thermostat.ino 8.5 KB

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  1. void measureTempHum() {
  2. float tmpHum = round(dht.readHumidity()) + humCorrVal;
  3. float tmpTemp = dht.readTemperature() + tempCorrVal; // Read temperature as Celsius (the default)
  4. int tmpHumInt = tmpHum;
  5. // Check if any reads failed
  6. if (isnan(tmpHum) || isnan(tmpTemp)) {
  7. //Serial.println("Failed to read from DHT sensor!");
  8. sendStatus("Error: Failed to read from DHT sensor!");
  9. }
  10. else {
  11. if (tmpTemp < 50.0 && tmpTemp > -20.0) {
  12. // measurement is in range
  13. currTemp_raw = tmpTemp;
  14. currHum_raw = tmpHumInt;
  15. if ( lastTempUpdate > 0 && tmpTemp <= ( currTemp + 2.0 ) && tmpTemp >= ( currTemp - 2.0 ) ) {
  16. // temp has already been measured - only accept new measurement if it does not differ much from the last value
  17. //Temp = (Temp * (FilterFaktor -1) + AktuellerMesswert) / FilterFaktor;
  18. //temperature = tmpTemp;
  19. currTemp = (currTemp * 9 + tmpTemp) / 10; // filter
  20. currHum = (currHum * 9 + tmpHumInt) / 10; // filter
  21. lastTempUpdate = millis();
  22. }
  23. else if ( lastTempUpdate == 0 || (millis() - lastTempUpdate) > 300000 ) {
  24. // this is the first measurement or the last one is older than 5m - then accept this measurement
  25. currTemp = tmpTemp + tempCorrVal;
  26. currHum = tmpHumInt + humCorrVal;
  27. lastTempUpdate = millis();
  28. }
  29. // skip in all other cases
  30. //#ifdef DEBUG_VERBOSE
  31. // Serial.print("lastTempUpdate: ");
  32. // long lastTempUpdateDelta = millis() - lastTempUpdate;
  33. // Serial.print(lastTempUpdateDelta / 1000);
  34. // Serial.println("s ago");
  35. //#endif
  36. }
  37. }
  38. }
  39. void thermostat() {
  40. float curr_setTemp;
  41. // set target temp for heating mode
  42. if (heatingMode == 1) { // heating on - default/day mode
  43. curr_setTemp = setTemp;
  44. }
  45. else if (heatingMode == 2) { // heating of - night/reduction mode
  46. curr_setTemp = setTempLow;
  47. }
  48. else if (heatingMode == 3) { // heating of - night/reduction mode
  49. curr_setTemp = setTempLow2;
  50. }
  51. char tmp_topic_out[50];
  52. if (heatingMode > 0 && turnHeatingOn) {
  53. heatingOnTime = (millis() - heatingLastOnMillis) / 1000;
  54. char buf[101];
  55. sprintf(buf, "heating on since %d s", heatingOnTime);
  56. sendStatus(buf);
  57. }
  58. else if (heatingMode > 0 && !turnHeatingOn) {
  59. heatingOffTime = (millis() - heatingLastOffMillis) / 1000;
  60. char buf[101];
  61. sprintf(buf, "heating off since %d s", heatingOffTime);
  62. sendStatus(buf);
  63. }
  64. //char tmp_topic_out[50];
  65. //sprintf(tmp_topic_out, "%s/%s", mqtt_topic_out, "heating");
  66. if ( lastTempUpdate != 0 && (millis() - lastTempUpdate) <= 120000 ) {
  67. // thermostat - only active if measured temperature is < 2 min old
  68. #ifdef DEBUG_VERBOSE
  69. Serial.print("thermostat, lastTempUpdate=");
  70. Serial.print(lastTempUpdate);
  71. Serial.print(", lastTempUpdate_delta=");
  72. long lastTempUpdateDelta = millis() - lastTempUpdate;
  73. Serial.println(lastTempUpdateDelta);
  74. #endif
  75. // thermostat with hysteresis
  76. if ( turnHeatingOn && currTemp >= (curr_setTemp - setTempDecreaseVal) ) {
  77. turnHeatingOn = false;
  78. heatingLastOffMillis = millis();
  79. digitalWrite(PIN_RELAIS, !RELAISONSTATE);
  80. updateDisplay();
  81. char buf[101];
  82. sprintf(buf, "switch heating OFF, on since %d s", heatingOnTime);
  83. sendStatus(buf);
  84. //Serial.println("heating off");
  85. //mqttclient.publish(tmp_topic_out, "off");
  86. publishCurrentThermostatValues();
  87. sendToDomoticz_Heating();
  88. }
  89. else if ( !turnHeatingOn && heatingMode > 0 && ( currTemp < (curr_setTemp - setTempDecreaseVal - hysteresis) ) && ( heatingOffTime > heatingMinOffTime ) ) {
  90. turnHeatingOn = true;
  91. heatingLastOnMillis = millis();
  92. digitalWrite(PIN_RELAIS, RELAISONSTATE);
  93. updateDisplay();
  94. char buf[101];
  95. sprintf(buf, "switch heating ON, off since %d s", heatingOffTime);
  96. sendStatus(buf);
  97. //Serial.println("heating on");
  98. //mqttclient.publish(tmp_topic_out, "on");
  99. publishCurrentThermostatValues();
  100. sendToDomoticz_Heating();
  101. }
  102. }
  103. else {
  104. if (turnHeatingOn) {
  105. digitalWrite(PIN_RELAIS, !RELAISONSTATE);
  106. turnHeatingOn = false;
  107. heatingLastOffMillis = millis();
  108. }
  109. if ( lastTempUpdate != 0 ) sendStatus("switch heating OFF, temp reading not yet available");
  110. else if ( (millis() - lastTempUpdate) > 120000 ) sendStatus("switch heating OFF, last temp reading too old");
  111. //mqttclient.publish(tmp_topic_out, "off");
  112. publishCurrentThermostatValues();
  113. sendToDomoticz_Heating();
  114. }
  115. }
  116. void toggleHeatingMode() {
  117. if (heatingMode > 0) {
  118. Serial.print("switch mode to ");
  119. if (heatingMode == 1) {
  120. heatingMode = 2;
  121. lastValueChange = millis();
  122. heatingModeAlreadySaved = false;
  123. }
  124. else if (heatingMode == 2) {
  125. heatingMode = 3;
  126. lastValueChange = millis();
  127. heatingModeAlreadySaved = false;
  128. }
  129. else if (heatingMode == 3) {
  130. heatingMode = 1;
  131. lastValueChange = millis();
  132. heatingModeAlreadySaved = false;
  133. }
  134. Serial.println(heatingMode);
  135. updateDisplay();
  136. }
  137. }
  138. void toggleThermostatOnOff() {
  139. if (heatingMode > 0) {
  140. heatingMode = 0;
  141. lastValueChange = millis();
  142. heatingModeAlreadySaved = false;
  143. }
  144. else {
  145. heatingMode = 1;
  146. lastValueChange = millis();
  147. heatingModeAlreadySaved = false;
  148. }
  149. updateDisplay();
  150. }
  151. void setTempStepUp() {
  152. if (heatingMode == 1) {
  153. Serial.println("setTemp +0.5");
  154. if ( setTemp <= (setTempMax - 0.5)) {
  155. setTemp += 0.5;
  156. lastValueChange = millis();
  157. setTempAlreadySaved = false;
  158. }
  159. updateDisplay();
  160. }
  161. }
  162. void setTempStepDown() {
  163. if (heatingMode == 1) {
  164. Serial.println("setTemp -0.5");
  165. if ( setTemp >= (setTempMin + 0.5)) {
  166. setTemp -= 0.5;
  167. lastValueChange = millis();
  168. setTempAlreadySaved = false;
  169. }
  170. updateDisplay();
  171. }
  172. }
  173. void setTempTo(float setTo) {
  174. bool changes = false;
  175. if (setTo >= setTempMin && setTo <= setTempMax) {
  176. setTemp = setTo;
  177. changes = true;
  178. }
  179. else if (setTo > setTempMax) {
  180. setTemp = setTempMax;
  181. changes = true;
  182. }
  183. else if (setTo < setTempMin) {
  184. setTemp = setTempMin;
  185. changes = true;
  186. }
  187. if (changes) {
  188. lastValueChange = millis();
  189. setTempAlreadySaved = false;
  190. updateDisplay();
  191. publishCurrentThermostatValues();
  192. }
  193. }
  194. void setTempLowTo(float setTo) {
  195. bool changes = false;
  196. if (setTo >= setTempLowMin && setTo <= setTempLowMax) {
  197. setTempLow = setTo;
  198. changes = true;
  199. }
  200. else if (setTo > setTempLowMax) {
  201. setTempLow = setTempLowMax;
  202. changes = true;
  203. }
  204. else if (setTo < setTempLowMin) {
  205. setTempLow = setTempLowMin;
  206. changes = true;
  207. }
  208. if (changes) {
  209. updateDisplay();
  210. publishCurrentThermostatValues();
  211. }
  212. }
  213. void setTempLow2To(float setTo) {
  214. bool changes = false;
  215. if (setTo >= setTempLowMin && setTo <= setTempLowMax) {
  216. setTempLow2 = setTo;
  217. changes = true;
  218. }
  219. else if (setTo > setTempLowMax) {
  220. setTempLow2 = setTempLowMax;
  221. changes = true;
  222. }
  223. else if (setTo < setTempLowMin) {
  224. setTempLow2 = setTempLowMin;
  225. changes = true;
  226. }
  227. if (changes) {
  228. updateDisplay();
  229. publishCurrentThermostatValues();
  230. }
  231. }
  232. void setHeatingmodeTo(byte setTo) {
  233. bool changes = false;
  234. switch (setTo) {
  235. case 0:
  236. heatingMode = 0;
  237. changes = true;
  238. break;
  239. case 1:
  240. heatingMode = 1;
  241. changes = true;
  242. break;
  243. case 2:
  244. heatingMode = 2;
  245. changes = true;
  246. break;
  247. case 3:
  248. heatingMode = 3;
  249. changes = true;
  250. break;
  251. }
  252. if (changes) {
  253. lastValueChange = millis();
  254. heatingModeAlreadySaved = false;
  255. updateDisplay();
  256. publishCurrentThermostatValues();
  257. }
  258. }
  259. void checkValuesChanged() { // called every second by everySecond() / misc.ino
  260. if ( !setTempAlreadySaved || !heatingModeAlreadySaved ) {
  261. if ( (millis() - lastValueChange) > saveValuesTimeout ) { // value was changed 5s ago. now save if auto-save enabled
  262. if (!setTempAlreadySaved) {
  263. lastUpdate_setTemp = millis();
  264. sendToDomoticz_thermostat();
  265. if (autoSaveSetTemp && setTemp != setTempSaved) {
  266. saveSetTemp();
  267. sendStatus("setTemp autosave done");
  268. }
  269. setTempAlreadySaved = true;
  270. }
  271. if (!heatingModeAlreadySaved) {
  272. lastUpdate_heatingMode = millis();
  273. sendToDomoticz_heatingMode();
  274. if (autoSaveHeatingMode && heatingMode != heatingModeSaved) {
  275. saveHeatingMode();
  276. sendStatus("heatingMode autosave done");
  277. }
  278. heatingModeAlreadySaved = true;
  279. }
  280. }
  281. }
  282. }