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/* This program 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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#include <ESP8266WiFi.h>
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#include <PubSubClient.h>
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#include <Adafruit_NeoPixel.h>
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#include <SparkFun_SCD30_Arduino_Library.h>
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#include <Wire.h>
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String matrixausgabe_text = " "; // Ausgabetext als globale Variable
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volatile int matrixausgabe_index = 0;// aktuelle Position in Matrix
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IPAddress myOwnIP; // ownIP for mDNS
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//-------------- definition mqtt-object ueber WiFi
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WiFiClient espClient;
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PubSubClient mqttclient(espClient);
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//--------- list of mqtt callback functions
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#define MAX_MQTT_SUB 10 // maximal 10 subscriptions erlaubt
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typedef void (*mqtthandle) (byte*,unsigned int);
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typedef struct { // Typdeklaration Callback
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String topic; // mqtt-topic
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mqtthandle fun; // callback function
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}
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subscribe_type;
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subscribe_type mqtt_sub[MAX_MQTT_SUB];
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int mqtt_sub_count=0;
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String MQTT_Rx_Payload = "" ;
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//--------- mqtt callback function
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void mqttcallback(char* to, byte* pay, unsigned int len) {
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String topic = String(to);
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String payload = String((char*)pay);
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MQTT_Rx_Payload=payload.substring(0,len);
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Serial.println("\ncallback topic:" + topic + ", payload:" + MQTT_Rx_Payload);
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for (int i=0;i<mqtt_sub_count;i++) { // durchsuche alle subscriptions, bis topic passt
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if (topic==mqtt_sub[i].topic)
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mqtt_sub[i].fun(pay,len); // Aufruf der richtigen callback-Funktion
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}
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}
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//------------ reconnect mqtt-client
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void mqttreconnect() { // Loop until we're reconnected
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if (!mqttclient.connected()) {
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while (!mqttclient.connected()) {
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Serial.print("Attempting MQTT connection...");
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if (mqttclient.connect("CO2Ampel" , "user", "passwort" )) {
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Serial.println("connected");
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for (int i=0;i<mqtt_sub_count;i++) { // subscribe topic
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mqttclient.subscribe(mqtt_sub[i].topic.c_str());
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Serial.println("\nsubscribe");
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Serial.print(mqtt_sub[i].topic);
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}
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}
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else {
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Serial.print("failed, rc=");
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Serial.print(mqttclient.state());
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Serial.println(" try again in 5 seconds");
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delay(5000);
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}
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}
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}
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else {
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mqttclient.loop();
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}
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}
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Adafruit_NeoPixel pixels = Adafruit_NeoPixel(2,13,NEO_GRBW + NEO_KHZ800);
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//Reading CO2, humidity and temperature from the SCD30 By: Nathan Seidle SparkFun Electronics
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//https://github.com/sparkfun/SparkFun_SCD30_Arduino_Library
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SCD30 airSensorSCD30; // Objekt SDC30 Umweltsensor
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int co2 = 0 ;
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int temp = 0 ;
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int hum = 0 ;
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void setup(){ // Einmalige Initialisierung
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Serial.begin(115200);
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//----------------------------------MQTT-Client
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mqttclient.setServer("192.168.1.XX", 1883);
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mqttclient.setCallback(mqttcallback);
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pixels.begin();//-------------- Initialisierung Neopixel
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delay(1);
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pixels.show();
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pixels.setPixelColor(0,0,0,0,0); // alle aus
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pixels.setPixelColor(1,0,0,0,0);
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pixels.show(); // und anzeigen
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Wire.begin(); // ---- Initialisiere den I2C-Bus
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if (Wire.status() != I2C_OK) Serial.println("Something wrong with I2C");
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if (airSensorSCD30.begin() == false) {
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Serial.println("The SCD30 did not respond. Please check wiring.");
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while(1) {
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yield();
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delay(1);
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}
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}
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airSensorSCD30.setAutoSelfCalibration(false); // Sensirion no auto calibration
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airSensorSCD30.setMeasurementInterval(2); // CO2-Messung alle 5 s
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//------------ WLAN initialisieren
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WiFi.persistent(false);
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WiFi.mode(WIFI_STA);
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delay(100);
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Serial.print ("\nWLAN connect to:");
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Serial.print("WIFI");
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WiFi.begin("SSID","PASSWORD-XXX");
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while (WiFi.status() != WL_CONNECTED) { // Warte bis Verbindung steht
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delay(500);
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Serial.print(".");
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};
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Serial.println ("\nconnected, meine IP:"+ WiFi.localIP().toString());
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matrixausgabe_text = " Meine IP:" + WiFi.localIP().toString();
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myOwnIP = WiFi.localIP();
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matrixausgabe_index=0;
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pixels.setPixelColor(0,40,0,0,0);
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pixels.show();
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delay( 3000 );
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// Forced Calibration Sensirion SCD 30
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airSensorSCD30.setAltitudeCompensation(545); // Altitude in m ü NN
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airSensorSCD30.setForcedRecalibrationFactor(400); // fresh air
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delay( 3000 );
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Wire.setClock(100000L); // 100 kHz SCD30
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Wire.setClockStretchLimit(200000L);// CO2-SCD30
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}
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void loop() { // Kontinuierliche Wiederholung
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co2 = airSensorSCD30.getCO2() ;
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temp = airSensorSCD30.getTemperature() ;
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hum = airSensorSCD30.getHumidity() ;
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if (( ( co2 ) < ( 700 ) ))
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{
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pixels.setPixelColor(0,0,30,0,0);
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pixels.show();
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}
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else
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{
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if (( ( co2 ) > ( 700 ) ))
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{
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pixels.setPixelColor(0,30,30,0,0);
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pixels.show();
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if (( ( co2 ) > ( 1000 ) ))
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{
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pixels.setPixelColor(0,40,0,0,0);
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pixels.show();
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}
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}
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else
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{
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}
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}
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delay( 1000 );
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mqttreconnect();
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{
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String pay=String(String(co2));
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mqttclient.publish("sensor/CO2",pay.c_str());
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Serial.print("\nmqtt publish: ");
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Serial.print(pay);
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};
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mqttreconnect();
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{
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String pay=String(String(temp));
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mqttclient.publish("sensor/temp",pay.c_str());
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Serial.print("\nmqtt publish: ");
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Serial.print(pay);
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};
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mqttreconnect();
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{
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String pay=String(String(hum));
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mqttclient.publish("sensor/hum",pay.c_str());
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Serial.print("\nmqtt publish: ");
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Serial.print(pay);
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};
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delay( 6000 );
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}
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# CO2-Ampel-Octopus
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# CO2 Ampel mit Sensor SCD30 und Octopus als Mikrocontroller
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## Bauteile die benötigt werden:
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* https://www.tindie.com/products/FabLab/iot-octopus-badge-for-iot-evaluation/
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* https://www.sensirion.com/de/umweltsensoren/kohlendioxidsensor/kohlendioxidsensoren-co2/
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* Oder https://www.seeedstudio.com/Grove-CO2-Temperature-Humidity-Sensor-SCD30-p-2911.html
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* (Optional) MQTT Broker
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* (Optional) NodeRED auf einem Raspberry Pi oder anderen Rechner
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## Datenblatt für den SCD30
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* https://www.mouser.de/datasheet/2/682/Sensirion_CO2_Sensors_SCD30_Datasheet-1510853.pdf
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## Enhalten sind in diesem Repository:
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* INO-File für Ardunio IDE und zur Programmierung des Octopus
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* NodeRED Flow zur Anzeige von CO2/Temperatur/Luftfeuchte inkl. Dashboard
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## Weiterführende Informationen zu dem Projekt gibt es hier:
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* https://www.umwelt-campus.de/forschung/projekte/iot-werkstatt/ideen-zur-corona-krise
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* WICHTIG Kalibrierung des Sensor https://www.youtube.com/watch?v=od_XsBE6hU4
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CO2 Ampel mit Octopus für SCD30 Sensor
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truncated
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