Aufgaben:Exercise 1.1Z: Simple Path Loss Model: Unterschied zwischen den Versionen

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[[Datei:P_ID2121__Mob_Z_1_1.png|right|frame|Path loss model]]
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[[Datei:EN_Mob_Z1_1.png|right|frame|Simplest path loss diagram]]
 
Radio transmission with line-of-sight can be described by the so-called path loss model, which is given by the following equations:
 
Radio transmission with line-of-sight can be described by the so-called path loss model, which is given by the following equations:
 
$$V_{\rm P}(d) = V_{\rm 0} + \gamma \cdot 10\,{\rm dB} \cdot {\rm lg} \hspace{0.1cm} (d/d_0)\hspace{0.05cm},$$
 
$$V_{\rm P}(d) = V_{\rm 0} + \gamma \cdot 10\,{\rm dB} \cdot {\rm lg} \hspace{0.1cm} (d/d_0)\hspace{0.05cm},$$
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$f_{\rm B} \ = \ $ { 151.4 3% } $\ \ \rm MHz$
 
$f_{\rm B} \ = \ $ { 151.4 3% } $\ \ \rm MHz$
  
Does the free space&ndash scenario apply to all distances between  $1 \ \ \rm m$  and  $10 \ \rm km$?
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{Does the free-space scenario apply to all distances between  $1 \ \rm m$  and  $10 \ \rm km$?
 
|type="()"}
 
|type="()"}
 
+ Yes,
 
+ Yes,
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===Sample solution===
 
===Sample solution===
 
{{ML-Kopf}}
 
{{ML-Kopf}}
'''(1)''  The (simplest) path loss equation is
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'''(1)'''  The (simplest) path loss equation is
 
$$V_{\rm P}(d) = V_{\rm 0} + \gamma \cdot 10\,{\rm dB} \cdot {\rm lg} \hspace{0.1cm} (d/d_0)\hspace{0.05cm}.$$
 
$$V_{\rm P}(d) = V_{\rm 0} + \gamma \cdot 10\,{\rm dB} \cdot {\rm lg} \hspace{0.1cm} (d/d_0)\hspace{0.05cm}.$$
  
*In scenario (A), the waste per decade (for example, between $d_0 = 1 \ \rm m$ and $d = 10 \ \rm m$) is exactly $20 \ \rm dB$ and in scenario (B) $25 \ \rm dB$.  
+
*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:
 
*It follows:
 
$$\gamma_{\rm A} \hspace{0.15cm} \underline{= 2}\hspace{0.05cm},\hspace{0.2cm}\gamma_{\rm B} \hspace{0.15cm} \underline{= 2.5}\hspace{0.05cm}.$$
 
$$\gamma_{\rm A} \hspace{0.15cm} \underline{= 2}\hspace{0.05cm},\hspace{0.2cm}\gamma_{\rm B} \hspace{0.15cm} \underline{= 2.5}\hspace{0.05cm}.$$
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'''(2)'''&nbsp; Correct is <u>solution 1</u>, since the free space attenuation is characterized by the path loss exponent $\gamma = 2$.
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'''(2)'''&nbsp; <u>Solution 1</u> is correct, since the free space attenuation is characterized by the path loss exponent $\gamma = 2$.
  
  
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*The frequency $f_{\rm A}$ is related to the wavelength $\lambda_{\rm A}$ over the speed of light $c$:
 
*The frequency $f_{\rm A}$ is related to the wavelength $\lambda_{\rm A}$ over the speed of light $c$:
$$f_{\rm A} = \frac{c}{\lambda_{\rm A}} = \frac{3 \cdot 10^8\,{\rm m/s}}}{1.257\,{\rm m}} = 2.39 \cdot 10^8\,{\rm Hz}
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:$$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}}
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  \hspace{0.15cm} \underline{\approx 240 \,\,{\rm MHz}}
 
   \hspace{0.05cm}.$$
 
   \hspace{0.05cm}.$$
  
*On the other hand, the scenario (B)
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*On the other hand, for scenario (B),
 
$$10 \cdot {\rm lg}\hspace{0.1cm} \left [ \frac{4 \cdot \pi \cdot d_0}{\lambda_{\rm B}}\right ]^{2.5} = 20\,{\rm dB} \hspace{0.3cm} \Rightarrow \hspace{0.3cm} 25 \cdot {\rm lg}\hspace{0.1cm} \left [ \frac{4 \cdot \pi \cdot d_0}{\lambda_{\rm B}}\right ] = 20\,{\rm dB}$$
 
$$10 \cdot {\rm lg}\hspace{0.1cm} \left [ \frac{4 \cdot \pi \cdot d_0}{\lambda_{\rm B}}\right ]^{2.5} = 20\,{\rm dB} \hspace{0.3cm} \Rightarrow \hspace{0.3cm} 25 \cdot {\rm lg}\hspace{0.1cm} \left [ \frac{4 \cdot \pi \cdot d_0}{\lambda_{\rm B}}\right ] = 20\,{\rm dB}$$
$$\Rightarrow \hspace{0.3cm}  \frac{4 \cdot \pi \cdot d_0}{\lambda_{\rm B}} = 10^{0.8} \approx 6.31
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:$$\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}
+
   \hspace{0.3cm} \Rightarrow \hspace{0.3cm}
 
  {\lambda_{\rm B}} = \frac{10}{6.31} \cdot {\lambda_{\rm A}}\hspace{0.3cm}
 
  {\lambda_{\rm B}} = \frac{10}{6.31} \cdot {\lambda_{\rm A}}\hspace{0.3cm}
 
\Rightarrow \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}}
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  {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}.$$
 
   \hspace{0.05cm}.$$
  
  
'''(4)'''&nbsp; <u>first suggested solution</u> is correct:  
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'''(4)'''&nbsp; The <u>first suggested solution</u> is correct:  
*In free space&ndash;scenario (A) the Fraunhofer&ndash;distance&nbsp; $d_{\rm F} = \lambda_{\rm A}/2 \approx 63 \ \rm cm$. Thus, the following always applies&nbsp; $d > d_{\rm F}$.  
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*In the free-space scenario (A), the Fraunhofer distance&nbsp; $d_{\rm F} = \lambda_{\rm A}/2 \approx 63 \ \rm cm$. Thus, &nbsp; $d > d_{\rm F}$ always holds.  
*Also in scenario (B) is because of&nbsp; $\lambda_{\rm B} \approx 2 \ \rm m$&nbsp; or &nbsp;$d_{\rm F} \approx 1 \ \rm m$&nbsp; the entire displayed course correct.
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*Also in scenario (B), the entire path loss curve is correct because &nbsp; $\lambda_{\rm B} \approx 2 \ \rm m$&nbsp; or &nbsp;$d_{\rm F} \approx 1 \ \rm m$&nbsp; .
 
{{ML-Fuß}}
 
{{ML-Fuß}}
  

Aktuelle Version vom 15. Juni 2020, 13:52 Uhr

Simplest path loss diagram

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:



Questionnaire

1

Which path loss exponents apply to the scenarios  $\rm (A)$  and  $\rm (B)$?

$\gamma_{\rm A}\ = \ $

$\gamma_{\rm B} \ = \ $

2

Which scenario describes free-space attenuation?

Scenario  $\rm (A)$,
Scenario  $\rm (B)$.

3

Which signal frequencies are the basis for the scenarios  $\rm (A)$  and  $\rm (B)$ ?

$f_{\rm A} \ = \ $

$\ \ \rm MHz$
$f_{\rm B} \ = \ $

$\ \ \rm MHz$

4

Does the free-space scenario apply to all distances between  $1 \ \rm m$  and  $10 \ \rm km$?

Yes,
No.


Sample solution

(1)  The (simplest) path loss equation is $$V_{\rm P}(d) = V_{\rm 0} + \gamma \cdot 10\,{\rm dB} \cdot {\rm lg} \hspace{0.1cm} (d/d_0)\hspace{0.05cm}.$$

  • 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  $d_{\rm F} \approx 1 \ \rm m$  .