AIIMS 2005 Physics Skywave Propagation MCQ Question
For skywave propagation of a 10 MHz signal, what should be the minimum electron density in ionosphere?
1.2 × 10¹² m⁻³
10⁶ m⁻³
10¹⁴ m⁻³
10² m⁻³
Correct Answer
Detailed Explanation
To determine the minimum electron density in the ionosphere necessary for skywave propagation of a 10 MHz signal, we can utilize the relationship between frequency, wavelength, and the critical electron density required for reflection of radio waves.
Key Concepts:
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Skywave Propagation: This involves the reflection of radio waves from the ionosphere, allowing long-distance communication. The ionosphere consists of ionized particles which can reflect radio waves back to Earth.
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Critical Frequency: The critical frequency () is the maximum frequency that can be reflected by the ionosphere, given by the formula:
where:
- is the critical frequency in MHz,
- is the electron density in electrons per cubic meter (m⁻³).
Step-by-Step Calculation:
Given:
- Frequency of the signal, .
To find the minimum electron density () for skywave propagation at this frequency, we set :
Now, we can solve for :
-
Rearranging the equation:
-
Squaring both sides to eliminate the square root:
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Calculating the square:
-
Since we need to express this in a more manageable form, we convert it into scientific notation:
From this calculation, we conclude that the minimum electron density required for a 10 MHz signal to be successfully reflected in the ionosphere is approximately .
Explanation of Options:
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A) : This is the correct answer, as calculated above, confirming that this density is required for reflection of a 10 MHz signal.
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B) : This value is too low to reflect a 10 MHz signal, as it corresponds to a much lower critical frequency, approximately .
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C) : This value is excessively high and would correspond to a critical frequency significantly higher than 10 MHz, indicating that while it would reflect 10 MHz, it is not the minimum required density.
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D) : This is also far too low for 10 MHz, corresponding to a critical frequency of about .
Conclusion:
Only option A provides the necessary minimum electron density for the effective skywave propagation of a 10 MHz signal, validating it as the correct choice. The calculations followed the established formulas and concepts related to ionospheric propagation.
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