0 投票

Sir,
I have a function like;
teta=((2/Bi)*Xb)+(1-3*(1-Xb)^n+2*(1-Xb))+((6/Da)*(1-(1-Xb)^m));
Where
teta=0:0.2:5;
n=2/3;
m=1/3;
Bi=constant's(inf, 100, 10, 1, 0.1)
Da=constant(100, 10, 1, 0.1)
I want to plot(teta,Xb)

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Walter Roberson
Walter Roberson 2014 年 3 月 14 日
Your Bi and Da appear to be vectors of values, and those vectors appear to be different lengths. How are you planning to deal with the vectors? Are you wanting to create length(Bi) * length(Da) different plots, selecting one value from each of two vectors?
Salaheddin Hosseinzadeh
Salaheddin Hosseinzadeh 2014 年 3 月 14 日
What's Xb? Have you tried to plot what you equated? If yes what errors you received?
CHANDRA SHEKHAR BESTA
CHANDRA SHEKHAR BESTA 2014 年 3 月 14 日
yes sir,
I want to create length(Bi) * length(Da) different plots, selecting one value from each of two vectors
CHANDRA SHEKHAR BESTA
CHANDRA SHEKHAR BESTA 2014 年 3 月 14 日
Already i know teta values from 0:0.2:5, by solving equation; i want to find Xb.
After finding the Xb, I want to plot(teta,Xb)
Salaheddin Hosseinzadeh
Salaheddin Hosseinzadeh 2014 年 3 月 14 日
So the question is how to find Xb? :(
Wait a second, you're confusing me! You already have teta values! not by solving this equation, you actually want to find Xb from this equation you wrote!
You have math prblem not a MATLAB problem!
CHANDRA SHEKHAR BESTA
CHANDRA SHEKHAR BESTA 2014 年 3 月 14 日
Yes, I have already teta values.
I want to find Xb,
then plot(teta,Xb)
Salaheddin Hosseinzadeh
Salaheddin Hosseinzadeh 2014 年 3 月 14 日
Ok, sounds better now
I'll post you an answer in some minutes ;)
CHANDRA SHEKHAR BESTA
CHANDRA SHEKHAR BESTA 2014 年 3 月 14 日
Thank you i am waiting for your post.

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回答 (2 件)

Salaheddin Hosseinzadeh
Salaheddin Hosseinzadeh 2014 年 3 月 14 日

0 投票

We have to solve your equation so that we get Xb values for known values of teta
So let's do it as such
teta=0:0.2:5;
n=2/3;
m=1/3;
Bi=(inf, 100, 10, 1, 0.1)
Da=(100, 10, 1, 0.1)
Bi=100;
Da=100;
for i= 1:length(teta)
fxb=@(Xb) teta(i)-((2/Bi)*Xb)+(1-3*(1-Xb)^n+2*(1-Xb))+((6/Da)*(1-(1-Xb)^m))
valXb(i)=fzero(fxb,0); %this gives you Xb for (Bi=100,Da=100,teta=0:.25:5)
end
plot(teta,valXb)
title(['teta VS Xb for Bi=',num2str(Bi),'Da=',num2str(Da)])
Please work out he rest on your own, for different values of Bi and Da, either use for loop or matrix multiplication.
Hope that helped. code is not tested let me know if it had errors, sorry fo that
Good Luck!
Walter Roberson
Walter Roberson 2014 年 3 月 14 日

0 投票

There are up to three real-valued solutions for each teta. For some Bi, Da combinations, there are no real-valued solutions. For other combinations, there are three real-valued solutions until teta passes a threshold, after which there is only one real-valued solution.
The algebraic solution for Xb in terms of teta is pretty messy.

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CHANDRA SHEKHAR BESTA
CHANDRA SHEKHAR BESTA
2014 年 3 月 14 日

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Walter Roberson
Walter Roberson
2014 年 3 月 14 日

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