Difference between revisions of "Aufgaben:Exercise 4.6: k-parameters and alpha-parameters"

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{{quiz-Header|Buchseite=Lineare zeitinvariante Systeme/Kupfer–Doppelader
+
{{quiz-Header|Buchseite=Linear_and_Time_Invariant_Systems/Properties_of_Balanced_Copper_Pairs
 
}}
 
}}
  
[[File:EN_LZI_A_4_6.png|right|frame|Dämpfungsmaß  $\text{(0.5 mm}$  Doppelader$)$ mit  $k$– und  $\alpha$-Parameter]]
+
[[File:EN_LZI_A_4_6.png|right|frame|Attenuation function per unit length, <br>valid for&nbsp; "copper twin wire"&nbsp; (0.5 mm)]]
Für symmetrische Kupfer&ndash;Doppeladern findet man in&nbsp; [PW95]&nbsp; die folgende empirische Formel, gültig für den Frequenzbereich &nbsp;$0 \le f \le 30 \ \rm MHz$:
+
For symmetrical copper twisted pairs,&nbsp; the following empirical formula can be found in&nbsp; [PW95],&nbsp; which is valid for the frequency range &nbsp;$0 \le f \le 30 \ \rm MHz$:
 
:$$\alpha_{\rm I} (f) = k_1 + k_2  \cdot (f/f_0)^{k_3} , \hspace{0.15cm}
 
:$$\alpha_{\rm I} (f) = k_1 + k_2  \cdot (f/f_0)^{k_3} , \hspace{0.15cm}
 
  f_0 = 1\,{\rm MHz} .$$
 
  f_0 = 1\,{\rm MHz} .$$
Dagegen ist das Dämpfungsmaß eines Koaxialkabels meist in der folgenden Form angegeben:
+
In contrast,&nbsp; the attenuation function per unit length of a coaxial cable is usually given in the following form:
 
:$$\alpha_{\rm II}(f)  = \alpha_0 + \alpha_1 \cdot f +  \alpha_2 \cdot \sqrt {f}\hspace{0.05cm}.$$
 
:$$\alpha_{\rm II}(f)  = \alpha_0 + \alpha_1 \cdot f +  \alpha_2 \cdot \sqrt {f}\hspace{0.05cm}.$$
Insbesondere zur Berechnung von Impulsantwort und Rechteckantwort ist es von Vorteil, auch für die Kupfer&ndash;Doppeladern die zweite Darstellungsform mit den Kabelparametern &nbsp;$\alpha_0$, &nbsp;$\alpha_1$&nbsp; und&nbsp; $\alpha_2$&nbsp; anstelle der Beschreibung durch &nbsp;$k_1$, &nbsp;$k_2$&nbsp; und &nbsp;$k_3$ zu wählen.  
+
Especially for the calculation of impulse response and rectangular response it is advantageous also for the copper twisted pairs to choose the second representation form with the cable parameters &nbsp;$\alpha_0$, &nbsp;$\alpha_1$&nbsp; and&nbsp; $\alpha_2$&nbsp; instead of the representation with &nbsp;$k_1$, &nbsp;$k_2$&nbsp; and &nbsp;$k_3$.  
  
Für die Umrechnung geht man dabei wie folgt vor:
+
For the conversion,&nbsp; one proceeds as follows:
* Aus obigen Gleichungen ist offensichtlich, dass der die Gleichsignaldämpfung charakterisierende Koeffizient &nbsp;$\alpha_0 = k_1$&nbsp; ist.
+
* From above equations,&nbsp; it is obvious that the coefficient characterizing the DC signal attenuation is &nbsp;$\alpha_0 = k_1$.
* Zur Bestimmung von&nbsp; $\alpha_1$&nbsp; und&nbsp; $\alpha_2$&nbsp; wird davon ausgegangen, dass der mittlere quadratische Fehler im Bereich einer vorgegebenen Bandbreite &nbsp;$B$&nbsp; minimal sein soll:
+
* To determine&nbsp; $\alpha_1$&nbsp; and&nbsp; $\alpha_2$,&nbsp; it is assumed that the mean square error should be minimum in the range of a given bandwidth &nbsp;$B$:
 
:$${\rm E}\big[\varepsilon^2(f)\big] =  \int_{0}^{
 
:$${\rm E}\big[\varepsilon^2(f)\big] =  \int_{0}^{
 
B} \left [ \alpha_{\rm II} (f) - \alpha_{\rm I} (f)\right ]^2
 
B} \left [ \alpha_{\rm II} (f) - \alpha_{\rm I} (f)\right ]^2
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\hspace{0.3cm}{\rm Minimum}
 
\hspace{0.3cm}{\rm Minimum}
 
  \hspace{0.05cm} .$$
 
  \hspace{0.05cm} .$$
* Die Differenz &nbsp;$\varepsilon^2(f)$&nbsp; und der mittlere quadratische Fehler &nbsp;${\rm E}\big[\varepsilon^2(f)\big]$&nbsp; ergeben sich dabei wie folgt:
+
* The difference &nbsp;$\varepsilon^2(f)$&nbsp; and the mean square error &nbsp;${\rm E}\big[\varepsilon^2(f)\big]$&nbsp; are obtained as follows:
 
:$$\varepsilon^2(f) =  \big [ \alpha_1 \cdot f +  \alpha_2 \cdot \sqrt {f} - k_2  \cdot (f/f_0)^{k_3}\big ]^2
 
:$$\varepsilon^2(f) =  \big [ \alpha_1 \cdot f +  \alpha_2 \cdot \sqrt {f} - k_2  \cdot (f/f_0)^{k_3}\big ]^2
 
=\alpha_1^2 \hspace{0.05cm}\cdot\hspace{0.05cm}  f^2  + 2  \alpha_1 \alpha_2 \hspace{0.05cm}\cdot\hspace{0.05cm}  f^{1.5} +
 
=\alpha_1^2 \hspace{0.05cm}\cdot\hspace{0.05cm}  f^2  + 2  \alpha_1 \alpha_2 \hspace{0.05cm}\cdot\hspace{0.05cm}  f^{1.5} +
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\hspace{0.05cm}\cdot\hspace{0.05cm}
 
\hspace{0.05cm}\cdot\hspace{0.05cm}
 
$$
 
$$
:Diese Gleichung beinhaltet die zu verrechnenden Kabelparameter &nbsp;$\alpha_1$, &nbsp;$\alpha_2$, &nbsp;$k_2$&nbsp; und &nbsp;$k_3$&nbsp; sowie die Bandbreite &nbsp;$B$,&nbsp; innerhalb derer die Approximation gültig sein soll.
+
:This equation contains the cable parameters &nbsp;$\alpha_1$, &nbsp;$\alpha_2$, &nbsp;$k_2$&nbsp; and &nbsp;$k_3$&nbsp; to be calculated as well as the bandwidth &nbsp;$B$,&nbsp; within which the approximation should be valid.
* Durch Nullsetzen der Ableitungen von &nbsp;${\rm E}\big[\varepsilon^2(f)\big]$&nbsp; nach &nbsp;$\alpha_1$&nbsp; bzw. &nbsp;$\alpha_2$&nbsp; erhält man zwei Gleichungen für die bestmöglichen Koeffizienten &nbsp;$\alpha_1$&nbsp; und &nbsp;$\alpha_2$, die den mittleren quadratischen Fehler minimieren. Diese lassen sich in folgender Form darstellen:
+
* By setting the derivatives of &nbsp;${\rm E}\big[\varepsilon^2(f)\big]$&nbsp; to &nbsp;$\alpha_1$&nbsp; and &nbsp;$\alpha_2$&nbsp; to zero, two equations are obtained for the best possible coefficients &nbsp;$\alpha_1$&nbsp; and &nbsp;$\alpha_2$ that minimize the mean square error. These can be represented in the following form:
 
:$$\frac{{\rm d}\,{\rm E}\big[\varepsilon^2(f)\big]}{{\rm d}\,{\alpha_1}}  = 0 \hspace{0.2cm}  
 
:$$\frac{{\rm d}\,{\rm E}\big[\varepsilon^2(f)\big]}{{\rm d}\,{\alpha_1}}  = 0 \hspace{0.2cm}  
 
  \Rightarrow  
 
  \Rightarrow  
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\hspace{0.2cm} \alpha_1 + D_1 \cdot \alpha_2 + D_2 = 0 \hspace{0.05cm}
 
\hspace{0.2cm} \alpha_1 + D_1 \cdot \alpha_2 + D_2 = 0 \hspace{0.05cm}
 
. $$
 
. $$
* Aus der Gleichung &nbsp;$C_1 \cdot \alpha_2 + C_2 = D_1 \cdot \alpha_2 + D_2$&nbsp; lässt sich daraus der Koeffizient &nbsp;$\alpha_2$&nbsp; berechnen und anschließend aus jeder der beiden oberen Gleichungen der Koeffizient &nbsp;$\alpha_1$.
+
* From the equation &nbsp;$C_1 \cdot \alpha_2 + C_2 = D_1 \cdot \alpha_2 + D_2$,&nbsp; the coefficient &nbsp;$\alpha_2$&nbsp; can be calculated and then the coefficient &nbsp;$\alpha_1$ can be calculated from each of the two equations above.
  
  
Die  Grafik zeigt das Dämpfungsmaß für eine Kupferdoppelader mit&nbsp; $\text{0.5 mm}$&nbsp; Durchmesser, deren&nbsp; $k$&ndash;Parameter lauten:
+
The graph shows the attenuation function per unit length for a copper twin wire with&nbsp; $\text{0.5 mm}$&nbsp; diameter, whose&nbsp; $k$&ndash;parameters are:
 
:$$k_1  = 4.4\, {\rm dB}/{\rm km} \hspace{0.05cm}, \hspace{0.2cm}
 
:$$k_1  = 4.4\, {\rm dB}/{\rm km} \hspace{0.05cm}, \hspace{0.2cm}
 
  k_2  = 10.8\, {\rm dB}/{\rm km}\hspace{0.05cm}, \hspace{0.2cm}k_3  = 0.60\hspace{0.05cm}
 
  k_2  = 10.8\, {\rm dB}/{\rm km}\hspace{0.05cm}, \hspace{0.2cm}k_3  = 0.60\hspace{0.05cm}
 
  \hspace{0.05cm}.$$
 
  \hspace{0.05cm}.$$
  
*Die rote Kurve zeigt die damit berechnete Funktion &nbsp;$\alpha(f)$.&nbsp; Für &nbsp;$f = 30 \ \rm MHz$&nbsp; ergibt sich das Dämpfungsmaß &nbsp;$\alpha(f)= 87.5 \ \rm dB/km$.  
+
*The red curve shows the function &nbsp;$\alpha(f)$&nbsp; calculated with this parameters.&nbsp; For &nbsp;$f = 30 \ \rm MHz$&nbsp; the attenuation function per unit length is &nbsp;$\alpha(f)= 87.5 \ \rm dB/km$.  
*Die blaue Kurve gibt die Approximation mit den &nbsp;$\alpha$&ndash;Koeffizienten an.&nbsp; Diese ist von der roten Kurve innerhalb der Zeichengenauigkeit fast nicht zu unterscheiden.
+
*The blue curve gives the approximation with the &nbsp;$\alpha$&ndash;coefficients.&nbsp; This is almost indistinguishable from the red curve within the drawing accuracy.
  
  
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+
Notes:  
 
+
*The exercise belongs to the chapter&nbsp;  [[Linear_and_Time_Invariant_Systems/Eigenschaften_von_Kupfer–Doppeladern|Properties of Balanced Copper Pairs]].
 
 
''Hinweise:''
 
*Die Aufgabe gehört zum Kapitel&nbsp;  [[Linear_and_Time_Invariant_Systems/Eigenschaften_von_Kupfer–Doppeladern|Eigenschaften von Kupfer–Doppeladern]].
 
 
   
 
   
*Sie können zur Überprüfung Ihrer Ergebnisse das interaktive Applet &nbsp;[[Applets:Dämpfung_von_Kupferkabeln|Dämpfung von Kupferkabeln]]&nbsp; benutzen.
+
*You can use the&nbsp; (German language)&nbsp; interactive SWF applet &nbsp;[[Applets:Dämpfung_von_Kupferkabeln|"Dämpfung von Kupferkabeln"]]&nbsp; &rArr; &nbsp; "Attenuation of copper cables"&nbsp;.
*[PW95]&nbsp; kennzeichnet folgenden Literaturhinweis:   &nbsp; Pollakowski, P.; Wellhausen, H.-W.: ''Eigenschaften symmetrischer Ortsanschlusskabel im Frequenzbereich bis 30 MHz.'' Deutsche Telekom AG, Forschungs- und Technologiezentrum Darmstadt, 1995.
+
*[PW95]&nbsp; denotes the following literature reference: &nbsp; Pollakowski, P.; Wellhausen, H.-W.:&nbsp; Eigenschaften symmetrischer Ortsanschlusskabel im Frequenzbereich bis 30 MHz.&nbsp; Deutsche Telekom AG, Forschungs- und Technologiezentrum Darmstadt, 1995.
  
  
===Fragebogen===
+
===Questions===
  
 
<quiz display=simple>
 
<quiz display=simple>
{Berechnen Sie die Parameter &nbsp;$C_1$&nbsp; und &nbsp;$C_2$&nbsp; der Gleichung &nbsp;$\alpha_1 + C_1 \cdot \alpha_2 + C_2  = 0$, die sich aus der Ableitung &nbsp;${\rm dE\big[\text{...}\big]/d}\alpha_1$&nbsp; ergeben. <br>Welche Ergebnisse sind zutreffend?
+
{Calculate the parameters &nbsp;$C_1$&nbsp; and &nbsp;$C_2$&nbsp; of the equation &nbsp;$\alpha_1 + C_1 \cdot \alpha_2 + C_2  = 0$&nbsp; resulting from the derivative &nbsp;${\rm dE\big[\text{...}\big]/d}\alpha_1$.&nbsp; <br>Which results are correct?
 
|type="[]"}
 
|type="[]"}
 
+ $C_1 = 6/5 \cdot B^{-0.5}$,
 
+ $C_1 = 6/5 \cdot B^{-0.5}$,
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{Berechnen Sie die Parameter &nbsp;$D_1$&nbsp; und &nbsp;$D_2$&nbsp; der Gleichung &nbsp;$ \alpha_1 + D_1 \cdot \alpha_2 + D_2  = 0$, die sich aus der Ableitung &nbsp;${\rm dE\big[\text{...}\big]/d}\alpha_2$&nbsp; ergeben.<br> Welche Ergebnisse sind zutreffend?
+
{Calculate the parameters &nbsp;$D_1$&nbsp; and &nbsp;$D_2$&nbsp; of the equation &nbsp;$ \alpha_1 + D_1 \cdot \alpha_2 + D_2  = 0$&nbsp; resulting from the derivative &nbsp;${\rm dE\big[\text{...}\big]/d}\alpha_2$.&nbsp; <br> Which results are correct?
 
|type="[]"}
 
|type="[]"}
 
- $D_1 = 6/5 \cdot B^{-0.5}$,
 
- $D_1 = 6/5 \cdot B^{-0.5}$,
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{Berechnen Sie die Koeffizienten &nbsp;$\alpha_1$&nbsp; und &nbsp;$\alpha_2$&nbsp; für die vorgegebenen &nbsp;$k_2$&nbsp; und &nbsp;$k_3$. <br>Welche der folgenden Aussagen sind zutreffend?
+
{Calculate the coefficients &nbsp;$\alpha_1$&nbsp; and &nbsp;$\alpha_2$&nbsp; for the given &nbsp;$k_2$&nbsp; and &nbsp;$k_3$. <br>Which of the following statements are true?
 
|type="[]"}
 
|type="[]"}
+ Für &nbsp;$k_3=1.0$&nbsp; gilt &nbsp;$\alpha_1 = k_2/f_0$&nbsp; und &nbsp;$\alpha_2 = 0$.
+
+ For &nbsp;$k_3=1.0$,&nbsp; &nbsp;$\alpha_1 = k_2/f_0$&nbsp; and &nbsp;$\alpha_2 = 0$.
+ Für &nbsp;$k_3=0.5$&nbsp; gilt &nbsp;$\alpha_1 = 0$&nbsp; und &nbsp;$\alpha_2 = k_2/f_0^{0.5}$.
+
+ For &nbsp;$k_3=0.5$,&nbsp; &nbsp;$\alpha_1 = 0$&nbsp; and &nbsp;$\alpha_2 = k_2/f_0^{0.5}$.
  
  
{Ermitteln Sie die Koeffizienten &nbsp;$\alpha_1$&nbsp; und &nbsp;$\alpha_2$&nbsp; zahlenmäßig für die Approximationsbandbreite &nbsp;$B = 30 \ \rm MHz$.
+
{Determine the coefficients &nbsp;$\alpha_1$&nbsp; and &nbsp;$\alpha_2$&nbsp; numerically for the approximation bandwidth &nbsp;$B = 30 \ \rm MHz$.
 
|type="{}"}
 
|type="{}"}
 
$\alpha_1 \ = \ $  { 0.761 3% } $\ \rm dB/(km\ \cdot \ MHz)$
 
$\alpha_1 \ = \ $  { 0.761 3% } $\ \rm dB/(km\ \cdot \ MHz)$
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{Berechnen Sie mit den &nbsp;$\alpha$&ndash;Parametern das Dämpfungsmaß für die Frequenz &nbsp;$f = 30\ \rm MHz$.
+
{Using the &nbsp;$\alpha$&ndash;parameters,&nbsp; calculate the attenuation function per unit length for the frequency &nbsp;$f = 30\ \rm MHz$.
 
|type="{}"}
 
|type="{}"}
 
$\alpha_{\rm  II}(f = 30\ \rm MHz) \ = \ $ { 88.1 3% } $\ \rm dB/km$
 
$\alpha_{\rm  II}(f = 30\ \rm MHz) \ = \ $ { 88.1 3% } $\ \rm dB/km$
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</quiz>
 
</quiz>
  
===Musterlösung===
+
===Solution===
 
{{ML-Kopf}}
 
{{ML-Kopf}}
'''(1)'''&nbsp; Richtig sind <u>die Lösungsvorschläge 1 und 6</u>:
+
'''(1)'''&nbsp; <u>Solutions 1 and 6</u>&nbsp; are correct:
*Die Ableitung des angegebenen Erwartungswertes nach&nbsp; $\alpha_1$&nbsp; ergibt:
+
*The derivative of the given expected value with respect to&nbsp; $\alpha_1$&nbsp; gives:
 
:$$\frac{{\rm d}\,{\rm E}[\varepsilon^2(f)]}{{\rm d}\,{\alpha_1}}  =
 
:$$\frac{{\rm d}\,{\rm E}[\varepsilon^2(f)]}{{\rm d}\,{\alpha_1}}  =
 
  \frac{2}{3}\cdot B^3 \cdot \alpha_1 + \frac{4}{5}\cdot B^{2.5} \cdot \alpha_2
 
  \frac{2}{3}\cdot B^3 \cdot \alpha_1 + \frac{4}{5}\cdot B^{2.5} \cdot \alpha_2
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+ 2} \cdot \frac{B^{k_3+2}}{f_0^{k_3}}= 0
 
+ 2} \cdot \frac{B^{k_3+2}}{f_0^{k_3}}= 0
 
  \hspace{0.05cm} .$$
 
  \hspace{0.05cm} .$$
*Durch Nullsetzen und Division durch&nbsp; $2B^2/3$&nbsp; erhält man daraus:
+
*By setting it to zero and dividing by&nbsp; $2B^2/3$,&nbsp; we obtain:
 
:$$\alpha_1 + \frac{6}{5}\cdot B^{-0.5} \cdot \alpha_2
 
:$$\alpha_1 + \frac{6}{5}\cdot B^{-0.5} \cdot \alpha_2
 
  - \frac{3 k_2 }{k_3
 
  - \frac{3 k_2 }{k_3
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'''(2)'''&nbsp; Richtig sind <u>die Lösungsvorschläge 2 und 5</u>:
+
'''(2)'''&nbsp; <u>Solutions 2 and 5</u>&nbsp; are correct:
*Bei gleicher Vorgehensweise wie in der Teilaufgabe&nbsp; '''(1)'''&nbsp; erhält man:
+
*Using the same procedure as in subtask&nbsp; '''(1)''',&nbsp; we obtain:
 
:$$\frac{{\rm d}\,{\rm E}[\varepsilon^2(f)]}{{\rm d}\,{\alpha_2}}  =
 
:$$\frac{{\rm d}\,{\rm E}[\varepsilon^2(f)]}{{\rm d}\,{\alpha_2}}  =
 
  \frac{4}{5}\cdot B^{2.5} \cdot \alpha_1 +  B^{2} \cdot \alpha_2
 
  \frac{4}{5}\cdot B^{2.5} \cdot \alpha_1 +  B^{2} \cdot \alpha_2
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'''(3)'''&nbsp; Aus&nbsp; $C_1 \cdot \alpha_2 + C_2  = D_1 \cdot \alpha_2 + D_2$&nbsp; ergibt sich eine lineare Gleichung für&nbsp; $\alpha_2$. Mit dem Ergebnis aus&nbsp; '''(2)'''&nbsp; kann hierfür geschrieben werden:
+
'''(3)'''&nbsp; <u>Both solutions</u>&nbsp; are correct:
 +
 
 +
*From&nbsp; $C_1 \cdot \alpha_2 + C_2  = D_1 \cdot \alpha_2 + D_2$&nbsp; we obtain a linear equation for&nbsp; $\alpha_2$.&nbsp; With the result from&nbsp; '''(2)'''&nbsp; we can write:
 
:$$\alpha_2  =  \frac{D_2 - C_2}{C_1 - D_1} = \frac{- \frac{2.5 \cdot k_2 }{k_3
 
:$$\alpha_2  =  \frac{D_2 - C_2}{C_1 - D_1} = \frac{- \frac{2.5 \cdot k_2 }{k_3
 
+1.5} \cdot \frac{B^{k_3-1}}{f_0^{k_3}} + \frac{3 k_2 }{k_3 +2}
 
+1.5} \cdot \frac{B^{k_3-1}}{f_0^{k_3}} + \frac{3 k_2 }{k_3 +2}
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  2)}\cdot \frac {k_2}{\sqrt{f_0}}
 
  2)}\cdot \frac {k_2}{\sqrt{f_0}}
 
  \hspace{0.05cm} .$$
 
  \hspace{0.05cm} .$$
*Für den Parameter&nbsp; $\alpha_1$&nbsp; gilt dann:
+
*For the parameter &nbsp; $\alpha_1$&nbsp; then holds:
 
:$$\alpha_1  =  - C_1 \cdot \alpha_2 - C_2 =   
 
:$$\alpha_1  =  - C_1 \cdot \alpha_2 - C_2 =   
 
  -\frac{6}{5}\cdot B^{-0.5} \cdot 10 \cdot (B/f_0)^{k_3
 
  -\frac{6}{5}\cdot B^{-0.5} \cdot 10 \cdot (B/f_0)^{k_3
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-1}\cdot \frac{k_3 -0.5}{(k_3 + 1.5)(k_3 +
 
-1}\cdot \frac{k_3 -0.5}{(k_3 + 1.5)(k_3 +
 
  2)}\cdot \frac {k_2}{f_0}\hspace{0.05cm} .$$
 
  2)}\cdot \frac {k_2}{f_0}\hspace{0.05cm} .$$
<u>Beide Lösungsvorschläge</u> sind richtig.
+
*Unabhängig von der Bandbreite erhält man für&nbsp; $k_3 = 1$:
+
*Regardless of the bandwidth,&nbsp; we obtain for&nbsp; $k_3 = 1$:
 
:$$\alpha_1    =  (B/f_0)^{k_3
 
:$$\alpha_1    =  (B/f_0)^{k_3
 
-1}\cdot \frac{15 \cdot (k_3 -0.5)}{(k_3 + 1.5)(k_3 +
 
-1}\cdot \frac{15 \cdot (k_3 -0.5)}{(k_3 + 1.5)(k_3 +
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  2)}\cdot \frac {k_2}{\sqrt{f_0}}\hspace{0.15cm}\underline{= 0} \hspace{0.05cm}
 
  2)}\cdot \frac {k_2}{\sqrt{f_0}}\hspace{0.15cm}\underline{= 0} \hspace{0.05cm}
 
  .$$
 
  .$$
*Dagegen ergibt sich für&nbsp; $k_3 = 0.5$:
+
*In contrast,&nbsp; for&nbsp; $k_3 = 0.5$:
 
:$$\alpha_1    =  (B/f_0)^{k_3
 
:$$\alpha_1    =  (B/f_0)^{k_3
 
-1}\cdot \frac{15 \cdot (k_3 -0.5)}{(k_3 + 1.5)(k_3 +
 
-1}\cdot \frac{15 \cdot (k_3 -0.5)}{(k_3 + 1.5)(k_3 +
Line 197: Line 196:
  
  
'''(4)'''&nbsp; Für die beiden Koeffizienten gilt mit&nbsp; $k_2 = 10.8 \ \rm dB/km$,&nbsp; $k_3 = 0.6 \ \rm dB/km$&nbsp; und&nbsp; $B/f_0 = 30$:
+
'''(4)'''&nbsp; For the two coefficients, with&nbsp; $k_2 = 10.8 \ \rm dB/km$,&nbsp; $k_3 = 0.6 \ \rm dB/km$&nbsp; and&nbsp; $B/f_0 = 30$:
 
:$$\alpha_1    =  (B/f_0)^{k_3
 
:$$\alpha_1    =  (B/f_0)^{k_3
 
-1}\cdot \frac{15 \cdot (k_3 -0.5)}{(k_3 + 1.5)(k_3 +
 
-1}\cdot \frac{15 \cdot (k_3 -0.5)}{(k_3 + 1.5)(k_3 +
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'''(5)'''&nbsp; Entsprechend der angegebenen Gleichung&nbsp; $\alpha_{\rm II}(f)$&nbsp; gilt damit auch:
+
'''(5)'''&nbsp; According to the given equation&nbsp; $\alpha_{\rm II}(f)$&nbsp; thus also holds:
 
:$$\alpha_{\rm II}(f = 30 \, {\rm MHz})    =  \alpha_0 + \alpha_1 \cdot f +  \alpha_2 \cdot \sqrt {f}  
 
:$$\alpha_{\rm II}(f = 30 \, {\rm MHz})    =  \alpha_0 + \alpha_1 \cdot f +  \alpha_2 \cdot \sqrt {f}  
 
   =  \big [ \hspace{0.05cm} 4.4 + 0.761 \cdot 30 +  11.1 \cdot \sqrt {30}\hspace{0.05cm}
 
   =  \big [ \hspace{0.05cm} 4.4 + 0.761 \cdot 30 +  11.1 \cdot \sqrt {30}\hspace{0.05cm}
Line 228: Line 227:
  
  
[[Category:Linear and Time-Invariant Systems: Exercises|^4.3 Copper Twisted Pair^]]
+
[[Category:Linear and Time-Invariant Systems: Exercises|^4.3 Balanced Copper Twisted Pair^]]

Latest revision as of 17:11, 23 November 2021

Attenuation function per unit length,
valid for  "copper twin wire"  (0.5 mm)

For symmetrical copper twisted pairs,  the following empirical formula can be found in  [PW95],  which is valid for the frequency range  $0 \le f \le 30 \ \rm MHz$:

$$\alpha_{\rm I} (f) = k_1 + k_2 \cdot (f/f_0)^{k_3} , \hspace{0.15cm} f_0 = 1\,{\rm MHz} .$$

In contrast,  the attenuation function per unit length of a coaxial cable is usually given in the following form:

$$\alpha_{\rm II}(f) = \alpha_0 + \alpha_1 \cdot f + \alpha_2 \cdot \sqrt {f}\hspace{0.05cm}.$$

Especially for the calculation of impulse response and rectangular response it is advantageous also for the copper twisted pairs to choose the second representation form with the cable parameters  $\alpha_0$,  $\alpha_1$  and  $\alpha_2$  instead of the representation with  $k_1$,  $k_2$  and  $k_3$.

For the conversion,  one proceeds as follows:

  • From above equations,  it is obvious that the coefficient characterizing the DC signal attenuation is  $\alpha_0 = k_1$.
  • To determine  $\alpha_1$  and  $\alpha_2$,  it is assumed that the mean square error should be minimum in the range of a given bandwidth  $B$:
$${\rm E}\big[\varepsilon^2(f)\big] = \int_{0}^{ B} \left [ \alpha_{\rm II} (f) - \alpha_{\rm I} (f)\right ]^2 \hspace{0.1cm}{\rm d}f \hspace{0.3cm}\Rightarrow \hspace{0.3cm}{\rm Minimum} \hspace{0.05cm} .$$
  • The difference  $\varepsilon^2(f)$  and the mean square error  ${\rm E}\big[\varepsilon^2(f)\big]$  are obtained as follows:
$$\varepsilon^2(f) = \big [ \alpha_1 \cdot f + \alpha_2 \cdot \sqrt {f} - k_2 \cdot (f/f_0)^{k_3}\big ]^2 =\alpha_1^2 \hspace{0.05cm}\cdot\hspace{0.05cm} f^2 + 2 \alpha_1 \alpha_2 \hspace{0.05cm}\cdot\hspace{0.05cm} f^{1.5} + \alpha_1^2 \hspace{0.05cm}\cdot\hspace{0.05cm} f + k_2^2\hspace{0.05cm}\cdot\hspace{0.05cm} \frac{f^{2k_3}}{f_0^{2k_3}} - 2 k_2 \alpha_1 \hspace{0.05cm}\cdot\hspace{0.05cm} \frac{f^{k_3+1}} {f_0^{k_3}}-{2 k_2 \alpha_2} \hspace{0.05cm}\cdot\hspace{0.05cm} \frac{f^{k_3+0.5}}{f_0^{k_3}}$$
$$\Rightarrow \hspace{0.3cm}{\rm E}\big[\varepsilon^2(f)\big] = \alpha_1^2 \hspace{0.05cm}\cdot\hspace{0.05cm}\frac{B^3}{3} + \frac{4}{5} \hspace{0.05cm}\cdot\hspace{0.05cm}\alpha_1 \alpha_2 \hspace{0.05cm}\cdot\hspace{0.05cm}B^{2.5} + \alpha_1^2 \hspace{0.05cm}\cdot\hspace{0.05cm} \frac{B^2}{2} + \frac{k_2^2}{2k_3 +1} \hspace{0.05cm}\cdot\hspace{0.05cm} \frac{B^{2k_3+1}}{f_0^{2k_3}} - \hspace{0.15cm} \frac{2 k_2 \alpha_1}{k_3 + 2} \hspace{0.05cm}\cdot\hspace{0.05cm} $$
This equation contains the cable parameters  $\alpha_1$,  $\alpha_2$,  $k_2$  and  $k_3$  to be calculated as well as the bandwidth  $B$,  within which the approximation should be valid.
  • By setting the derivatives of  ${\rm E}\big[\varepsilon^2(f)\big]$  to  $\alpha_1$  and  $\alpha_2$  to zero, two equations are obtained for the best possible coefficients  $\alpha_1$  and  $\alpha_2$ that minimize the mean square error. These can be represented in the following form:
$$\frac{{\rm d}\,{\rm E}\big[\varepsilon^2(f)\big]}{{\rm d}\,{\alpha_1}} = 0 \hspace{0.2cm} \Rightarrow \hspace{0.2cm} \alpha_1 + C_1 \cdot \alpha_2 + C_2 = 0 \hspace{0.05cm} ,$$
$$\frac{{\rm d}\,{\rm E}\big[\varepsilon^2(f)\big]}{{\rm d}\,{\alpha_2}} = 0 \hspace{0.2cm} \Rightarrow \hspace{0.2cm} \alpha_1 + D_1 \cdot \alpha_2 + D_2 = 0 \hspace{0.05cm} . $$
  • From the equation  $C_1 \cdot \alpha_2 + C_2 = D_1 \cdot \alpha_2 + D_2$,  the coefficient  $\alpha_2$  can be calculated and then the coefficient  $\alpha_1$ can be calculated from each of the two equations above.


The graph shows the attenuation function per unit length for a copper twin wire with  $\text{0.5 mm}$  diameter, whose  $k$–parameters are:

$$k_1 = 4.4\, {\rm dB}/{\rm km} \hspace{0.05cm}, \hspace{0.2cm} k_2 = 10.8\, {\rm dB}/{\rm km}\hspace{0.05cm}, \hspace{0.2cm}k_3 = 0.60\hspace{0.05cm} \hspace{0.05cm}.$$
  • The red curve shows the function  $\alpha(f)$  calculated with this parameters.  For  $f = 30 \ \rm MHz$  the attenuation function per unit length is  $\alpha(f)= 87.5 \ \rm dB/km$.
  • The blue curve gives the approximation with the  $\alpha$–coefficients.  This is almost indistinguishable from the red curve within the drawing accuracy.



Notes:

  • You can use the  (German language)  interactive SWF applet  "Dämpfung von Kupferkabeln"  ⇒   "Attenuation of copper cables" .
  • [PW95]  denotes the following literature reference:   Pollakowski, P.; Wellhausen, H.-W.:  Eigenschaften symmetrischer Ortsanschlusskabel im Frequenzbereich bis 30 MHz.  Deutsche Telekom AG, Forschungs- und Technologiezentrum Darmstadt, 1995.


Questions

1

Calculate the parameters  $C_1$  and  $C_2$  of the equation  $\alpha_1 + C_1 \cdot \alpha_2 + C_2 = 0$  resulting from the derivative  ${\rm dE\big[\text{...}\big]/d}\alpha_1$. 
Which results are correct?

$C_1 = 6/5 \cdot B^{-0.5}$,
$C_1 = 5/4 \cdot B^{-0.5}$,
$C_1 = 4/3 \cdot B^{2}$,
$C_2 = -4/3 \cdot B^{-2$}$,
$C_2 = -5/2 \cdot k_2/(k_3 +1.5) \cdot B^{k_3 -1} \cdot f_0^{-k_3}$,
$C_2 = -3 \cdot k_2/(k_3 +2) \cdot B^{k_3 -1} \cdot f_0^{-k_3}$.

2

Calculate the parameters  $D_1$  and  $D_2$  of the equation  $ \alpha_1 + D_1 \cdot \alpha_2 + D_2 = 0$  resulting from the derivative  ${\rm dE\big[\text{...}\big]/d}\alpha_2$. 
Which results are correct?

$D_1 = 6/5 \cdot B^{-0.5}$,
$D_1 = 5/4 \cdot B^{-0.5}$,
$D_1 = 4/3 \cdot B^{2}$,
$D_2 = -4/3 \cdot B^{-2}$,
$D_2 = -5/2 \cdot k_2/(k_3 +1.5) \cdot B^{k_3 -1} \cdot f_0^{-k_3}$,
$D_2 = -3 \cdot k_2/(k_3 +2) \cdot B^{k_3 -1} \cdot f_0^{-k_3}$.

3

Calculate the coefficients  $\alpha_1$  and  $\alpha_2$  for the given  $k_2$  and  $k_3$.
Which of the following statements are true?

For  $k_3=1.0$,   $\alpha_1 = k_2/f_0$  and  $\alpha_2 = 0$.
For  $k_3=0.5$,   $\alpha_1 = 0$  and  $\alpha_2 = k_2/f_0^{0.5}$.

4

Determine the coefficients  $\alpha_1$  and  $\alpha_2$  numerically for the approximation bandwidth  $B = 30 \ \rm MHz$.

$\alpha_1 \ = \ $

$\ \rm dB/(km\ \cdot \ MHz)$
$\alpha_2 \ =\ $

$\ \rm dB/(km\ \cdot \ \sqrt{\rm MHz})$

5

Using the  $\alpha$–parameters,  calculate the attenuation function per unit length for the frequency  $f = 30\ \rm MHz$.

$\alpha_{\rm II}(f = 30\ \rm MHz) \ = \ $

$\ \rm dB/km$


Solution

(1)  Solutions 1 and 6  are correct:

  • The derivative of the given expected value with respect to  $\alpha_1$  gives:
$$\frac{{\rm d}\,{\rm E}[\varepsilon^2(f)]}{{\rm d}\,{\alpha_1}} = \frac{2}{3}\cdot B^3 \cdot \alpha_1 + \frac{4}{5}\cdot B^{2.5} \cdot \alpha_2 - \frac{2 k_2 }{k_3 + 2} \cdot \frac{B^{k_3+2}}{f_0^{k_3}}= 0 \hspace{0.05cm} .$$
  • By setting it to zero and dividing by  $2B^2/3$,  we obtain:
$$\alpha_1 + \frac{6}{5}\cdot B^{-0.5} \cdot \alpha_2 - \frac{3 k_2 }{k_3 +2} \cdot \frac{B^{k_3-1}}{f_0^{k_3}}= 0 \hspace{0.3cm} \Rightarrow \hspace{0.3cm} C_1 = \frac{6}{5}\cdot B^{-0.5} \hspace{0.05cm} , \hspace{0.5cm} C_2 = - \frac{3 k_2 }{k_3 +2} \cdot \frac{B^{k_3-1}}{f_0^{k_3}} \hspace{0.05cm} .$$


(2)  Solutions 2 and 5  are correct:

  • Using the same procedure as in subtask  (1),  we obtain:
$$\frac{{\rm d}\,{\rm E}[\varepsilon^2(f)]}{{\rm d}\,{\alpha_2}} = \frac{4}{5}\cdot B^{2.5} \cdot \alpha_1 + B^{2} \cdot \alpha_2 - \frac{2 k_2 }{k_3 + 1.5} \cdot \frac{B^{k_3+1.5}}{f_0^{k_3}}= 0$$
$$\Rightarrow \hspace{0.3cm} \alpha_1 + \frac{5}{4}\cdot B^{-0.5} \cdot \alpha_2 - \frac{2.5 \cdot k_2 }{k_3 +1.5} \cdot \frac{B^{k_3-1}}{f_0^{k_3}}= 0 \hspace{0.3cm} \Rightarrow \hspace{0.3cm}D_1 = \frac{5}{4}\cdot B^{-0.5} \hspace{0.05cm} , \hspace{0.3cm}D_2 = - \frac{2.5 \cdot k_2 }{k_3 +1.5} \cdot \frac{B^{k_3-1}}{f_0^{k_3}} \hspace{0.05cm} .$$


(3)  Both solutions  are correct:

  • From  $C_1 \cdot \alpha_2 + C_2 = D_1 \cdot \alpha_2 + D_2$  we obtain a linear equation for  $\alpha_2$.  With the result from  (2)  we can write:
$$\alpha_2 = \frac{D_2 - C_2}{C_1 - D_1} = \frac{- \frac{2.5 \cdot k_2 }{k_3 +1.5} \cdot \frac{B^{k_3-1}}{f_0^{k_3}} + \frac{3 k_2 }{k_3 +2} \cdot \frac{B^{k_3-1}}{f_0^{k_3}}}{{6}/{5}\cdot B^{-0.5} - {5}/{4}\cdot B^{-0.5}} = \frac{- {2.5 \cdot k_2 }\cdot(k_3 +2) + {3 k_2 }\cdot (k_3 +1.5) }{({6}/{5} - {5}/{4})(k_3 +1.5)(k_3 +2)} \cdot \frac{B^{k_3-0.5}}{f_0^{k_3}}$$
$$ \Rightarrow \hspace{0.3cm}\alpha_2 = 10 \cdot (B/f_0)^{k_3 -0.5}\cdot \frac{1-k_3}{(k_3 + 1.5)(k_3 + 2)}\cdot \frac {k_2}{\sqrt{f_0}} \hspace{0.05cm} .$$
  • For the parameter   $\alpha_1$  then holds:
$$\alpha_1 = - C_1 \cdot \alpha_2 - C_2 = -\frac{6}{5}\cdot B^{-0.5} \cdot 10 \cdot (B/f_0)^{k_3 -0.5}\cdot \frac{1-k_3}{(k_3 + 1.5)(k_3 + 2)}\cdot \frac {k_2}{\sqrt{f_0}} +\frac{3 k_2 }{k_3 +2} \cdot \frac{B^{k_3-1}}{f_0^{k_3}}$$
$$ \Rightarrow \hspace{0.3cm}\alpha_1 = (B/f_0)^{k_3 -1}\cdot \frac{-12 \cdot (1-k_3) + 3 \cdot (k_3 + 1.5)}{(k_3 + 1.5)(k_3 + 2)} \cdot \frac {k_2}{f_0} \hspace{0.3cm} \Rightarrow \hspace{0.3cm}\alpha_1 =15 \cdot (B/f_0)^{k_3 -1}\cdot \frac{k_3 -0.5}{(k_3 + 1.5)(k_3 + 2)}\cdot \frac {k_2}{f_0}\hspace{0.05cm} .$$
  • Regardless of the bandwidth,  we obtain for  $k_3 = 1$:
$$\alpha_1 = (B/f_0)^{k_3 -1}\cdot \frac{15 \cdot (k_3 -0.5)}{(k_3 + 1.5)(k_3 + 2)}\cdot \frac {k_2}{f_0} = \frac{15 \cdot 0.5}{2.5 \cdot 3}\cdot \frac {k_2}{f_0} \hspace{0.15cm}\underline{ = {k_2}/{f_0}}\hspace{0.05cm} ,$$
$$ \alpha_2 = (B/f_0)^{k_3 -0.5}\cdot \frac{10 \cdot (1-k_3)}{(k_3 + 1.5)(k_3 + 2)}\cdot \frac {k_2}{\sqrt{f_0}}\hspace{0.15cm}\underline{= 0} \hspace{0.05cm} .$$
  • In contrast,  for  $k_3 = 0.5$:
$$\alpha_1 = (B/f_0)^{k_3 -1}\cdot \frac{15 \cdot (k_3 -0.5)}{(k_3 + 1.5)(k_3 + 2)}\cdot \frac {k_2}{f_0} \hspace{0.15cm}\underline{= 0}\hspace{0.05cm} ,$$
$$ \alpha_2 = (B/f_0)^{k_3 -0.5}\cdot \frac{10 \cdot (1-k_3)}{(k_3 + 1.5)(k_3 + 2)}\cdot \frac {k_2}{\sqrt{f_0}}= \frac{10 \cdot 0.5}{2 \cdot 2.5}\cdot \frac {k_2}{\sqrt{f_0}} = \hspace{0.15cm}\underline{ {k_2}/{\sqrt{f_0}}} \hspace{0.05cm} .$$


(4)  For the two coefficients, with  $k_2 = 10.8 \ \rm dB/km$,  $k_3 = 0.6 \ \rm dB/km$  and  $B/f_0 = 30$:

$$\alpha_1 = (B/f_0)^{k_3 -1}\cdot \frac{15 \cdot (k_3 -0.5)}{(k_3 + 1.5)(k_3 + 2)}\cdot \frac {k_2}{f_0} = 30^{-0.4}\cdot \frac{15 \cdot 0.1}{2.1 \cdot 2.6}\cdot \frac {10.8 \, {\rm dB/km} }{1 \, {\rm MHz}} \hspace{0.15cm}\underline{ \approx 0.761\, {{\rm dB} }/{({\rm km \cdot MHz})}} \hspace{0.05cm} ,$$
$$ \alpha_2 = (B/f_0)^{k_3 -0.5}\cdot \frac{10 \cdot (1-k_3)}{(k_3 + 1.5)(k_3 + 2)}\cdot \frac {k_2}{\sqrt{f_0}}= \frac {k_2}{\sqrt{f_0}} = 30^{0.1}\cdot \frac{10 \cdot 0.4}{2.1 \cdot 2.6}\cdot \frac {10.8 \, {\rm dB/km} }{1 \, {\rm MHz^{0.5}}} \hspace{0.15cm}\underline{ \approx 11.1\, {{\rm dB} }/{({\rm km \cdot \sqrt{MHz}}})}\hspace{0.05cm} .$$


(5)  According to the given equation  $\alpha_{\rm II}(f)$  thus also holds:

$$\alpha_{\rm II}(f = 30 \, {\rm MHz}) = \alpha_0 + \alpha_1 \cdot f + \alpha_2 \cdot \sqrt {f} = \big [ \hspace{0.05cm} 4.4 + 0.761 \cdot 30 + 11.1 \cdot \sqrt {30}\hspace{0.05cm} \big ]\frac {\rm dB}{\rm km } \hspace{0.15cm}\underline{\approx 88.1\, {\rm dB}/{\rm km }} \hspace{0.05cm}.$$