Files
drivers/scd30/scd30.go
T
2026-08-21 16:51:30 +02:00

222 lines
6.3 KiB
Go

// Package scd30 provides a driver for the Sensirion SCD30 CO2, temperature,
// and humidity sensor.
//
// Datasheet: https://sensirion.com/media/documents/D7CEEF4A/6165372F/Sensirion_CO2_Sensors_SCD30_Interface_Description.pdf
package scd30 // import "tinygo.org/x/drivers/scd30"
import (
"encoding/binary"
"errors"
"math"
"time"
"tinygo.org/x/drivers"
)
const readDelay = 4 * time.Millisecond
var (
ErrCRC = errors.New("scd30: invalid CRC")
ErrInvalidInterval = errors.New("scd30: measurement interval must be between 2 and 1800 seconds")
ErrInvalidAmbientPressure = errors.New("scd30: ambient pressure must be zero or between 700 and 1400 mbar")
)
// Config contains the SCD30 continuous measurement configuration.
type Config struct {
// MeasurementInterval is the interval between measurements in seconds and
// must be between 2 and 1800.
MeasurementInterval uint16
// AutomaticSelfCalibration enables or disables automatic self-calibration.
AutomaticSelfCalibration bool
}
// DefaultConfig contains the power-on defaults documented for the SCD30.
var DefaultConfig = Config{
MeasurementInterval: 2,
AutomaticSelfCalibration: false,
}
// Device is a Sensirion SCD30 sensor connected over I2C.
type Device struct {
bus drivers.I2C
tx [5]byte
rx [18]byte
co2 int32
temperature int32
humidity int32
}
var _ drivers.Sensor = (*Device)(nil)
// New returns a new SCD30 driver. It performs no I/O.
func New(bus drivers.I2C) *Device {
return &Device{bus: bus}
}
// Configure applies the continuous measurement interval and automatic
// self-calibration settings. It does not start continuous measurement.
func (d *Device) Configure(config Config) error {
if err := d.SetMeasurementInterval(config.MeasurementInterval); err != nil {
return err
}
return d.SetAutomaticSelfCalibration(config.AutomaticSelfCalibration)
}
// Connected reports whether an SCD30 responds with a valid data-ready status.
func (d *Device) Connected() bool {
_, err := d.DataReady()
return err == nil
}
// SetMeasurementInterval sets the continuous measurement interval in seconds.
func (d *Device) SetMeasurementInterval(seconds uint16) error {
if seconds < minimumMeasurementInterval || seconds > maximumMeasurementInterval {
return ErrInvalidInterval
}
return d.writeCommandWithArgument(commandSetMeasurementInterval, seconds)
}
// SetAutomaticSelfCalibration enables or disables automatic self-calibration.
func (d *Device) SetAutomaticSelfCalibration(enabled bool) error {
var value uint16
if enabled {
value = 1
}
return d.writeCommandWithArgument(commandSetAutoCalibration, value)
}
// StartContinuousMeasurement begins periodic measurements. Ambient pressure
// must be zero to disable pressure compensation, or between 700 and 1400 mbar.
func (d *Device) StartContinuousMeasurement(ambientPressure uint16) error {
if ambientPressure != 0 && (ambientPressure < minimumAmbientPressure || ambientPressure > maximumAmbientPressure) {
return ErrInvalidAmbientPressure
}
return d.writeCommandWithArgument(commandStartContinuousMeasurement, ambientPressure)
}
// StopContinuousMeasurement stops periodic measurements.
func (d *Device) StopContinuousMeasurement() error {
return d.writeCommand(commandStopContinuousMeasurement)
}
// DataReady reports whether a new measurement can be read.
func (d *Device) DataReady() (bool, error) {
if err := d.readCommand(commandDataReady, d.rx[:3]); err != nil {
return false, err
}
value, err := decodeWord(d.rx[:3])
if err != nil {
return false, err
}
return value != 0, nil
}
// ReadMeasurement reads and caches the latest CO2, temperature, and humidity
// measurement. Use DataReady before calling ReadMeasurement.
func (d *Device) ReadMeasurement() error {
if err := d.readCommand(commandReadMeasurement, d.rx[:18]); err != nil {
return err
}
var data [12]byte
for source, destination := 0, 0; source < 18; source, destination = source+3, destination+2 {
value, err := decodeWord(d.rx[source : source+3])
if err != nil {
return err
}
binary.BigEndian.PutUint16(data[destination:destination+2], value)
}
co2 := decodeFloat32(data[0:4])
temperature := decodeFloat32(data[4:8])
humidity := decodeFloat32(data[8:12])
d.co2 = roundFixed(co2, 1)
d.temperature = roundFixed(temperature, 1000)
d.humidity = roundFixed(humidity, 100)
return nil
}
// Update reads and caches all measurements if any supported measurement was
// requested. The SCD30 provides all three values in a single transaction.
func (d *Device) Update(which drivers.Measurement) error {
if which&(drivers.Concentration|drivers.Temperature|drivers.Humidity) == 0 {
return nil
}
return d.ReadMeasurement()
}
// CO2 returns the last read CO2 concentration in parts per million.
func (d *Device) CO2() int32 {
return d.co2
}
// Temperature returns the last read temperature in millidegrees Celsius.
func (d *Device) Temperature() int32 {
return d.temperature
}
// Humidity returns the last read relative humidity in hundredths of a percent.
func (d *Device) Humidity() int32 {
return d.humidity
}
func (d *Device) readCommand(command uint16, response []byte) error {
if err := d.writeCommand(command); err != nil {
return err
}
// The datasheet requires a delay greater than 3ms before reading.
time.Sleep(readDelay)
return d.bus.Tx(Address, nil, response)
}
func (d *Device) writeCommand(command uint16) error {
binary.BigEndian.PutUint16(d.tx[:2], command)
return d.bus.Tx(Address, d.tx[:2], nil)
}
func (d *Device) writeCommandWithArgument(command, argument uint16) error {
binary.BigEndian.PutUint16(d.tx[:2], command)
binary.BigEndian.PutUint16(d.tx[2:4], argument)
d.tx[4] = crc8(d.tx[2:4])
return d.bus.Tx(Address, d.tx[:5], nil)
}
func decodeWord(data []byte) (uint16, error) {
if len(data) != 3 || crc8(data[:2]) != data[2] {
return 0, ErrCRC
}
return binary.BigEndian.Uint16(data[:2]), nil
}
func decodeFloat32(data []byte) float32 {
return math.Float32frombits(binary.BigEndian.Uint32(data))
}
func roundFixed(value float32, scale int32) int32 {
scaled := value * float32(scale)
if scaled < 0 {
return int32(scaled - 0.5)
}
return int32(scaled + 0.5)
}
func crc8(data []byte) byte {
value := byte(0xff)
for _, current := range data {
value ^= current
for bit := 0; bit < 8; bit++ {
if value&0x80 != 0 {
value = value<<1 ^ 0x31
} else {
value <<= 1
}
}
}
return value
}