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EE446 Instrumentation at Clarkson University

EE446 Instrumentation at Clarkson University. Tuesday, April 1, 2008. Using MATLAB to Display a Frequency Response. Let’s use MATLAB to display the Bode plot or frequency response plot corresponding to a network function. As an example, consider this network function:. And this MATLAB script:. Bodem - plot the Bode plot of a network function. Create a list of logarithmically spaced frequencies. Starting frequency, rad/s. Ending frequency, rad/s. W = logspace(log10(wmin),log10(wmax) ;. P1=10; p2=1000;.

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EE446 Instrumentation at Clarkson University | ee446.blogspot.com Reviews
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EE446 Instrumentation at Clarkson University. Tuesday, April 1, 2008. Using MATLAB to Display a Frequency Response. Let’s use MATLAB to display the Bode plot or frequency response plot corresponding to a network function. As an example, consider this network function:. And this MATLAB script:. Bodem - plot the Bode plot of a network function. Create a list of logarithmically spaced frequencies. Starting frequency, rad/s. Ending frequency, rad/s. W = logspace(log10(wmin),log10(wmax) ;. P1=10; p2=1000;.
<META>
KEYWORDS
1 wmin=1;
2 network function
3 constant
4 zero
5 poles
6 k=1 length w
7 xlabel
8 frequency hz
9 ylabel
10 gain db
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wmin=1;,network function,constant,zero,poles,k=1 length w,xlabel,frequency hz,ylabel,gain db,title,bode plot,phase deg,posted by,jim svoboda,no comments,phase margin,for the cases,7 comments,filter design software,filterlab frommicrochip,ja svoboda,from
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EE446 Instrumentation at Clarkson University | ee446.blogspot.com Reviews

https://ee446.blogspot.com

EE446 Instrumentation at Clarkson University. Tuesday, April 1, 2008. Using MATLAB to Display a Frequency Response. Let’s use MATLAB to display the Bode plot or frequency response plot corresponding to a network function. As an example, consider this network function:. And this MATLAB script:. Bodem - plot the Bode plot of a network function. Create a list of logarithmically spaced frequencies. Starting frequency, rad/s. Ending frequency, rad/s. W = logspace(log10(wmin),log10(wmax) ;. P1=10; p2=1000;.

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1

EE446 Instrumentation at Clarkson University: March 2008

http://ee446.blogspot.com/2008_03_01_archive.html

EE446 Instrumentation at Clarkson University. Wednesday, March 26, 2008. Consider the transfer function. Implement the transfer function as a direct form circuit. Verify the circuit by PSpice simulation. Determine the loop gain twice: once analytically, using the procedure described in class, and once by PSpice simulation. Compare these results to verify the loop gain. Use the loop gain to determine the phase margin of the circuit (and the transfer function). Tuesday, March 25, 2008. Monday, March 3, 2008.

2

EE446 Instrumentation at Clarkson University: Phase Margin

http://ee446.blogspot.com/2008/03/consider-transfer-function-for-cases-2.html

EE446 Instrumentation at Clarkson University. Wednesday, March 26, 2008. Consider the transfer function. Implement the transfer function as a direct form circuit. Verify the circuit by PSpice simulation. Determine the loop gain twice: once analytically, using the procedure described in class, and once by PSpice simulation. Compare these results to verify the loop gain. Use the loop gain to determine the phase margin of the circuit (and the transfer function). March 27, 2008 at 1:07 PM.

3

EE446 Instrumentation at Clarkson University: PSpice model of a compensated op amp

http://ee446.blogspot.com/2008/02/ee446-report-to-p_21.html

EE446 Instrumentation at Clarkson University. Thursday, February 21, 2008. PSpice model of a compensated op amp. PJ Galvin, R.J Shoop and M.E. Turk. 1, 2 or 3 person teams). PSpice model of the TL054 op amp. The circuit shown in Figure 1 is proposed as a model of a compensated op amp. This model incorporates the input and output impedances of the op amp and the open loop gain of a compensated op amp:. Is the dc gain, f. Is the unity-gain bandwidth and v. Model of a Compensated Op Amp. 8230; and R.

4

EE446 Instrumentation at Clarkson University: Op Amp Offset Voltage and Current

http://ee446.blogspot.com/2008/02/ee446-report-to-j.html

EE446 Instrumentation at Clarkson University. Sunday, February 3, 2008. Op Amp Offset Voltage and Current. Effect of Op Amp Offset Voltage and Current on an Instrumentation Circuit. The circuit shown in Figure 1 produces an output voltage, v. That represents the temperature T. In degree C, measured by the transducer. The nonideal op amp represents the LM 307 op amp manufactured by National Semiconductor Corporation (http:/ www.national.com/ds/LM/LM107.pdf#page=1&search=%22LM307%22). 8230;, and i. The PSp...

5

EE446 Instrumentation at Clarkson University: April 2008

http://ee446.blogspot.com/2008_04_01_archive.html

EE446 Instrumentation at Clarkson University. Tuesday, April 1, 2008. Using MATLAB to Display a Frequency Response. Let’s use MATLAB to display the Bode plot or frequency response plot corresponding to a network function. As an example, consider this network function:. And this MATLAB script:. Bodem - plot the Bode plot of a network function. Create a list of logarithmically spaced frequencies. Starting frequency, rad/s. Ending frequency, rad/s. W = logspace(log10(wmin),log10(wmax) ;. P1=10; p2=1000;.

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EE446 Instrumentation at Clarkson University

EE446 Instrumentation at Clarkson University. Tuesday, April 1, 2008. Using MATLAB to Display a Frequency Response. Let’s use MATLAB to display the Bode plot or frequency response plot corresponding to a network function. As an example, consider this network function:. And this MATLAB script:. Bodem - plot the Bode plot of a network function. Create a list of logarithmically spaced frequencies. Starting frequency, rad/s. Ending frequency, rad/s. W = logspace(log10(wmin),log10(wmax) ;. P1=10; p2=1000;.

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