Change the way simulation is initialized.
Add script to define input vectors. Add script to plot curves.
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13
Analysis/analyze_setpoint.m
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13
Analysis/analyze_setpoint.m
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%%
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Dmeas.Data = Dmeas.Data - Dmeas.Data(1, :);
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%%
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figure;
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hold on;
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plot(r_setpoint.Time, r_setpoint.Data(:, 2));
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plot(Dmeas.Time, Dmeas.Data(:, 2));
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legend({'Setpoint', 'Ty'})
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hold off;
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xlabel('Time [s]'); ylabel('Displacement [m]');
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exportFig('set_time_translations', 'normal-normal')
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BIN
Assemblage.slx
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Assemblage.slx
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init_data.m
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init_data.m
@ -1,13 +1,6 @@
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%%
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run init_solidworks_data.m
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%% Solver Configuration
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Ts = 1e-4; % Sampling time [s]
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Tsim = 5; % Simulation time [s]
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%% Gravity
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g = 0 ; % Gravity along the z axis [m/s^2]
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%% Ground
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ground = struct();
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@ -98,13 +91,6 @@ sample.mass = 50; % Sample mass [kg]
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sample.offset = 0; % Decentralization offset [mm]
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sample.color = [0.9 0.1 0.1]; % Sample color
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%% Signals Applied to the system
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% load('./mat/inputs_ground_motion.mat');
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load('./mat/inputs_spindle.mat');
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%%
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load('./mat/controller.mat', 'K');
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%%
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function element = updateDamping(element)
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field = fieldnames(element.k);
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@ -1,8 +1,19 @@
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%%
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run init_sim_configuration.m
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run init_data.m
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%%
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time_vector = 0:Ts:Tsim;
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%% Set point [m, rad]
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setpoint = zeros(length(time_vector), 6);
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setpoint(ceil(1/Ts):end, 2) = 1e-6;
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r_setpoint = timeseries(setpoint, time_vector);
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%% Ground motion
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r_Gm = timeseries(zeros(length(time_vector), 3), time_vector);
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xg = zeros(length(time_vector), 3);
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% Wxg = 1e-5*(s/(2e2)^(1/3) + 2*pi*0.1)^3/(s + 2*pi*0.1)^3;
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% Wxg = Wxg*(s/(0.5e6)^(1/3) + 2*pi*10)^3/(s + 2*pi*10)^3;
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@ -12,9 +23,9 @@ r_Gm = timeseries(zeros(length(time_vector), 3), time_vector);
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% xg(:, 1) = lsim(Wxg, xg(:, 1), time_vector);
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% xg(:, 2) = lsim(Wxg, xg(:, 2), time_vector);
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% xg(:, 3) = lsim(Wxg, xg(:, 3), time_vector);
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%
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% r_Gm = timeseries(xg, time_vector);
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%
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r_Gm = timeseries(xg, time_vector);
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% figure;
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% plot(r_Gm)
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@ -25,9 +36,9 @@ r_Ty = timeseries(zeros(length(time_vector), 1), time_vector);
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r_My = timeseries(zeros(length(time_vector), 1), time_vector);
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%% Spindle
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% r_Mz = timeseries(zeros(length(time_vector), 1), time_vector);
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r_Mz = timeseries(zeros(length(time_vector), 1), time_vector);
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r_Mz = timeseries(360*time_vector*rz.k.rot', time_vector);
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% r_Mz = timeseries(360*time_vector*rz.k.rot', time_vector);
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%% Micro Hexapod
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r_u_hexa = timeseries(zeros(length(time_vector), 6), time_vector);
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@ -39,4 +50,4 @@ r_mass = timeseries(zeros(length(time_vector), 2), time_vector);
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r_n_hexa = timeseries(zeros(length(time_vector), 6), time_vector);
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%%
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save('./mat/inputs_spindle.mat', 'r_Gm', 'r_Ty', 'r_My', 'r_u_hexa', 'r_mass', 'r_n_hexa');
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save('./mat/inputs_setpoint.mat', 'r_setpoint', 'r_Gm', 'r_Ty', 'r_My', 'r_u_hexa', 'r_mass', 'r_n_hexa');
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6
init_sim_configuration.m
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6
init_sim_configuration.m
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%% Solver Configuration
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Ts = 1e-4; % Sampling time [s]
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Tsim = 5; % Simulation time [s]
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%% Gravity
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g = 0 ; % Gravity along the z axis [m/s^2]
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11
init_simulation.m
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11
init_simulation.m
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%%
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run init_sim_configuration.m
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run init_data.m
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%% Signals Applied to the system
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% load('./mat/inputs_ground_motion.mat');
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% load('./mat/inputs_spindle.mat');
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load('./mat/inputs_setpoint.mat');
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%%
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load('./mat/controller.mat', 'K');
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mat/inputs_setpoint.mat
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mat/inputs_setpoint.mat
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