METER-logoMETER BARO Module

METER-BARO-Module -product

BARO INTEGRATOR GUIDE

DESKRIPSI SENSOR

The BARO Module is a precise barometer to compensate for matric potential measurements of TEROS 31 and TEROS 32 tensiometers. The BARO Module can be used as a standalone sensor to compensate one or more tensiometers at a measuring site, or as a digital/analog converter to compensate a connected TEROS 31 or TEROS 32 value and convert the SDI-12 signal into an analog voltage output (only 8-pin version). The BARO Module and TEROS 32 combination can be used as a T8 tensiometer replacement. For a more detailed description of how this sensor makes measurements, refer to the BARO Module User Manual.

METER-BARO-Module- (1)

APLIKASI

  • Barometric pressure measurement
  • Barometric compensation of matric potential measurements
  • Digital/analog converter for directly connected TEROS 31 and TEROS 32 tensiometers
  • Appropriate for non-METER data loggers to connect TEROS 31 and TEROS 32

ADVANTAGES

  • Sensor digital mengomunikasikan beberapa pengukuran melalui antarmuka serial
  • Volume masukan rendahtagPersyaratan e
  • Desain berdaya rendah mendukung pencatat data yang dioperasikan dengan baterai
  • SDI-12, Modbus RTU or tensio LINK serial communications protocol supported
  • Analog output supported (only 8-pin version)

SPESIFIKASI

SPESIFIKASI PENGUKURAN
Tekanan Barometrik
Jangkauan + 65 kPa to +105 kPa
Resolusi ± 0.0012 kPa
Ketepatan ± 0.05kPa
Suhu
Jangkauan -30 hingga + 60 °C
Resolusi Suhu ± 0.01 °C
Ketepatan Suhu ± 0.5 °C
 SPESIFIKASI KOMUNIKASI
Keluaran
Analog Output (8-pin connector only)0 to 2,000 mV (default)0 to 1,000 mV (configurable with tensio VIEW)
Digital OutputSDI-12 communications protocol tensio LINK communication protocol Modbus RTU communication protocol
Kompatibilitas Pencatat Data
Analog Output Any data acquisition system capable of switched 3.6- to 28-VDC excitation and single-ended or differential voltage measurement at a greater than or equal to 12-bit resolution.
Digital Output Any data acquisition system capable of 3.6- to 28-VDC excitation and RS-485 Modbus or SDI-12 communication.
 SPESIFIKASI FISIK
Ukuran
Panjang 80 mm (3.15 inci)
Lebar 29 mm (1.14 inci)
Tinggi 30 mm (1.18 inci)
Panjang Kabel
1.5 m (standard)NOTE: Contact Customer Support if a nonstandard cable length is needed.
Jenis Konektor
4-pin and 8-pin M12 plug connector or stripped and tinned wires
 KEPATUHAN
EM ISO/IEC 17050:2010 (Tanda CE)

JENIS SIRKUIT DAN SAMBUNGAN EKUIVALEN
Refer to Figure 2 to connect the BARO Module to a data logger. Figure 2 provides a low-impedance variant of the recommended SDI-12 specification.

METER-BARO-Module- (2)

METER-BARO-Module- (3)

METER-BARO-Module- (4)

BARO MODULE INTEGRATOR GUIDE METER-BARO-Module- (5)

METER-BARO-Module- (6)

METER-BARO-Module- (7)

METER-BARO-Module- (8)

TINDAKAN PENCEGAHAN

Sensor METER dibuat dengan standar tertinggi, tetapi penyalahgunaan, perlindungan yang tidak tepat, atau pemasangan yang tidak tepat dapat merusak sensor dan mungkin membatalkan garansi. Sebelum mengintegrasikan sensor ke dalam jaringan sensor, ikuti petunjuk pemasangan yang disarankan dan terapkan pengamanan untuk melindungi sensor dari gangguan yang merusak.

KOMUNIKASI SENSOR
METER digital sensors feature a serial interface with shared receive and transmit signals for communicating sensor measurements on the data wire. The sensor supports SDI-12, tensio LINK, and Modbus over RS-485 two-wire. The sensor automatically detects the interface and protocol which is being used. Each protocol has implementation advantages and challenges. Please contact METER Customer Support if the protocol choice for the desired application is not obvious.

  • SDI-12 PENDAHULUAN
    SDI-12 adalah protokol berbasis standar untuk menghubungkan sensor ke pencatat data dan peralatan akuisisi data. Beberapa sensor dengan alamat unik dapat berbagi bus 3-kawat umum (daya, ground, dan data). Komunikasi dua arah antara sensor dan logger dimungkinkan dengan berbagi jalur data untuk mengirim dan menerima seperti yang ditentukan oleh standar. Pengukuran sensor dipicu oleh perintah protokol. Protokol SDI-12 memerlukan alamat sensor alfanumerik unik untuk setiap sensor di bus sehingga pencatat data dapat mengirim perintah ke dan menerima bacaan dari sensor tertentu.
    Unduh Spesifikasi SDI-12 v1.3 untuk mempelajari lebih lanjut tentang protokol SDI-12.
  • RS-485 INTRODUCTION
    RS-485 is a robust physical bus connection to connect multiple devices to one bus. It is capable of using very long cable distances under harsh environments. Instead of SDI-12, RS-485 uses two dedicated wires for the data signal. This allows the use of longer cables and is more insensitive to interference from outside sources, since the signal is related to the different wires, and supply currents do not influence the data signal. See Wikipedia for more details on RS-485.
  • TENSIOLINK RS-485 INTRODUCTION
    tensioLINK is a fast, reliable, proprietary serial communications protocol that communicates over the RS-485 interface. This protocol is used to read out data and configure features of the device. METER provides a tensioLINK PC USB converter and software to communicate directly with the sensor, read out data, and update the firmware. Please contact Customer Support for more information about tensioLINK.
  • MODBUS RTU RS-485 INTRODUCTION
    Modbus RTU is a common serial communications protocol used by Programmable Logic Controllers (PLCs) or data loggers to communicate with all kinds of digital devices. The communication works over the physical RS-485 connection. The combination of RS-485 for the physical connection and Modbus as serial communications protocol allows fast and reliable data transfer for a high number of sensors connected to one serial bus wire. Use the following links for more Modbus information: Wikipedia and modbus.org.
  • ANTARMUKA SENSOR KE KOMPUTER
    The serial signals and protocols supported by the sensor require some type of interface hardware to be compatible with the serial port found on most computers (or USB-to-serial adapters). There are several
    SDI-12 interface adapters available in the marketplace; however, METER has not tested any of these interfaces and cannot make a recommendation as to which adapters work with METER sensors. METER data loggers and the ZSC handheld device can operate as a computer-to-sensor interface for making on-demand sensor measurements.
    The BARO Module can also be configured and measured via tensioLINK using METER software tensioVIEW, available to download at meter.ly/software. To connect a BARO Module to a computer a tensioLINK USB converter and a suitable adapter cable is necessary.
  • PELAKSANAAN METER SDI-12
    If a BARO Module is connected between a TEROS 31 or 32 tensiometer, both the barometric air pressure and the absolute pressure of the TEROS tensiometer can be read out via Modbus. The compensated matrix potential can be read out via Modbus as well.
    METER sensors use a low-impedance variant of the SDI-12 standard sensor circuit (Figure 2). During the power-up time, sensors output some sensor diagnostic information and should not be communicated with until the power-up time has passed. After the power up time, the sensors are fully compatible with all commands listed in the SDI-12 Specification v1.3 except for the continuous measurement commands ( aR0 – aR9 and aRC0 – aRC9 ). M , R , and C command implementations are found on pages 8–9. Out of the factory, all METER sensors start with SDI-12 address 0 .
  • PERTIMBANGAN SENSOR BUS
    SDI-12 sensor buses require regular checking, sensor upkeep, and sensor troubleshooting. If one sensor goes down, that may take down the whole bus even if the remaining sensors are functioning normally. Power cycling the SDI-12 bus when a sensor is failing is acceptable. METER SDI-12 sensors can be power-cycled and read on the desired measurement interval or powered continuously and commands sent when a measurement is desired based on specified communication timing. Many factors influence the effectiveness of the bus configuration. Visit metergroup.com untuk artikel dan seminar virtual yang berisi informasi lebih lanjut.

KONFIGURASI SDI-12

Table 1 lists the SDI-12 communication configuration.

Meja 1      Konfigurasi komunikasi SDI-12
Kecepatan Baud 1,200
Mulai Bit 1
Bit Data 7 (LSB pertama)
Bit Paritas 1 (genap)
Hentikan Bits 1
Logika Terbalik (aktif rendah)

WAKTU SDI-12
All SDI-12 commands and responses must adhere to the format in Figure 9 on the data line. Both the command and response are preceded by an address and terminated by a carriage return and line feed combination ( <CR><LF> ) and follow the timing shown in Figure 10.

METER-BARO-Module- (9)

METER-BARO-Module- (10)

PERINTAH SDI-12 UMUM
Bagian ini mencakup tabel perintah SDI-12 umum yang sering digunakan dalam sistem SDI-12 dan respons yang sesuai dari sensor METER.

PERINTAH IDENTIFIKASI ( aI! )
Perintah Identifikasi dapat digunakan untuk memperoleh berbagai informasi rinci tentang sensor yang terhubung. mantanample dari perintah dan respons ditampilkan di Example 1, di mana perintah dicetak tebal dan respons mengikuti perintah.

Example 1 1I!113METER␣ ␣ ␣BARO␣

Parameter

Karakter Tetap  Panjang  Keterangan
 
1 aku! 3 Data logger command.Request to the sensor for information from sensor address 1 .
1 1 Sensor address.Prepended on all responses, this indicates which sensor on the bus is returning the following information.
13 2 Menunjukkan bahwa sensor target mendukung Spesifikasi SDI-12 v1.3.
METER ␣ ␣ ␣ 8 Vendor identification string.( METER and three spaces  ␣ ␣ ␣ for all METER sensors)
BARO␣ 6 Sensor model string.This string is specific to the sensor type. For the BARO, the string is BARO .
100 3 Sensor version.This number divided by 100 is the METER sensor version (e.g., 100 is version 1.00).
BARO-00001 ≤13,variable Nomor seri sensor. Ini adalah bidang dengan panjang variabel. Ini mungkin dihilangkan untuk sensor lama.

PERINTAH UBAH ALAMAT ( aAB! )
The Change Address command is used to change the sensor address to a new address. All other commands support the wildcard character as the target sensor address except for this command. All METER sensors have a default address of 0 (zero) out of the factory. Supported addresses are alphanumeric (i.e., A – Z , and 0 – 9 ). An example output dari sensor METER ditunjukkan pada Example 2, di mana perintah dicetak tebal dan respons mengikuti perintah.

Example 2 1A0!0

 Parameter

Karakter Tetap  Panjang        Keterangan
1A0! 4 Data logger command. Request to the sensor to change its address from 1 to a new address of 0 .
0 1 New sensor address. For all subsequent commands, this new address will be used by the target sensor.

IMPLEMENTASI PERINTAH
Tabel berikut mencantumkan perintah Pengukuran ( M ), Berkelanjutan ( R ), dan Bersamaan ( C ) yang relevan dan perintah Data ( D ) berikutnya, jika diperlukan.

IMPLEMENTASI PERINTAH PENGUKURAN
Measurement ( M ) commands are sent to a single sensor on the SDI-12 bus and require that subsequent Data ( D ) commands are sent to that sensor to retrieve the sensor output data before initiating communication with another sensor on the bus. Please refer to Table 2 and for an explanation of the command sequence and to Table 5 for an explanation of response parameters.

Tabel 2 pagi! urutan perintah

Memerintah Tanggapan
Perintah ini melaporkan nilai rata-rata, akumulasi, atau maksimum.
saya! sikap
ad0! sebuah ± ± +
Komentar When a slave TEROS tensiometer is connected, <Press> hold the barometric compensated tensiometer output. If the BARO module is used in standalone <Press> returns the current barometric pressure.
NOTE: The measurement and corresponding data commands are intended to be used back to back. After a measurement command is processed by the sensor, a service request a <CR><LF> is sent from the sensor signaling the measurement is ready. Either wait until   seconds have passed or wait until the service request is received before sending the data commands. See the SDI-12 Specifications v1.3

NOTE: The measurement and corresponding data commands are intended to be used back to back. After a measurement command is processed by the sensor, a service request a <CR><LF> is sent from the sensor signaling the measurement is ready. Either wait until ttt seconds have passed or wait until the service request is received before sending the data commands. See the SDI-12 Specifications v1.3 document for more information.

IMPLEMENTASI PERINTAH PENGUKURAN BERSAMAAN
Concurrent Measurement ( C ) commands are typically used with sensors connected to a bus. C commands for this sensor deviate from the standard C command implementation. First, send the C command, wait the specified amount of time detailed in the C command response, and then use D commands to read its response prior to communicating with another sensor.

Please refer to Table 3 for an explanation of the command sequence and to Table 5 for an explanation of response parameters.

Table 3      aC! measurement command sequence
Memerintah Tanggapan
Perintah ini melaporkan nilai seketika.
AC! atttnn
ad0! sebuah ± ± +
NOTE: The measurement and corresponding data commands are intended to be used back to back. After a measurement commanc is pro- cessed by the sensor, a service request a<CR><LF> is sent from the sensor signaling the measurement is ready. Either wait until ttt sec- onds have passed or wait until the service request is received before sending the data commands. Please see the SDI-12 Specifications v1.3 document for more information.

NOTE: The measurement and corresponding data commands are intended to be used back to back. After a measurement commanc is pro-cessed by the sensor, a service request a<CR><LF> is sent from the sensor signaling the measurement is ready. Either wait until ttt sec-onds have passed or wait until the service request is received before sending the data commands. Please see the SDI-12 Specifications v1.3 document for more information.

IMPLEMENTASI PERINTAH PENGUKURAN TERUS MENERUS
Continuous Measurement ( R ) commands trigger a sensor measurement and return the data automatically after the readings are completed without needing to send a D command. aR0! returns more characters in its response than the 75-character limitation called out in the SDI-12 Specification v1.3. It is recommended to use a buffer that can store at least 116 characters.
Please refer to Table 4 for an explanation of the command sequence and see Table 5 for an explanation of response parameters.

Table 4      aR0! measurement command sequence
Memerintah Tanggapan
Perintah ini melaporkan nilai rata-rata, akumulasi, atau maksimum.
aR0! sebuah ± ± +
NOTE: This command does not adhere to the SDI-12 response timing. See METER SDI-12 Implementation for more information.

NOTE: This command does not adhere to the SDI-12 response timing. See METER SDI-12 Implementation for more information.

PARAMETER
Table 5 lists the parameters, unit measurement, and a description of the parameters returned in command responses for the BARO Module.

Meja 5      Deskripsi Parameter
Parameter Satuan Keterangan
± Tanda positif atau negatif yang menunjukkan tanda dari nilai berikutnya
a Alamat SDI-12
n Jumlah pengukuran (lebar tetap 1)
nn Jumlah pengukuran dengan nol di depan jika perlu (lebar tetap 2)
ttt s Pengukuran waktu maksimum akan dilakukan (lebar tetap 3)
karakter tab
Karakter carriage return
Karakter umpan baris
ASCII character denoting the sensor type For BARO Module, the character is ;
Checksum seri METER
METER 6-bit CRC

METER MODBUS RTU SERIAL IMPLEMENTATION
Modbus over Serial Line is specified in two versions – ASCII and RTU. BARO Modules communicate using RTU mode exclusively. The following explanation is always related to RTU. Table 6 lists the Modbus RTU communication and configuration.

Meja 6      Modbus communication characters
Tingkat Baud (bps) 9,600bps
Mulai Bit 1
Bit Data 8 (LSB pertama)
Bit Paritas 0 (tidak ada)
Hentikan Bits 1
Logika Standar (aktif tinggi)

METER-BARO-Module- (10)Figure 11 shows a message in RTU format. The size of the data determines the length of the message. The format of each byte in the message has 10 bits, including Start and Stop Bit. Each byte is sent from left to right: Least Significant Bit (LSB) to Most Significant Bit (MBS). If no parity is implemented, an additional stop bit is transmitted to fill out the character frame to a full 11-bit asynchronous character.

The Modbus application layer implements a set of standard Function codes divided into three categories: Public, User-defined, and Reserved. Well-defined public function codes for BARO Modules are documented in the Modbus Organization, Inc. (modbus.org) community.

For a reliable interaction between the BARO Module and a Modbus Master, a minimum 50ms delay is required between every Modbus command sent on the RS-485 bus. An additional timeout is needed for every Modbus query; this timeout is device-specific and depends on the quantity of the polled registers. Generally, 100ms will work fine for most of the BARO Module.

SUPPORTED MODBUS FUNCTIONS

Table 7 Function Definitions

Fungsi Kode Tindakan Keterangan
01 Read coil/port status Reads the on/off status of discrete output(s) in the ModBusSlave
02 Baca status masukan Reads the on/off status of discrete input(s) in the ModBusSlave
03 Baca memegang register Reads the binary contents of holding register(s) in the ModBusSlave
04 Membaca register masukan Reads the binary contents of input register(s) in the ModBusSlave
05 Force single coil/port Forces a single coil/port in the ModBusSlave to either on or off
06 Tulis satu register Writes a value into a holding register in the ModBusSlave
15 Force multiple coils/ports Forces multiple coils/ports in the ModBusSlave to either on or off
16 Tulis beberapa register Writes values into a series of holding registers in the ModBusSlave

DATA REPRESENTATION AND REGISTER TABLES
Data values (setpoint values, parameters, sensor-specific measurement values, etc.) sent to and from the BARO Module use 16-bit and 32-bit holding (or input) registers with a 4-digit address notation. The address spaces are virtually distributed in different blocks for each data type. This is an approach to the Modbus Enron implementation. Table 8 shows the four main tables used by the BARO Module with their respective access rights. Table 9 describes the sub-blocks for each different data type representation.

Please note that some Modbus dataloggers use addressing with a +1 offset. This sometimes causes confusion and is based on a Modbus specification void. If there are problems in implementing your Modbus program on the datalogger always try testing different register offsets and data types. Using a known value, like temperature, where it’s known what value to expect is a good practice to start testing.

Table 8      Modbus Primary Tables
Nomor Registrasi Tipe Tabel Mengakses Keterangan
1xxx Kumparan Keluaran Diskrit Baca/Tulis on/off status or setup flags for the sensor
2xxx Kontak Masukan Diskrit Membaca sensor status flags
3xxx Register Masukan Analog Membaca numerical input variables from the sensor (actual sensor measurements)
4xxx Analog Output Holding Registers Baca/Tulis numerical output variables for the sensor (parameters, setpoint values, calibrations etc.)

Misalnyaample, register 3001 is the first analog input register (first data address for the input registers). The numeric value stored here would be a 16-bit unsigned integer-type variable that represents the first sensor measurement parameter (pressure value). The same measurement parameter (pressure value) could be read at register 3201, but this time as a 32-bit floating-point value with a Big-Endian format. If the Modbus Master (Datalogger or a PLC) supports only 32-bit float-values with a Little-Endian format, then one could read the same measurement parameter (same pressure value) at register 3301. The Virtual Sub-Blocks are meant to simplify the user’s effort in programming the Modbus query of the sensors.

Meja 9      Modbus Virtual Sub-Blocks
Nomor Registrasi Mengakses Ukuran Sub-Table Data Jenis
X001 sampai X099 Baca/Tulis 16 sedikit bilangan bulat bertanda
X101 sampai X199 Baca/Tulis 16 sedikit bilangan bulat tak bertanda
X201 sampai X299 Baca/Tulis 32 sedikit float Big-Endian format
X301 sampai X399 Baca/Tulis 32 sedikit float Little-Endian format

REGISTER MAPPING

Meja 10      Memegang Register
41000 (41001*) Alamat Modbus Budak
Deskripsi Rinci Read or update the sensor’s modbus address
Tipe Data Integer tak bertanda tangan
Rentang yang Diizinkan 1 – 247
Satuan
Komentar Updated slave address will be stored in the sensor’s nonvolatile memory

Meja 11      BARO Module Input Registers
32000 (32001*) Soil Water Potential
Deskripsi Rinci Compensated tension value from tensiometer
Tipe Data 32 bit floating Big-Endian
Rentang yang Diizinkan -200 hingga +200
Satuan kPa
Komentar Tensiometer needs to be connected as slave
32001 (32002*) Suhu Tanah
Deskripsi Rinci High accuracy on board temperature measurement
Tipe Data 32 bit floating Big-Endian
Rentang yang Diizinkan -30 hingga +60
Satuan derajatC
Komentar Tensiometer needs to be connected as slave
32002 (32003*) Tegangan Pasokan Sensortage
Deskripsi Rinci On board supply voltagpengukuran
Tipe Data 32 bit floating Big-Endian
Rentang yang Diizinkan -10 hingga +60
Satuan Volts
Komentar
32003 (32004*) BARO Status
Deskripsi Rinci Binary status
Tipe Data 32 bit floating Big-Endian
Rentang yang Diizinkan 0/1
Satuan
Komentar
32004 (32005*) BARO Reference Pressure
Deskripsi Rinci On board high accuracy barometric pressure measurement
Tipe Data 32 bit floating Big-Endian
Rentang yang Diizinkan +70 hingga +120
Satuan kPa
Komentar
Table 11 Baro Module Input Registers (continued)
32005 (32006*) Tensiometer Tekanan
Deskripsi Rinci Absolute pressure value from tensiometer
Tipe Data 32 bit floating Big-Endian
Rentang yang Diizinkan -200 hingga +200
Satuan kPa
Komentar Tensiometer needs to be connected as slave
32006 (32007*) BARO Suhu
Deskripsi Rinci On board temperature measurement
Tipe Data 32 bit floating Big-Endian
Rentang yang Diizinkan -30 hingga +60
Satuan derajatC
Komentar

*Some devices report Modbus register addresses with an offset of +1. This is true for Campbell Scientific Loggers and Dataker loggers. In order to read the desired register use the number in the parenthesis.

EXAMPLE USING A CR6 DATALOGGER AND MODBUS RTU
Huruf Campbell Scientific, Inc. CR6 Measurement and Control Datalogger supports Modbus master and Modbus slave communication to integrate Modbus SCADA networks. The Modbus communications protocol facilitates the exchange of information and data between a computer/HMI software, instruments (RTUs), and Modbus-compatible sensors. The CR6 datalogger communicates exclusively in RTU mode. In a Modbus network, each slave device has a unique address. Therefore, sensor devices must be configured correctly before connecting to a Modbus Network. Addresses range from 1 to 247. Address 0 is reserved for universal broadcasts.

PROGRAMMING A CR6 DATALOGGER
The Programs running on the CR6 (and CR1000) Loggers are written in CRBasic, a language developed by Campbell Scientific. It is a high-level language designed to provide an easy yet extremely flexible and powerful method of instructing the data logger how and when to take measurements, process data, and communicate. Programs can be created using either the ShortCut Software or edited using the CRBasic Editor, both of which are available for downloading as stand-alone applications on the official Campbel Ilmiah weblokasi (www.campbellsci.com). ShortCut Software (https://www.campbellsci.com/shortcut) CRBasic Editor (https://www.campbellsci.com/crbasiceditor)

A typical CRBasic program for a Modbus application consists of the following:

  • Variables and constants declarations (public or private)
  • Units declarations
  • Parameter konfigurasi
  • Data tables declarations
  • Logger Initializations
  • Scan (Main Loop) with all the sensors to be quired
  • Function call to the Data Tables

CR6 LOGGER RS-485 CONNECTION INTERFACE
The universal (U) terminal of the CR6 offers 12 Channels that connect to nearly any sensor type. It gives the CR6 the ability to match more applications and eliminates the use of many external peripherals.
The Modbus CR6 connection shown in Figure 12 uses the RS-485 (A/B) interface mounted on terminals (C1-C2) and (C3-C4). These interfaces can operate in Half-Duplex and Full-Duplex. The serial interface of the BARO Module used for this example is connected to (C1-C2) terminals.

BARO Module to CR6 Datalogger Wiring DiagramMETER-BARO-Module- (12)

After assigning the BARO Module a unique Modbus Slave Address, it can be wired to the CR6 logger according to Figure 12. Make sure to connect the white and black wires according to their signals, respectively, to the C1 and C2 ports—the brown wire to 12V (V+) and the blue to G (GND). To control the power supply through your program, connect the brown wire directly to one of the SW12 terminals (switched 12V outputs).

EXAMPPROGRAM LE

METER-BARO-Module- (13) METER-BARO-Module- (14) METER-BARO-Module- (15)

DUKUNGAN PELANGGAN

AMERIKA UTARA
Perwakilan layanan pelanggan siap menjawab pertanyaan, masalah, atau masukan dari Senin sampai Jumat, pukul 7 pagi hingga 00 sore waktu Pasifik.

EROPA

Jika menghubungi METER melalui email, harap sertakan informasi berikut:

  • Nama
  • Alamat
  • Nomor telepon
  • Alamat email
  • Nomor seri instrumen

Deskripsi masalah

CATATAN: Untuk produk yang dibeli melalui distributor, silakan hubungi distributor secara langsung untuk mendapatkan bantuan.

RIWAYAT REVISI
Tabel berikut mencantumkan revisi dokumen.

Revisi Tanggal Firmware yang Kompatibel Keterangan
00 6.2025 1.10 Rilis awal

Tanya Jawab Umum

What should I do if I need a nonstandard cable length?

Contact Customer Support for assistance with nonstandard cable lengths.

How do I know which communication protocol to use for my application?

Evaluate the advantages and challenges of each protocol based on your application needs. If unsure, contact METER Customer Support for guidance.

Dokumen / Sumber Daya

METER BARO Module [Bahasa Indonesia:] Panduan Pengguna
TEROS 31, TEROS 32, BARO Module, BARO Module, Module

Referensi

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