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3 Commits
c565dab3ad
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92526e71b2
Author | SHA1 | Date | |
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92526e71b2 | |||
b13b3b4377 | |||
c568b95cf2 |
@ -19,9 +19,11 @@
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#include <reflow-controller/calibration.h>
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#include <reflow-controller/adc-meas.h>
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#include <stm-periph/uart.h>
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#include <helper-macros/helper-macros.h>
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#include <arm_math.h>
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#include <stdlib.h>
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#include <float.h>
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void calibration_calculate(float low_measured, float low_setpoint, float high_measured, float high_setpoint,
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float *sens_deviation, float *sens_corrected_offset)
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@ -44,23 +46,24 @@ void calibration_calculate(float low_measured, float low_setpoint, float high_me
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int calibration_acquire_data(float *mu, float *sigma, uint32_t count)
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int calibration_acquire_data(float *mu, float *max_dev, uint32_t count)
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{
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int status;
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float *stream_mem;
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float min_val = FLT_MAX;
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float max_val = -FLT_MAX;
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uint32_t i;
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int ret_val = 0;
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static volatile int flag = 0;
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if (!mu || !sigma || !count)
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if (!mu || !max_dev || !count)
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return -1000;
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stream_mem = (float *)calloc(count, sizeof(float));
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if (!stream_mem)
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return -2;
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/* Clear errors of PT1000 reading */
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adc_pt1000_clear_error();
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status = adc_pt1000_stream_raw_value_to_memory(stream_mem, count, &flag);
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if (status)
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return status;
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@ -70,7 +73,8 @@ int calibration_acquire_data(float *mu, float *sigma, uint32_t count)
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if (flag != 1) {
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/* Error */
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return -1;
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ret_val = -1;
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goto ret_free_mem;
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}
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/* Convert the stream memory to Ohm readings */
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@ -79,10 +83,87 @@ int calibration_acquire_data(float *mu, float *sigma, uint32_t count)
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/* Do not compute std-deviation. Too imprecise
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* arm_std_f32(stream_mem, count, sigma);
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*/
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*sigma = 0;
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arm_mean_f32(stream_mem, count, mu);
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/* Find min and max values of array */
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for (i = 0U; i < count; i++) {
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min_val = MIN(min_val, stream_mem[i]);
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max_val = MAX(max_val, stream_mem[i]);
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}
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/* Compute maximum deviation range */
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*max_dev = max_val - min_val;
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ret_free_mem:
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free(stream_mem);
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return ret_val;
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}
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static void wait_for_uart_enter()
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{
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int enter_received = 0;
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const char *recv_data;
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size_t recv_len;
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size_t iter;
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int uart_recv_status;
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do {
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uart_recv_status = uart_receive_data_with_dma(&recv_data, &recv_len);
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if (uart_recv_status >= 1) {
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for (iter = 0; iter < recv_len; iter++) {
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if (recv_data[iter] == '\n' || recv_data[iter] == '\r')
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enter_received = 1;
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}
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}
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} while (enter_received == 0);
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}
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int calibration_sequence_shell_cmd(shellmatta_handle_t shell)
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{
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float mu, mu2, dev, dev2;
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float sens_dev, offset;
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/* Clear errors of PT1000 reading */
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adc_pt1000_clear_error();
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shellmatta_printf(shell, "Starting calibration: Insert 1000 Ohm calibration resistor and press ENTER\r\n");
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wait_for_uart_enter();
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shellmatta_printf(shell, "Measurement...\r\n");
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/* Clear errors of PT1000 reading */
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adc_pt1000_clear_error();
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calibration_acquire_data(&mu, &dev, 512UL);
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shellmatta_printf(shell, "R=%.2f, Noise peak-peak: %.2f\r\n", mu, dev);
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if (adc_pt1000_check_error() != ADC_PT1000_NO_ERR) {
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shellmatta_printf(shell, "Error in resistance measurement: %d", adc_pt1000_check_error());
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return -1;
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}
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/* Measure 2nd calibration point */
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shellmatta_printf(shell, "Insert 2000 Ohm calibration resistor and press ENTER\r\n");
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wait_for_uart_enter();
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shellmatta_printf(shell, "Measurement...\r\n");
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/* Clear errors of PT1000 reading */
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adc_pt1000_clear_error();
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calibration_acquire_data(&mu2, &dev2, 512UL);
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shellmatta_printf(shell, "R=%.2f, Noise peak-peak: %.2f\r\n", mu2, dev2);
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if (adc_pt1000_check_error() != ADC_PT1000_NO_ERR) {
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shellmatta_printf(shell, "Error in resistance measurement: %d", adc_pt1000_check_error());
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return -2;
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}
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/* Check noise values */
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if (dev > CALIBRATION_MAX_PEAK_PEAK_NOISE_OHM || dev2 > CALIBRATION_MAX_PEAK_PEAK_NOISE_OHM) {
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shellmatta_printf(shell, "Calibration failed! Too much noise. Check you're hardware.\r\n");
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return -3;
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}
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/* Calculate calibration */
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calibration_calculate(mu, 1000.0f, mu2, 2000.0f, &sens_dev, &offset);
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shellmatta_printf(shell, "Calibration done:\r\n\tSENS_DEVIATION: %.4f\r\n\tOFFSET_CORR: %.2f\r\n", sens_dev, offset);
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adc_pt1000_set_resistance_calibration(offset, sens_dev, true);
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return 0;
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}
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72
stm-firmware/create-temp-lookup-table.py
Executable file
72
stm-firmware/create-temp-lookup-table.py
Executable file
@ -0,0 +1,72 @@
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#!/usr/bin/env python3
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import os
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import sys
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import numpy as np
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license_header = """/* Reflow Oven Controller
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*
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* Copyright (C) 2020 Mario Hüttel <mario.huettel@gmx.net>
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*
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* This file is part of the reflow Oven Controller Project.
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*
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* The reflow oven controller is free software: you can redistribute it and/or modify
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* it under the terms of the GNU General Public License version 2 as
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* published by the Free Software Foundation.
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*
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* GDSII-Converter is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with GDSII-Converter. If not, see <http://www.gnu.org/licenses/>.
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*/
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"""
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hfile="temp-converter-data.h"
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project_dir = os.path.dirname(os.path.realpath(__file__))
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include_prefix = 'reflow-controller'
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module_include_dir = os.path.join(project_dir, os.path.join('include', include_prefix))
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include_file = os.path.join(module_include_dir, hfile)
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h_define = '__'+hfile.replace('.', '_').replace('-', '_').upper()+'__'
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min_res = 1000
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max_res = 2200
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res_step = 20
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R_zero = 1000.0
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A = 3.9083E-3
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B = -5.7750E-7
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def calc_temp(resistance):
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temp = (-R_zero * A + np.sqrt(R_zero*R_zero * A * A - 4* R_zero * B * (R_zero - resistance)))/(2*R_zero*B)
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return temp
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if ((max_res-min_res) % res_step) != 0:
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print('Resistance range must be a multiple of res_step!')
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sys.exit(-1)
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print('Calculating temperature table for %f Ohm to %f Ohm in %f Ohm steps' % (min_res, max_res, res_step))
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temp_array = ''
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for res in range(min_res, max_res+res_step, res_step):
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temp = calc_temp(res)
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temp_array = temp_array+ ',%.2ff' % temp
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temp_array = temp_array[1:]
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with open(include_file, 'x') as f:
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f.write(license_header)
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f.write('\n')
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f.write('#ifndef %s\n' % h_define)
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f.write('#define %s\n\n' % h_define)
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f.write('#define TEMP_CONVERSION_ARRAY_DATA %s\n' % temp_array)
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f.write('#define TEMP_CONVERSION_MIN_RES %d\n' % min_res)
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f.write('#define TEMP_CONVERSION_MAX_RES %d\n' % max_res)
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f.write('#define TEMP_CONVERSION_RES_STEP %d\n' % res_step)
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f.write('\n')
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f.write('#endif /* %s */\n' % h_define)
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28
stm-firmware/include/reflow-controller/temp-converter-data.h
Normal file
28
stm-firmware/include/reflow-controller/temp-converter-data.h
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@ -0,0 +1,28 @@
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/* Reflow Oven Controller
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*
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* Copyright (C) 2020 Mario Hüttel <mario.huettel@gmx.net>
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*
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* This file is part of the reflow Oven Controller Project.
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*
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* The reflow oven controller is free software: you can redistribute it and/or modify
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* it under the terms of the GNU General Public License version 2 as
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* published by the Free Software Foundation.
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*
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* GDSII-Converter is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with GDSII-Converter. If not, see <http://www.gnu.org/licenses/>.
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*/
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#ifndef __TEMP_CONVERTER_DATA_H__
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#define __TEMP_CONVERTER_DATA_H__
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#define TEMP_CONVERSION_ARRAY_DATA -0.00f,5.12f,10.25f,15.39f,20.53f,25.68f,30.84f,36.01f,41.19f,46.37f,51.57f,56.77f,61.98f,67.19f,72.42f,77.65f,82.89f,88.14f,93.40f,98.67f,103.94f,109.23f,114.52f,119.82f,125.13f,130.45f,135.77f,141.11f,146.45f,151.81f,157.17f,162.54f,167.92f,173.31f,178.71f,184.11f,189.53f,194.96f,200.39f,205.84f,211.29f,216.75f,222.22f,227.71f,233.20f,238.70f,244.21f,249.73f,255.26f,260.80f,266.35f,271.91f,277.48f,283.06f,288.65f,294.25f,299.86f,305.48f,311.11f,316.75f,322.40f
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#define TEMP_CONVERSION_MIN_RES 1000
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#define TEMP_CONVERSION_MAX_RES 2200
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#define TEMP_CONVERSION_RES_STEP 20
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#endif /* __TEMP_CONVERTER_DATA_H__ */
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