COLLEGE PHYSICS-ACHIEVE AC (1-TERM)
COLLEGE PHYSICS-ACHIEVE AC (1-TERM)
3rd Edition
ISBN: 9781319453916
Author: Freedman
Publisher: MAC HIGHER
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Applications Of Reflection Of Light
When a light ray (termed as the incident ray) hits a surface and bounces back (forms a reflected ray), the process of reflection of light has taken place.
Sign Convention for Mirrors
A mirror is made of glass that is coated with a metal amalgam on one side due to which the light ray incident on the surface undergoes reflection and not refraction.
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Chapter 24, Problem 49QAP
To determine

(a)

The image distance, height, type and orientation of the image

Expert Solution
Check Mark

Answer to Problem 49QAP

Image distance =30.0cm

Image height =60.0cm

Type of image = Real
Orientation of the image = Inverted

Explanation of Solution

Given info:

Distance to the object from the mirror = 10.0cm

Radius of the mirror = 15.0cm

Height of the object = 20.0cm

Formula used:

  1f=1p+1q

  f= Focal length
  p= Object distance
  q= Image distance
  f=R2

  R= Radius
  M=qp

  M= Magnification
  M=hiho

  hi= Image height
  ho= Object height

Calculation:

  f=R2=15.0cm2=7.5cm

  1q=1f1p=17.5cm110.0cmq=30.0cm

  hiho=qphi20.0cm=30.0cm10.0cmhi=60.0cm

Conclusion:

Image distance =30.0cm

Image height =60.0cm

Type of image = Real
Orientation of the image = Inverted

To determine

(b)

The image distance, height, type and orientation of the image

Expert Solution
Check Mark

Answer to Problem 49QAP

Image distance =12.0cm

Image height =12.0cm

Type of image = Real
Orientation of the image = Inverted

Explanation of Solution

Given info:

Distance to the object from the mirror = 20.0cm

Radius of the mirror = 15.0cm

Height of the object = 20.0cm

Formula used:

  1f=1p+1q

  f= Focal length
  p= Object distance
  q= Image distance
  f=R2

  R= Radius
  M=qp

  M= Magnification
  M=hiho

  hi= Image height
  ho= Object height

Calculation:

  f=R2=15.0cm2=7.5cm

  1q=1f1p=17.5cm120.0cmq=12.0cm

  hiho=qphi20.0cm=12.0cm20.0cmhi=12.0cm

Conclusion:

Image distance =12.0cm

Image height =12.0cm

Type of image = Real
Orientation of the image = Inverted

To determine

(c)

The image distance, height, type and orientation of the image

Expert Solution
Check Mark

Answer to Problem 49QAP

Image distance =8.11cm

Image height =1.62cm

Type of image = Real
Orientation of the image = Inverted

Explanation of Solution

Given info:

Distance to the object from the mirror = 100.0cm

Radius of the mirror = 15.0cm

Height of the object = 20.0cm

Formula used:

  1f=1p+1q

  f= Focal length
  p= Object distance
  q= Image distance
  f=R2

  R= Radius
  M=qp

  M= Magnification
  M=hiho

  hi= Image height
  ho= Object height

Calculation:

  f=R2=15.0cm2=7.5cm

  1q=1f1p=17.5cm1100.0cmq=8.11cm

  hiho=qphi20.0cm=8.11cm100.0cmhi=1.62cm

Conclusion:

Image distance =8.11cm

Image height =1.62cm

Type of image = Real
Orientation of the image = Inverted

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Chapter 24 Solutions

COLLEGE PHYSICS-ACHIEVE AC (1-TERM)

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