Difference between revisions of "Aufgaben:Exercise 3.4: Trapezoidal Spectrum and Pulse"

Revision as of 15:19, 26 April 2021

Trapezspektrum & Trapezimpuls

We consider here a trapezoidal spectral function $X(f)$ according to the upper graph, which is completely described by the three parameters $X_0$, $f_1$ and $f_2$. For the two corner frequencies, $f_2 > 0$ and $0 \leq f_1 \leq f_2$ always apply.

Instead of the corner frequencies $f_1$ and $f_2$ , the following two descriptive variables can also be used:

the equivalent bandwidth:

$$\Delta f = f_1 + f_2,$$

the so-called rolloff factor (in the frequency domain):

$$r_{\hspace{-0.05cm}f} = \frac{ {f_2 - f_1 }}{ {f_2 + f_1 }}.$$

With these quantities, the associated time function (see middle graph) is:

$$x( t ) = X_0 \cdot \Delta f \cdot {\mathop{\rm si}\nolimits} ( { {\rm \pi} \cdot \Delta f \cdot t} ) \cdot {\mathop{\rm si}\nolimits} ( { {\rm \pi} \cdot r_{\hspace{-0.05cm}f} \cdot \Delta f\cdot t} ).$$

Here $\text{si}(x) = \text{sin}(x)/x$ is the so-called "splitting function".

In this example, the numerical values $X_0 = 10^{–3}\,\text{V/Hz}$, $f_1 = 1\,\text{kHz}$ and $f_2 = 3\,\text{kHz}$ are to be used. The time $T = 1/\Delta f$ is only used for normative purpose.

In the subtask (3) a trapezoidal signal $y(t)$ is considered, which is identical in shape to the spectrum $X(f)$.

The following can be used here as descriptive variables:

the pulse amplitude $y_0 = y(t = 0)$,
the equivalent pulse duration (defined via the rectangle–in–time with the same area):

$$\Delta t = t_1 + t_2,$$

the rolloff factor (in the time domain) with comparable definition as $r_f$:

$$r_{\hspace{-0.05cm}t} = \frac{ {t_2 - t_1 }}{ {t_2 + t_1 }}.$$

Let be $y_0 = 4\,\text{V}$, $\Delta t = 1\,\text{ms}$ and $r_t = 0.5$.

Hints:

This exercise belongs to the chapter Fourier Transform Theorems.
Use the Duality Theorem and the Similarity Theorem.

You can check your results using the two interactive applets

Pulses and Spectra,

Frequency & Impulse Responses.

Questions

$\Delta f \ = \ $

$\text{kHz}$

$r_{\hspace{-0.05cm}f} \hspace{0.35cm} = \ $

$x(t=0)\hspace{0.2cm} = \ $

$\text{V}$

$x(t=T)\ = \ $

$\text{V}$

$x(t=T/2)\ = \ $

$\text{V}$

$Y(f = 0)\hspace{0.2cm} = \ $

$\text{mV/Hz}$

$Y(f = 0.5 \,\text{kHz})\ = \ $

$\text{mV/Hz}$

$Y(f = 1.0 \,\text{kHz})\ = \ $

$\text{mV/Hz}$

$Y(f=0)\hspace{0.2cm}= \ $

$\text{mV/Hz}$

$Y(f=1.0 \,\text{kHz})\ = \ $

$\text{mV/Hz}$

Solution

(1) The equivalent bandwidth is by definition equal to the width of the equal-area rectangle:

$$\Delta f = f_1 + f_2 \hspace{0.15 cm}\underline{= 4\;{\rm{kHz}}}{\rm{.}}$$

For the rolloff factor holds:

$${ {r_f = }}\frac{ {f_2 - f_1 }}{ {f_2 + f_1 }}\hspace{0.15 cm}\underline{ = 0.5}.$$

(2) The maximum value of the pulse $x(t)$ occurs at time $t = 0$ :

$$x_0 = x(t = 0) = X_0 \cdot \Delta f \hspace{0.15 cm}\underline{= 4\, \text{V}}.$$

At time $t = T = 1/\Delta f$ applies due to $\text{si}(\pi) = 0$:

$$x( {t = T} ) = x_0 \cdot {\mathop{\rm si}\nolimits} ( {\rm{\pi }} ) \cdot {\mathop{\rm si}\nolimits} ( { { {\rm{\pi }}}/{2}} )\hspace{0.15 cm}\underline{ = 0}.$$

Also at all multiples of $T$ $x(t)$ exhibits zero crossings. At time $t = T/2$ holds:

$$x( {t = T/2} ) = x_0 \cdot {\mathop{\rm si}\nolimits} ( { { {\rm{\pi }}}/{2}} ) \cdot {\mathop{\rm si}\nolimits}( { { {\rm{\pi }}}/{4}} ) = x_0 \cdot \frac{ { 1 \cdot \sqrt 2 /2}}{ { {\rm{\pi /}}2 \cdot {\rm{\pi /4}}}} = x_0 \cdot \frac{ {4 \cdot \sqrt 2 }}{ { {\rm{\pi }}^{\rm{2}} }} \hspace{0.15 cm}\underline{= 2.293\;{\rm{V}}}{\rm{.}}$$

(3) The time function associated with the trapezoidal spectrum $X(f)$ is according to the specification:

$$x( t ) = X_0 \cdot \Delta f \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot \Delta f \cdot t} ) \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot r_f \cdot \Delta f \cdot t} ).$$

Since both $X(f)$ and $x(t)$ are real and, moreover, $y(t)$ is of the same form as $X(f)$ , we obtain, taking into account all equivalences for the spectral function of the trapezoidal pulse:

$$Y( f ) = y_0 \cdot \Delta t \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot \Delta t \cdot f} ) \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot r_t \cdot \Delta t \cdot f} ).$$

In particular, holds:

$$Y( {f = 0} ) = y_0 \cdot \Delta t \hspace{0.15 cm}\underline{= 4 \;{\rm{mV/Hz}}}{\rm{,}}$$

$$Y( {f = 0.5\;{\rm{kHz}}} ) = y_0 \cdot \Delta t \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{2}} ) \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{4}} ) \hspace{0.15 cm}\underline{= 2.293 \;{\rm{mV/Hz}}}{\rm{,}}$$

$$Y( {f = 1\;{\rm{kHz}}} ) = y_0 \cdot \Delta t \cdot {\mathop{\rm si}\nolimits} ( {\rm{\pi }} ) \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{2}} )\hspace{0.15 cm}\underline{ = 0}\;{\rm{.}}$$

(4) The spectral value at frequency $f = 0$ is not changed:

$$Y_0 = y_0 \cdot \Delta t \hspace{0.15 cm}\underline{= 4 \,\rm{mV/Hz}}.$$

But since the time function is now only half as wide, the spectrum widens by a factor of $2$:

$$Y( {f = 1\;{\rm{kHz}}} ) = Y_0 \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{2}} ) \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{4}} ) \hspace{0.15 cm}\underline{= 2.293\,{\rm{mV/Hz}}}{\rm{.}}$$

In subtask (3) this spectral value occurred at the frequency $f = 0.5\,\rm{kHz}$ .

@@ Line 11: / Line 11: @@
 :$$\Delta f = f_1  + f_2,$$
 *the so-called&nbsp; [[Linear_and_Time_Invariant_Systems/Einige_systemtheoretische_Tiefpassfunktionen#Trapez.E2.80.93Tiefpass|rolloff factor]]&nbsp; (in the frequency domain):
-:$$r_f = \frac{ {f_2  - f_1 }}{ {f_2  + f_1 }}.$$
+:$$r_{\hspace{-0.05cm}f} = \frac{ {f_2  - f_1 }}{ {f_2  + f_1 }}.$$
 With these quantities, the associated time function (see middle graph) is:
-:$$x( t ) = X_0  \cdot \Delta f \cdot {\mathop{\rm si}\nolimits} ( { {\rm \pi}   \cdot \Delta f \cdot t} ) \cdot {\mathop{\rm si}\nolimits} ( { {\rm \pi}  \cdot  r_f \cdot \Delta f\cdot t} ).$$
+:$$x( t ) = X_0  \cdot \Delta f \cdot {\mathop{\rm si}\nolimits} ( { {\rm \pi}   \cdot \Delta f \cdot t} ) \cdot {\mathop{\rm si}\nolimits} ( { {\rm \pi}  \cdot  r_{\hspace{-0.05cm}f} \cdot \Delta f\cdot t} ).$$
 Here&nbsp; $\text{si}(x) = \text{sin}(x)/x$&nbsp; is the so-called&nbsp; "splitting function".
@@ Line 31: / Line 31: @@
 *the rolloff factor (in the time domain) with comparable definition as&nbsp; $r_f$:
-:$$r_t = \frac{ {t_2  - t_1 }}{ {t_2  + t_1 }}.$$
+:$$r_{\hspace{-0.05cm}t} = \frac{ {t_2  - t_1 }}{ {t_2  + t_1 }}.$$
 Let be&nbsp; $y_0 = 4\,\text{V}$,&nbsp; $\Delta t = 1\,\text{ms}$&nbsp; and&nbsp; $r_t = 0.5$.
@@ Line 59: / Line 59: @@
 |type="{}"}
 $\Delta f \ = \ $ { 4 3% } &nbsp;$\text{kHz}$
-$r_f \hspace{0.35cm} = \ $ { 0.5 3% }
+$r_{\hspace{-0.05cm}f} \hspace{0.35cm} = \ $ { 0.5 3% }
 {What are the signal values of&nbsp; $x(t)$&nbsp; at&nbsp; $t = 0$,&nbsp; $t = T$&nbsp; and&nbsp; $t = T/2$?