Aufgaben:Exercise 4.2: Rectangular Spectra: Difference between revisions
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This task also refers to the band-pass signal | This task also refers to the band-pass signal | ||
:$$d(t) = 10 \hspace{0.05cm}{\rm V} \cdot {\rm si} ( 5 \pi f_2 \hspace{0.05cm}t) | :$$d(t) = 10 \hspace{0.05cm}{\rm V} \cdot {\rm si} ( 5 \pi f_2 \hspace{0.05cm}t)- 6 \hspace{0.05cm}{\rm V} \cdot {\rm si} ( 3 \pi f_2\hspace{0.05cm} t)$$ | ||
- 6 \hspace{0.05cm}{\rm V} \cdot {\rm si} ( 3 \pi f_2\hspace{0.05cm} t)$$ | |||
whose spectrum was determined in [[Aufgaben:Exercise_4.1Z:_High-Pass_System|Exercise 4.1Z]] . Let $f_2 = 2 \ \rm kHz.$ | whose spectrum was determined in [[Aufgaben:Exercise_4.1Z:_High-Pass_System|Exercise 4.1Z]] . Let $f_2 = 2 \ \rm kHz.$ | ||
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*Consider the following trigonometric relationship in the solution: | *Consider the following trigonometric relationship in the solution: | ||
:$$\sin (\alpha) \cdot \cos (\beta) = {1}/{2} \cdot \big[ \sin | :$$\sin (\alpha) \cdot \cos (\beta) = {1}/{2} \cdot \big[ \sin(\alpha + \beta)+ \sin (\alpha - \beta)\big].$$ | ||
(\alpha + \beta)+ \sin (\alpha - \beta)\big].$$ | |||
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'''(2)''' The band-pass spectrum can be represented with $f_{\rm T} = 4\, \text{kHz}$ as follows: | '''(2)''' The band-pass spectrum can be represented with $f_{\rm T} = 4\, \text{kHz}$ as follows: | ||
:$$ W(f) = U(f- f_{\rm T}) + U(f+ f_{\rm T}) = U(f)\star \left[ | :$$ W(f) = U(f- f_{\rm T}) + U(f+ f_{\rm T}) = U(f)\star \left[\delta(f- f_{\rm T})+ \delta(f+ f_{\rm T})\right].$$ | ||
\delta(f- f_{\rm T})+ \delta(f+ f_{\rm T})\right].$$ | |||
According to the [[Signal_Representation/ | According to the [[Signal_Representation/The_Fourier_Transform_Theorems#Shifting_Theorem|Shifting Theorem]], the following then applies to the associated time signal: | ||
:$$w(t) = 2 \cdot u(t) \cdot {\cos} ( 2 \pi f_{\rm T} t) = 2 u_0 | :$$w(t) = 2 \cdot u(t) \cdot {\cos} ( 2 \pi f_{\rm T} t) = 2 u_0\cdot {\rm si} ( \pi {t}/{T_{\rm u}})\cdot {\cos} ( 2 \pi f_{\rm T} t). $$ | ||
The graph shows | The graph shows | ||
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The time $t=62.5 \,{\rm µ} \text{s}$ corresponds exactly to a quarter of the period of the signal $c(t)$: | The time $t=62.5 \,{\rm µ} \text{s}$ corresponds exactly to a quarter of the period of the signal $c(t)$: | ||
:$$ w(t = 62.5 \hspace{0.05cm}{\rm µ s}) = 2 u_0 \cdot {\rm si} ( \pi \cdot \frac{62.5 \hspace{0.05cm}{\rm µ s}} | :$$ w(t = 62.5 \hspace{0.05cm}{\rm µ s}) = 2 u_0 \cdot {\rm si} ( \pi \cdot \frac{62.5 \hspace{0.05cm}{\rm µ s}}{500 \hspace{0.05cm}{\rm µ s}})\cdot {\cos} ( 2 \pi \cdot 4\hspace{0.05cm}{\rm kHz}\cdot62.5 \hspace{0.05cm}{\rm µ s}) $$ | ||
:$$ \Rightarrow \hspace{0.3cm}w(t =4\hspace{0.05cm}{\rm V}\cdot{\rm si} ( {\pi}/{8}) \cdot \cos ( {\pi}/{4})\hspace{0.15 cm}\underline{ = 0}.$$ | |||
:$$ \Rightarrow \hspace{0.3cm}w(t = | |||
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*This proof is somewhat more complex in the time domain. With $f_2 = 2 \,\text{kHz}$ can be written for the signal considered here: | *This proof is somewhat more complex in the time domain. With $f_2 = 2 \,\text{kHz}$ can be written for the signal considered here: | ||
:$$w(t ) = 4\hspace{0.05cm}{\rm V} | :$$w(t ) = 4\hspace{0.05cm}{\rm V}\cdot {\rm si} ( \pi f_2 t)\cdot {\cos} ( 4 \pi f_2 t) =({4\hspace{0.05cm}{\rm V}})/({\pi f_2 t})\cdot \sin (\pi f_2 t) \cdot \cos ( 4 \pi f_2 t) .$$ | ||
({4\hspace{0.05cm}{\rm V}})/({\pi f_2 t})\cdot \sin (\pi f_2 t) \cdot \cos ( 4 \pi f_2 t) .$$ | |||
*Because of the trigonometric relationship | *Because of the trigonometric relationship | ||
:$$\sin (\alpha) \cdot \cos (\beta) = {1}/{2} \cdot \big[ \sin | :$$\sin (\alpha) \cdot \cos (\beta) = {1}/{2} \cdot \big[ \sin(\alpha + \beta)+ \sin (\alpha - \beta)\big]$$ | ||
(\alpha + \beta)+ \sin (\alpha - \beta)\big]$$ | |||
:the above equation can be transformed: | :the above equation can be transformed: | ||
:$$w(t ) = | :$$w(t ) =\frac{2\hspace{0.05cm}{\rm V}}{\pi f_2 t}\cdot \big [\sin (5\pi f_2 t) + \sin (-3\pi f_2 t)\big ]= 10\hspace{0.05cm}{\rm V} \cdot \frac{\sin (5\pi f_2 t)}{5\pi f_2 t}-6\hspace{0.05cm}{\rm V} \cdot \frac{\sin (3\pi f_2 t)}{3\pi f_2 t}.$$ | ||
*This shows that both signals are actually identical ⇒ Proposed solution 1: | *This shows that both signals are actually identical ⇒ Proposed solution 1: | ||
:$$w(t) = 10 \hspace{0.05cm}{\rm V} \cdot {\rm si} ( 5 \pi f_2 t) | :$$w(t) = 10 \hspace{0.05cm}{\rm V} \cdot {\rm si} ( 5 \pi f_2 t)- 6 \hspace{0.05cm}{\rm V} \cdot {\rm si} ( 3 \pi f_2 t) = d(t).$$ | ||
- 6 \hspace{0.05cm}{\rm V} \cdot {\rm si} ( 3 \pi f_2 t) = d(t).$$ | |||
{{ML-Fuß}} | {{ML-Fuß}} | ||
__NOEDITSECTION__ | __NOEDITSECTION__ | ||
[[Category:Signal Representation: Exercises|^4.1 Differences between Low-Pass and Band-Pass^]] | [[Category:Signal Representation: Exercises|^4.1 Differences between Low-Pass and Band-Pass^]] | ||
[[de:Aufgaben:Aufgabe 4.2: Rechteckförmige Spektren]] | |||
Latest revision as of 17:55, 16 March 2026

We consider two signals $u(t)$ and $w(t)$ with rectangular spectra $U(f)$ and $W(f)$ respectively.
- It is obvious that
- $$u(t) = u_0 \cdot {\rm si} ( \pi \cdot {t}/{T_{ u}})$$
- is a low-pass signal whose two parameters $u_0$ and $T_u$ are to be determined in subtask (1) .
- In contrast, the spectrum $W(f)$ shows that $w(t)$ describes a band-pass signal.
This task also refers to the band-pass signal
- $$d(t) = 10 \hspace{0.05cm}{\rm V} \cdot {\rm si} ( 5 \pi f_2 \hspace{0.05cm}t)- 6 \hspace{0.05cm}{\rm V} \cdot {\rm si} ( 3 \pi f_2\hspace{0.05cm} t)$$
whose spectrum was determined in Exercise 4.1Z . Let $f_2 = 2 \ \rm kHz.$
Hints:
- This exercise belongs to the chapter Differences and Similarities of Low-Pass and Band-Pass Signals.
- In this task, the function $\rm si(x) = \rm sin(x)/x = \rm sinc(x/π)$ is used.
- Consider the following trigonometric relationship in the solution:
- $$\sin (\alpha) \cdot \cos (\beta) = {1}/{2} \cdot \big[ \sin(\alpha + \beta)+ \sin (\alpha - \beta)\big].$$
Questions
Solution
(1) The time $T_u$ ⇒ first zero of the low-pass signal $u(t)$ – is equal to the reciprocal of the width of the rectangular spectrum, i.e. $1/(2\, \text{kHz} ) \hspace{0.15 cm}\underline{= 0.5 \, \text{ms}}$.
- The pulse amplitude is equal to the rectangular area as shown in the sample solution for Exercise 4.1 . From this follows $u_0\hspace{0.15 cm}\underline{= 2 \, \text{V}}$.

(2) The band-pass spectrum can be represented with $f_{\rm T} = 4\, \text{kHz}$ as follows:
- $$ W(f) = U(f- f_{\rm T}) + U(f+ f_{\rm T}) = U(f)\star \left[\delta(f- f_{\rm T})+ \delta(f+ f_{\rm T})\right].$$
According to the Shifting Theorem, the following then applies to the associated time signal:
- $$w(t) = 2 \cdot u(t) \cdot {\cos} ( 2 \pi f_{\rm T} t) = 2 u_0\cdot {\rm si} ( \pi {t}/{T_{\rm u}})\cdot {\cos} ( 2 \pi f_{\rm T} t). $$
The graph shows
- above the low–pass signal $u(t)$,
- then the oscillation $c(t) = 2 · \cos(2 \pi f_{\rm T}t$ ),
- below the band-pass signal $w(t) = u(t) \cdot c(t)$.
In particular, at time $t = 0$ one obtains:
- $$w(t = 0) = 2 \cdot u_0 \hspace{0.15 cm}\underline{= 4 \hspace{0.05cm}{\rm V}}.$$
The time $t=62.5 \,{\rm µ} \text{s}$ corresponds exactly to a quarter of the period of the signal $c(t)$:
- $$ w(t = 62.5 \hspace{0.05cm}{\rm µ s}) = 2 u_0 \cdot {\rm si} ( \pi \cdot \frac{62.5 \hspace{0.05cm}{\rm µ s}}{500 \hspace{0.05cm}{\rm µ s}})\cdot {\cos} ( 2 \pi \cdot 4\hspace{0.05cm}{\rm kHz}\cdot62.5 \hspace{0.05cm}{\rm µ s}) $$
- $$ \Rightarrow \hspace{0.3cm}w(t =4\hspace{0.05cm}{\rm V}\cdot{\rm si} ( {\pi}/{8}) \cdot \cos ( {\pi}/{4})\hspace{0.15 cm}\underline{ = 0}.$$
(3) Proposed solution 1 is correct:
- If we compare the spectral function $W(f)$ of this task with the spectrum $D(f)$ in the sample solution to Exercise 4.1, we see that $w(t)$ and $d(t)$ are identical.
- This proof is somewhat more complex in the time domain. With $f_2 = 2 \,\text{kHz}$ can be written for the signal considered here:
- $$w(t ) = 4\hspace{0.05cm}{\rm V}\cdot {\rm si} ( \pi f_2 t)\cdot {\cos} ( 4 \pi f_2 t) =({4\hspace{0.05cm}{\rm V}})/({\pi f_2 t})\cdot \sin (\pi f_2 t) \cdot \cos ( 4 \pi f_2 t) .$$
- Because of the trigonometric relationship
- $$\sin (\alpha) \cdot \cos (\beta) = {1}/{2} \cdot \big[ \sin(\alpha + \beta)+ \sin (\alpha - \beta)\big]$$
- the above equation can be transformed:
- $$w(t ) =\frac{2\hspace{0.05cm}{\rm V}}{\pi f_2 t}\cdot \big [\sin (5\pi f_2 t) + \sin (-3\pi f_2 t)\big ]= 10\hspace{0.05cm}{\rm V} \cdot \frac{\sin (5\pi f_2 t)}{5\pi f_2 t}-6\hspace{0.05cm}{\rm V} \cdot \frac{\sin (3\pi f_2 t)}{3\pi f_2 t}.$$
- This shows that both signals are actually identical ⇒ Proposed solution 1:
- $$w(t) = 10 \hspace{0.05cm}{\rm V} \cdot {\rm si} ( 5 \pi f_2 t)- 6 \hspace{0.05cm}{\rm V} \cdot {\rm si} ( 3 \pi f_2 t) = d(t).$$