Design a basic wide-band, RC band stop filter with a lower cut-off frequency of 200HZ and a higher cut-off frequency of 1000Hz. Var V Band Stop Response -3 d8 Pass Band Pass Band Frequency (ftz) -3d8...


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Design a basic wide-band, RC band stop filter with a lower cut-off frequency of 200HZ and a<br>higher cut-off frequency of 1000Hz.<br>Var<br>V<br>Band Stop<br>Response<br>-3 d8<br>Pass Band<br>Pass Band<br>Frequency (ftz)<br>-3d8<br>Low Pass<br>Response<br>High Pass<br>Response<br>Frequency (z)<br>Figure 1: Band Stop Filter Characteristics<br>Assuming a capacitor, C value for both filter sections (CLP, CHP) of 0.2uF, calculate the values of<br>the two resistors, RLP and RHP using the formula:<br>1. From the Low pass filter formula, Find RLP:<br>fi<br>2nRLpCLP<br>2. From the High pass filter formula, Find RHP:<br>1<br>2nRHp CHP<br>3. Calculate the center frequency (f) and Bandwidth (BW):<br>a. fc = Vfi x fu<br>b. BW = f# - f.<br>

Extracted text: Design a basic wide-band, RC band stop filter with a lower cut-off frequency of 200HZ and a higher cut-off frequency of 1000Hz. Var V Band Stop Response -3 d8 Pass Band Pass Band Frequency (ftz) -3d8 Low Pass Response High Pass Response Frequency (z) Figure 1: Band Stop Filter Characteristics Assuming a capacitor, C value for both filter sections (CLP, CHP) of 0.2uF, calculate the values of the two resistors, RLP and RHP using the formula: 1. From the Low pass filter formula, Find RLP: fi 2nRLpCLP 2. From the High pass filter formula, Find RHP: 1 2nRHp CHP 3. Calculate the center frequency (f) and Bandwidth (BW): a. fc = Vfi x fu b. BW = f# - f.
The transformation of this filter characteristic can be easily implemented using a single low pass<br>and high pass filter circuits isolated from each other by non-inverting voltage follower, (Av = 1).<br>The output from these two filter circuits is then summed using a third operational amplifier<br>connected as a voltage summer (adder) as shown in Figure 1.<br>R=<br>10ka<br>10ka<br>V<br>A,<br>Ves<br>As<br>OVour<br>Summing<br>Amplifier<br>low-pass<br>VINO<br>10<br>ko<br>V<br>A<br>Ce<br>Rie<br>high-pass<br>Figure 1: Band Stop Filter Circuit<br>1. Fill the below table with the components used in building the circuit (Figure 1), and their<br>values from the hand calculation part:<br>Component<br>Name<br>Value or Gain<br>Resistors<br>Capacitors<br>Amplifiers<br>

Extracted text: The transformation of this filter characteristic can be easily implemented using a single low pass and high pass filter circuits isolated from each other by non-inverting voltage follower, (Av = 1). The output from these two filter circuits is then summed using a third operational amplifier connected as a voltage summer (adder) as shown in Figure 1. R= 10ka 10ka V A, Ves As OVour Summing Amplifier low-pass VINO 10 ko V A Ce Rie high-pass Figure 1: Band Stop Filter Circuit 1. Fill the below table with the components used in building the circuit (Figure 1), and their values from the hand calculation part: Component Name Value or Gain Resistors Capacitors Amplifiers

Jun 11, 2022
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