What function (if any) can I use to simplify symbolic equation in terms of another variable?

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Miguel Ramirez 2017 年 6 月 24 日

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編集済み: Miguel Ramirez 2017 年 6 月 24 日

ex5.m
T4_5.m

I would like dH3 in terms of Cv

Edit: I see that I have caused a bit of confusion here. What I meant to say was, I would like dH3 in terms of both Cp and Cv. I can achieve this by hand manipulation. For example, if we multiply the coefficient of dV1 by beta/beta then we can rewrite the coefficient as Cp/(Cv*beta). This produces a simpler expression by simply multiplying the numerator and denominator by beta and substituting in Cv. I hope this helps.

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Walter Roberson 2017 年 6 月 24 日

Note: you cannot pass a cell array as the second parameter of collect(): you need to change those {} list of variables to [] lists.

Miguel Ramirez 2017 年 6 月 24 日

I changed the list of variables within the braces {}, to brackets [], but I didn't see any difference. Would you mind clarifying what you meant? Thanks in advance.

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Answer 1

Joshua 2017 年 6 月 24 日

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If you define your variables using the 'syms' function, you can create equations that will simplify. For example, the code

syms a b c d e
b=d*e
a=b+c

will give the following output

b = 
d*e
a =
c + d*e

showing that the equation b=d*e was automatically plugged into the equation a=b+c. You can do something similar for your two equations. Just make sure to put the second equation in the form cp= and put it before your larger equation.

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Miguel Ramirez 2017 年 6 月 24 日

I think for the expression dH3, it will need some algebraic manipulation to achive dH3(Cv, alpha, V etc..). What I mean by this is, for the coefficient of dV1, I would need to multiply the numerator and denominator by beta, so that I may substitute Cv in the denominator (this would mean that I end up with [Cp/(beta*Cv)]dV1.

I see what you mean by the code you wrote, but this is assuming we do not need algebraic manipulation for the substitution.

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Answer 2

Star Strider 2017 年 6 月 24 日

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Looking at your equations (specifically in ‘T4_5.m’), the only way I can see to cast them in terms of ‘Cv’ is to solve the last equation for ‘Cp’, the substitute in the rest of them:

Eqn = Cv == Cp - (T*V*alpha^2)/beta;
Cpv = solve(Eqn, Cp);
sys = [dV; dS; dU; dH; dF; dG];
sys = simplify(subs(sys, Cp, Cpv), 'Steps',10)

This gives:

sys =
                                             V*(alpha*dT - beta*dP)
                      (dT*((T*V*alpha^2)/beta + Cv))/T - V*alpha*dP
 dT*((T*V*alpha^2)/beta - P*V*alpha + Cv) + V*dP*(P*beta - T*alpha)
                  dT*((T*V*alpha^2)/beta + Cv) - V*dP*(T*alpha - 1)
                                   P*V*beta*dP - dT*(S + P*V*alpha)
                                                        V*dP - S*dT

leaving you with the slightly boring task of having to re-define ‘dV’*, ‘dS’, ‘dU’, ‘dH’, ‘dF’, and ‘dG’ in terms of the elements of ‘sys’. This would give your final result as a function of ‘Cv’ (and other variables).

If I understand correctly what you want to do, this could work. If not, at least it may suggest an approach to a solution.

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Miguel Ramirez 2017 年 6 月 24 日

It would be great to have the final expression in terms of Cp and Cv, I've tried altering the code to see if I could get sys in terms of Cp and Cv and it does not work out unless I were to perform some algebraic manipulation/'trickery' by hand.

In the expression dH3, I can recognize that if I multiply the coefficient of dV1 by beta/beta, then I can substitute in Cv all while leaving in Cp (i.e., simplify the expression into a simpler one or one with a lower amount of variables).

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Answer 3

John D'Errico 2017 年 6 月 24 日

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編集済み: John D'Errico 2017 年 6 月 24 日

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I would just use subs. Without running your scripts, this will work:

dH3 = subs(dH3,Cp,Cv + T*V*alpha/beta)

Now the entire expression will be in terms of Cv. You might want to do some simplification, but that comes after the substitution. I could have picked some other variable to use for the substitution.