PHYSICS F/ SCI +ENGRS W/ WEBASSIGN ACCES
PHYSICS F/ SCI +ENGRS W/ WEBASSIGN ACCES
10th Edition
ISBN: 9781337888509
Author: SERWAY
Publisher: CENGAGE L
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Chapter 35, Problem 30P

In Figure P35.30, a thin converging lens of focal length 14.0 cm forms an image of the square abed, which is he = hb = 10.0 cm high and lies between distances of pd = 20.0 cm and pa = 30.0 cm from the lens. Let a′, b′, c′. and d′ represent the respective corners of the image. Let qa represent the image distance for points a′ and b′, qd represent the image distance for points c′ and d′, h b , represent the distance from point b′ to the axis, and h c represent the height of c′. (a) Find qa, qd, h b , and h c . (b) Make a sketch of the image. (c) The area of the object is 100 cm2. By carrying out the following steps, you will evaluate the area of the image. Let q represent the image distance of any point between a′ and d′, for which the object distance is p. Let h′ represent the distance from the axis to the point at the edge of the image between b′ and c′ at image distance q. Demonstrate that

| h | = 10.0 q ( 1 14.0 1 q )

where h′ and q are in centimeters. (d) Explain why the geometric area of the image is given by

q a q d | h | d q

(e) Carry out the integration to find the area of the image.

Figure P35.30

Chapter 35, Problem 30P, In Figure P35.30, a thin converging lens of focal length 14.0 cm forms an image of the square abed,

(a)

Expert Solution
Check Mark
To determine
The position of the given constants. qa , qd , hb and hc .

Answer to Problem 30P

The values of qa , qd hb and hc is 26.3cm , 46.7cm , 8.75cm and 23.3cm respectively

Explanation of Solution

Given info: The focal length of the lens is 14.0cm . The object is square abcd of height 10.0cm and the positioned between 20cm and 30.0cm .

Formula to calculate the image of any object in a thin lens is,

1f=1q+1p (1)

Here,

f is the focal length of the lens.

p is the object position.

q is the image position.

Substitute qa for q , pa for p in the equation (1),

1f=1pa+1qa (2)

Here,

pa is the object distance corresponding to ab .

qa is the image distance corresponding to ab .

Substitute 30.0cm for pa and 14.0cm for f in equation (2)

1f=1pa+1qa114.0cm=130.0cm+1qaqa=26.3cm

Substitute pd for p and qd for q in the equation (1),

1f=1qd+1pd (3)

Here,

qd is the image distance corresponding to the cd .

pd is the object position corresponding to cd .

Substitute, 20.0cm for pd and 14.0cm for f in equation (3),

1f=1qd+1pd114.0cm=1qd+120.0cmpd=46.7cm

Formula to calculate the height of the corresponding image point ab

PHYSICS F/ SCI +ENGRS W/ WEBASSIGN ACCES, Chapter 35, Problem 30P , additional homework tip  1 hb=hb(qapa) (4)

Here,

hb is to the height of image corresponding to ab

hb is the height of the object corresponding to ab .

Substitute 10.0cm for hb , 26.3cm for qa and 30.0cm in equation (4).

hb=hb(qapa)hb=10.0cm(26.3cm30.0cm)hb=8.75cm

 For calculating the image height corresponding to cd ,

hc=hc(qdpd) (5)

Substitute 10.0cm for hd , 46.7cm for qa and 20.0cm in equation (5).

hc=hc(qdpd)hc=10.0cm(46.7cm20.0cm)hc=23.3cm

Conclusion:

Therefore, the values of qa , qd hb and hc is 26.3cm , 46.7cm , 8.75cm and 23.3cm respectively.

(b)

Expert Solution
Check Mark
To determine

To draw: The sketch of the ray diagram.

Answer to Problem 30P

 The sketch of the ray diagram is,

PHYSICS F/ SCI +ENGRS W/ WEBASSIGN ACCES, Chapter 35, Problem 30P , additional homework tip  2

Explanation of Solution

The image of the square abcd will be a trapezoid of abcd .

PHYSICS F/ SCI +ENGRS W/ WEBASSIGN ACCES, Chapter 35, Problem 30P , additional homework tip  3

Figure (1)

(c)

Expert Solution
Check Mark
To determine

To show: The relation, |h|=10q(114.0cm1q) .

Answer to Problem 30P

The relation between height of the image and the image distance is |h|=10q(114.0cm1q) .

Explanation of Solution

the focal length of the given lens is 14.0cm . The formula to calculate the magnification is

hh=qp (6)

Here,

h is the image height.

h is the object height.

q is the image distance.

p is the object distance.

From the lens,

1f=1p+1q (7)

Here,

f is the focal length of the lens.

Substitute 14.0cm for f in equation (7).

1f=1p+1q114.0cm=1p+1q1p=114.0cm1q (8)

Substitute 114.0cm1q for p and 10.0cm for h in equation (6),

hh=qphh=q(1p)h=10(114.0cm1q)q|h|=10q(114.0cm1q) (9)

Conclusion:

Therefore the relation between height of the image and the image distance is |h|=10q(114.0cm1q) .

(d)

Expert Solution
Check Mark
To determine

To write: The explanation that the geometric area of image is qaqd|h|dq

Answer to Problem 30P

The geometric area of a image is explained by the integral qaqd|h|dq .

Explanation of Solution

Given info: The geometric area of a image is,

Area=qaqd|h|dq . (10)

Here,

h is the height of the image.

dq is the smaller region of image distance.

From equation (10) the integral sums up the small areas of region covered by the image itself. The height of the small regions is h and the small portion of image distance is dq .

Therefore area of that small region is

dA=hdq

Therefore the integration from qa   to qd of dA will give the geometric area of the image.

Conclusion:

Therefore, the geometric area of the image is given by integral qaqd|h|dq .

(e)

Expert Solution
Check Mark
To determine
The geometric area of the image.

Answer to Problem 30P

The geometric area is 328cm2 .

Explanation of Solution

Given info: The geometric area of the image is given by the integral,

qaqd|h|dq . (11)

From equation (9) substitute 10q(114.0cm1q) for h and 26.3cm for qa , 46.7cm for qd in equation (11)

qaqd|h|dq26.3cm46.7cm10q(114.0cm1q)dq

Integrate the above equation with respect to dq to get the area ,

Area=26.3cm46.7cm10q(114.0cm1q)dq=10.0cm[q228.0cmq]26.3cm46.7cm=10.0cm[[(46.7cm)226.3cm2]28.0cm46.7cm+26.3cm]=328cm2

Conclusion:

Therefore, the geometric area of the image is 328cm2 .

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Chapter 35 Solutions

PHYSICS F/ SCI +ENGRS W/ WEBASSIGN ACCES

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