TIDUFK1 August   2026

 

  1.   1
  2.   Description
  3.   Resources
  4.   Features
  5.   Applications
  6.   6
  7. 1System Description
    1. 1.1 Terminology
    2. 1.2 Key System Specifications
  8. 2System Overview
    1. 2.1 Block Diagram
    2. 2.2 Design Considerations
      1. 2.2.1 Low Signal Amplitude
      2. 2.2.2 Sensitivity to Noise
      3. 2.2.3 Integrator limitation
      4. 2.2.4 Effect of Artificial Loads
      5. 2.2.5 Stray Magnetic Field Interference
      6. 2.2.6 Crosstalk
      7. 2.2.7 Mechanical Limitations
      8. 2.2.8 Human Errors
    3. 2.3 Highlighted Products
      1. 2.3.1 TLV4387
      2. 2.3.2 ADS131M08
      3. 2.3.3 MSPM0G1506
      4. 2.3.4 ISO6731
      5. 2.3.5 TPS70933
      6. 2.3.6 TRS3232
      7. 2.3.7 CDC6CE
  9. 3System Design Theory
    1. 3.1 Rogowski Coil
    2. 3.2 Hardware Integrator
  10. 4Hardware, Software, Testing Requirements, and Test Results
    1. 4.1 Hardware Requirements
    2. 4.2 Software
    3. 4.3 Test Setup
      1. 4.3.1 Header Information
    4. 4.4 Getting Started
      1. 4.4.1 Software Installation
      2. 4.4.2 GUI Setup
        1. 4.4.2.1 Calibration
    5. 4.5 Test Results
      1. 4.5.1  Active Power Accuracy Measurements
      2. 4.5.2  Active Power Accuracy Measurements (PF≠1)
      3. 4.5.3  Reactive Power Accuracy Measurements
      4. 4.5.4  Reactive Power Accuracy Measurements (PF≠1)
      5. 4.5.5  Voltage Variation Accuracy Measurements
      6. 4.5.6  Frequency Variation Accuracy Measurements
      7. 4.5.7  Equality of Current Circuits Accuracy Measurements
      8. 4.5.8  Phase Reversal Accuracy Measurements
      9. 4.5.9  Temperature Variation Accuracy Measurements
      10. 4.5.10 Crosstalk Accuracy Measurements
      11. 4.5.11 Effect of External Magnetic Fields Accuracy Measurements
  11. 5Design and Documentation Support
    1. 5.1 Documentation Support
    2.     Trademarks
  12. 6About the Author

ADS131M08

The ADS131M08 is an eight-channel, simultaneously sampling, 24-bit, delta-sigma (ΔΣ), analog-to-digital converter (ADC) that offers wide dynamic range, low power, and energy-measurement-specific features, making the device an excellent fit for energy metering, power metrology, and circuit breaker applications. The ADC inputs can be directly interfaced to a resistor divider network or a power transformer to measure voltage or to a current transformer or a Rogowski coil to measure current. The individual ADC channels can be independently configured depending on the sensor input. A low noise, programmable gain amplifier (PGA) provides gains ranging from 1 to 128 to amplify low-level signals. Additionally, this device integrates channel-to-channel phase calibration and offset and gain calibration registers to help remove signal-chain errors. A low-drift, 1.2V reference is integrated into the device reducing printed circuit board (PCB) area. Optional cyclic redundancy checks (CRCs) on the data input, data output, and register map maintain communication integrity.