Universe: Stars And Galaxies
Universe: Stars And Galaxies
6th Edition
ISBN: 9781319115098
Author: Roger Freedman, Robert Geller, William J. Kaufmann
Publisher: W. H. Freeman
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Chapter 6, Problem 23Q
To determine

(a)

Magnification of the telescope for the given conditions.

Expert Solution
Check Mark

Answer to Problem 23Q

Magnification of the telescope is 222.

Explanation of Solution

Given data:

Focal length of the objective lens, fobj=2m

Focal length of the eyepiece lens, feye=9mm

Formula used:

The magnification power of the telescope is given as

M=fobjfeye

Calculation:

The magnification power of the telescope is given as

M=fobjfeye

Plugging the values in the above equation

M=20.009=222

Conclusion:

Magnification of the telescope is 222.

To determine

(b)

Magnification of the telescope for the given conditions.

Expert Solution
Check Mark

Answer to Problem 23Q

Magnification of the telescope is 100.

Explanation of Solution

Given data:

Focal length of the objective lens, fobj=2m

Focal length of the eyepiece lens, feye=20mm

Formula used:

The magnification power of the telescope is given as

M=fobjfeye

Calculation:

The magnification power of the telescope is given as

M=fobjfeye

Plugging the values in the above equation

M=20.020=100

Conclusion:

Magnification of the telescope is 100.

To determine

(c)

Magnification of the telescope for the given conditions.

Expert Solution
Check Mark

Answer to Problem 23Q

Magnification of the telescope is 36.

Explanation of Solution

Given data:

Focal length of the objective lens, fobj=2m

Focal length of the eyepiece lens, feye=55mm

Formula used:

The magnification power of the telescope is given as

M=fobjfeye

Calculation:

The magnification power of the telescope is given as

M=fobjfeye

Plugging the values in the above equation

M=20.055=36

Conclusion:

Magnification of the telescope is 36.

To determine

(d)

The diffraction- limited angular resolution of the telescope for the given conditions.

Expert Solution
Check Mark

Answer to Problem 23Q

The diffraction- limited angular resolution of the telescope is 0.75arcsecond.

Explanation of Solution

Given data:

Diameter of the objective mirror = 20 cm = 0.20 m

Wavelength, λ=600nm

Formula used:

The angular resolution of the telescope (in arc-second) is given by the formula

θ=2.5×105×λD

Here,

λ is the wavelength in meters

D is the diameter of the objective lens in meters

Calculation:

The angular resolution of the telescope is given by the formula

θ=2.5×105×λD

Plugging the values in the above equation

θ=2.5×105×600× 10 90.20=0.75arcsecond

Conclusion:

Angular resolution of the telescope is 0.75arcsecond.

To determine

(e)

Whether or not the angular resolution of the telescope change if one took the telescope to the summit of Mauna Kea.

Expert Solution
Check Mark

Answer to Problem 23Q

The angular resolution of the telescope would be same

Explanation of Solution

Given data:

Focal length of the objective lens, fobj=2m

Wavelength, λ=600nm

Formula used:

The angular resolution of the telescope (in arc-second) is given by the formula

θ=2.5×105×λD

Here,

λ is the wavelength in meters

D is the diameter of the objective lens in meters

Calculation:

The angular resolution of the telescope is given by the formula

θ=2.5×105×λD

We can observe from the above formula that the angular resolution does not depend on the positon of the telescope. Therefore, there would be no change in the angular resolution of the telescope.

Conclusion:

Thus, the angular resolution of the telescope would be same even if one took the telescope to the summit of Mauna Kea.

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