₁ - P₁O₁
= -f - (-O₁P₁ )
= -f + O₁P₁
= -f + ɑ
= - f +
af
f₂
= - f ( 1-
a)
f₂
Geometrical Optics and Interference
Let O = Positive of object
I = Positive of image
P₁ = First principal point
P₂ = Second principal point
u = O₁O= Object distance from the first lens.
v =O₂I= Image distance from the second lens.
U= P₁O= Object distance from the first principal point.
V= P₂I= Image distance from the second principal point.
ɑ= Distance of the first principal point from first lens.
β= Distance of the second principal point from second lens.
From figure, ( using sign convention)
-U = -u +ɑ
U = u - ɑ
And. V= v -β
For lens combination
1 _
1 =
1 and magnification m =
V
V U f U
