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Solving for a variable in equation

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Maddie Sanders
Maddie Sanders 2020 年 1 月 23 日
コメント済み: Star Strider 2020 年 1 月 23 日
I want to solve for t in the equation: Tf=Ts+(T0-Ts)*exp(-k*t), but I can't figure out how to solve for t. I can only solve for Tf. Here is my script. What do I need to add/change to solve for t?
T0=120;
Ts=38;
k=0.45;
Tf=65;
Tf=Ts+(T0-Ts)*exp(-k*t)

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Star Strider
Star Strider 2020 年 1 月 23 日
Use a root-finding function (I chose fzero here), then take the known variable values, create an anonymous function from the expression for ‘Tf’ and solve:
T0=120;
Ts=38;
k=0.45;
Tf=65;
% Tf=Ts+(T0-Ts)*exp(-k*t);
[tval,fval] = fzero(@(t) Ts+(T0-Ts)*exp(-k*t)-Tf, 1)
producing:
tval =
2.4686
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Star Strider
Star Strider 2020 年 1 月 23 日
My pleasure!
The ‘tval’ output is the value of ‘t’ where the expression equals ‘Tf’, and the ‘fval’ output is the value of the function at that point, indicating that it found a ‘t’ value that resulted in the anonymous function being very close to zero (within the tolerance fzero uses). Every nonlinear parameter estimation function requires an initial estimate for the parameter (or parameters) it is estimating, and I chose 1 here. The initial parameter estimates can be important in some problems, however not in this one, where widely differing iinitial estimates all produce the same result for ‘tval’.
Star Strider
Star Strider 2020 年 1 月 23 日
If my Answer helped you solve your problem, please Accept it!

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