Please help...

yscheok · 2009-06-18 21:03:18

hi, any one can help me to solve below equation? i would like to know that what is the derivation for a and b.

y = a + jb = √[(R+jwL)(G+jwC)]

Daniel123 · 2009-06-19 06:14:10

I'm not really sure what you mean. What does "derivation" mean in this context? What do each of the letters represent? Is j the imaginary unit? Is w complex or purely real? Do you want to find a and b in terms of the other letters?

Last edited by Daniel123 (2009-06-19 06:15:12)

bobbym · 2009-06-19 07:21:17

Hi yscheok;

Does j = √ (-1) = i that notation is used in electronics.

yscheok · 2009-06-24 00:09:24

Hi all,

thanks for reply.
For J = i that notation is used in electronics. actually this is the transmission line equation and i would like to find the a and b equation. below is some step to get the a and b answer, i not sure whether is correct or not? can you all help me?

y = a + jb = √[(R+jwL)(G+jwC)]

y = √[RG + jwRC + jwLG + j²w²LC]

when G=0,

y = √[jwRC + j²w²LC]
= √[j²w²LC (R/jwL + 1)]
= jw√LC *(R/2jwL + 1)
= R√LC/2L + jw√LC

a= R√LC/2L , b= w√LC

I have another question would like to check with you all regarding the Modular arithmetic. may i know that is the name for the "inverse Modular arithmetic" and what is the formula for it?

Last edited by yscheok (2009-06-24 00:21:55)

bobbym · 2009-06-24 05:24:23

Hi yscheok;

Everything is OK up to here
=jw√LC *(R/2jwL + 1).

Please bracket what is in the square root. Do you just have √L ?

yscheok · 2009-06-24 13:50:30

hi bobbym,

sory for that, is √LC.

=jw√(LC) *(R/2jwL + 1)
= R√(LC)/2L + jw√LC

Last edited by yscheok (2009-06-24 13:52:43)

bobbym · 2009-06-24 19:38:56

Hi

This mistake is here y =jw√(LC) *(R/2jwL + 1) is not true, it doesn't equal your y. Just substitute some numbers for R, C, L, w, j and you will agree.

As for your inverse modular arithmetic (modular inverse) go here first.
http://mathreference.com/num-mod,minv.html
It is done by computer.

Last edited by bobbym (2009-06-24 21:00:17)

yscheok · 2009-06-24 23:26:02

Hi, i think i make another mistake again,
how about as below?

y =jw√(LC) *(R/(2jwL) + 1)
y = R√(LC)/2L + jw√LC

if my equation is wrong, can you help me to solve this equation?

Last edited by yscheok (2009-06-24 23:28:27)

bobbym · 2009-06-25 04:23:41

Hi yscheok;

I already tried that too, it is also wrong. You are making a mistake by pulling the j and w out of the radical.

Below is the last true statement. Work from here 1 step at at a time so I can see where you are going. I will assist with each step you make.

I would start by squaring the extreme left hand side and the right hand side to eliminate the radical.

Last edited by bobbym (2009-06-25 09:48:05)

yscheok · 2009-06-25 18:10:56

a + jb = √[j*w*R*C + j²*w²*L*C]
= √[j²*w²*L*C*(R/(jwL)+1)]
= √j²*√w²*√(L*C)* √[R/(jwL)+1]
= j*w*√(L*C) * √[R/(jwL)+1]
= after here i dont have any idea for next step

bobbym · 2009-06-25 20:53:16

Hi;

I worked on this for a while and this is the best I could do with it.

Square the right hand side.

Now you can say.

provided that you say

instead of

This concession was the only way to obtain a and b by themselves on the left hand side.

Last edited by bobbym (2009-06-25 20:56:08)

yscheok · 2009-06-28 16:42:43

hi bobbym, thanks for the answer.

bobbym · 2009-06-28 19:59:50

Hi yscheok;

Remember that the solution is not unique, there are probably other forms. I just thought that this one is the simplest.

Math Is Fun Forum

#1 2009-06-18 21:03:18

Please help...

#2 2009-06-19 06:14:10

Re: Please help...

#3 2009-06-19 07:21:17

Re: Please help...

#4 2009-06-24 00:09:24

Re: Please help...

#5 2009-06-24 05:24:23

Re: Please help...

#6 2009-06-24 13:50:30

Re: Please help...

#7 2009-06-24 19:38:56

Re: Please help...

#8 2009-06-24 23:26:02

Re: Please help...

#9 2009-06-25 04:23:41

Re: Please help...

#10 2009-06-25 18:10:56

Re: Please help...

#11 2009-06-25 20:53:16

Re: Please help...

#12 2009-06-28 16:42:43

Re: Please help...

#13 2009-06-28 19:59:50

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