📘 WORKSHEET: Refraction at Curved Surfaces & Lenses
🧠SECTION A: THEORY / CONCEPTUAL (10 Questions)
Q1. Define refractive index. What does it signify physically?
Q2. State the sign convention used for spherical lenses.
Q3. What is the difference between a real image and a virtual image?
Q4. Define focal length of a lens.
Q5. What is power of a lens? Write its SI unit.
Q6. What happens to the focal length when the refractive index of lens material increases?
Q7. Why does a convex lens converge light rays?
Q8. What is the relation between radius of curvature and focal length for a thin lens?
Q9. Define magnification in case of a lens.
Q10. Can a concave lens form a real image? Justify your answer.
🔢 SECTION B: NUMERICALS (10 Questions)
Use standard sign convention.
Q11. An object is placed 20 cm in front of a convex lens of focal length 10 cm. Find image distance.
Q12. A concave lens has focal length 15 cm. Find its power.
Q13. An object is placed at 30 cm from a convex lens (f = 15 cm). Find magnification.
Q14. Find the focal length of a lens of power +2 D.
Q15. An image is formed at 40 cm by a convex lens when object is at 20 cm. Find focal length.
Q16. A lens has focal length -25 cm. Identify type and find its power.
Q17. Object at infinity forms image at 25 cm. Identify lens and find focal length.
Q18. An object of height 2 cm forms image of height 6 cm. Find magnification.
Q19. A convex lens produces an image at same distance as object. Find object distance in terms of focal length.
Q20. Two lenses of powers +2 D and +3 D are combined. Find net power.
✅ ANSWER KEY
Theory
- Ratio of speed of light in vacuum to medium
- Cartesian sign convention
- Real: formed by actual rays; Virtual: apparent intersection
- Distance between optical centre and focus
- , unit: Dioptre (D)
- Focal length decreases
- Refraction bends rays toward principal axis
- Depends on lens maker formula
-
- No, always virtual
Numericals
- +20 cm
- -6.67 D
- -1
- 0.5 m
- 13.33 cm
- Concave, -4 D
- Convex, 25 cm
- +3
-
- +5 D
🧮 KEY FORMULA (IMPORTANT)
Also:
- (f in meters)
-
✍️ DETAILED SOLUTIONS
Q11
Q12
Q13
Q14
Q15
Q16
Q17
Object at infinity → image at focus
Q18
Q19
For same distance:
Q20
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