how is it possible to solve below matlab codes problem?

1 vue (au cours des 30 derniers jours)
Mamad Mamadi
Mamad Mamadi le 14 Jan 2020
Modifié(e) : Mamad Mamadi le 15 Jan 2020
Hi everybody could you please help me in these codes?
i=1:8784 %one year (hours)
if Ppv_N(i,1) > PLoad(i,1);
Pch(1,i)=(Pbat*(1-sigma))+(Ppv_N(i,1)-(PLoad(i,1))/eta_i)*eta_b;
a=Ppv_N(i,1) - PLoad(i,1)
end
else Ppv_N(i,1) < PLoad(i,1)
Pdis(1,i)=(Pbat*(1-sigma))-((PLoad(i,1)/eta_i)-Ppv_N(i,1));
now after finding Pch and Pdis from 1 to 8784 hours, i want to write another code or loop to solve 'b' between 1:8784 , for example ;
when (Pch & Pdis)=0 %at the same time when both Pch and Pdis become zero, then
b=PLoad(i,1) - Ppv_N(i,1)
  • which i mean when Pch and Pdis at the same time became zero then use b=PLoad(i,1) - Ppv_N(i,1)
thanks

Réponses (1)

David Hill
David Hill le 14 Jan 2020
I was somewhat confused with your question. Hopefully, this helps:
for i=1:8784 %one year (hours)
if Ppv_N(i,1) > PLoad(i,1);
Pch(1,i)=(Pbat*(1-sigma))+(Ppv_N(i,1)-(PLoad(i,1))/eta_i)*eta_b;
a=Ppv_N(i,1) - PLoad(i,1);
elseif Ppv_N(i,1) < PLoad(i,1)
Pdis(1,i)=(Pbat*(1-sigma))-((PLoad(i,1)/eta_i)-Ppv_N(i,1));
end
end
b=[];
for i=1:8784
if Pch(1,i)==Pdis(1,i)
b=[b,PLoad(i,1) - Ppv_N(i,1)];%not sure if you will have more than one occurrance
end
end
  3 commentaires
David Hill
David Hill le 15 Jan 2020
Is that not that what I did?
Mamad Mamadi
Mamad Mamadi le 15 Jan 2020
Modifié(e) : Mamad Mamadi le 15 Jan 2020
i ran your codes but didnt work it showed an error.
Attempted to access Pch(1,1); index out of bounds
because size(Pch)=[0,0].
i dont know how to solve this error.

Connectez-vous pour commenter.

Catégories

En savoir plus sur MATLAB dans Help Center et File Exchange

Community Treasure Hunt

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

Start Hunting!

Translated by