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LIGHT: Geometric Optics
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LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Jan 11, 2016

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Scott Hensley
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Page 1: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

LIGHT: Geometric Optics

Page 2: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

The Ray Model of Light

• Light travels in straight lines under a wide variety of circumstances

• Light travels in straight line paths called RAYS

Page 3: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Optical Instruments: Refractive

C O N V E XC o n ve rg in g Ins trum e nt

th icker in th e m id d le

C O N C A V ED ive rg in g In s trum e ntth in ne r in the m id d le

T h in L en ses

Page 4: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

CONVERGING LENS

• Causes parallel rays to converge• Produces real and virtual images.• Focal Length is positive.

Page 5: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Ray Tracing for Converging Lens

Ray 1: Parallel emerge through F

Ray 2: Through F emerge Parallel Ray 3: Straight through center

Page 6: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

The Lens Equation

• 1/do + 1/di = 1/f

• m = hi/ho = - di/do – m is magnification

• ho/hi = do/di

Page 7: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

DIVERGING LENS

• Causes parallel rays to diverge• Produces only small-virtual images.• Focal Length is negative.

Page 8: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Ray Tracing for Diverging Lens

• Focal length is negative for any diverging instrument.

• Image distance is negative for virtual images.

• Virtual image produced will be smaller than object.

Page 9: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Angular Magnification

Page 10: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Who invented the telescope?

Page 11: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Refracting Telescope

Page 12: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Compound MicroscopeThe eyepiece is placed such that the image formed by the objective falls at first focal point of the eyepiece. The light thus emerges as parallel rays.

Page 13: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Can you explain this?

Page 14: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Total Internal Reflection

• Red light is incident on the glass-air boundary at an angle greater than the critical angle.– although red, when compared to blue and yellow, has

the lower index of refraction.

Page 15: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Can you explain this?

• The pattern formed is from a converging lens.

Page 16: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Spherical Aberation

Page 17: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Chromatic Aberration

• Each color has a different focal point.

• The refractive index is different for each wavelength.

Page 18: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Reflection

• Law of Reflection– The angle of incidence

equals the angle of reflection

• The incident and reflected rays lie in the same plane with the normal to the surface

Page 19: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Diffuse vs Specular Reflection

• Diffuse Reflection– Light incident upon a

rough surface

– Law of reflection still holds; Normals not ll.

• Specular Reflection– Mirror like reflection

– All Normals are parallel

Page 20: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Image formation by a Plane Mirror

• Image distance equals the object distance.

• Image size equals the object size.

• Virtual image formed.

Page 21: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Optical Instruments: Reflective

C O N V E XD ive rg in g In s trum e nt

C O N C A V EC o n ve rg in g Ins trum e nt

S P H E R IC A L M IR R O R S

Page 22: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

CONVEX MIRROR

• Produces only small-virtual images.

• Focal Length and Radius are negative.

• Anti-Theft, Rear-View, Safety

Page 23: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

CONCAVE MIRROR

• Produces both Real and Virtual Images– Real images can be magnified or reduced

– Virtual images are always magnified.

Real image formed by Converging Rays

Virtual image formed by Diverging Rays

Page 24: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

CONCAVE MIRROR

• Real Virtual– Real images can be magnified or reduced

– Virtual images are always magnified.

Page 25: LIGHT: Geometric Optics. The Ray Model of Light Light travels in straight lines under a wide variety of circumstances Light travels in straight line paths.

Equations to Apply

• f = r/2– f is focal length

– r is radius

• ho/hi = do/di – h is height

– d is distance

– o is object

– i is image

• 1/do + 1/di = 1/f

• m = hi/ho = - di/do – m is magnification