Answer
Verified
375.1k+ views
Hint: Before stating the relation, derive the relation between radius of curvature and the focal length of a mirror. This will help you understand better. Use the fact that when a parallel ray of light falls on a concave mirror, it passes through the focus of the mirror after reflection.
Complete step by step answer:
The relation between focal length (f) and radius of curvature (R) of a spherical mirror is that the focal length is equal to half of the radius of curvature i.e. $f=\dfrac{R}{2}$.
Let us derive this relation.
Consider a concave mirror such that its radius of curvature is very much larger than the diameter of its aperture.
We can take help from the figure given.
Suppose a parallel ray of light is incident on the mirror as shown in the figure. Let this incident ray make an angle $\theta $ with normal to the surface of the mirror. Since this mirror is part of a circle, the normal drawn to the surface of the circle passes through the centre (C) of the mirror.
We know that rays of light parallel to the principal axis passing through the focus (F) of a concave mirror, after reflection.
According to the law of reflections, the angle of incidence and angle of reflection are equal. Therefore, $\angle BAC=\angle FAC=\theta $ as shown in the given figure.
Since BA and PC are parallel, $\angle BAC=\angle ACF=\theta $.
Therefore, from exterior angle theorem $\angle AFN=\angle ACF+\angle CAF=2\theta $.
Now drop a normal CP from point A. Let the foot of this normal be N.
Here, $\tan \theta =\dfrac{AN}{CN}\Rightarrow AN=CN\tan \theta $ ……. (i).
$\tan 2\theta =\dfrac{AN}{FN}\Rightarrow AN=FN\tan 2\theta $ ….. (ii).
From equation (i) and equation (ii) we get,
$CN\tan \theta =FN\tan 2\theta $
$\Rightarrow \dfrac{CN}{FN}=\dfrac{\tan 2\theta }{\tan \theta }$ …… (iii).
Since the radius of curvature is very much larger than the diameter of its aperture, NP is very small compared to CN and CP and $\theta $ will be a small angle .
Therefore, $CN\approx CP$ and $FN\approx FP$.
For small angles $\tan \theta =\theta $ and $\tan 2\theta =2\theta $.
Therefore, equation (iii) can be written as
$\Rightarrow \dfrac{CP}{FP}=\dfrac{2\theta }{\theta }\Rightarrow FP=\dfrac{CP}{2}$
And CP=R and FP=f.
Hence, $f=\dfrac{R}{2}$
Note: Note that this relation between the radius of curvature (R) of a concave mirror and the focal length (f) of the mirror, which is $f=\dfrac{R}{2}$, is true only when the R is very much larger than the diameter of its aperture.
Complete step by step answer:
The relation between focal length (f) and radius of curvature (R) of a spherical mirror is that the focal length is equal to half of the radius of curvature i.e. $f=\dfrac{R}{2}$.
Let us derive this relation.
Consider a concave mirror such that its radius of curvature is very much larger than the diameter of its aperture.
We can take help from the figure given.
Suppose a parallel ray of light is incident on the mirror as shown in the figure. Let this incident ray make an angle $\theta $ with normal to the surface of the mirror. Since this mirror is part of a circle, the normal drawn to the surface of the circle passes through the centre (C) of the mirror.
We know that rays of light parallel to the principal axis passing through the focus (F) of a concave mirror, after reflection.
According to the law of reflections, the angle of incidence and angle of reflection are equal. Therefore, $\angle BAC=\angle FAC=\theta $ as shown in the given figure.
Since BA and PC are parallel, $\angle BAC=\angle ACF=\theta $.
Therefore, from exterior angle theorem $\angle AFN=\angle ACF+\angle CAF=2\theta $.
Now drop a normal CP from point A. Let the foot of this normal be N.
Here, $\tan \theta =\dfrac{AN}{CN}\Rightarrow AN=CN\tan \theta $ ……. (i).
$\tan 2\theta =\dfrac{AN}{FN}\Rightarrow AN=FN\tan 2\theta $ ….. (ii).
From equation (i) and equation (ii) we get,
$CN\tan \theta =FN\tan 2\theta $
$\Rightarrow \dfrac{CN}{FN}=\dfrac{\tan 2\theta }{\tan \theta }$ …… (iii).
Since the radius of curvature is very much larger than the diameter of its aperture, NP is very small compared to CN and CP and $\theta $ will be a small angle .
Therefore, $CN\approx CP$ and $FN\approx FP$.
For small angles $\tan \theta =\theta $ and $\tan 2\theta =2\theta $.
Therefore, equation (iii) can be written as
$\Rightarrow \dfrac{CP}{FP}=\dfrac{2\theta }{\theta }\Rightarrow FP=\dfrac{CP}{2}$
And CP=R and FP=f.
Hence, $f=\dfrac{R}{2}$
Note: Note that this relation between the radius of curvature (R) of a concave mirror and the focal length (f) of the mirror, which is $f=\dfrac{R}{2}$, is true only when the R is very much larger than the diameter of its aperture.
Recently Updated Pages
How many sigma and pi bonds are present in HCequiv class 11 chemistry CBSE
Mark and label the given geoinformation on the outline class 11 social science CBSE
When people say No pun intended what does that mea class 8 english CBSE
Name the states which share their boundary with Indias class 9 social science CBSE
Give an account of the Northern Plains of India class 9 social science CBSE
Change the following sentences into negative and interrogative class 10 english CBSE
Trending doubts
Differentiate between homogeneous and heterogeneous class 12 chemistry CBSE
Difference between Prokaryotic cell and Eukaryotic class 11 biology CBSE
Difference Between Plant Cell and Animal Cell
Fill the blanks with the suitable prepositions 1 The class 9 english CBSE
Which are the Top 10 Largest Countries of the World?
Give 10 examples for herbs , shrubs , climbers , creepers
10 examples of evaporation in daily life with explanations
The Equation xxx + 2 is Satisfied when x is Equal to Class 10 Maths
Why is there a time difference of about 5 hours between class 10 social science CBSE