Projektarbeit Datalogger
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Teensy4.1_Datalogger new.ino 7.8KB

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  1. // Visual Micro is in vMicro>General>Tutorial Mode
  2. //
  3. /*
  4. Name: Teensy4.1_Datalogger new.ino
  5. Created: 03.05.2022 12:04:32
  6. Author: GAMINGMASHEEN\Julian Graf
  7. */
  8. #include <SdFat.h>
  9. #include <TimeLib.h>
  10. #include <Bounce.h>
  11. #define SD_FAT_TYPE 3
  12. #ifndef SDCARD_SS_PIN
  13. const uint8_t SD_CS_PIN = SS;
  14. #else // SDCARD_SS_PIN
  15. // Assume built-in SD is used.
  16. const uint8_t SD_CS_PIN = SDCARD_SS_PIN;
  17. #endif // SDCARD_SS_PIN
  18. #if HAS_SDIO_CLASS
  19. #define SD_CONFIG SdioConfig(FIFO_SDIO)
  20. #elif ENABLE_DEDICATED_SPI
  21. #define SD_CONFIG SdSpiConfig(SD_CS_PIN, DEDICATED_SPI)
  22. #else // HAS_SDIO_CLASS
  23. #define SD_CONFIG SdSpiConfig(SD_CS_PIN, SHARED_SPI)
  24. #endif // HAS_SDIO_CLASS
  25. #if SD_FAT_TYPE == 0
  26. SdFat sd;
  27. File file;
  28. #elif SD_FAT_TYPE == 1
  29. SdFat32 sd;
  30. File32 file;
  31. #elif SD_FAT_TYPE == 2
  32. SdExFat sd;
  33. ExFile file;
  34. #elif SD_FAT_TYPE == 3
  35. SdFs sd;
  36. FsFile file;
  37. #else // SD_FAT_TYPE
  38. #error Invalid SD_FAT_TYPE
  39. #endif // SD_FAT_TYPE
  40. // Define User Types below here or use a .h file
  41. //
  42. const char software_name[] = "Software: Teensy_datalog V.2";
  43. const int min_voltage_batterie = 13;
  44. const int fixed_resistor_temperatur = 500;
  45. const int power_Temp_sensor = 34, power_Windfahne = 36, LED_Fail = 24,
  46. LED_Write = 5, LED_Normal = 6, LED_Batterie = 7,
  47. taster_manuell_speichern = 28, Windfahne = 20, T_sensor_input = 17, Batterie_input = 38;
  48. int last_second, last_minute, last_hour;
  49. struct calculations {
  50. private:
  51. float summ;
  52. float square_summ;
  53. float cubic_summ;
  54. public:
  55. void calculate(float speed_per_second[60], int amount_saved) {
  56. summ = 0;
  57. square_summ = 0;
  58. cubic_summ = 0;
  59. for (int i = 0; i < amount_saved; i++) {
  60. summ = summ + speed_per_second[i];
  61. square_summ = square_summ + pow(speed_per_second[i], 2);
  62. cubic_summ = cubic_summ + pow(speed_per_second[i], 3);
  63. }
  64. arithmetic_mean = summ / float(amount_saved);
  65. square_mean = pow((square_summ / float(amount_saved)), (1 / 2.0));
  66. cubic_mean = pow((cubic_mean / float(amount_saved)), (1 / 3.0));
  67. summ = 0;
  68. square_summ = 0;
  69. cubic_summ = 0;
  70. for (int i = 0; i < amount_saved; i++) {
  71. summ = summ + pow((speed_per_second[i] - arithmetic_mean), 2);
  72. square_summ = square_summ + pow((speed_per_second[i] - square_mean), 2);
  73. cubic_summ = cubic_summ + pow((speed_per_second[i] - cubic_mean), 2);
  74. speed_min = min(speed_min, speed_per_second[i]);
  75. speed_max = max(speed_max, speed_per_second[i]);
  76. }
  77. arithmetic_deviation = pow((summ / float(amount_saved - 1)), (1 / 2.0));
  78. square_deviation = pow((square_summ / float(amount_saved - 1)), (1 / 2.0));
  79. cubic_deviation = pow((cubic_summ / float(amount_saved - 1)), (1 / 2.0));
  80. seconds_skipped = 60 - amount_saved;
  81. }
  82. float arithmetic_mean;
  83. float arithmetic_deviation;
  84. float square_mean;
  85. float square_deviation;
  86. float cubic_mean;
  87. float cubic_deviation;
  88. float speed_min;
  89. float speed_max;
  90. int seconds_skipped;
  91. };
  92. struct anemomenter_maessurement {
  93. public:
  94. void setup(int pin) {
  95. this->reed_contact = Bounce(pin, 10);
  96. }
  97. void meassure() {
  98. if (reed_contact.update() && reed_contact.fallingEdge()) {
  99. count_per_second++;
  100. }
  101. }
  102. void save_wind_speed() {
  103. wind_speed_per_second[saved_seconds] = 0.4 * count_per_second;
  104. saved_seconds++;
  105. }
  106. void calculate() {
  107. values[saved_minutes].calculate(wind_speed_per_second, saved_seconds);
  108. saved_seconds = 0;
  109. saved_minutes++;
  110. }
  111. void file_print() {
  112. for (int i = 0; i < saved_minutes; i++) {
  113. file.printf("Min: %f,\tMax: %f,\t", values[i].speed_min, values[i].speed_max);
  114. file.printf("Arith. Mittel: % f,\tStandard Abw.: %f\t", values[i].arithmetic_mean, values[i].arithmetic_deviation);
  115. file.printf("Quadr. Mittel: % f,\tStandard Abw.: %f\t", values[i].square_mean, values[i].square_deviation);
  116. file.printf("Kub. Mittel: %f,\tStandard Abw.: %f\t", values[i].cubic_mean, values[i].cubic_deviation);
  117. file.printf("Übersprungene Sek.: %i\n", values[i].seconds_skipped);
  118. }
  119. file.printf("Übersprungene Min.: %i\n", 60 - saved_minutes);
  120. saved_minutes = 0;
  121. }
  122. private:
  123. int count_per_second = 0;
  124. int saved_seconds = 0;
  125. int saved_minutes = 0;
  126. float wind_speed_per_second[60];
  127. Bounce reed_contact;
  128. calculations values[60];
  129. }anemometer_1, anemometer_2, anemometer_3;
  130. // Define Function Prototypes that use User Types below here or use a .h file
  131. //
  132. // Define Functions below here or use other .ino or cpp files
  133. //
  134. void dateTime(uint16_t* date, uint16_t* time, uint8_t* ms10) {
  135. // Return date using FS_DATE macro to format fields.
  136. *date = FS_DATE(year(), month(), day());
  137. // Return time using FS_TIME macro to format fields.
  138. *time = FS_TIME(hour(), minute(), second());
  139. // Return low time bits in units of 10 ms.
  140. *ms10 = second() & 1 ? 100 : 0;
  141. }
  142. void write_sd() {
  143. char file_name[50];
  144. FsDateTime::setCallback(dateTime);
  145. sprintf(file_name, "Windmessmast-%d.%d.%d_%d:%d.txt", year(), month(), day(), hour(), minute());
  146. sd.begin(SD_CONFIG);
  147. if (file.open(file_name, FILE_WRITE)) {
  148. Serial.println("Start SD schreiben");
  149. file.println("Messdaten von Windmessmasst");
  150. file.println();
  151. file.println("Data logger : Teensy 4.1");
  152. file.println(software_name);
  153. file.println();
  154. file.println("Anemometer_1 Werte:");
  155. anemometer_1.file_print();
  156. file.println("Anemometer_2 Werte:");
  157. anemometer_2.file_print();
  158. file.println("Anemometer_3 Werte:");
  159. anemometer_3.file_print();
  160. file.close();
  161. Serial.println("Ende des Schreibvorgangs");
  162. }
  163. }
  164. void every_second() {
  165. anemometer_1.save_wind_speed();
  166. anemometer_2.save_wind_speed();
  167. anemometer_3.save_wind_speed();
  168. last_second = second();
  169. }
  170. void every_minute() {
  171. anemometer_1.calculate();
  172. anemometer_2.calculate();
  173. anemometer_3.calculate();
  174. last_minute = minute();
  175. }
  176. void every_hour() {
  177. write_sd();
  178. last_hour = hour();
  179. }
  180. // The setup() function runs once each time the micro-controller starts
  181. void setup()
  182. {
  183. //set input and output
  184. pinMode(Windfahne, INPUT);
  185. pinMode(Batterie_input, INPUT);
  186. pinMode(T_sensor_input, INPUT);
  187. pinMode(taster_manuell_speichern, INPUT);
  188. pinMode(LED_Write, OUTPUT);
  189. pinMode(LED_Fail, OUTPUT);
  190. pinMode(LED_Normal, OUTPUT);
  191. pinMode(LED_Batterie, OUTPUT);
  192. pinMode(power_Temp_sensor, OUTPUT);
  193. pinMode(power_Windfahne, OUTPUT);
  194. setSyncProvider((getExternalTime)Teensy3Clock.get());
  195. Serial.begin(9600);
  196. Serial.println("Teensy 4.1-Datalogger gestartet");
  197. if (timeStatus() != timeSet) {
  198. Serial.println("Fehler bei Synchronisieren der Uhrzeit mit der RTC");
  199. digitalWrite(LED_Fail, HIGH);
  200. return;
  201. }
  202. Serial.println("Uhrzeit erfolgreich mit der RTC synchronisiert");
  203. if (!sd.begin(SD_CONFIG)) {
  204. digitalWrite(LED_Fail, HIGH);
  205. sd.initErrorHalt(&Serial);
  206. }
  207. anemometer_1.setup(2);
  208. anemometer_2.setup(9);
  209. anemometer_3.setup(22);
  210. Serial.println("Messung startet");
  211. last_second = second();
  212. while (last_second == second()) {};
  213. last_second = second();
  214. last_minute = minute();
  215. last_hour = hour();
  216. }
  217. // Add the main program code into the continuous loop() function
  218. void loop()
  219. {
  220. anemometer_1.meassure();
  221. anemometer_2.meassure();
  222. anemometer_3.meassure();
  223. if (second() != last_second) {
  224. every_second();
  225. if (minute() != last_minute) {
  226. every_minute();
  227. if (hour() != last_hour) {
  228. every_hour();
  229. }
  230. }
  231. }
  232. }