Add accelerometer and geophone subsystems
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mat/accelerometer_z_axis.mat
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mat/accelerometer_z_axis.mat
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mat/geophone_z_axis.mat
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mat/geophone_z_axis.mat
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@ -764,6 +764,70 @@ We then compute the corresponding rotation matrix.
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s(3)*s(1)*(1-cos(theta)) - s(2)*sin(theta), s(3)*s(2)*(1-cos(theta)) + s(1)*sin(theta), s(3)^2*(1-cos(theta)) + cos(theta)];
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#+end_src
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* Other Elements
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** Z-Axis Geophone
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:PROPERTIES:
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:header-args:matlab+: :tangle ./src/initializeZAxisGeophone.m
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:header-args:matlab+: :comments none :mkdirp yes :eval no
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:END:
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<<sec:initializeZAxisGeophone>>
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This Matlab function is accessible [[file:../src/initializeZAxisGeophone.m][here]].
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#+begin_src matlab
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function [geophone] = initializeZAxisGeophone(args)
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arguments
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args.mass (1,1) double {mustBeNumeric, mustBePositive} = 1e-3 % [kg]
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args.freq (1,1) double {mustBeNumeric, mustBePositive} = 1 % [Hz]
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end
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%%
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geophone.m = args.mass;
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%% The Stiffness is set to have the damping resonance frequency
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geophone.k = geophone.m * (2*pi*args.freq)^2;
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%% We set the damping value to have critical damping
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geophone.c = 2*sqrt(geophone.m * geophone.k);
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%% Save
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save('./mat/geophone_z_axis.mat', 'geophone');
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end
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#+end_src
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** Z-Axis Accelerometer
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:PROPERTIES:
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:header-args:matlab+: :tangle ./src/initializeZAxisAccelerometer.m
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:header-args:matlab+: :comments none :mkdirp yes :eval no
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:END:
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<<sec:initializeZAxisAccelerometer>>
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This Matlab function is accessible [[file:../src/initializeZAxisAccelerometer.m][here]].
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#+begin_src matlab
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function [accelerometer] = initializeZAxisAccelerometer(args)
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arguments
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args.mass (1,1) double {mustBeNumeric, mustBePositive} = 1e-3 % [kg]
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args.freq (1,1) double {mustBeNumeric, mustBePositive} = 5e3 % [Hz]
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end
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%%
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accelerometer.m = args.mass;
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%% The Stiffness is set to have the damping resonance frequency
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accelerometer.k = accelerometer.m * (2*pi*args.freq)^2;
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%% We set the damping value to have critical damping
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accelerometer.c = 2*sqrt(accelerometer.m * accelerometer.k);
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%% Gain correction of the accelerometer to have a unity gain until the resonance
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accelerometer.gain = -accelerometer.k/accelerometer.m;
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%% Save
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save('./mat/accelerometer_z_axis.mat', 'accelerometer');
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end
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#+end_src
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* OLD :noexport:
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** Define the Height of the Platform :noexport:
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#+begin_src matlab
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simscape_subsystems/z_axis_accelerometer.slx
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simscape_subsystems/z_axis_accelerometer.slx
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simscape_subsystems/z_axis_geophone.slx
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simscape_subsystems/z_axis_geophone.slx
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21
src/initializeZAxisAccelerometer.m
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src/initializeZAxisAccelerometer.m
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@ -0,0 +1,21 @@
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function [accelerometer] = initializeZAxisAccelerometer(args)
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arguments
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args.mass (1,1) double {mustBeNumeric, mustBePositive} = 1e-3 % [kg]
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args.freq (1,1) double {mustBeNumeric, mustBePositive} = 5e3 % [Hz]
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end
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%%
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accelerometer.m = args.mass;
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%% The Stiffness is set to have the damping resonance frequency
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accelerometer.k = accelerometer.m * (2*pi*args.freq)^2;
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%% We set the damping value to have critical damping
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accelerometer.c = 2*sqrt(accelerometer.m * accelerometer.k);
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%% Gain correction of the accelerometer to have a unity gain until the resonance
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accelerometer.gain = -accelerometer.k/accelerometer.m;
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%% Save
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save('./mat/accelerometer_z_axis.mat', 'accelerometer');
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end
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src/initializeZAxisGeophone.m
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src/initializeZAxisGeophone.m
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@ -0,0 +1,18 @@
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function [geophone] = initializeZAxisGeophone(args)
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arguments
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args.mass (1,1) double {mustBeNumeric, mustBePositive} = 1e-3 % [kg]
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args.freq (1,1) double {mustBeNumeric, mustBePositive} = 1 % [Hz]
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end
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%%
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geophone.m = args.mass;
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%% The Stiffness is set to have the damping resonance frequency
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geophone.k = geophone.m * (2*pi*args.freq)^2;
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%% We set the damping value to have critical damping
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geophone.c = 2*sqrt(geophone.m * geophone.k);
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%% Save
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save('./mat/geophone_z_axis.mat', 'geophone');
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end
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