Difference between revisions of "Aufgaben:Exercise 3.2Z: Sinc-Squared Spectrum with Diracs"

Revision as of 13:39, 23 March 2021

$\rm si$-Quadrat-Spektrum mit Diracs

The sketched spectrum ${X(f)}$ of a time signal ${x(t)}$ is composed of

a continuous component $X_1(f)$,

plus three dirac-shaped spectral lines.

The continuous component with $f_0 = 200\, \text{kHz}$ and $X_0 = 10^{–5} \text{ V/Hz}$is as follows:

$$X_1( f ) = X_0 \cdot {\mathop{\rm si}\nolimits} ^2 ( {\pi {f}/{f_0}} ),\quad {\rm where is}\quad {\mathop{\rm si}\nolimits} (x) = {\sin (x)}/{x}.$$

The spectral line at $f = 0$ has the weight $–\hspace{-0.08cm}1\,\text{V}$. In addition, there are two lines at frequencies $\pm f_0$, both with weight $0.5\,\text{V}$.

Hints:

This exercise belongs to the chapter Fourier Transform and Its Inverse.
Further information on this topic can be found in the learning video Kontinuierliche und diskrete Spektren.

It can be assumed as known that a triangular pulse $y(t)$ symmetrical about $t = 0$ with the amplitude ${A}$ and the absolute duration $2T$ $($i.e.: he signal values are unequal to $ 0 $ only between $–T$ and $+T$ ) has the following spectral function:

$$Y( f ) = A \cdot T \cdot {\rm si}^2 ( \pi f T ).$$

Question

$A\ = \ $

$\text{V}$

$T\ = \ $

$\text{$µ$s}$

$B\ = \ $

$\text{V}$

$C\ = \ $

$\text{V}$

$x_\text{max}\ = \ $

$\text{V}$

$x_\text{min}\hspace{0.2cm} = \ $

$\text{V}$

Solution

Fläche des Dreieckimpulses

(1) The one-sided duration of the symmetrical triangular pulse is $T = 1/f_0\hspace{0.15 cm}\underline{ = 5 \,{\rm µ s}}$.

The spectral value $X_0 = X_1(f = 0)$ indicates the pulse area of $x_1(t)$ an.
This is equal to ${A} \cdot {T}$. From this follows:

$$A = \frac{X_0 }{T} = \frac{ 10^{-5}\rm V/Hz }{5 \cdot 10^{-6}{\rm s}}\hspace{0.15 cm}\underline{= 2\;{\rm V}}.$$

(2) The DC component is given by the Dirac weight at $f = 0$ . One obtains ${B} \hspace{0.15 cm}\underline{= -1 \,\text{V}}$.

(3) The two spectral lines at $\pm f_0$ together give a cosine signal with amplitude ${C} \hspace{0.15 cm}\underline{= 1 \text{V}}$.

(4) The maximum value occurs at time ${t} = 0$ (here the triangular pulse and cosine signal are maximum):

$$x_{\text{max}} = A + B + C \hspace{0.15 cm}\underline{= +2 \text{V}}.$$

The minimum values of ${x(t)}$ result when the triangular pulse has decayed and the cosine function delivers the value $–\hspace{-0.08 cm}1 \,\text{V}$ :

$$x_\text{min} = {B} - {C}\hspace{0.15 cm}\underline{ = -2\, \text{V}}.$$

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