Difference between revisions of "Aufgaben:Exercise 1.1Z: Simple Path Loss Model"
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:$$V_{\rm 0} = V_{\rm P}(d = d_0) = 20\,{\rm dB} \hspace{0.05cm}.$$ | :$$V_{\rm 0} = V_{\rm P}(d = d_0) = 20\,{\rm dB} \hspace{0.05cm}.$$ | ||
− | One of these two scenarios describes the so-called <i>free space attenuation</i>, characterized by the path loss exponent $\gamma = 2$. However, the equation for the free space attenuation only applies in the <i>far-field</i>, i.e. when the distance $d$ between transmitter and receiver is greater than the <i>Fraunhofer distance</i>, | + | One of these two scenarios describes the so-called <i>free-space attenuation</i>, characterized by the path loss exponent $\gamma = 2$. However, the equation for the free-space attenuation only applies in the <i>far-field</i>, i.e. when the distance $d$ between transmitter and receiver is greater than the <i>Fraunhofer distance</i>, |
:$$d_{\rm F} = {2 D^2}/{\lambda} \hspace{0.05cm}.$$ | :$$d_{\rm F} = {2 D^2}/{\lambda} \hspace{0.05cm}.$$ | ||
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'''(1)''' The (simplest) path loss equation is | '''(1)''' The (simplest) path loss equation is | ||
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− | '''(2)''' <u>Solution 1</u> is correct, since the free space attenuation is characterized by the path loss exponent $\gamma = 2$. | + | '''(2)''' <u>Solution 1</u> is correct, since the free-space attenuation is characterized by the path loss exponent $\gamma = 2$. |
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Latest revision as of 13:37, 23 March 2021
Radio transmission with line-of-sight can be described by the so-called path loss model, which is given by the following equations:
- $$V_{\rm P}(d) = V_{\rm 0} + \gamma \cdot 10\,{\rm dB} \cdot {\rm lg} \hspace{0.1cm} (d/d_0)\hspace{0.05cm},$$
- $$V_{\rm 0} = \gamma \cdot 10\,{\rm dB} \cdot {\rm lg} \hspace{0.1cm} \frac{4 \cdot \pi \cdot d_0}{\lambda} \hspace{0.05cm}.$$
The graphic shows the path loss $V_{\rm P}(d)$ in $\rm dB$. The abscissa $d$ is also displayed logarithmically.
In the above equation, the following parameters are used:
- the distance $d$ of transmitter and receiver,
- the reference distance $d_0 = 1 \ \rm m$,
- the path loss exponent $\gamma$,
- the wavelength $\lambda$ of the electromagnetic wave.
Two scenarios are shown $\rm (A)$ and $\rm (B)$ with the same path loss at distance $d_0 = 1 \ \rm m$:
- $$V_{\rm 0} = V_{\rm P}(d = d_0) = 20\,{\rm dB} \hspace{0.05cm}.$$
One of these two scenarios describes the so-called free-space attenuation, characterized by the path loss exponent $\gamma = 2$. However, the equation for the free-space attenuation only applies in the far-field, i.e. when the distance $d$ between transmitter and receiver is greater than the Fraunhofer distance,
- $$d_{\rm F} = {2 D^2}/{\lambda} \hspace{0.05cm}.$$
Here, $D$ is the largest physical dimension of the transmitting antenna. With an $\lambda/2$–antenna, the Fraunhofer distance has a simple expression:
- $$d_{\rm F} = \frac{2 \cdot (\lambda/2)^2}{\lambda} = {\lambda}/{2}\hspace{0.05cm}.$$
Notes:
- This task belongs to the chapter Distance dependent attenuation and shading.
- The speed of light is $c = 3 \cdot 10^8 \ {\rm m/s}$.
Questions
Solution
- $$V_{\rm P}(d) = V_{\rm 0} + \gamma \cdot 10\,{\rm dB} \cdot {\rm lg} \hspace{0.1cm} (d/d_0)\hspace{0.05cm}.$$
- In scenario (A), the decay per decade (for example, between $d_0 = 1 \ \rm m$ and $d = 10 \ \rm m$) is exactly $20 \ \rm dB$ and in scenario (B) $25 \ \rm dB$.
- It follows:
- $$\gamma_{\rm A} \hspace{0.15cm} \underline{= 2}\hspace{0.05cm},\hspace{0.2cm}\gamma_{\rm B} \hspace{0.15cm} \underline{= 2.5}\hspace{0.05cm}.$$
(2) Solution 1 is correct, since the free-space attenuation is characterized by the path loss exponent $\gamma = 2$.
(3) The path loss at $d_0 = 1 \ \rm m$ is in both cases $V_0 = 20 \ \rm dB$. For scenario (A) the same applies:
- $$10 \cdot {\rm lg}\hspace{0.1cm} \left [ \frac{4 \cdot \pi \cdot d_0}{\lambda_{\rm A}}\right ]^2 = 20\,{\rm dB} \hspace{0.2cm} \Rightarrow \hspace{0.2cm} \frac{4 \cdot \pi \cdot d_0}{\lambda_{\rm A}} = 10 \hspace{0.2cm} \Rightarrow \hspace{0.2cm} \lambda_{\rm A} = 4 \pi \cdot 0.1\,{\rm m} = 1,257\,{\rm m} \hspace{0.05cm}.$$
- The frequency $f_{\rm A}$ is related to the wavelength $\lambda_{\rm A}$ over the speed of light $(c)$:
- $$f_{\rm A} = \frac{c}{\lambda_{\rm A}} = \frac{3 \cdot 10^8\,{\rm m/s}}{1.257\,{\rm m}} = 2.39 \cdot 10^8\,{\rm Hz} \hspace{0.15cm} \underline{\approx 240 \,\,{\rm MHz}} \hspace{0.05cm}.$$
- On the other hand, for scenario (B),
- $$10 \cdot {\rm lg}\hspace{0.1cm} \left [ \frac{4 \cdot \pi \cdot d_0}{\lambda_{\rm B}}\right ]^{2.5} = 20\,{\rm dB} \hspace{0.3cm} \Rightarrow \hspace{0.3cm} 25 \cdot {\rm lg}\hspace{0.1cm} \left [ \frac{4 \cdot \pi \cdot d_0}{\lambda_{\rm B}}\right ] = 20\,{\rm dB}$$
- $$\Rightarrow \hspace{0.3cm} \frac{4 \cdot \pi \cdot d_0}{\lambda_{\rm B}} = 10^{0.8} \approx 6.31 \hspace{0.3cm} \Rightarrow \hspace{0.3cm} {\lambda_{\rm B}} = \frac{10}{6.31} \cdot {\lambda_{\rm A}}\hspace{0.3cm} \Rightarrow \hspace{0.3cm} {f_{\rm B}} = \frac{6.31}{10} \cdot {f_{\rm A}} = 0.631 \cdot 240 \,{\rm MHz}\hspace{0.15cm} \underline{\approx 151.4 \,\,{\rm MHz}} \hspace{0.05cm}.$$
(4) The first suggested solution is correct:
- In the free-space scenario (A), the Fraunhofer distance $d_{\rm F} = \lambda_{\rm A}/2 \approx 63 \ \rm cm$. Thus, $d > d_{\rm F}$ always holds.
- Also in scenario (B), the entire path loss curve is correct because $\lambda_{\rm B} \approx 2 \ \rm m$ or $d_{\rm F} \approx 1 \ \rm m$ .