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In [[Electrical Engineering]] '''Modified Nodal Analysis'''<ref>{{cite conference |author=Ho, Ruehli, and Brennan |title=The Modified Nodal Approach to Network Analysis |booktitle=Proc. 1974 Int. Symposium on Circuits and Systems, San Francisco |month=April |year=1974 |pages=505–509 |url=http://ieeexplore.ieee.org/xpls/abs_all.jsp?arnumber=1084079}}</ref> or MNA is an extension of [[nodal analysis]] which not only determines the circuit's node voltages (as in classical nodal analysis), but also ''some'' branch currents. Modified nodal analysis was developed as a formalism to mitigate the difficulty of representing voltage-defined components in nodal analysis (e.g. voltage-controlled voltage sources). It is one such formalism. Others, such as sparse tableau formulation,<ref>{{cite journal |author=Hachtel, G., Brayton, R, and Gustavson, F. |title= The Sparse Tableau Approach to Network Analysis and Design |journal=IEEE Transactions on Circuit Theory|volume=18 |month=January |issue=1 |year=1971 |pages= 101–113 |url=http://ieeexplore.ieee.org/xpl/freeabs_all.jsp?arnumber=1083223 |doi=10.1109/TCT.1971.1083223}}</ref> are equally general and related via matrix transformations. | |||
==Method== | |||
The '''MNA''' uses the element's ''Branch Constitutive Equations'' or BCE, i.e., their [[voltage]] - [[Electric current|current]] characteristic and the [[Kirchhoff's circuit laws]]. According to <ref>Cheng, Chung-Kuan. Lecture Notes for CSE245: Computer-Aided Circuit Simulation and Verification. Spring 2006. Lecture 1.</ref> the method is done in four steps, but it can be reduced to three. | |||
'''Step 1''' | |||
Write the [[Kirchhoff's current law|KCL]] of the circuit. At each node of an [[electric circuit]] one writes the currents coming in and out of the node. Take care however in the '''MNA''' the current of the independent voltage sources is taken from the "plus" to the "minus". See Figure 1. Also note that the right hand side of each equation is ''always'' equal to zero. So that the branch currents that come inside the node are given a negative sign, whereas the branch currents coming out are given a positive sign. | |||
'''Step 2 ''' | |||
Use the BCE in terms of the node voltages of the circuit to eliminate as many branch currents as possible. Writing the BCE's in terms of the node voltages saves one step. If the BCE's were written in terms of the branch voltages, one more step, i.e., replacing the branches voltages for the node ones, would be necessary. In this article the letter "e" is used to name the node voltages, while the letter "v" is used to name the branch voltages. | |||
'''Step 3''' | |||
Finally, write down the unused equations. | |||
== Example == | |||
The figure shows a RC series circuit and the table shows the BCE of a linear resistor and a linear Capacitor. Note that in the case of the resistor the [[admittance]] <math>G</math> i, <math> G = 1/R</math>, is used instead of <math>R</math>. We now proceed as explained above. | |||
[[File:RC signed.png|thumb|none|alt=RC Circuit|RC Circuit]] | |||
{| class="wikitable" | |||
|- | |||
! Element | |||
! Branch equation | |||
|- | |||
| Resistor | |||
| <math>I_R = GV_R</math> | |||
|- | |||
| Capacitor | |||
| <math>I_C = C\frac{dV_C}{dt}</math> | |||
|} | |||
'''Step 1''' | |||
In this case there are two nodes, <math>e_1</math> and <math>e_2</math>. Also there are ''three'' currents: <math>i_{V_s}</math>, <math> i_{R}</math> and <math>i_{C}</math>. | |||
At node ''e1'' the KCL yields: | |||
<math>i_{V_s} + i_R = 0</math> | |||
and at node ''e2'': | |||
<math>-i_R + i_C = 0</math> | |||
'''Step 2''' | |||
With the provided BCEs in the table and observing that: | |||
<math> | |||
V_s = e_1 | |||
</math> | |||
<math> | |||
V_R = e_1 - e_2 | |||
</math> | |||
<math> | |||
V_C = e_2, | |||
</math> | |||
the following equations are result: | |||
<math>G(e_1 - e_2) + i_{V_S} = 0</math> | |||
<math>C\frac{de_2}{dt} + G(e_2 - e_1) = 0</math> | |||
'''Step 3''' | |||
Note that at this point there are two equations but three unknowns. The missing equation comes from the fact that | |||
<math>e_1 = V_s</math> | |||
and so finally we have three equations and unknowns, what leads to a solvable linear system. | |||
===Modified Nodal Analysis and DAEs=== | |||
If the vector <math>\mathbf{x} = \begin{pmatrix}e_1&e_2&i_{V_S}\end{pmatrix}^T</math> is defined, then the above equations can be put in the form | |||
<math>Ex'(t) + Ax(t) = f,</math> | |||
where <math>A = \begin{pmatrix}G & -G& 1\\-G & G & 0\\1 & 0 & 0\end{pmatrix}</math>, <math>E = \begin{pmatrix} 0 & 0 & 0\\0& C& 0\\ 0& 0& 0\end{pmatrix}</math> and <math>f = \begin{pmatrix}0&0&V_s\end{pmatrix}^T</math>. | |||
This is a linear [[differential algebraic equation]] (DAE), since <math>E</math> is singular. It can be proved that such a DAE coming from the Modified Nodal Analysis will have [[differentiation index]] less or equal than two.<ref>Tischendorf C. Topological index of DAEs in the Circuit Simulation.</ref> | |||
==References== | |||
{{Reflist}} | |||
==External links== | |||
* {{cite web|url=http://qucs.sourceforge.net/tech/node14.html |title=Modified Nodal Analysis (DC algorithm description in Qucs technical documentation) |accessdate=22 December 2012}} | |||
* {{cite web|url=http://www.desi.iteso.mx/erayas/documents/cad_course/lectures/FORMULATION_CIR_EQ/MNA_method.pdf |title=The Modified Nodal Analysis Methods (slides with a good overview of matrix-based MNA, by J. Rayas-Sánchez) |accessdate=20 January 2013}} | |||
[[Category:Electronic circuits]] |
Latest revision as of 21:07, 8 January 2013
In Electrical Engineering Modified Nodal Analysis[1] or MNA is an extension of nodal analysis which not only determines the circuit's node voltages (as in classical nodal analysis), but also some branch currents. Modified nodal analysis was developed as a formalism to mitigate the difficulty of representing voltage-defined components in nodal analysis (e.g. voltage-controlled voltage sources). It is one such formalism. Others, such as sparse tableau formulation,[2] are equally general and related via matrix transformations.
Method
The MNA uses the element's Branch Constitutive Equations or BCE, i.e., their voltage - current characteristic and the Kirchhoff's circuit laws. According to [3] the method is done in four steps, but it can be reduced to three.
Step 1
Write the KCL of the circuit. At each node of an electric circuit one writes the currents coming in and out of the node. Take care however in the MNA the current of the independent voltage sources is taken from the "plus" to the "minus". See Figure 1. Also note that the right hand side of each equation is always equal to zero. So that the branch currents that come inside the node are given a negative sign, whereas the branch currents coming out are given a positive sign.
Step 2
Use the BCE in terms of the node voltages of the circuit to eliminate as many branch currents as possible. Writing the BCE's in terms of the node voltages saves one step. If the BCE's were written in terms of the branch voltages, one more step, i.e., replacing the branches voltages for the node ones, would be necessary. In this article the letter "e" is used to name the node voltages, while the letter "v" is used to name the branch voltages.
Step 3
Finally, write down the unused equations.
Example
The figure shows a RC series circuit and the table shows the BCE of a linear resistor and a linear Capacitor. Note that in the case of the resistor the admittance i, , is used instead of . We now proceed as explained above.
Element | Branch equation |
---|---|
Resistor | |
Capacitor |
Step 1
In this case there are two nodes, and . Also there are three currents: , and .
At node e1 the KCL yields:
and at node e2:
Step 2
With the provided BCEs in the table and observing that:
the following equations are result:
Step 3
Note that at this point there are two equations but three unknowns. The missing equation comes from the fact that
and so finally we have three equations and unknowns, what leads to a solvable linear system.
Modified Nodal Analysis and DAEs
If the vector is defined, then the above equations can be put in the form
This is a linear differential algebraic equation (DAE), since is singular. It can be proved that such a DAE coming from the Modified Nodal Analysis will have differentiation index less or equal than two.[4]
References
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- ↑ Tischendorf C. Topological index of DAEs in the Circuit Simulation.