DOC PREVIEW
UK EE 211 - Nodal and Loop Analysis

This preview shows page 1-2-19-20 out of 20 pages.

Save
View full document
View full document
Premium Document
Do you want full access? Go Premium and unlock all 20 pages.
Access to all documents
Download any document
Ad free experience
View full document
Premium Document
Do you want full access? Go Premium and unlock all 20 pages.
Access to all documents
Download any document
Ad free experience
View full document
Premium Document
Do you want full access? Go Premium and unlock all 20 pages.
Access to all documents
Download any document
Ad free experience
View full document
Premium Document
Do you want full access? Go Premium and unlock all 20 pages.
Access to all documents
Download any document
Ad free experience
Premium Document
Do you want full access? Go Premium and unlock all 20 pages.
Access to all documents
Download any document
Ad free experience

Unformatted text preview:

Nodal and Loop AnalysisExampleExample of Nodal AnalysisExample of Mesh AnalysisNodal AnalysisExamplesLoop AnalysisSlide 8Slide 9Op Amp ModelIdeal ApproximationAnalyzing Ideal Op Amp CircuitsOp Amp Web PagesDesign ExampleDesign FormulaSlide 16Slide 17Design StrategySpecification EquationsDesign DecisionsKevin D. Donohue, University of Kentucky1Nodal and Loop AnalysisSystematic methods for labeling circuits and finding a solvable set of equations, Operational AmplifiersKevin D. Donohue, University of Kentucky2ExampleSimple circuits with single loops or node-pairs can result in one equation with one unknown, when properly labeled. R R0 R1 i1R2 R3 R4 VKevin D. Donohue, University of Kentucky3Example of Nodal AnalysisFor more complex circuits a set of labels and equations in terms of node voltages can be developed. Is3AR 5 R0 15 R1 10 R2 5 +Vx-2VxKevin D. Donohue, University of Kentucky4Example of Mesh AnalysisFor more complex circuits a set of labels and equations only in terms of loop currents can be developed. Vs12VR 5 R0 15 R1 10 R2 5 I23I2Kevin D. Donohue, University of Kentucky5Nodal AnalysisIdentify and label all nodes in the system.Select one node as a reference node (V=0)Perform KCL at each non-reference node expressing each branch current in terms of the node voltagesIf any branch contains a voltage sourceOne way: Make reference node the negative end of the voltage source and set node values on the positive end equal to the source values (reduces number of equations and unknowns by one)Another way: Create an equation where the difference between the node voltages on either end to source is equal to the source value and then use a surface around both nodes for KCL (provides an extra equation lost from the unknown current in voltage source)Kevin D. Donohue, University of Kentucky6ExamplesPerform nodal analysis on circuits with current sources and resistors.Perform nodal analysis on circuits with voltage sources and and resistors.Kevin D. Donohue, University of Kentucky7Loop AnalysisCreate loop current labels that include every circuit branch where each loop contains a branch included by no other loop and no loops cross each other.Perform KVL around each loop expressing all voltages in terms of loop currents.If any branch contains a current source,One way: Let only only one loop current pass through source so loop current then equals the source value (reduces number of equations and unknowns by one)Another way: Let more than one loop pass through source and set combination of loop current equal to source value (provides an extra equation lost from the unknown voltage drop on current source)Kevin D. Donohue, University of Kentucky8ExamplesPerform loop analysis on circuits with voltage sources and resistors.Perform loop analysis on circuits with current sources and and resistors.Kevin D. Donohue, University of Kentucky9ExampleOperational amplifiers (op amps) were originally developed to amplify DC voltage levels in analog computers. Today, their applications are many. Apply the model for the ideal op amp to find the voltage gain (Vo/Vi) in the given circuit: Vi1Ri 1K Rf 10K Ro 1K +Vo-Kevin D. Donohue, University of Kentucky10Op Amp ModelThe actual op amp is composed of many transistors, but can be approximated with a simpler circuit model: V+V-RiRoA(V+ - V-)+Vo-V+V-+Vo-Kevin D. Donohue, University of Kentucky11Ideal ApproximationTypical values for Ri = 2 M, A=106, and Ro=50.For circuit in the first example, use op amp model with dependent source to justify the ideal approximations made in the first example.Ideal op ampapproximation:-Vd0+I+0I-0Kevin D. Donohue, University of Kentucky12Analyzing Ideal Op Amp CircuitsThe simplifications for the op amp model suggest that nodal analysis will often be the best method of analyzing op amp circuits.Do examples of circuits with op amps, independent sources, and resistors.Kevin D. Donohue, University of Kentucky13Op Amp Web Pageshttp://www.housing.uoguelph.ca/~antoon/gadgets/741.htm (tutorial)http://www.williamson-labs.com/480_opam.htm (tutorial – WARNING: crude language and humor used at this site. Not recommended for more sensitive or unstable students!)http://www.st.com/stonline/books/pdf/docs/5304.pdf (data sheet)Kevin D. Donohue, University of Kentucky14Design Example2 Microphones with sensitivities of 3 mV/dB and 6 mV/dB and are denoted as independent voltage sources V1 and V2, respectively. Determine resistor values so that Vo is the difference between the microphone sound pressure levels (SPL) such that a 1 dB change in SPL corresponds to a 30 mV change in Vo. V1V2+Vo-R1R3R2R4R5R6Kevin D. Donohue, University of Kentucky15Design FormulaIt can be shown that for the subcircuit: V1V2+Va-R1R3R2R41214321211RRVRRRRVVaKevin D. Donohue, University of Kentucky16Design FormulaIt can be shown that for subcircuit: +Vo-R6R5+Va-561RRVVaoKevin D. Donohue, University of Kentucky17Design FormulaIt can be shown that for the entire circuit: V1V2+Vo-R1R3R2R4R5R61214321256111RRVRRRRVRRVoKevin D. Donohue, University of Kentucky18Design StrategyThe structure of the formula suggests breaking the problem into 2 parts:Part 1: Let the part of the formula associated with the first subcircuit take care of the scaling the microphone sensitivities (to make both sensitivities equal) and then subtracting them.Part 2: Let the part of formula associated with second subcircuit take care of the scaling the difference signal to the 30 mV/dB specification.Kevin D. Donohue, University of Kentucky19Specification EquationsScale the 3 mV/dB microphone circuit 2 times the amount as the other:124321112RRRRRRScale the 3 mV/dB microphone through the first and second circuit to achieve a 30 mV/dB scale: dB/mV31dB/mV301256RRRRKevin D. Donohue, University of Kentucky20Design DecisionsNote in the last example there are many solutions and several ways to set up the design equations and solve. Can you determine if one way is better than the other? What additional criteria may be added to this


View Full Document

UK EE 211 - Nodal and Loop Analysis

Download Nodal and Loop Analysis
Our administrator received your request to download this document. We will send you the file to your email shortly.
Loading Unlocking...
Login

Join to view Nodal and Loop Analysis and access 3M+ class-specific study document.

or
We will never post anything without your permission.
Don't have an account?
Sign Up

Join to view Nodal and Loop Analysis 2 2 and access 3M+ class-specific study document.

or

By creating an account you agree to our Privacy Policy and Terms Of Use

Already a member?