If you output "count" for the numerical solution, it's about 14000.
Now if you measure the time for one symbolic iteration in the while loop (approximately 1.6 seconds) and multiply this value by 14000 - I guess you will have to wait quite a long time for a result:
1.6*14000/3600
6.2 hours. Wow! So stick to the numerical solution.
Your code would be much faster if you solved the nonlinear equation for L using "fzero", e.g.
L0 = 6.0;
L = fzero(@fun,L0)
function res = fun(L)
B = [7.20; 7.85; 7.98; 7.10; 7.30; 6.90; 8.01; 7.30; 7.42; 7.16];
C = [0.00142; 0.00194; 0.00482; 0.00321; 0.00210; 0.00178; 0.00212; 0.00350; 0.00267; 0.00390];
D = [0.0000001; 0.0000002; 0.0000003; 0.0000001; 0.0000002; 0.0000003; 0.0000001; 0.0000002; 0.0000003; 0.0000001];
Pmin =[150; 100; 50; 50; 100; 100; 100; 100; 100; 100];
Pmax =[600; 400; 200; 200; 350; 500; 300; 300; 300; 300];
Pr = 2500;
c=B-L;
b=2*C;
a=3*D;
delta=b.^2-(4*a.*c);
P=(-b+sqrt(delta))./(2*a);
P(P<Pmin) = Pmin(P<Pmin);
P(P>Pmax) = Pmax(P>Pmax);
Pt=sum(P);
res=Pr-Pt;
end
