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lecture #31

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6 changes: 6 additions & 0 deletions lecture_23/.ipynb_checkpoints/lecture_23-checkpoint.ipynb
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{
"cells": [],
"metadata": {},
"nbformat": 4,
"nbformat_minor": 2
}
32 changes: 32 additions & 0 deletions lecture_23/boussinesq_lookup.m
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function sigma_z=boussinesq_lookup(q,a,b,z)
% function that determines stress under corner of an a by b rectangular platform
% z-meters below the platform. The calculated solutions are in the fmn data
% m=fmn(:,1)
% in column 2, fmn(:,2), n=1.2
% in column 3, fmn(:,2), n=1.4
% in column 4, fmn(:,2), n=1.6

fmn= [0.1,0.02926,0.03007,0.03058
0.2,0.05733,0.05894,0.05994
0.3,0.08323,0.08561,0.08709
0.4,0.10631,0.10941,0.11135
0.5,0.12626,0.13003,0.13241
0.6,0.14309,0.14749,0.15027
0.7,0.15703,0.16199,0.16515
0.8,0.16843,0.17389,0.17739];

m=a/z;
n=b/z;
if n < 1.3
f=fmn(:,2);
elseif n > 1.5
f=fmn(:,4);
else
f=fmn(:,3);
end
[~,i_fit]=sort(abs(m-fmn(:,1)));
x=fmn(i_fit(1:4),1);
y=f(i_fit(1:4));
f_out = Newtint(x,y,m);
sigma_z=q*f_out;
end
63 changes: 63 additions & 0 deletions lecture_23/coriolis.m
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function [t,r] = coriolis(L)
% In class we ran this function using L=41.8084 (the latitude of Storrs, CT). This
% function takes the latitude (L) in degrees and mass (m) and calculates the trajectory
% of a particle with a 100 N load directed North. The initial conditions are set as L
% (in radians) * radius of Earth, 0 m/s initial x-velocity, 0 m E-W position (add to
% -72.261319 degrees for longitude of Storrs), 0 m/s initial E-W velocity, 10 m initial
% altitude, 0 m/s initial z-velocity [L*pi/180*R 0 0 0 10 0], the force is given as 100
% N North, 0 West and 9.81*m z (neutrally buoyant) [100 0 9.81*m]
%
% the output of myode is ddr=[dx/dt d2x/dt2 dy/dt d2y/dt2 dz/dt d2z/dt2]' and the input
% to myode is r=[x dx/dt y dy/dt z dz/dt]'
% using ode23 solver solves for r as a function of time, here we solve from 0 to 200 s
% r(:,1) = x (the north-south position from 0 to 200 s)
% r(:,3) = x (the West-East position from 0 to 200 s)
% r(:,5) = x (the altitude from 0 to 200 s)

% define ordinary differential equation in terms of 6 first order ODE's
function ddr = myode(t,r,R,L)
g=9.81; % acceleration due to gravity m/s^2
l=10; % 10 m long cable
we=2*pi/23.934/3600; % rotation of Earth (each day is 23.934 hours long)
ddr=zeros(4,1); % initialize ddr

ddr(1) = r(2); % x North(+) South (-)
ddr(2) = 2*we*r(4).*sin(L)-g/l*r(1); % dx/dt
ddr(3) = r(4); % y West (+) East (-)
ddr(4) = -2*we*(r(2).*sin(L))-g/l*r(3); % dy/dt
end

R=6378.1e3; % radius of Earth in m
L=L*pi/180;
[t,r]=ode45(@(t,r) myode(t,r,R,L),[0 30000], [1 0 0 0 ]);
figure()
z=-sqrt(10^2-r(:,1).^2-r(:,3).^2);
figure(1)
we=2*pi/23.934/3600; % rotation of Earth (each day is 23.934 hours long)

plot(t,tan(we*sin(L)*t),t,-r(:,3)./r(:,1),'.')
xlabel('time (s)','Fontsize',18)
ylabel('-y/x','Fontsize',18)
% Plot Coriolis effect path
figure(2)
title('Path at 0 hr, 4.1 hrs, 8.3 hrs','Fontsize',24)
N=length(t);
i1=[1:100]; i2=[floor(N/2):floor(N/2)+100]; i3=[N-100:N];
plot3(r(i1,1),r(i1,3),z(i1))
hold on
plot3(r(i2,1),r(i2,3),z(i2),'k-')
plot3(r(i3,1),r(i3,3),z(i3),'g-')
xlabel('X (m)','Fontsize',18)
ylabel('Y (m)','Fontsize',18)
zlabel('Z (m)','Fontsize',18)
title('Coriolis acceleration Foucalt Pendulum')

% figure()
% % Plot Eotvos effect for deviation upwards
% plot(1e-3*(r(:,1)-r(1,1)),r(:,5))
% xlabel('North (+km)','Fontsize',18)
% ylabel('Altitude (+m)','Fontsize',18)
% title('Eotvos effect with north force')
%
end

29 changes: 29 additions & 0 deletions lecture_23/eulode.m
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function [t,y] = eulode(dydt,tspan,y0,h,varargin)
% eulode: Euler ODE solver
% [t,y] = eulode(dydt,tspan,y0,h,p1,p2,...):
% uses Euler's method to integrate an ODE
% input:
% dydt = name of the M-file that evaluates the ODE
% tspan = [ti, tf] where ti and tf = initial and
% final values of independent variable
% y0 = initial value of dependent variable
% h = step size
% p1,p2,... = additional parameters used by dydt
% output:
% t = vector of independent variable
% y = vector of solution for dependent variable
if nargin<4,error('at least 4 input arguments required'),end
ti = tspan(1);tf = tspan(2);
if ~(tf>ti),error('upper limit must be greater than lower'),end
t = (ti:h:tf)'; n = length(t);
% if necessary, add an additional value of t
% so that range goes from t = ti to tf
if t(n)<tf
t(n+1) = tf;
n = n+1;
end
y=zeros(n,length(y0));
y(1,:)=y0;
for i = 1:n-1 %implement Euler's method
y(i+1,:) = y(i,:) + dydt(t(i),y(i,:),varargin{:})'*(t(i+1)-t(i));
end
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