Temp Probe click
Temp Probe Click is a compact add-on board used as thermocouple temperature monitoring system. This board features the LTC2986, a high accuracy digital temperature measurement system used to directly digitize thermocouples with 0.1°C accuracy and 0.001°C resolution from Analog Devices.
click Product page
Click library
- Author : Stefan Ilic
- Date : Aug 2021.
- Type : SPI type
Software Support
We provide a library for the TempProbe Click as well as a demo application (example), developed using MikroElektronika compilers. The demo can run on all the main MikroElektronika development boards.
Package can be downloaded/installed directly from NECTO Studio Package Manager(recommended way), downloaded from our LibStock™ or found on Mikroe github account.
Library Description
This library contains API for TempProbe Click driver.
Standard key functions :
tempprobe_cfg_setup
Config Object Initialization function.
void tempprobe_cfg_setup(tempprobe_cfg_t *cfg)
Temp Probe configuration object setup function.
Temp Probe Click configuration object.
Definition tempprobe.h:347
tempprobe_init
Initialization function.
err_t tempprobe_init(tempprobe_t *ctx, tempprobe_cfg_t *cfg)
Temp Probe initialization function.
Temp Probe Click context object.
Definition tempprobe.h:327
tempprobe_default_cfg
Click Default Configuration function.
err_t tempprobe_default_cfg(tempprobe_t *ctx)
Temp Probe default configuration function.
Example key functions :
tempprobe_write_word
Word Write function. err_t tempprobe_write_word (
tempprobe_t *ctx, uint16_t reg_addr, uint32_t data_in );
tempprobe_read_bytes
Byte Read function.
err_t tempprobe_read_bytes(tempprobe_t *ctx, uint16_t reg_addr, uint8_t *data_out, uint8_t n_bytes)
Byte Read function.
tempprobe_read_temp
Temperature Read function.
uint8_t tempprobe_read_temp(tempprobe_t *ctx, uint16_t sel_channel, float *data_out)
Temperature Read function.
Example Description
This is an example that demonstrates the use of the Temp Probe Click board.
The demo application is composed of two sections :
Application Init
Initializes SPI interface and performs a device configuration for properly working and configures the desired channels.
{
log_cfg_t log_cfg;
LOG_MAP_USB_UART( log_cfg );
log_init( &logger, &log_cfg );
log_info( &logger, " Application Init " );
if ( SPI_MASTER_ERROR ==
tempprobe_init( &tempprobe, &tempprobe_cfg ) )
{
log_error( &logger, " Application Init Error. " );
log_info( &logger, " Please, run program again... " );
for ( ; ; );
}
Delay_ms ( 300 );
{
log_error( &logger, " Config Error " );
for ( ; ; );
}
Delay_ms ( 300 );
log_info( &logger, " Application Task " );
}
#define TEMPPROBE_MAP_MIKROBUS(cfg, mikrobus)
MikroBUS pin mapping.
Definition tempprobe.h:311
void tempprobe_reset(tempprobe_t *ctx)
Reset function.
void application_init(void)
Definition main.c:28
@ TEMPPROBE_ERROR
Definition tempprobe.h:372
Application Task
Measure temperatures from all sensors and display the measurements on the serial port.
{
float temperature_k = 0;
float temperature_pn = 0;
log_printf( &logger, " PN-Junction: %.2f C\r\n", temperature_pn );
log_printf( &logger, " Thermo K: %.2f C\r\n", temperature_k );
log_printf( &logger, "------------------------\r\n" );
Delay_ms ( 1000 );
Delay_ms ( 500 );
}
#define TEMPPROBE_REG_PN_JUNCTION_CONV_RES
Definition tempprobe.h:76
#define TEMPPROBE_REG_COMM_STATUS
Temp Probe description register.
Definition tempprobe.h:74
#define TEMPPROBE_REG_THERMO_K_CONV_RES
Definition tempprobe.h:75
#define TEMPPROBE_NO_BUSY_STATE
Definition tempprobe.h:275
#define TEMPPROBE_START_CONV
Temp Probe EEPROM setting.
Definition tempprobe.h:223
err_t tempprobe_write_byte(tempprobe_t *ctx, uint16_t reg_addr, uint8_t data_in)
Byte Write function.
uint8_t tempprobe_check_busy(tempprobe_t *ctx)
Busy Check function.
void application_task(void)
Definition main.c:67
The full application code, and ready to use projects can be installed directly from NECTO Studio Package Manager(recommended way), downloaded from our LibStock™ or found on Mikroe github account.
Other Mikroe Libraries used in the example:
- MikroSDK.Board
- MikroSDK.Log
- Click.TempProbe
Additional notes and informations
Depending on the development board you are using, you may need USB UART click, USB UART 2 Click or RS232 Click to connect to your PC, for development systems with no UART to USB interface available on the board. The terminal available in all MikroElektronika compilers, or any other terminal application of your choice, can be used to read the message.