Difference between revisions of "Aufgaben:Exercise 2.4Z: Low-pass Influence with Synchronous Demodulation"

Revision as of 18:42, 1 December 2021

Signals for DSB–AM and synchronous demodulation

Let us consider the same communication system as in Exercise 2.4. But this time, we will assume perfect frequency and phase synchronization for the synchronous demodulator $\rm (SD)$ .

The source signal $q(t)$ , the transmission signal $s(t)$ and the signal in the synchronous demodulator before the low-pass filter $b(t)$ are given as follows:

$q(t) = q_1(t) + q_2(t)\hspace{0.2cm}{\rm mit }$

$q_1(t) = 2\,{\rm V} \cdot \cos(2 \pi \cdot 2\,{\rm kHz} \cdot t)\hspace{0.05cm},$

$q_2(t) = 1\,{\rm V} \cdot \sin(2 \pi \cdot 5\,{\rm kHz} \cdot t)\hspace{0.05cm},$

$s(t) = q(t) \cdot \sin(2 \pi \cdot 50\,{\rm kHz} \cdot t)\hspace{0.05cm},$

$b(t) = s(t) \cdot 2 \cdot \sin(2 \pi \cdot 50\,{\rm kHz} \cdot t)\hspace{0.05cm}.$

The graph shows the source signal $q(t)$ at the top and the transmission signal $s(t)$ in the middle.

The sink signal $v(t)$ is shown at the bottom (violet waveform).

This obviously does not match the source signal (blue dashed curve).
The reason for this undesired result $v(t) ≠ q(t)$ could be a missing or wrongly dimensioned low-pass filter, for example.

In the subtasks (3) and (4) , a so-called trapezoidal low-pass filter is used, whose frequency response is as follows:

$H_{\rm E}(f) = \left\{ \begin{array}{l} \hspace{0.25cm}1 \\ \frac{f_2 -|f|}{f_2 -f_1} \\ \hspace{0.25cm} 0 \\ \end{array} \right.\quad \quad \begin{array}{*{10}c} {\rm{f\ddot{u}r}} \\ {\rm{f\ddot{u}r}} \\ {\rm{f\ddot{u}r}} \\ \end{array}\begin{array}{*{20}c} {\hspace{0.94cm}\left| \hspace{0.005cm} f\hspace{0.05cm} \right| < f_1,} \\ {f_1 \le \left| \hspace{0.005cm}f\hspace{0.05cm} \right| \le f_2,} \\ {\hspace{0.94cm}\left|\hspace{0.005cm} f \hspace{0.05cm} \right| > f_2.} \\ \end{array}$

Hints:

This exercise belongs to the chapter Synchronous Demodulation.
Particular reference is made to the page Block diagram and time domain representation.
In contrast to Exercise 2.4 , $f_1$ and $f_2$ do not describe signal frequencies, but instead relate to the low-pass filter.

Questions

	The upper cutoff frequency is too high.
	The upper cutoff frequency is too low.
	The lower cutoff frequency is not zero.

$f_{\text{1, min}} \ = \$

$\ \text{kHz}$

$f_{\text{2, max}} \ = \$

$\ \text{kHz}$

	$f_{\rm G} = 4 \ \rm kHz$ ,
	$f_{\rm G} = 6 \ \rm kHz$ ,
	$f_{\rm G} = 10 \ \rm kHz$ .

Solution

(1) The first statement is correct:

The sink signal shown $v(t)$ exactly matches the signal $b(t)$ given in the equation and thus also contains components around twice the carrier frequency.
The filter $H_{\rm E}(f)$ is either missing completely or its upper cutoff frequency $f_2$ is too high.
Regarding the lower cutoff frequency $f_1$ , the only statement possible is that it is smaller than the smallest frequency $\text{(2 kHz)}$ occurring in the signal $b(t)$ .
Whether or not a DC component is removed by the filter is unclear, since such a component is not present in the signal $b(t)$ .

(2) Answers 1 and 3 are correct:

A prerequisite for distortion-free demodulation is that all spectral components up to a certain frequency $f_1$ are transmitted equally and as unattenuated as possible, and all components at frequencies $f > f_2$ are completely suppressed.
The rectangular and trapezoidal low-pass filters satisfy this condition.

(3) It must be ensured that the $\text{5 kHz}$ component still lies in the passband:

$f_{\text{1, min}}\hspace{0.15cm}\underline{ =5 \ \rm kHz}.$

(4) All spectral components in the vicinity of twice the carrier frequency – more precisely between $\text{95 kHz}$ and $\text{ 105 kHz}$ – must be completely suppressed:

$f_{\text{2, max}}\hspace{0.15cm}\underline{ =95 \ \rm kHz}.$

Otherwise nonlinear distortion would arise.

(5) Answer 2 is correct:

The cutoff frequency} $f_{\rm G} = \text{ 4 kHz}$ would result in (linear) distortions, since the $\text{5 kHz}$ component would be cut off.
The lowpass with cutoff frequency $f_{\rm G} = \text{6 kHz}$ is preferable, since with $f_{\rm G} = \text{10 kHz}$ , more noise components would be superimposed on the useful signal $v(t)$ .

@@ Line 76: / Line 76: @@
 {{ML-Kopf}}
 '''(1)'''&nbsp; <u>The first statement</u> is correct:
-*The sink signal shown&nbsp;  $v(t)$ &nbsp; exactly matches the signal &nbsp;  $b(t)$ &nbsp; given in the equation and thus also contains components around twice the carrier frequency. stimmt exakt mit dem als Gleichung gegebenen Signal überein und enthält somit auch Anteile um die doppelte Trägerfrequenz.
+*The sink signal shown&nbsp;  $v(t)$ &nbsp; exactly matches the signal &nbsp;  $b(t)$ &nbsp; given in the equation and thus also contains components around twice the carrier frequency.
 *The filter &nbsp;  $H_{\rm E}(f)$ &nbsp; is either missing completely or its upper cutoff frequency&nbsp;  $f_2$ &nbsp; is too high.
-*Bezüglich der unteren Grenzfrequenz&nbsp;  $f_1$ &nbsp; ist nur die Aussage möglich, dass diese kleiner ist als die kleinste im Signal&nbsp; $b(t)$&nbsp; vorkommende Frequenz&nbsp; $\text{(2 kHz)}$.
+*Regarding the lower cutoff frequency &nbsp;  $f_1$ &nbsp;, the only statement possible is that it is smaller than the smallest frequency &nbsp; $\text{(2 kHz)}$ occurring in the signal &nbsp; $b(t)$&nbsp;.
-*Ob ein Gleichanteil durch das Filter entfernt wird oder nicht, ist unklar, da ein solcher im Signal&nbsp;  $b(t)$ &nbsp; nicht enthalten ist.
+*Whether or not a DC component is removed by the filter is unclear, since such a component is not present in the signal &nbsp;  $b(t)$ &nbsp;.
-'''(2)'''&nbsp; Richtig sind die <u>Aussagen 1 und 3</u>:
+'''(2)'''&nbsp; <u>Answers 1 and 3</u> are correct:
-*Voraussetzung für eine verzerrungsfreie Demodulation ist, dass bis zu einer bestimmten Frequenz&nbsp;  $f_1$ &nbsp; alle Spektralanteile gleich und möglichst ungedämpft übertragen werden und alle Anteile bei Frequenzen&nbsp;  $f > f_2$ &nbsp; vollständig unterdrückt werden.
+*A prerequisite for distortion-free demodulation is that all spectral components up to a certain frequency &nbsp;  $f_1$ &nbsp; are transmitted equally and as unattenuated as possible, and all components at frequencies &nbsp;  $f > f_2$ &nbsp; are completely suppressed.
-*Der Rechteck– und der Trapeztiefpass erfüllen diese Bedingung.
+*The rectangular and trapezoidal low-pass filters satisfy this condition.
-'''(3)'''&nbsp; Sichergestellt werden muss, dass der&nbsp;  $\text{5 kHz}$ –Anteil noch im Durchlassbereich liegt:
+'''(3)'''&nbsp; It must be ensured that the &nbsp;  $\text{5 kHz}$  component still lies in the passband:
 : $f_{\text{1, min}}\hspace{0.15cm}\underline{ =5 \ \rm kHz}.$
-'''(4)'''&nbsp; Alle Spektralanteile in der Umgebung der doppelten Trägerfrequenz – genauer gesagt zwischen&nbsp;  $\text{95 kHz}$ &nbsp; und&nbsp;  $\text{ 105 kHz}$ &nbsp; – müssen vollständig unterdrückt werden:
+'''(4)'''&nbsp; All spectral components in the vicinity of twice the carrier frequency – more precisely between &nbsp;  $\text{95 kHz}$ &nbsp; and&nbsp;  $\text{ 105 kHz}$ &nbsp; – must be completely suppressed:
 : $f_{\text{2, max}}\hspace{0.15cm}\underline{ =95 \ \rm kHz}.$
-*Ansonsten würde es zu nichtlinearen Verzerrungen kommen.
+*Otherwise nonlinear distortion would arise.
-'''(5)'''&nbsp; Richtig ist der <u>Lösungsvorschlag 2</u>:
+'''(5)'''&nbsp; <u>Answer 2</u> is correct:
-*Die Grenzfrequenz}&nbsp;  $f_{\rm G} = \text{ 4 kHz}$ &nbsp; hätte (lineare) Verzerrungen zur Folge, da dann der&nbsp;  $\text{5 kHz}$ –Anteil abgeschnitten würde.
+*The cutoff frequency}&nbsp;  $f_{\rm G} = \text{ 4 kHz}$ &nbsp; would result in (linear) distortions, since the &nbsp;  $\text{5 kHz}$  component would be cut off.
-*Zu bevorzugen ist der Tiefpass mit  der Grenzfrequenz&nbsp;  $f_{\rm G} = \text{6 kHz}$ , da mit&nbsp;  $f_{\rm G} = \text{10 kHz}$ &nbsp; dem Nutzsignal  $v(t)$  mehr Rauschanteile überlagert wären.
+*The lowpass with cutoff frequency &nbsp;  $f_{\rm G} = \text{6 kHz}$  is preferable, since with &nbsp;  $f_{\rm G} = \text{10 kHz}$ &nbsp;, more noise components would be superimposed on the useful signal  $v(t)$ .
 {{ML-Fuß}}