Introduction
The NAFEB43388 is a highly configurable, industrial-grade, 8-input universal analog front-end designed for high-precision measurement applications such as PLCs, DCS I/O modules, remote/distributed I/O, data acquisition systems, instrumentation, and industrial automation. It integrates a 24-bit sigma-delta ADC, 13-bit DAC, high-voltage multiplexers, programmable gain amplifiers, precision references, diagnostics, and an integrated sense resistor with protection switch for current measurements.
The NAFEBx3388-EVB evaluation board supports evaluation of pin-compatible NAFEB43388/NAFEB73388 family devices and is intended to demonstrate high-precision industrial measurements using the FRDM-MCXN947 MCU platform and a Windows-based GUI.
For detailed register settings, timing diagrams, electrical limits, and calibration procedures, please refer to the latest NAFEB43388 product data sheet and the NAFEBx3388-EVB user manual available on nxp.com.
1. What is the NAFEB43388?
The NAFEB43388 is a highly configurable multichannel universal-input Analog Front-End intended for precision industrial measurements. It integrates a 24-bit sigma-delta ADC, 13-bit DAC, low-leakage high-voltage multiplexers, low-offset and low-drift PGA stages, internal voltage references, diagnostics, and an integrated current-sense resistor protected by a smart e-fuse circuit.
2. What applications is the NAFEB43388 designed for?
Typical applications include PLC and DCS I/O modules, remote and distributed I/O modules, sensor and data acquisition systems, instrumentation, and industrial automation or process-control equipment.
3. How many analog inputs does the NAFEB43388 support?
The device provides eight high-voltage analog inputs plus one common input. These inputs can be configured for single-ended, differential, or pseudo-differential measurements depending on the measurement topology and register configuration.
4. What types of signals can the NAFEB43388 measure?
The NAFEB43388 supports software-configurable measurement of voltage, current, resistance, RTD, and thermocouple-type sensor signals. The supported input ranges include voltage up to ±12.5 V, current up to ±25 mA, and resistance measurement capability from 1 mΩ to 1 MΩ according to the fact sheet, while the datasheet describes programmable current excitation for resistance and RTD measurements.
5. What is the ADC resolution and data-rate range?
The NAFEB43388 integrates a 24-bit sigma-delta ADC. For the low-power NAFEB43388 variant, the ADC data rate is configurable from 7.5 samples per second up to 288k samples per second, depending on the selected data-rate code, SINC filter configuration, and settling mode.
6. What is the DAC resolution and output capability?
The integrated DAC has 13-bit resolution and can be configured for voltage output or current output. The DAC supports voltage output up to approximately ±12.5 V full-scale and current output up to approximately ±2.5 mA full-scale, with a DAC data rate up to 100 ksps.
7. What is the difference between NAFEB43388, NAFEB43188, NAFEB73388, and NAFEH73388?
The NAFE family includes low-power and high-speed variants, with or without factory calibration and HART modem support. The NAFEB43388 is a low-power, 24-bit, 8-input device with factory calibration and no HART modem. The NAFEB43188 is similar but without factory calibration. The NAFEB73388 is a high-speed 24-bit, 8-input variant with factory calibration, and the NAFEH73388 adds HART modem support.
8. What is the NAFEBx3388-EVB?
The NAFEBx3388-EVB is an evaluation board designed to evaluate pin-compatible NAFEB43388 and NAFEB73388 AFE devices. It enables high-precision industrial measurements using the FRDM-MCXN947 MCU platform and includes a GUI for configuring and testing the device.
9. What hardware is included in the NAFEBx3388 evaluation kit?
The evaluation kit includes the NAFEBx3388 evaluation board, an FRDM-MCX947 evaluation board with custom firmware, and a USB cable. The EVB is connected to the FRDM-MCX947 board through Arduino-compatible connectors.
10. How is the NAFEBx3388-EVB powered?
The EVB can be powered using the supplied 24 V AC-DC adapter connected to J307, with jumpers J308, J309, and J310 set to the 2-3 position. Alternatively, external supplies can be applied: AVDD/DVDD = 3.75 V on J300, HVDD = +15.4 V on J301, and HVSS = -15.4 V on J302, accounting for the voltage drop across the protection diode in the supply path.
11. How does the NAFEB43388 support voltage measurements?
The AFE can measure differential, pseudo-differential, and single-ended voltage signals. Single-ended measurements are performed by connecting the positive signal to AIxP or AIxN and the negative signal to AICOM, while differential measurements use the corresponding AIxP and AIxN pair.
12. What voltage input ranges are available?
The input range depends on the total programmed channel gain. For single-ended input, the nominal linear ranges include ±10 V at gain 1, ±5 V at gain 2, ±2.5 V at gain 4, ±0.625 V at gain 16, ±0.313 V at gain 32, and ±0.156 V at gain 64. For differential input, the corresponding nominal linear ranges are ±20 V, ±10 V, ±5 V, ±1.25 V, ±0.625 V, and ±0.313 V.
13. How does the NAFEB43388 support current input measurements?
The AI1P pin can measure current using the integrated 25 Ω sense resistor and the configurable current-input protection switch, CISW. This supports common industrial current ranges such as ±20 mA, 0 mA to 20 mA, and 4 mA to 20 mA.
14. What protection is available for current input mode?
When current input mode is selected on AI1P, the integrated CISW protection switch supports fault handling. The datasheet describes three current levels: approximately 50 mA short-circuit or overcurrent threshold, 30 mA overload threshold, and 12 mA current-limiter level. The overcurrent deglitch time, overcurrent limit time, and limiter delay can be configured.
15. What is the purpose of the programmable gain amplifiers?
The NAFEB43388 includes two PGA stages. PGA1 operates in the high-voltage domain and supports gains of 1 and 16, while PGA2 operates in the low-voltage domain and supports gains of 1, 2, and 4. Combining both stages provides total gains from 1 to 64, allowing the input range to be matched to the signal amplitude.
16. What are the available ADC reading modes?
The NAFEB43388 supports five conversion modes: Single-Channel Single-Reading, Single-Channel Continuous-Reading, Multichannel Single-Reading, Multichannel Multireading, and Multichannel Continuous-Reading. These modes allow the host to choose between one-shot, continuous, host-driven, semi-autonomous, or autonomous multichannel acquisition.
17. When should normal settling or single-cycle settling be used?
Normal settling is better suited for single-channel reading where maximum data rate is preferred, while single-cycle settling is recommended for multichannel systems to avoid settling-time error after switching channels. In normal settling, the ADC output stabilizes after four samples, while in single-cycle settling the output is stable in one cycle, but the effective data rate is four times slower.
18. What factors affect noise performance?
Noise performance depends mainly on the selected data rate, PGA gain, digital filter order, and settling mode. Lowering the data rate reduces the equivalent noise bandwidth and therefore reduces noise. Increasing PGA gain can reduce input-referred noise because the PGA contributes less noise than the ADC. Higher-order digital filtering can also reduce noise by narrowing the effective bandwidth.
19. What calibration options are available?
The NAFEB43388 includes user-accessible calibration coefficient registers for analog input gain, analog input offset, extra calibration coefficients, and DAC output calibration. Factory-calibrated options load coefficients from nonvolatile memory during power-up or reset, and users can also perform application-specific calibration using the available registers and GUI procedures.
20. What accuracy can be achieved with calibration?
For voltage input with user calibration, the datasheet specifies typical room-temperature TUE of 0.002 %FS and maximum ±0.005 %FS under the stated conditions. Across temperature, typical TUE is listed as 0.05 %FS with maximum ±0.1 %FS. For current input using the internal sense resistor and user calibration, the listed typical room-temperature TUE is 0.00125 %FS with maximum ±0.005 %FS.
21. How is an external 4-wire PT100 connected and measured?
For the external 4-wire PT100 demo, one red RTD wire is connected to AI2P and one white wire to AI3P to provide the current forcing path, while the other red and white wires are connected to AI3N and AICM for differential voltage sensing. The default GUI configuration uses AI3P-AI3N as the measured input, -2 mA DAC current excitation on AI2P, normal settling, PGA1 = 16x, PGA2 = 4x, 200 SPS, and SINC4_4 filtering.
22. What diagnostics are integrated in the NAFEB43388?
The NAFEB43388 includes advanced diagnostics for fault and anomaly detection, including power-supply monitoring, under-/over-range detection on the signal path, redundant voltage-reference monitoring, temperature monitoring, CRC error detection, global alarm functionality, clock-deviation detection, and input/output overcurrent-related status flags.
23. How can multiple NAFEB43388 devices be synchronized?
The device supports synchronization through the SYNCADC pin. A host-generated SYNC pulse can be connected to multiple NAFE devices so that conversions start simultaneously on the rising edge of the SYNCADC pulse. The device can also synchronize to the host using SYNCADC, synchronize the host to the NAFE data rate using DRDY, or share an external 18.432 MHz clock with the host for coherent measurements.
查看全文