Question 9A concave lens forms an erect image of 1/3rd the size of the object which is placed at a distance 30 cm in front of the lens. Find:(a) The position of the image, and(b) The focal length of the lens.

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(a) As we know,the formula for magnification of a lens is —m=vu(Equation 1)m = \dfrac{v}{u} \qquad \bold{\text{(Equation 1)}}m=uv​(Equation 1)Given,u = -30 cmandm=IO=13(Equation 2)m = \dfrac{I}{O} = \dfrac{1}{3} \qquad \bold{\text{(Equation 2)}}m=OI​=31​(Equation 2)Substituting the values of u and Equation 2 in Equation 1, we get,v−30=13v=−10\dfrac{v}{-30} = \dfrac{1}{3} \[0.5em] v = -10 \[0.5em]−30v​=31​v=−10Therefore, the image is formed at 10 cm infront of the lens.(b) As we know, the lens formula is —1v–1u=1f\dfrac{1}{v} – \dfrac{1}{u} = \dfrac{1}{f} \[0.5em]v1​–u1​=f1​Given,u = -30 cmv = -10 cmThe lens used is concave in nature.Substituting the values in the formula, we get,1−10–1−30=1f−110+130=−1f−3+130=−1f−230=1f−115=1f⇒f=−15cm\dfrac{1}{-10} – \dfrac{1}{-30} = \dfrac{1}{f} \[0.5em] -\dfrac{1}{10} + \dfrac{1}{30} = - \dfrac{1}{f} \[0.5em] \dfrac{-3+1}{30} = - \dfrac{1}{f} \[0.5em] -\dfrac{2}{30} = \dfrac{1}{f} \[0.5em] -\dfrac{1}{15} = \dfrac{1}{f} \[0.5em] \Rightarrow f = -15 cm \[0.5em]−101​–−301​=f1​−101​+301​=−f1​30−3+1​=−f1​−302​=f1​−151​=f1​⇒f=−15cmTherefore, the focal length is 15 cm (negative)

Refraction Through a Lens — Question 9

Question 9