Matlab cannot recognize variable

2 ビュー (過去 30 日間)
Jaevon Stewart
Jaevon Stewart 2024 年 4 月 2 日
編集済み: Jaevon Stewart 2024 年 4 月 2 日
Ran in:
I have this code here.
%May change entire thing to function
clc;
clear;
%Variables
sigma = .1;
lock = 8;
twist = -8;
a = 5.7*(180/pi);
bloading = .12;
mu = .25;
alpha_tpp = 2.25;
siga = sigma*a; % This variable is seen a lot.
%% solve for inflow
% Change
CT = .0012;
lambdaH = sqrt(CT/2);
muz = mu*tand(alpha_tpp);
aproxerr = 10^5;
esterr = 100;
n = 0;
f = .5;
while aproxerr < esterr
n = n+1;
if n == 1
lambdaold = lambdaH;
else
lambdaold = lambda;
end
%iterating on
lambdain = lambdaH^2/(sqrt(lambdaold^2+mu^2));
lambda = lambdaold - (lambdaold - muz - lambdain)/(1+((lambdain*lambdaold)/(lambdaold^2+mu^2)))*f;
esterr = abs(lambda - lambdaold)/lambda;
end
%% Question 2
delta = 1 - mu^2 + (9/4*mu^4);
%theta_collective =
%(1/delta)*((1+((3/2)*mu^2)))*((6*CT)/(sigma*a)+(.375*mu^2*twist) I
%do not know if this is necessary
Betanaught = ((lock/8)/delta)*(1-((19/18)*mu^2)+(1.5*mu^4))*((6*CT)/siga)+(.005+((29/120)*mu^2)-(.2*mu^4)+(.375*mu^6))*twist + lambda*((1/6)-((7/12)*mu^2)+(.25*mu^4));
Unrecognized function or variable 'lambda'.
Why is Lambda unrecognized here? I ran another code that had pretty much the same iteration up until the end of the while loop, and lambda was defined in it. So what is wrong here? And btw, I appreciate all the help you guys offer me.
Other code for reference
format long
% lambda is x
Rmain=27; %ft
Cmain=1.7; %ft
Nbmain=4;
Tipspeed_main=725; %ft/s
W=16000; %lb
alt=5000;
alpha_tpp=3;
%knots
%%
Amain=pi*Rmain^2;
sigma=(Nbmain*Cmain)/(pi*Rmain);
[~, ~, ~, RHO] = atmosisa(alt*0.3048);
rho=RHO*0.0685218/35.3147;
CT = W/(rho*Amain*Tipspeed_main^2);
xh = sqrt(CT/2);
V = 0*1.68781:10*1.68781:200*1.68791;
Mu = V./(Tipspeed_main);
for k1=1:length(Mu)
mu=Mu(k1);
muz = mu*tand(alpha_tpp);
n = 0;
aperr = 10^-5;
eserr = 100;
while eserr > aperr
n = n + 1;
if n == 1
xold = xh;
else
xold = x ;
end
%iterating on
xin = xh.^2./sqrt(xold.^2+mu.^2);
x = xold - (xold - muz - xin)./(1+((xin.*xold)./(xold.^2+mu.^2))).*.5;
eserr = abs((x - xold)./x);
end
X(k1)=x;
end
figure
plot(Mu,X,'-x')
grid on

サインインしてこの質問に回答する。

採用された回答

Dyuman Joshi
Dyuman Joshi 2024 年 4 月 2 日
編集済み: Dyuman Joshi 2024 年 4 月 2 日
"Why is Lambda unrecognized here?"
Because the while loop is not initiated, as the condition is not satisfied.
As the while loop does not run, lambda is not defined.
And when you use lambda (undefined parameter) to define Betanaught, it gives you the aforementioned error.
aproxerr = 10^5;
esterr = 100;
while aproxerr < esterr
...
end
Maybe aproxerr is 10^-5 (or something else). Correct the value and your code will run (I tested with couple of smaller values 10^0, 10^-1, etc).
  3 件のコメント
1 件の古いコメントを表示
Jaevon Stewart
Jaevon Stewart 2024 年 4 月 2 日
Thank you! I simply needed to flip the sign in the while loop (facepalm) I completely missed the fact that that was incorrect.
Jaevon Stewart
Jaevon Stewart 2024 年 4 月 2 日
編集済み: Jaevon Stewart 2024 年 4 月 2 日
Not flip the sign, change approxerr to 10^-5**

サインインしてコメントする。

その他の回答 (0 件)

カテゴリ

Help Center および File ExchangeBig Data Processing についてさらに検索

タグ

製品


リリース

R2023a

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by