フィルターのクリア
フィルターのクリア

How do fix this code to give me the error?

7 ビュー (過去 30 日間)
Angelina Encinias
Angelina Encinias 2022 年 10 月 17 日
編集済み: Torsten 2022 年 10 月 17 日
Ran in:
%% dt=10
h=10;
t=[100:h:1500];
Cp=(.00000000747989.*t.^3)-(.000028903.*t.^2)+.0423484.*t+36.1064;
dH=trapz(t,Cp)
dH = 7.4939e+04
for i=1:5
h=h*10;
tt=100:h:1500;
CcPp=(.00000000747989.*tt.^3)-(.000028903.*tt.^2)+.0423484.*tt+36.1064;
aa=trapz(tt,CcPp);
dHH(i)=aa;
error(i)=abs((dH-dHH(i))/dH);
hh(i)=h;
end
Error using matlab.internal.math.getdimarg
Dimension argument must be a positive integer scalar within indexing range.

Error in trapz>getDimArg (line 90)
dim = matlab.internal.math.getdimarg(dim);

Error in trapz (line 44)
dim = min(ndims(y)+1, getDimArg(dim));
[10 dH 0;hh' dHH' error']
plot(log10(hh),log10(error),'o')
xlabel('Log_{10} (\Delta h)')
ylabel('Log_{10} \epsilon')
a=polyfit(log10(hh),log10(error),1);
f=@(x) a(1)*x+a(2);
hold on
fplot(f,[-5 -1])
hold off
a
%% dt=20
t=[100:20:1500];
Cp=(.00000000747989.*t.^3)-(.000028903.*t.^2)+.0423484.*t+36.1064;
enthalpy_change=trapz(t,Cp)
%% dt=50
t=[100:50:1500];
Cp=(.00000000747989.*t.^3)-(.000028903.*t.^2)+.0423484.*t+36.1064;
enthalpy_change=trapz(t,Cp)
%% dt=100
t=[100:100:1500];
Cp=(.00000000747989.*t.^3)-(.000028903.*t.^2)+.0423484.*t+36.1064;
enthalpy_change=trapz(t,Cp)
%% dt=200
t=[100:200:1500];
Cp=(.00000000747989.*t.^3)-(.000028903.*t.^2)+.0423484.*t+36.1064;
enthalpy_change=trapz(t,Cp)

サインインしてこの質問に回答する。

回答 (2 件)

Torsten
Torsten 2022 年 10 月 17 日
編集済み: Torsten 2022 年 10 月 17 日
Ran in:
Cp = @(T) .00000000747989.*T.^3-.000028903.*T.^2+.0423484.*T+36.1064;
H = @(T) 1/4*.00000000747989.*T.^4-1/3*.000028903.*T.^3+1/2*.0423484.*T.^2+36.1064*T;
deltaT = [10 20 50 100 200];
Tstart = 100;
Tend = 1500;
deltaH_true = H(Tend)-H(Tstart);
for i = 1:numel(deltaT)
dT = deltaT(i);
T = Tstart:dT:Tend;
deltaH(i) = trapz(T,Cp(T));
error(i) = abs((deltaH(i)-deltaH_true)/deltaH_true);
end
format long
error
error = 1×5
0.000003409811578 0.000013639246313 0.000085245289456 0.000340981157826 0.001363924631303
p = polyfit(log10(deltaT),log10(error),1)
p = 1×2
1.999999999992101 -7.467269618875773
Walter Roberson
Walter Roberson 2022 年 10 月 17 日
h=h*10;
tt=100:h:1500;
CcPp=(.00000000747989.*tt.^3)-(.000028903.*tt.^2)+.0423484.*tt+36.1064;
aa=trapz(tt,CcPp);
What is happening is that your increment gets large enough that eventually tt becomes a scalar. But when you pass a scalar to the second parameter of trapz then it is interpreted as a dimension number rather than as a coordinate. (Note that trapz() of a scalar is 0)

カテゴリ

Help Center および File ExchangeNumerical Integration and Differentiation についてさらに検索

タグ

製品


リリース

R2021b

Community Treasure Hunt

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

Start Hunting!

Translated by