Difference between revisions of "Aufgaben:Exercise 2.3: Sinusoidal Characteristic"

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Revision as of 11:02, 20 September 2021

Sinusoidal characteristic curve

We consider a system with input  $x(t)$  and output  $y(t)$. For simplicity of description, the signals are considered to be dimensionless.

The relationship between the input signal  $x(t)$  and the output signal  $y(t)$  is given by the following characteristic curve in the range between  $-\pi/2$  and  $+\pi/2$ .

$$g(x) = \sin(x) = x - \frac{x^3}{3!} + \frac{x^5}{5!} - \hspace{0.05cm}\text{...}$$

The second part of this equation describes the series expansion of the sine function.

As approximations for the nonlinear characteristic curve the following is used in this task:

$$g_1(x) = x\hspace{0.05cm},$$
$$ g_3(x) = x- x^{3}\hspace{-0.1cm}/6\hspace{0.05cm},$$
$$g_5(x) = x- x^3\hspace{-0.1cm}/{6}+x^5\hspace{-0.1cm}/{120}\hspace{0.05cm}.$$

The input signal  $x(t) = A \cdot \cos(\omega_0 \cdot t)$  is always assumed wherat the values  $A = 0.5$,  $A = 1.0$  and  $A = 1.5$  are to be considered for the (dimensionless) signal amplitude.





Please note:

  • All powers required here refer to the resistance  $R = 1 \ \rm \Omega$  and thus have the unit  ${\rm V}^2$.
  • The following trigonometric relations are assumed to be known:
$$\cos^3(\alpha) = {3}/{4} \cdot \cos(\alpha) + {1}/{4} \cdot \cos(3\alpha) \hspace{0.05cm}, $$
$$ \cos^5(\alpha) = {10}/{16} \cdot \cos(\alpha) + {5}/{16} \cdot \cos(3\alpha) + {1}/{16} \cdot \cos(5\alpha)\hspace{0.05cm}.$$


Questions

1

What distortion factor  $K$  is obtained with the approximation  $\underline{g_1(x)}$  of the characteristic curve independent of the amplitude  $A$  of the input signal?

$K \ = \ $

$\ \%$

2

Compute the distortion factor  $K$  for the input signal  $x(t) = A \cdot \cos(\omega_0 \cdot t)$  and the approximation  $\underline{g_3(x)}$.
What values arise as a result for  $A = 0.5$  and  $A = 1.0$?

$A = 0.5\hspace{-0.08cm}:\ \ K \ = \ $

$\ \%$
$A = 1.0\hspace{-0.08cm}:\ \ K \ = \ $

$\ \%$

3

What is the distortion factor for  $\underline{A = 1.0}$  considering the approximation  $\underline{g_5(x)}$?

$K \ = \ $

$\ \%$

4

Which of the following statements are true? Here,  $K$  denotes the distortion factor of the sine function  $g(x)$.
$K_{\rm g3}$  and  $K_{\rm g5}$  are based on the approximations  $g_3(x)$  and  $g_5(x)$, respectively.

$K_{\rm g5}$  generally represents a better approximation for  $K$  than  $K_{\rm g3}$.
$K_{\rm g3} < K_{\rm g5}$ holds for  $A = 1.0$  .
$K_{\rm g3} \approx K_{\rm g5}$ will hold for  $A = 0.5$  .


Solution

(1)  The very inaccurate approximation  $g_1(x) = x$  is linear in  $x$  and therefore does not result in nonlinear distortions. Hence, the distortion factor is $\underline{K = 0}$.


(2)  The analytical spectrum (positive frequencies only) of the input signal is:

$$X_+(f) = A \cdot {\rm \delta}(f- f_0) .$$
  • Then, the following signal is applied to the output of the nonlinear characteristic curve  $g_3(x)$ :
$$y(t) = A \cdot {\rm cos}(\omega_0 t ) - \frac{A^3}{6} \cdot {\rm cos}^3(\omega_0 t )= A \cdot {\rm cos}(\omega_0 t ) - \frac{3}{4} \cdot \frac{A^3}{6} \cdot {\rm cos}(\omega_0 t )- \frac{1}{4} \cdot \frac{A^3}{6} \cdot {\rm cos}(3\omega_0 t ) = A_1 \cdot {\rm cos}(\omega_0 t ) + A_3 \cdot {\rm cos}(3\omega_0 t ).$$
  • For the coefficients  $A_1$  and $A_3$ the following is obtained by comparison of coefficients:
$$A_1 = A - {A^3}\hspace{-0.1cm}/{8}, \hspace{0.5cm}A_3 = - {A^3}\hspace{-0.1cm}/{24}.$$
  • Using $A = 0.5$ the following is obtained: $A_1 \approx 0.484$ and  $A_3 \approx 0.005$. Thus, the distortion factor is:
$$K = K_3 ={|A_3|}/{A_1}= {0.005}/{0.484} \hspace{0.15cm}\underline{ = 1.08\%}.$$
Note that for the approximation  $g_3(x)$  only the cubic part  $K_3$  of the distortion factor is effective.
  • For  $A = 1.0$  and  $A = 1.5$  the following numerical values arise as aresult:
$$A = 1.0: A_1 \approx 0.875, \hspace{0.2cm} A_3 \approx -0.041\hspace{0.3cm} \Rightarrow \hspace{0.3cm} \hspace{0.15cm}\underline{K \approx 4.76\%}\; \; \Rightarrow \; \; K_{g3},$$
$$A = 1.5: A_1 \approx 1.078, \hspace{0.2cm} A_3 \approx -0.140\hspace{0.3cm} \Rightarrow \hspace{0.3cm} \hspace{0.15cm}{K \approx 13 \%}.$$


(3)  Similarly as in subtask  (2)

$$y(t) = A_1 \cdot {\rm cos}(\omega_0 t ) + A_3 \cdot {\rm cos}(3\omega_0 t )+ A_5 \cdot {\rm cos}(5\omega_0 t )$$
holds with the following coefficients:
$$A_1 = A - {A^3}\hspace{-0.1cm}/{8} + {A^5}\hspace{-0.1cm}/{192},\hspace{0.3cm} A_3 = - {A^3}\hspace{-0.1cm}/{24} + {A^5}\hspace{-0.1cm}/{384},\hspace{0.3cm} A_5 = {A^5}\hspace{-0.1cm}/{1920}.$$
  • From this, the following numerical values arise a result with  $A=1$ :
$$A_1 \approx 1 -0.125 +0.005 = 0.880,\hspace{0.3cm} A_3 \approx -0.042 +0.003 = -0.039,\hspace{0.3cm} A_5 \approx 0.0005$$
$$\Rightarrow \hspace{0.3cm}K_3 = {|A_3|}/{A_1}= 0.0443,\hspace{0.3cm}K_5 = {|A_5|}/{A_1}= 0.0006 \hspace{0.3cm} \Rightarrow \hspace{0.3cm} K = \sqrt{K_3^2 + K_5^2} \hspace{0.15cm}\underline{\approx 4.45\%} \; \; \Rightarrow \; \; K_{g5}.$$


(4)  Approaches 1 and 3 are correct:

  • The approach  $g_5(x)$  is a better approximation for the sine function  $g(x)$  than the approximation  $g_3(x)$ in the entire domain.
  • Thus, the value  $K_{g5}$  computed in the subtask  (3)  is a better approximation for the actual distortion factor than  $K_{g3}$.
    Therefore, the first statement is correct.
  • The second statement is false as already shown by the computation for  $A=1$ :   $K_{g3} \approx 4.76 \%$  is greater than  $K_{g5} \approx 4.45 \%$.
  • The reason for this is that $g_3(x)$ is below $g_5(x)$ and thus there is also a greater deviation from the linear curve.
  • For  $A=0.5$ ,  $K_{g5} \approx K_{g3} = 1.08 \%$  will hold.
  • The characteristic curve on the information page shows that for  $|x| \le 0.5$  the functions  $g_3(x)$  and  $g_5(x)$  are indistinguishable within the accuracy of drawing.
  • This also results in the same distortion factors.