Title: EDD5161A Presentation Package
1EDD5161APresentation Package Subject
PHYSICS Topic Convex lens
2Group 18 Team Members Ching Tsan fai
Fung Wai Chi
Lau Fung Yee
Lau Shiu Wa
98105320 98105570 98231470 98003760
3More about the package
- band 2-3
- form 4 students
- passive learners
4Table of content
- Light refraction in Prism
- Ray diagram of a convex lens
- Ray diagram illustrating graphical construction
rules of a convex lens - Simulation of the ray diagram
- The six special case of convex lens
- Daily applications of convex lens
5Convex lens teaching flow chart
6Light rays passing through two prisms
QUESTION TIME
In what way do the light rays pass through the
prisms?
The light rays converge after passing through
the prisms!!
7The light rays converge!!
QUESTION TIME
8AGAIN!!! The light rays also converge to the
same point!
QUESTION TIME
9- Will the light rays still converge if we
continue - to cut the prisms?
YES
NO
NO
10Convex Lens
- thickest in the centre
- bends light inwards
11- Which of the above is/are convex lens(es)?
A C
12Terminology of Convex lens
F Focus f focal length (FC) C Optical
Center Principal axis
f focal length (FC)
Convex lens
Principal axis
f
C
F
F
C Optical Center
13Convex lens Construction Rules
? The light ray parallel to the principal axis
? The light ray through the Optical Center C
? The light ray through the focus F
passes straight through
the lens.
is refracted through the focus
F.
is refracted parallel to the principal
axis.
?
?
?
?
?
?
Now, we are going to find the image of an object
formed by a convex lens by using these rules.
14 By using the three construction rules of
convex lens, draw a ray diagram of an object
with object distance u 15 cm. (Assume the
focal length of the convex lens is 10
cm.) Can you find the image distance?
Classwork
Answer
15Converging Lens Simulation
16Case 1 Object distance gt2f
When the object distance is larger than 2f , do
you know the image position?
Object
Object
Image
Image
QUESTION TIME
2F
2F
17Descriptions of the imageObject distance gt2f
- Magnified / Diminished /
- Same as the object
- Magnified / Diminished /
- Same as the object
Between the position of F and 2F on the other
side of the object.
18Case 2 Object distance 2f
Object
Object
2F
QUESTION TIME
2F
Image
Image
19Descriptions of the imageObject distance 2f
- Magnified / Diminished /
- Same as the object
- Magnified / Diminished /
- Same as the object
At the position of 2F on the other side of the
object.
20Case 3 Object distance between f and 2f
Object
Object
Image
Image
QUESTION TIME
2F
2F
21Descriptions of the imageObject distance
between f and 2f
- Magnified / Diminished /
- Same as the object
- Magnified / Diminished /
- Same as the object
Image distance gt 2f on the other side of the
object.
22Case 4 Object distance f
Where is the image?
Object
Object
2F
2F
23Descriptions of the imageObject distance f
Image forms at infinity.
24Case 5 Object distance lt f
Image
Image
Object
Object
QUESTION TIME
2F
2F
25Descriptions of the imageObject distance lt f
- Magnified / Diminished /
- Same as the object
- Magnified / Diminished /
- Same as the object
On the same side of the object.
26Case 6 Very large object at infinity
For a very large image at infinity
Convex lens
The light rays are nearly parallel to each other!
27Case 6 Very large object at infinity
Do you know how parallel light rays are refracted?
28Descriptions of the imageObject distance gt2f
- Magnified / Diminished /
- Same as the object
- Magnified / Diminished /
- Same as the object
Formed at the focal plane
29Descriptions of the imageObject distance gt2f
- Magnified / Diminished /
- Same as the object
- Magnified / Diminished /
- Same as the object
Formed at the focal plane
30Application of Convex lens
31The End
32By using the three construction rules of convex
lens, draw a ray diagram of an object with object
distance u 25 cm and height 10 cm. (Assume the
focal length of the convex lens is 10 cm.)
u 25 cm
10 cm
Object
Image
33Explanation of focal plane
Focus
Focal plane