Upload
vokiet
View
257
Download
0
Embed Size (px)
Citation preview
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Chapter 3 — Methods of Analysis:2) Mesh Analysis
Dr. Waleed Al-Hanafywaleed [email protected]
Faculty of Electronic Engineering, Menoufia Univ., Egypt
MSA Summer Course:Electric Circuit Analysis I (ESE 233) — Lecture no. 5
July 27, 2011
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Overview
1 Mesh Analysis Procedures
2 Mesh Analysis with Current Sources
3 Conclusions
Reference:[1] Alexander Sadiku, Fundamentals of Electric Circuits, 4th ed.McGraw-Hill, 2009.
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Introduction
Mesh analysis provides another general procedure for analysing circuits,using mesh currents as the circuit variables
Using mesh currents instead of element currents as circuit variables isconvenient and reduces the number of equations that must be solvedsimultaneously
Recall that a loop is a closed path with no node passed more than once.A mesh is a loop that does not contain any other loop within it
Nodal analysis applies KCL to find unknown voltages in a given circuit,while mesh analysis applies KVL to find unknown currents
Mesh analysis is not quite as general as nodal analysis because it is onlyapplicable to a circuit that is planar
A planar circuit is one that can be drawn in a plane with no branchescrossing one another; otherwise it is nonplanar
A circuit may have crossing branches and still be planar if it can beredrawn such that it has no crossing branches
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Example
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
What is a Mesh?
A mesh is a loop which does not contain any other loops within it
Paths abefa and bcdeb are meshes, but path abcdefa is not a mesh
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Mesh Method Steps
Steps to Determine the Mesh Currents:
1 Assign mesh currents i1, i2,· · · , in to the n meshes
2 Apply KVL to each of the n meshes. Use Ohm’s law toexpress the voltages in terms of the mesh currents
3 Solve the resulting n simultaneous equations to get the meshcurrents.
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Example-1
Find the branch currents I1, I2, and I3using mesh analysis
For mesh 1, applying KVL
−15 + 5i1 + 10(i1 − i2) + 10 = 0
or 3i1 − 2i2 = 1
For mesh 2,
6i2 + 4i2 + 10(i2 − i1)− 10 = 0
or i1 = 2i2 − 1
Solving for i1 and i2 results in i1 = i2 = 1A.
Thus I1 = i1 = 1A, I2 = i2 = 1A, and
I3 = i1 − i2 = 0
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Exercise-1
Calculate the mesh currents i1 andi2 in the circuit shownAnswer: i1 = 2
3 A, i2 = 0
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Example-2
Use mesh analysis to find the current i0 in the circuit shown
Formesh 1, −24+ 10(i1 − i2) + 12(i1 − i3) = 0
=⇒ 11i1 − 5i2 − 6i3 = 12
Formesh 2, 24i2 + 4(i2 − i3) + 10(i2 − i1) = 0
=⇒ −5i1 + 19i2 − 2i3 = 0
Formesh 3, 4i0 + 12(i3 − i1) + 4(i3 − i2) = 0
Since i0 = i1 − i2, then =⇒ −i1 − i2 + 2i3 = 0
Finally: i1 = 2.25A, i2 = .75A, and i3 = 1.5A, thus
i0 = i1 − i2 = 1.5A
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Applying mesh analysis to circuits containing current sources(dependent or independent) may appear complicated. But it isactually much easier than what we encountered in the previoussection, because the presence of the current sources reduces thenumber of equations.Case 1: When a current source exists only in one mesh: Considerthe circuit below, we set i2 = −5A and write a mesh equation forthe other mesh in the usual way, that is,−10 + 4i1 + 6(i1 + i2) = 0⇒ i1 = −2A
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Case 2: When a current source exists between two meshes:Consider the circuit below we create a supermesh by excluding thecurrent source and any elements connected in series with it, asshown in Fig. (b). Thus, A supermesh results when two mesheshave a (dependent or independent) current source in common.Thus −20 + 6i1 + 10i2 + 4i2 = 0⇒ 6i1 + 14i2 = 20. Since byapplying KCL at node 0, i2 = i1 + 6, then i1 = −3.2A andi2 = 2.8A.
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Example-3
For the circuit shown, find i1 to i4 using meshanalysisNote that meshes 1 and 2 form a supermeshsince they have an independent current sourcein common. Also, meshes 2 and 3 form anothersupermesh because they have a dependent cur-rent source in common. The two supermeshesintersect and form a larger supermesh as shown.
For the larger supermesh, we have 2i1 + 4i3 +
8(i3 − i4) + 6i2 = 0. We also have at node P,
i2 = i1 + 5 and at node Q i2 = i3 + 3i0. But
i0 = −i4. At mesh 4, 2i4 + 8(i4 − i3) + 10 = 0.
Solving results in i1 = −7.5 A, i2 = −2.5 A,
i3 = 3.93 A, and i2 = 2.143 A.
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Homework
Use mesh analysis to determine i1,i2, and i3 in the circuit shownAnswer: i1 = 3.474 A, i2 =.4737 A, and i3 = 1.1052 A
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis
Mesh Analysis Procedures Mesh Analysis with Current Sources Conclusions
Conclusion
Concluding remarks
Mesh analysis method is studied as a key tool to analyse anycircuit
Basic mesh analysis steps is introduced highlighted by someexamples
The case of supermesh is also given with examples
.
Dr. Waleed Al-Hanafy MSA Summer Course: Electric Circuit Analysis I (ESE 233) — Lecture no. 5
Chapter 3 — Methods of Analysis: 2) Mesh Analysis