pd_mon: Separate ld_power calculation to a file
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@ -89,10 +89,6 @@ impl LdDrive{
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self.settings.ld_drive_current_limit = i_limit;
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self.settings.ld_drive_current_limit = i_limit;
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}
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}
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pub fn set_pd_i_to_out_pwr(&mut self, val: IToPowerUnit){
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self.settings.pd_i_to_out_pwr = val;
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}
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pub fn ld_short(&mut self) {
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pub fn ld_short(&mut self) {
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self.ctrl.ld_short_enable();
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self.ctrl.ld_short_enable();
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}
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}
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@ -101,11 +97,6 @@ impl LdDrive{
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self.ctrl.ld_short_disable();
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self.ctrl.ld_short_disable();
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}
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}
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pub fn get_ld_power_output(&mut self) -> Power {
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let pd_i = self.get_pd_i();
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pd_i * self.settings.pd_i_to_out_pwr
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}
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pub fn get_pd_i(&mut self) -> ElectricCurrent {
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pub fn get_pd_i(&mut self) -> ElectricCurrent {
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self.ctrl.get_pd_mon_v() * Settings::PD_MON_TRANSCONDUCTANCE
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self.ctrl.get_pd_mon_v() * Settings::PD_MON_TRANSCONDUCTANCE
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}
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}
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@ -1,3 +1,5 @@
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pub mod ld_ctrl;
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pub mod ld_ctrl;
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pub mod max5719;
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pub mod max5719;
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pub mod laser_diode;
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pub mod laser_diode;
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pub mod pid_state;
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pub mod pd_mon;
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@ -0,0 +1,37 @@
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use core::{f64::NAN, marker::PhantomData};
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use uom::si::{
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f64::{
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ElectricCurrent,
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Power
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},
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electric_current::microampere,
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};
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use uom::{si::{ISQ, SI, Quantity}, typenum::*};
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use miniconf::Miniconf;
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// Ampere / Watt
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pub type ResponsitivityUnit = Quantity<ISQ<N2, N1, P3, P1, Z0, Z0, Z0>, SI<f64>, f64>;
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/// Steinhart-Hart equation Photodiode
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#[derive(Clone, Debug, PartialEq, Miniconf)]
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pub struct Parameters {
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/// Responsitivity
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pub responsitivity: ResponsitivityUnit,
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pub i_dark: ElectricCurrent,
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}
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impl Parameters {
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pub fn get_ld_output_power(&self, i: ElectricCurrent) -> Power {
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let ld_power = (i - self.i_dark) / self.responsitivity;
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ld_power
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}
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}
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impl Default for Parameters {
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fn default() -> Self {
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Parameters {
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responsitivity: ResponsitivityUnit {dimension: PhantomData, units: PhantomData, value: NAN},
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i_dark: ElectricCurrent::new::<microampere>(0.0),
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}
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}
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}
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