Difference between revisions of "Aufgaben:Exercise 2.3: Cosine and Sine Components"

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[[File: P_ID278_Sig_A_2_3neu.png|right|frame|Spectra of cosine and sine components]]
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[[File: P_ID278_Sig_A_2_3neu.png|right|frame|Spectra of DC, cosine and sine components]]
  
 
Given is the amplitude spectrum  $X(f)$  of a signal  $x(t)$  according to the graph.
 
Given is the amplitude spectrum  $X(f)$  of a signal  $x(t)$  according to the graph.
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===Solution===
 
===Solution===
 
{{ML-Kopf}}
 
{{ML-Kopf}}
[[File:P_ID293__Sig_A_2_3_a.png|right|frame|Sum signal of cosine and sine components]]
 
 
'''(1)'''  The time signal has the following form:
 
'''(1)'''  The time signal has the following form:
 
   
 
   
 
:$$x(t)={\rm 3V}-{\rm 2V}\cdot \cos(\omega_{\rm 1} \cdot t)+{\rm 4V} \cdot \sin(2.5 \cdot \omega_{\rm 1} \cdot t).$$
 
:$$x(t)={\rm 3V}-{\rm 2V}\cdot \cos(\omega_{\rm 1} \cdot t)+{\rm 4V} \cdot \sin(2.5 \cdot \omega_{\rm 1} \cdot t).$$
  
*Here  $\omega_1 = 2\pi f_1$  denotes the angular frequency of the cosine component.  
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[[File:P_ID293__Sig_A_2_3_a.png|right|frame|Sum signal of DC, cosine and sine components]]
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*Here  $\omega_1 = 2\pi f_1$  denotes the circular frequency of the cosine component.  
 
*At time  $t = 0$  the signal has the value  $x(t=0)\hspace{0.15 cm}\underline{=1\,\rm V}$.
 
*At time  $t = 0$  the signal has the value  $x(t=0)\hspace{0.15 cm}\underline{=1\,\rm V}$.
  
  
 
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'''(2)'''  The basic frequency  $f_0$  is the greatest common divisor
'''(2)'''  The base frequency  $f_0$  is the least common divisor
 
 
*of $f_1 = 4{\,\rm kHz}$   
 
*of $f_1 = 4{\,\rm kHz}$   
 
*and $2.5 · f_1 = 10{\,\rm kHz}$.  
 
*and $2.5 · f_1 = 10{\,\rm kHz}$.  
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From this follows  $f_0 = 2{\,\rm kHz}$   ⇒    period duration $T_0 = 1/f_0 \hspace{0.1cm}\underline{= 0.5 {\,\rm ms}}$.
 
From this follows  $f_0 = 2{\,\rm kHz}$   ⇒    period duration $T_0 = 1/f_0 \hspace{0.1cm}\underline{= 0.5 {\,\rm ms}}$.
 
<br clear=all>
 
<br clear=all>
[[File:P_ID294__Sig_A_2_3_d_neu.png|right|300px|frame|Spectrum with discrete components]]
 
 
'''(3)'''&nbsp; The following applies to the output signal $y(t)$ of the differentiatior:
 
'''(3)'''&nbsp; The following applies to the output signal $y(t)$ of the differentiatior:
  
 
:$$y(t)=\frac{1}{\omega_1}\cdot\frac{ {\rm d}x(t)}{{\rm d}t}=\frac{ {\rm -2V}}{\omega_1}\cdot\omega_1 \cdot (-\sin(\omega_1 t))+\frac{\rm 4V}{\omega_1}\cdot 2.5\omega_1\cdot {\rm cos}(2.5\omega_1t).$$
 
:$$y(t)=\frac{1}{\omega_1}\cdot\frac{ {\rm d}x(t)}{{\rm d}t}=\frac{ {\rm -2V}}{\omega_1}\cdot\omega_1 \cdot (-\sin(\omega_1 t))+\frac{\rm 4V}{\omega_1}\cdot 2.5\omega_1\cdot {\rm cos}(2.5\omega_1t).$$
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[[File:P_ID294__Sig_A_2_3_d_neu.png|right|300px|frame|Spectrum with discrete components]]
 
   
 
   
 
*This leads to the solution:
 
*This leads to the solution:

Latest revision as of 17:33, 17 May 2021

Spectra of DC, cosine and sine components

Given is the amplitude spectrum  $X(f)$  of a signal  $x(t)$  according to the graph.

  • Let  $f_1 = 4\,\text{kHz}$ be the normalisation frequency.
  • Thus the frequencies of the signal components are  $0\,\text{kHz}$,  $4\,\text{kHz}$  and  $10\,\text{kHz}$.


This signal  $x(t)$  is at the input of a linear differentiator whose output can be represented with  $\omega_1 = 2\pi f_1$  as follows:

$$y(t)=\frac{1}{\omega_1}\cdot\frac{ {\rm d} x(t)}{{\rm d} t}.$$




Hint:




Questions

1

Give  $x(t)$  analytically.  What is the signal value at  $t = 0$?

$x(t=0)\ = \ $

  ${\rm V}$

2

What is the period duration of the signal  $x(t)$?

$T_0\ = \ $

  ${\rm ms}$

3

Calculate the output signal  $y(t)$  of the differentiator.  What is the signal value at time  $t = 0$?

$y(t=0)\ = \ $

  ${\rm V}$

4

Which of the following statements are true regarding the signal  $y(t)$  or its spectrum  $Y(f)$ ?

$y(t)$  has the same period duration as the signal  $x(t)$.
$Y(f)$  contains a Dirac function at the frequency  $f = 0$.
$Y(f)$  contains a Dirac function at  $+f_1$  with weight  $\rm{j} · 1\,{\rm V}$.
$Y(f)$  contains a Dirac function at  $–\hspace{-0.1cm}2.5 \cdot f_1$  with weight  $5\,{\rm V}$.


Solution

(1)  The time signal has the following form:

$$x(t)={\rm 3V}-{\rm 2V}\cdot \cos(\omega_{\rm 1} \cdot t)+{\rm 4V} \cdot \sin(2.5 \cdot \omega_{\rm 1} \cdot t).$$
Sum signal of DC, cosine and sine components
  • Here  $\omega_1 = 2\pi f_1$  denotes the circular frequency of the cosine component.
  • At time  $t = 0$  the signal has the value  $x(t=0)\hspace{0.15 cm}\underline{=1\,\rm V}$.


(2)  The basic frequency  $f_0$  is the greatest common divisor

  • of $f_1 = 4{\,\rm kHz}$
  • and $2.5 · f_1 = 10{\,\rm kHz}$.


From this follows  $f_0 = 2{\,\rm kHz}$   ⇒   period duration $T_0 = 1/f_0 \hspace{0.1cm}\underline{= 0.5 {\,\rm ms}}$.
(3)  The following applies to the output signal $y(t)$ of the differentiatior:

$$y(t)=\frac{1}{\omega_1}\cdot\frac{ {\rm d}x(t)}{{\rm d}t}=\frac{ {\rm -2V}}{\omega_1}\cdot\omega_1 \cdot (-\sin(\omega_1 t))+\frac{\rm 4V}{\omega_1}\cdot 2.5\omega_1\cdot {\rm cos}(2.5\omega_1t).$$
Spectrum with discrete components
  • This leads to the solution:
$$y(t)={\rm 2V}\cdot\sin(\omega_1 t)+{\rm 10V}\cdot\cos(2.5\omega_1 t).$$
  • For  $t = 0$  the value  $y(t=0)\hspace{0.15cm}\underline{=10\,\rm V}$ follows.
  • The spectrum  $Y(f)$  is shown on the right.


(4)  The solutions 1 and 4 are correct:

  • The period duration $T_0$ is not changed by the amplitude and phase of the two components.
  • This means, that  $T_0 = 0.5 {\,\rm ms}$  still applies.
  • The DC component disappears due to the differentiation.
  • The component  $f_1$  is sinusoidal. Thus  $X(f)$  has an (imaginary) Dirac at  $f = f_1$, but with a negative sign.
  • The cosine component with amplitude  ${10\,\rm V}$  results in the two Dirac functions at  $\pm 2.5 \cdot f_1$ , each with weight  ${5\,\rm V}$ .