Solving ODE45 with input vectors
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Jestoni Orcejola
on 31 Jul 2020
Commented: Alan Stevens
on 10 Sep 2020
I would like to elvaluate the speed of a float as it travels through the water column with depth/time dependent seawater density. The vector rho is the density profile of the sea water from 1000m to 0m. I would like o pass it through the function to evaluate speed.
clear;
close ;
%% m files for obtaining sea water denstiy profile
Sea_Water_Density_s_t_p;
Float_Velocity_Calculation;
tspan=[0 1 1000];
y0 =[1000,0,1030];
rho=descending_rho_profile;
[t,y]=ode45(@(t,y) f(t,y,rho),tspan,y0);
hold off
plot(t,y(:,2))
grid on
Here is my function:
function speed=f(t,v,rho)
Cd=.16;
A=.0613;
m=82.25;
V=0.0809815;
%rho=1030;
g=9.81;
speed=[v(2); (rho*V*g/(m+V*rho))-(m*g/(m+V*rho))-((1/(2*m+V*rho)*Cd*A.*rho.*v(2).^2))];
end
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Accepted Answer
Alan Stevens
on 31 Jul 2020
I assume this represents some object sinking through changing desity sea water. The following shows how you might do it, though you will need to replace my simple linear density change with whatever you think is appropriate.
tspan=0:1000;
y0 =[0 0];
[t,y]=ode45(@f,tspan,y0);
subplot(2,1,1)
plot(t,y(:,1))
grid on
xlabel('time'),ylabel('depth')
subplot(2,1,2)
plot(t,y(:,2))
grid
xlabel('time'),ylabel('speed')
function speed=f(~,y)
Cd=.16;
A=.0613;
m=82.25;
V=0.0809815;
depth = y(1);
rho = interp1([0 10000],[1030 1070], depth); %This is just a linear interpolation between two values
% Needs to be replaced with
% your own relationship.
g=9.81;
speed=[y(2); (rho*V*g/(m+V*rho))-(m*g/(m+V*rho))-((1/(2*m+V*rho)*Cd*A.*rho.*y(2).^2))];
end
6 Comments
Alan Stevens
on 10 Sep 2020
Interpolation is just that - it doesn't matter about direction! The interpolation routine will just take the depths you specify and spit out the corresponding densities.
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