transfer function forms of expression
Mostrar comentarios más antiguos
Consider the following transfer function
Zero/pole/gain:
118614.6077 (s+6.35e005) (s+725)
-----------------------------------
(s+3.05e005) (s+1.119e004) (s+1600)
How to transforme above formula to the following formula?
10 (1+1/6.35e005s) (1+1/725s)
-----------------------------------
(1+1/3.05e005s) (1+1/1.119e004s) (1+1/1600s)
What about it?
124000 s^2 (s+6.353e005) (s+3.18e005) (s+725.8)
--------------------------------------------------------
s^2 (s+3.18e005) (s+1467) (s^2 + 3.165e005s + 3.897e010)
Respuesta aceptada
Walter Roberson
el 17 de Mzo. de 2012
0 votos
The first two formula you show are not equivalent. In the second form, each of the s+X terms has been divided by s, giving 1 + X/s . That was applied on the top and the bottom both, so the division by s on the top cancels the division by s on the bottom (unless s is 0). This leaves us with all the terms being equivalent except for the constants. The constant 118614.6077 of the first cannot be reconciled with the constant 10 of the second.
For the third formula, I would speculate that you should be dividing by s^2 for each term. For example, (s+6.353e005) becoming (1/s+6.353e005/s^2). If you do that, then "s" will not appear with any positive power, which would be consistent with the pattern of your second expression.
1 comentario
he
el 17 de Mzo. de 2012
Más respuestas (1)
he
el 17 de Mzo. de 2012
0 votos
Categorías
Más información sobre Dynamic System Models en Centro de ayuda y File Exchange.
Productos
el 17 de Mzo. de 2012
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
