Difference between revisions of "Aufgaben:Exercise 4.4Z: Pointer Diagram for SSB-AM"

Three different analytical signals

(1)  The analytical signal is generally:

$$s_{+}(t) = {\rm 1 \hspace{0.05cm} V} \cdot {\rm e}^{{\rm j}\hspace{0.05cm} \omega_{\rm 50}\hspace{0.05cm} t } - {\rm j}\cdot{\rm 1 \hspace{0.05cm} V} \cdot {\rm e}^{{\rm j}\hspace{0.05cm} \omega_{\rm 60} \hspace{0.05cm} t }.$$

At time  $t = 0$  the complex exponential functions each take the value  $1$  and one obtains (see left graph):

• $\text{Re}[s_+(t = 0)] \; \underline{= +1\ \text{V}}$,
• $\text{Im}[s_+(t = 0)]\; \underline{ = \,-\hspace{-0.08cm}1\ \text{V}}$.

(2)  For the analytical signal it can also be written:

$$s_{+}(t) = {\rm 1 \hspace{0.05cm} V} \cdot \cos({ \omega_{\rm 50}\hspace{0.05cm} t }) + {\rm j} \cdot{\rm 1 \hspace{0.05cm} V} \cdot \sin({ \omega_{\rm 50}\hspace{0.05cm} t }) - {\rm j} \cdot {\rm 1 \hspace{0.05cm} V} \cdot \cos({ \omega_{\rm 60}\hspace{0.05cm} t }) + {\rm 1 \hspace{0.05cm} V} \cdot \sin({ \omega_{\rm 60}\hspace{0.05cm} t }).$$

The real part of this describes the actual, physical signal:

$$s(t) = {\rm 1 \hspace{0.05cm} V} \cdot \cos({ \omega_{\rm 50}\hspace{0.05cm} t }) + {\rm 1 \hspace{0.05cm} V} \cdot \sin({ \omega_{\rm 60}\hspace{0.05cm} t }).$$

Correct is the proposed solution 3:

• Considering the  $50 \ \text{kHz-Cosinussignals}$  cosine signal alone, the first zero crossing would occur at  $t_1 = T_0/4$  , i.e. after  $5 \ {\rm µ s}$, where  $T_0 = 1/f_{50} = 20 \ {\rm µ s}$  denotes the period duration of this signal.
• The sinusoidal signal with the frequency  $60 \ \text{kHz}$  is positive during the entire first half-wave  $(0 \, \text{...} \, 8.33\ {\rm µ s})$ .
• Due to the plus sign, the first zero crossing of  $s(t) \ \Rightarrow \ t_1 > 5\ {\rm µ s}$ is delayed.
• The middle graph shows the analytical signal at time  $t = T_0/4$, when the red carrier would have its zero crossing.
• The zero crossing of the violet cumulative pointer only occurs when it points in the direction of the imaginary axis. Then  $s(t_1) = \text{Re}[s_+(t_1)] = 0$.

(3)  The maximum value of  $|s_+(t)|$  is reached when both pointers point in the same direction. The amount of the sum pointer is then equal to the sum of the two individual pointers; i.e.  $\underline {2\ \text{ V}}$.

This case is reached for the first time when the faster pointer with angular velocity  $\omega_{60}$  has caught up its "lag" of  $90^{\circ} \; (\pi /2)$  with the slower pointer  ($\omega_{50}$) :

$$\omega_{\rm 60} \cdot t_2 - \omega_{\rm 50}\cdot t_2 = \frac{\pi}{2} \hspace{0.3cm} \Rightarrow\hspace{0.3cm}t_2 = \frac{\pi/2}{2\pi (f_{\rm 60}- f_{\rm 50})} = \frac{1}{4 \cdot(f_{\rm 60}- f_{\rm 50})}\hspace{0.15 cm}\underline{= {\rm 25 \hspace{0.05cm} {\rm µ s}}}.$$

• At this point, the two pointers have made  $5/4$  bzw.  $6/4$  revolutions respectively and both point in the direction of the imaginary axis (see right graph).
• The actual, physical signal  $s(t)$ – i.e. the real part of  $s_+(t)$ – is therefore zero at this moment.

(4)  The condition for  $|s_+(t_3)| = 0$  is that there is a phase offset of  $180^\circ$  between the two equally long pointers so that they cancel each other out.

• This further means that the faster pointer has rotated  $3\pi /2$  further than the  $50 \ \text{kHz-component}$.

• Analogous to the sample solution of sub-task  (3) , the following therefore applies:

$$t_3 = \frac{3\pi/2}{2\pi (f_{\rm 60}- f_{\rm 50})} \hspace{0.15 cm}\underline{= {\rm 75 \hspace{0.05cm} {\rm µ s}}}.$$