Help me to solve the function

조회 수: 1 (최근 30일)
Kevin Isakayoga
Kevin Isakayoga 2020년 9월 29일
편집: Kevin Isakayoga 2020년 10월 19일
closed

이 질문에 답변하려면 로그인하십시오.

채택된 답변

KSSV
KSSV 2020년 9월 29일
clear; clc;
wc=0.4;
pc=3.16;
T=293;
rwc3s=0.586;
rwc3a=0.172;
mc=0.3;
vc=1/((wc*pc)+1);
ro=(3*vc/(4*pi))^1/3;
yg=0.25;
yw=0.15;
RH=0.88;
b1=1231;
b2=7579;
B293=0.3*10^-10;
C=5*10^7;
ER=5364;
De293=((rwc3s*100)^2.024)*(3.2*10^-14);
kr293=(8.05*(10^-10))*((rwc3s*100+rwc3a*100)^0.975);
v=2.15;
cw=((RH-0.75)/0.25)^3;
pw=1;
B=B293*exp(-b1*(1/T-1/293));
kr=kr293*exp(-ER*(1/T-1/293));
da=360;
dt=1;
Nn=(da)*(1/dt);
timestep=0;
time=1:Nn;
time2=1:Nn+1;
% r_initial=16;
r_initial=[ 0.5 2 8 16 32];
m = length(r_initial) ;
n1 = length(time) ; n2 = length(time2) ;
Alfa = zeros(m,n1) ;
RT_INC1 = zeros(m,n1) ;
RT_INC2 = zeros(m,n1) ;
for i = 1:length(r_initial)
ro_init=r_initial(i)*0.001;
L=((4*pi*(wc*pc/pw+1)/3)^(1/3))*ro_init;
for BB=1:Nn
if (BB==1)
rt_inc(1)=ro_init(1)-0.00001; %boundary condition for unhydrated
else
rt_inc(1)=ro_init(1)-0.00001;
end
rt_inc(Nn+1)=0;
if (BB==1)
Rt_inc(1)=ro_init(1)+0.00001; %boundary condition for hydrated
else
Rt_inc(1)=ro_init(1)+0.00001;
end
Rt_inc(Nn+1)=0;
end
for M=1:Nn
if Rt_inc(M)/L<=ro
Sr(M)=0;
elseif (Rt_inc(M)/L>=ro)&&(Rt_inc(M)/L<0.5)
Sr(M)=4*pi*(Rt_inc(M)/L)^2;
elseif (0.5<=Rt_inc(M)/L)&&(Rt_inc(M)/L<0.5*(2^0.5))
Sr(M)=(4*pi*(Rt_inc(M)/L)^2)-(6*pi*(1-(0.5/(Rt_inc(M)/L))));
elseif (Rt_inc(M)/L>=0.5*(2^0.5)) && (Rt_inc(M)/L<0.5*(3^0.5))
fun = @(y,x) 8*(Rt_inc(M)/L)./(sqrt((Rt_inc(M)/L)^2-(x.^2)-(y.^2)));
ymin=sqrt((Rt_inc(M)/L)^2-0.5);
xmin=@(x) sqrt((Rt_inc(M)/L)^2-0.25-x.^2);
Sr(M)=integral2(fun,ymin,0.5,xmin,0.5);
else
Sr(M)=0;
end
cst(M)=Sr(M)/(4*pi*Rt_inc(M)^2);
alfa(M)=1-(rt_inc(M)/ro_init)^3;
kd(M)=(B/(alfa(M)^1.5))+C*(Rt_inc(M)-ro_init)^4;
De(M)=De293*(log(1/alfa(M)))^1.5;
rt_inc(M+1)=rt_inc(M)-(dt*((pw*cst(M)*cw)/((yw+yg)*pc*rt_inc(M)^2))*1/((1/(kd(M)*rt_inc(M)^2))+(((1/rt_inc(M))-(1/Rt_inc(M)))/De(M))+(1/(kr*rt_inc(M)^2))));
Rt_inc(M+1)=((v-1)*((rt_inc(M)-rt_inc(M+1))/dt))*dt+Rt_inc(M);
end
Alfa(i,:) = alfa ;
RT_INC1 = Rt_inc ;
RT_INC2 = rt_inc ;
end
figure(1)
plot(time,Alfa)
legend
xlabel('Time (Hours)')
xlim([0 da])
grid on
figure (2)
plot(time2,RT_INC1,time2,RT_INC2),grid;
legend
yline(ro_init,'-','Initial Radius Particles');
legend('R_t','r_t','r_o')
%title('xx')
xlabel('Time (Hours)')
ylabel('Radius of Particles (mm)')
xlim([0 da])
grid on
  댓글 수: 3
이전 댓글 1개 표시
Kevin Isakayoga
Kevin Isakayoga 2020년 9월 29일
By the way, I think the last graph is not the same like I want, because its only depends on the final value which in this case is 32.
r_initial=[ 0.5 2 8 16 32];
Could you help me to make each of the r_initial value influence to become a graph? I already tried like this,
RT_INC1(i,:) = Rt_inc ;
RT_INC2(i,:) = rt_inc ;
the value become messy.
figure (2)
plot(time2,RT_INC1,time2,RT_INC2),grid;
yline(ro_init,'-','Initial Radius Particles');
legend('R_t','r_t','r_o')
xlabel('Time (Hours)')
ylabel('Radius of Particles (mm)')
xlim([0 da])
grid on
Thank you very much in advance! Looking forward to your reply.
KSSV
KSSV 2020년 9월 29일
It is changing.....you need to check your formula..

댓글을 달려면 로그인하십시오.

추가 답변 (0개)

카테고리

Help CenterFile Exchange에서 MATLAB에 대해 자세히 알아보기

태그

Community Treasure Hunt

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

Start Hunting!

Translated by