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UTE323G 3-Ch High-Precision Digital Power Meter, with GPIB

UTE323G 3-Ch High-Precision Digital Power Meter, with GPIB
UTE323G 3-Ch High-Precision Digital Power Meter, with GPIB
UTE323G 3-Ch High-Precision Digital Power Meter, with GPIB
UTE323G 3-Ch High-Precision Digital Power Meter, with GPIB
UTE323G 3-Ch High-Precision Digital Power Meter, with GPIB
UTE323G 3-Ch High-Precision Digital Power Meter, with GPIB
UTE323G 3-Ch High-Precision Digital Power Meter, with GPIB
UTE323G 3-Ch High-Precision Digital Power Meter, with GPIB
UTE323G 3-Ch High-Precision Digital Power Meter, with GPIB
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OVERVIEW

SPECIFICATIONS

DOCUMENTATION

ACCESSORIES

UNI-T UTE323G | Professional 3-Channel Digital Power Meter with GPIB (DC to 300 kHz)

Overview

The UNI-T UTE323G three-phase digital power meter delivers precision measurement across an industry-leading 300 kHz bandwidth with ±0.1% accuracy. Featuring a vivid 5-inch TFT display with integrated waveform visualization, 300 kSa/s sampling, and IEC 61000-4-7 compliant harmonic analysis, this instrument provides the comprehensive measurement capabilities that power electronics engineers demand for development, certification testing, and production validation.

Engineered for professional testing environments and automated test systems, the UTE323GG combines three independent measurement channels with real-time math functions, automated pass/fail comparators, and versatile connectivity via USB, LAN, and GPIB (IEEE-488). The GPIB interface provides deterministic communication timing for high-throughput production testing and seamless integration with rack-mount controllers from National Instruments, Keysight, and Tektronix. The exceptional bandwidth captures high-frequency switching transients that 100 kHz competitive instruments miss, while the intuitive display eliminates the constant menu navigation required with 7-segment displays. Whether characterizing motor drives, validating power supply efficiency, performing IEC compliance testing, or building automated test stations, the UTE323GG delivers measurement clarity and workflow efficiency that accelerates your development cycle.

UTE323G Digital Power Meter
UTE323G three-phase digital power meter with professional-grade measurement capability and GPIB interface

Key Features

  • Three Independent Channels - Simultaneous measurement of three-phase systems with voltage, current, power, and harmonic analysis per channel
  • 300 kHz Bandwidth - Industry-leading bandwidth captures high-frequency switching harmonics up to the 30th order at 10 kHz fundamental
  • 300 kSa/s Sample Rate - High-speed sampling accurately captures transients, inrush currents, and switching edges without aliasing
  • ±0.1% Basic Accuracy - Precision measurement of voltage, current, and power for reliable efficiency calculations and compliance testing
  • 5-Inch TFT Display - Full-color 800×480 display with simultaneous parameter viewing and integrated waveform visualization
  • IEC 61000-4-7 Harmonics - Compliant 50th-order harmonic analysis with FFT-based measurement matching certification lab methodology
  • Real-Time Math Functions - Automatic efficiency calculations (A/B), loss analysis (A-B), and custom ratios eliminate post-processing
  • Automated Comparators - Pass/fail testing with user-defined limits for production and compliance verification
  • Waveform Display - Oscilloscope-like visualization of voltage and current waveforms reveals phase relationships and distortion
  • Integration Function - Energy measurement (Wh) and charge tracking (Ah) for up to 10,000 hours of unattended operation
  • 12-Channel D/A Output - Real-time analog outputs for strip chart recorders, process control, or data acquisition systems
  • Versatile Connectivity - USB Device/Host, LAN (Ethernet), and GPIB (IEEE-488) with SCPI and Modbus protocol support for automated testing

5-Inch TFT Display with Multi-Parameter Viewing

The UTE323G's 5-inch full-color TFT display (800×480 resolution) represents a fundamental advantage over competitive power meters using 7-segment displays. Where 7-segment instruments force you to cycle through parameters one at a time—pressing buttons repeatedly to find the measurement you need—the UTE323G presents all critical parameters simultaneously on a single screen.

This simultaneous viewing capability transforms your workflow. Monitor voltage, current, power, apparent power, reactive power, power factor, frequency, and integrated energy all at once. When running efficiency tests, watch input power, output power, and calculated efficiency update together in real time. During harmonic compliance testing, view THD alongside fundamental power and frequency without menu navigation.

The graphical interface uses color coding and logical grouping to make data interpretation immediate. You spend your time analyzing results rather than hunting for measurements. For engineers who run multiple test types daily, this interface efficiency compounds into significant time savings and reduced operator frustration.

UTE323G Multi-Parameter Display
Simultaneous multi-parameter display eliminates constant menu cycling required by 7-segment competitors

Waveform Display Replaces Oscilloscope for Power Analysis

This is a significant competitive advantage: the UTE323G provides oscilloscope-like waveform visualization that competitive 7-segment power meters completely lack. Where competitors provide only numeric measurements, the UTE323G simultaneously displays voltage and current waveforms in real time, revealing signal characteristics that numbers alone cannot convey.

The waveform display enables visual identification of phase relationships between voltage and current—instantly see whether your load is inductive or capacitive. Observe harmonic distortion as actual waveform deformation rather than abstract THD percentages. Identify switching artifacts from PWM drives, commutation spikes from motor controllers, and clipping in power amplifiers. Verify that power factor correction circuits are properly shifting current phase. Diagnose rectifier bridge failures by observing asymmetric waveforms.

For many power analysis tasks, this waveform capability eliminates the need to connect a separate oscilloscope. Set up once with the UTE323G instead of running multiple test cables and synchronizing separate instruments. Engineers consistently report that waveform visualization accelerates troubleshooting by making problems visually obvious that would require extensive analysis from numeric data alone.

UTE323G Waveform Display
Real-time waveform visualization capability completely absent from 7-segment competitive instruments

300 kSa/s Sample Rate for Accurate Transient Capture

The UTE323G's 300 kSa/s sampling rate provides three times the sampling density of standard 100 kSa/s power meters, directly improving measurement fidelity during transient events. This high sample rate captures the fine temporal detail of startup inrush currents, switching transients, and load step responses that lower-speed instruments miss or misrepresent through aliasing.

Consider motor startup: inrush current can spike to 8× running current over just a few milliseconds. With 300 kSa/s sampling, the UTE323G captures hundreds of samples during this critical period, accurately measuring peak current and energy consumption. A 100 kSa/s instrument might capture only 10-20 samples of the same event, potentially missing the actual peak or averaging away important detail.

For switching power supplies operating at 100+ kHz, the high sample rate ensures each switching cycle is properly sampled according to Nyquist criteria. This prevents aliasing artifacts that would corrupt harmonic measurements and power calculations. The dense sample spacing also improves the accuracy of integrated energy measurements by capturing rapid power fluctuations that coarser sampling would smooth over.

In automated test systems, higher sample rates reduce the update interval needed to achieve measurement stability, increasing production throughput. The combination of 300 kHz bandwidth and 300 kSa/s sampling ensures the UTE323G faithfully represents your signals from DC through high-frequency switching transients.

UTE323G High Sample Rate
300 kSa/s sampling captures transient detail that 100 kSa/s competitors miss through aliasing and undersampling

300 kHz Bandwidth vs. Industry-Standard 100 kHz

The UTE323G's 300 kHz bandwidth provides coverage three times wider than competitive instruments typically offering 100 kHz bandwidth. This expanded frequency range directly impacts measurement capability and accuracy for modern switching power electronics.

Consider harmonic measurement at a 10 kHz fundamental frequency (common for high-speed motor drives and switch-mode power supplies). The UTE323G's 300 kHz bandwidth enables accurate measurement through the 30th harmonic, while a 100 kHz instrument stops at approximately the 10th harmonic. Those missing higher-order harmonics contain real power and contribute to total harmonic distortion—measurements that 100 kHz instruments simply cannot capture.

For compliance testing against IEC 61000-3-2 or IEEE 519, standards specify harmonic limits through the 40th or 50th order. A 100 kHz bandwidth physically cannot measure compliance for any system operating above 2-2.5 kHz fundamental frequency. The UTE323G's 300 kHz bandwidth extends useful harmonic analysis to 6 kHz fundamentals, covering the vast majority of industrial and commercial equipment.

Modern power converters increasingly use SiC and GaN devices switching at 20 kHz and higher to reduce magnetic component size. Characterizing these designs requires bandwidth that extends well beyond the fundamental frequency to capture switching harmonics and EMI signatures. The UTE323G's 300 kHz bandwidth future-proofs your test capability as switching frequencies continue to increase.

This bandwidth advantage isn't just about measuring faster signals—it's about measuring complete signals. Higher harmonics contain energy that contributes to RMS current, power loss, and heating. Without adequate bandwidth, you're making incomplete measurements that underestimate current stress, power dissipation, and compliance violations.

300 kHz vs 100 kHz Bandwidth Comparison
300 kHz bandwidth captures high-frequency switching harmonics that 100 kHz competitors cannot measure

IEC 61000-4-7 Compliant Harmonic Measurement

The UTE323G implements IEC 61000-4-7:2002 compliant harmonic measurement methodology, ensuring your pre-qualification results match the methods certification laboratories will use for official testing. This compliance encompasses the complete measurement chain: PLL-based synchronization, rectangular windowing, grouping methods, and FFT calculation parameters specified by the standard.

The power meter analyzes harmonics through the 50th order, covering the full range required by IEC 61000-3-2 (harmonic current emission limits) and IEC 61000-3-3 (voltage fluctuation limits). For each harmonic, the UTE323G reports magnitude, phase angle, and percentage relative to fundamental, presented in both tabular format and graphical bar charts that make compliance verification immediate.

Harmonic measurement supports both conventional mode (fixed 1024-point FFT) and IEC mode (200 ms time window for 50/60 Hz systems). The IEC mode implements the precise measurement windows and grouping algorithms that certification labs use, ensuring your measurements correlate directly with official test results. This correlation is critical—catching compliance failures in-house costs hours of engineering time, while discovering them during official certification costs weeks and thousands of dollars in retest fees.

Beyond compliance testing, harmonic analysis supports filter design, EMI troubleshooting, and power quality investigation. The waveform display complements numeric harmonic data by showing visually how harmonics distort the time-domain signal, providing intuitive insight into harmonic content and its effects.

UTE323G Harmonic Analysis Display
IEC 61000-4-7 compliant harmonic analysis through 50th order with graphical and tabular presentation

Integration for Energy Measurement

Beyond instantaneous power measurement, the UTE323G integrates power over time to measure energy consumption (Wh, Wh+, Wh-) and charge flow (Ah, Ah+, Ah-). This integration function is essential for efficiency testing, standby power measurement, and battery characterization. The power meter supports three integration modes—manual, standard, and repetitive—to match different test protocols.

The integration function runs continuously for up to 10,000 hours, making it suitable for long-term monitoring and lifetime testing. Set a timer to automatically stop integration after a specified period, or run continuously until you manually stop it. The large integration capacity (±999,999 MWh) accommodates both milliwatt standby measurements and kilowatt continuous operation without overflow concerns.

For Energy Star testing, measure standby power by integrating over the required 24-hour test period, then divide integrated energy by time to get average standby power. For battery testing, track amp-hours during charge/discharge cycles to verify capacity. For production testing, integrate energy during a standard test cycle and compare against limits to verify efficiency compliance.

UTE323G Integration Function
Integration function measures energy consumption and charge flow for up to 10,000 hours of unattended operation

Math Functions for Automatic Calculations

Here's a common frustration: you're measuring input power on channels 1-3 and output power on an external meter. To calculate efficiency, you typically need to export both measurements to a spreadsheet, align the timestamps, divide output by input, multiply by 100, and plot the results. If you're sweeping across 20 load points, that's 20 manual calculations—and if you spot an issue and need to re-run the test, you do it all again.

The UTE323G's built-in math functions eliminate this workflow. Configure a math channel to automatically calculate efficiency as (Pout)/(P1+P2+P3)×100, and the result updates in real time on the display alongside your raw measurements. The power meter supports six mathematical operations:

  • A+B: Sum powers for total system input or multi-channel totalization
  • A-B: Calculate losses (input minus output) or power differentials
  • A×B: Scale measurements or calculate products (e.g., power × time for energy)
  • A/B: Efficiency calculations (Pout/Pin), cost per watt ($/W), power factor ratios
  • A²/B: Power density (Power²/Volume) for thermal calculations
  • A/B²: Specialized ratios for power electronics analysis

Math results appear as live measurements that update with your data acquisition rate. You can output them via D/A channels for real-time monitoring, log them to USB along with raw measurements, or send them via remote commands for automated test sequences. This transforms efficiency testing from a post-processing exercise into real-time feedback that lets you optimize your design during the test rather than hours later after analyzing spreadsheets.

Comparator Function for Production Testing

Production testing has a fundamental problem: operators need instant pass/fail decisions, but power measurements involve multiple parameters—voltage, current, power, power factor, efficiency, harmonics. An operator can't mentally check whether all six parameters simultaneously fall within specification limits while maintaining production throughput.

The UTE323G's comparator function solves this by implementing automated go/no-go testing. Define upper and lower limits for any measured parameter—say, efficiency must be 88-92%, power factor must exceed 0.95, and THD must stay below 5%. The power meter continuously evaluates all active comparator conditions and displays clear PASS or FAIL status. Connect the comparator output to your test fixture's indicator lights or automated handling system, and you've eliminated operator interpretation errors.

For production environments, this means:

  • Consistent test criteria across all operators and shifts
  • Instant visual feedback reduces test time per unit
  • Automated sorting of passing and failing units
  • Digital output signals for integration with conveyor systems and MES
  • Documentation of test limits in saved configurations

The comparator configuration saves with your measurement setup, ensuring every test applies identical acceptance criteria. This consistency is essential for quality control, especially when validating that contract manufacturers meet your specifications.

Data Logging for Unattended Testing

Long-term reliability testing creates a time-bind: you need to monitor equipment over hours, days, or weeks, but you can't dedicate lab space and engineering time to watching measurements continuously. Many engineers resort to writing custom data acquisition scripts, setting up separate DAQ systems, or manually recording measurements at intervals—all of which consume time better spent on analysis rather than data collection.

The UTE323G's USB data logging provides autonomous measurement recording. Insert a USB flash drive, configure the logging interval and parameters, start the test, and walk away. The power meter records all selected measurements—voltage, current, power, harmonics, efficiency calculations, integrated energy—directly to CSV files that open in any spreadsheet application.

Practical applications include:

  • Burn-in Testing: Monitor power consumption and efficiency over 48-hour product burn-in cycles
  • Temperature Cycling: Record power parameters as equipment cycles through environmental chamber profiles
  • Standby Power Verification: Measure average standby power over 24-hour periods as required by Energy Star
  • Load Profile Recording: Capture power consumption patterns of equipment under realistic operating cycles
  • Drift Testing: Monitor long-term parameter stability to verify calibration intervals

The logged data includes timestamps, making it straightforward to correlate power measurements with other test conditions or events. This unattended capability multiplies your lab's effective capacity—one engineer can supervise multiple long-term tests simultaneously rather than being tied to a single measurement station.

Configurable Display Layouts for Workflow Efficiency

Every test has different measurement priorities. When characterizing startup behavior, you care about peak voltage and inrush current. During efficiency mapping, you need input power, output power, and the calculated ratio. For harmonic compliance, THD and individual harmonic magnitudes matter most. Constantly navigating menus to access the parameters relevant to your current test wastes time and breaks concentration.

The UTE323G allows you to create custom display configurations tailored to specific test types. Set up a "Motor Efficiency" screen showing three-phase input power, mechanical output, calculated efficiency, and power factor. Create a "Harmonic Compliance" layout with THD, individual harmonic bar charts, and IEC 61000 comparison results. Configure a "Production Test" display with large PASS/FAIL indicators and the six critical parameters your test procedure requires.

Save these configurations and recall them instantly when switching between test types. The power meter stores setup parameters including measurement ranges, integration settings, math functions, comparator limits, and communication configuration—everything needed to replicate a test exactly. This capability supports several important workflows:

  • Standardized Test Procedures: Ensure all engineers run identical tests by loading the validated configuration
  • Quick Test Switching: Move between efficiency, harmonics, and inrush testing without manual reconfiguration
  • Training Simplification: New engineers load proven configurations rather than learning complex setup procedures
  • Multi-Shift Consistency: Production test configurations eliminate shift-to-shift variation

For labs running diverse tests on different product types, saved configurations transform the power meter from a general-purpose instrument requiring setup before each test into a collection of specialized test stations optimized for specific measurements.

12-Channel D/A Output for Real-Time Monitoring

Configured with 12 D/A output channels, the UTE323G can proportionally scale and output parameters such as voltage, current, and power from each measurement unit. Each channel provides ±5V full-scale output (±7.5V maximum) with 16-bit resolution, suitable for driving strip chart recorders, data acquisition systems, or process control equipment.

D/A outputs enable several critical workflows:

  • Historical Recording: Connect to strip chart recorders for permanent paper documentation of long-term tests
  • External Data Acquisition: Feed power measurements to multi-channel DAQ systems alongside temperature, vibration, and other sensor data
  • Process Control Integration: Use power measurements as feedback signals for automated test systems and closed-loop control
  • Real-Time Monitoring: Display critical parameters on external meters or indicators visible across the lab
  • Math Function Output: Output calculated values like efficiency or losses for external analysis or control

The D/A update interval matches your selected data acquisition rate, ensuring analog outputs track measurements in real time. This capability is particularly valuable in automated test systems where multiple instruments must synchronize, or in production environments where operators monitor analog gauges for immediate visual feedback.

UTE323G D/A Output Configuration
12-channel D/A output configuration screen showing parameter assignment to analog output channels

Communication and Automation

The UTE323G provides comprehensive connectivity for both manual remote control and automated test integration. Standard interfaces include:

  • GPIB (IEEE-488): Industry-standard interface for automated test systems with deterministic timing and compatibility with rack-mount controllers
  • LAN (Ethernet): 10/100/1000 Base-T connection supports VXI-11, raw socket, and web browser control
  • USB Device: Direct connection to PC for remote control via USB-TMC protocol
  • USB Host: Front-panel port accepts flash drives for data logging and firmware updates

The GPIB interface provides seamless integration with existing test infrastructure from National Instruments, Keysight (formerly Agilent), and Tektronix. GPIB's deterministic communication timing ensures reliable measurement cycles in high-throughput production environments, while the proven protocol eliminates the driver compatibility issues sometimes encountered with newer interfaces.

Both SCPI (Standard Commands for Programmable Instruments) and Modbus protocols are supported, enabling integration with test automation frameworks, PLCs, and SCADA systems. SCPI commands provide comprehensive control over measurement configuration, data retrieval, and instrument settings. Modbus RTU and Modbus TCP variants support industrial automation environments.

For rapid automation development, UNI-T provides PC software supporting drag-and-drop test sequence creation, real-time data visualization, and report generation. Python, LabVIEW, and C++ programming examples are available to accelerate custom automation development.

Standards Compliance and Certification Testing

The UTE323G's measurement capabilities directly support compliance testing against major international power quality and energy efficiency standards. The IEC 61000-4-7 compliant harmonic measurement methodology ensures your pre-qualification results match certification laboratory methods, while the high accuracy and broad bandwidth enable precise verification across multiple regulatory requirements.

International Power Quality Standards

  • IEC 61000-4-7: Compliant harmonic and interharmonic measurement methodology through 50th order
  • IEC 61000-3-2: Harmonic current emission limits verification for equipment drawing up to 16A per phase
  • IEC 61000-3-3: Voltage changes, voltage fluctuations, and flicker limits assessment
  • IEEE 519: Harmonic control in electrical power systems—measure THD and individual harmonic limits

Energy Efficiency Standards

  • Energy Star: Measure active mode efficiency at specified load points and standby power consumption
  • IEC 60034-2-1: Motor efficiency testing for IE1, IE2, IE3, and IE4 classification
  • IEC 61557: Electrical safety testing requirements for low-voltage distribution systems
  • 80 PLUS Certification: Power supply efficiency testing at 20%, 50%, and 100% load conditions

Grid Connection and Renewable Energy Standards

  • IEEE 1547: Distributed energy resource interconnection—power quality and harmonic injection limits
  • IEC 61727: Photovoltaic system utility interface characteristics verification
  • UL 1741: Inverter, converter, and controller interconnection equipment testing

Why Engineers Choose UTE323G Over Competitive Power Meters

Superior Display and User Interface

The 5-inch full-color TFT display (800×480) versus competitors' 7-segment displays fundamentally changes the user experience. View all critical parameters simultaneously rather than cycling through measurements one at a time. The graphical interface presents waveforms, harmonic bar charts, and trend data that 7-segment displays physically cannot show. Touch-friendly navigation with logical menu organization reduces setup time and operator training requirements. For engineers running multiple test types daily, the interface efficiency compounds into hours of time savings per week.

300 kHz Bandwidth vs. Industry-Standard 100 kHz

Three times the frequency spectrum coverage enables measurement of higher-order harmonics that 100 kHz instruments cannot capture. At 10 kHz fundamental frequency, measure accurately through the 30th harmonic versus stopping at the 10th. Critical for characterizing modern SiC and GaN power converters switching at 20+ kHz. Future-proof your test capability as switching frequencies continue increasing. Higher-order harmonics contain real energy—without adequate bandwidth, you're making incomplete measurements that underestimate current stress, power dissipation, and EMI.

Higher Sample Rate (300 kSa/s vs. 100 kSa/s)

Three times the sampling density captures transient events with greater fidelity. Accurately measure inrush current peaks, switching transient edges, and ringing without aliasing artifacts. Dense sample spacing improves integrated energy measurement accuracy by capturing rapid power fluctuations. In automated test systems, higher sample rates reduce measurement settling time, increasing production throughput. The combination of 300 kHz bandwidth and 300 kSa/s sampling ensures signal fidelity from DC through high-frequency switching transients.

Waveform Display Capability

The oscilloscope-like waveform visualization is completely absent from 7-segment competitive instruments. Visually identify phase relationships, harmonic distortion, switching artifacts, clipping, commutation problems, and rectifier failures. For many power analysis tasks, eliminates the need for a separate oscilloscope. Engineers consistently report that waveform visualization accelerates troubleshooting by making problems visually obvious that would require extensive analysis from numeric data alone.

Professional Applications

Product Development & Characterization

R&D engineers developing power supplies, motor drives, inverters, and other power electronics use the UTE323G throughout the design cycle. Design validation measures efficiency across the full load range to verify performance meets targets before production tooling. Real-time efficiency calculations via math functions enable immediate evaluation of component changes—swap a MOSFET, measure the efficiency delta, decide if cost increase justifies performance gain. Thermal analysis correlates measured losses with thermal camera data to identify hot spots. The waveform display reveals switching artifacts, commutation issues, and control loop problems without separate test equipment. Generate efficiency curves, harmonic profiles, and transient response data for design reviews and documentation.

Pre-Certification & Compliance Verification

Before paying thousands for official certification testing, engineers use the UTE323G to verify products will pass. Energy Star pre-qualification tests efficiency at required load points (25%, 50%, 75%, 100%) and verifies standby power before sample submission. Harmonic compliance screening verifies IEC 61000-3-2 limits for all orders before certification—catching failures in-house costs hours instead of weeks. 80 PLUS validation measures power supply efficiency at 20%, 50%, and 100% load under 115V and 230V conditions. Motor efficiency testing verifies IEC 60034-2-1 compliance for efficiency classification (IE1, IE2, IE3, IE4). Grid connection testing verifies power factor, harmonic injection, and voltage regulation for IEEE 1547 or IEC 61727 compliance. The IEC 61000-4-7 compliant measurement means pre-qualification results match certification lab methodology, eliminating surprises.

Production & End-of-Line Testing with GPIB Integration

Manufacturing engineers integrate the UTE323G into GPIB-based automated test systems for high-throughput production verification. The GPIB (IEEE-488) interface provides seamless integration with rack-mount controllers from National Instruments, Keysight, and Tektronix—directly connecting to existing test infrastructure without interface adapters or protocol conversion. Deterministic GPIB communication timing ensures reliable measurement cycles in high-volume manufacturing, while the proven protocol eliminates the driver compatibility issues sometimes encountered with newer interfaces.

Automated pass/fail testing configures comparator limits for efficiency, power factor, and harmonic distortion—test stations provide instant go/no-go indication without operator interpretation. Efficiency binning sorts production units into grades for pricing tiers or application-specific inventory using automated handling systems triggered by GPIB output commands. Calibration verification tests embedded power metering circuits in smart appliances, EV chargers, or solar inverters against the UTE323G's reference measurements. Test data archival logs measurement results via GPIB to production databases for traceability and warranty analysis. Legacy system compatibility enables integration with established test infrastructure that uses GPIB as the primary control interface, protecting existing automation investments.

Incoming Inspection & Vendor Qualification

Quality engineers test purchased components and assemblies to verify supplier specifications. Before accepting a 10,000-unit motor shipment, test samples verify efficiency, power factor, and current draw match datasheets. Vendor comparison evaluates competing power supply suppliers by measuring actual efficiency curves, hold-up time, and transient response beyond datasheet claims. Change control verification tests samples when suppliers notify of component substitutions. Counterfeit detection measures suspicious components and compares power characteristics against known-good samples—counterfeits often exhibit different efficiency or harmonic signatures. Receiving inspection performs 100% testing of production lots from new suppliers until quality history establishes confidence.

Failure Analysis & Root Cause Investigation

When equipment fails in field or testing, engineers characterize failure modes to prevent recurrence. Returned equipment diagnosis measures RMA units to identify whether failures stem from efficiency degradation, harmonic distortion, power factor issues, or other electrical anomalies. Waveform analysis reveals commutation problems, switch failures, or control instability that caused field failures. Comparative testing measures failed units against known-good units to quantify electrical differences and guide repair procedures. Stress testing runs suspect units at elevated voltage/current while monitoring efficiency and harmonics to trigger intermittent failures under controlled conditions. Post-repair verification confirms units meet original specifications before return to service.

Service Center & Repair Verification

Service and repair facilities verify repaired equipment meets original specifications. Pre-repair baseline measures electrical characteristics before disassembly to document failure conditions. Post-repair testing verifies repaired motor drives, inverters, or power supplies meet efficiency, power factor, and harmonic specifications. Calibration verification tests rebuilt equipment against stored factory specifications ensuring proper calibration after component replacement. Warranty claim validation measures returned equipment to verify claimed failures and determine coverage. Test record documentation generates before/after reports for customers showing measured improvements.

Competitive Analysis & Benchmarking

Product managers and engineers purchase competitor products and characterize performance to inform strategic decisions. Efficiency benchmarking measures competitor motor drives, power supplies, or inverters across full operating range to understand performance targets your products must match or exceed. Harmonic profile analysis characterizes competitor products' signatures ensuring your designs meet or beat their power quality. Technology assessment measures competing products using different topologies (flyback vs. LLC, IGBT vs. SiC) to quantify real-world performance differences. Marketing claims verification tests whether competitors actually achieve advertised efficiency and power factor specifications. Electrical characterization informs teardown analysis and helps identify design approaches competitors use.

Application Engineering Support

When customers have unusual requirements or integration questions, application engineers use the UTE323G to develop solutions. Load characterization brings customer loads into the lab to measure actual electrical characteristics when compatibility issues are reported—power factor, harmonics, inrush current. Custom solution validation verifies modified products or special configurations meet customer specifications before deployment. System integration testing evaluates how your equipment interacts with customer systems electrically—do harmonics from your drive affect their power quality, does your power supply handle their unusual AC input. Technical support evidence generates measurement data supporting recommendations to customers—demonstrate power factor correction need with actual harmonic measurements. Training demonstrations use clear display and waveform visualization to educate customers on power concepts during technical training.

Educational & Training Laboratories

Engineering programs use the UTE323G for teaching power electronics and electrical machines. Power concepts visualization makes abstract concepts concrete—students see how phase angle affects power factor, how harmonics distort waveforms, how efficiency varies with load. Comprehensive lab exercises cover motor testing, power supply characterization, inverter analysis, and power quality experiments with a single instrument. Standards education teaches IEC 61000, Energy Star, and other industry standards using same compliant measurement methods students will encounter professionally. Multi-group testing enables multiple student groups to test different phases or different equipment simultaneously with three independent channels. Students gain experience with remote control, automated testing, and data analysis workflows used in industry.

External Sensor Inputs

Beyond the 600V/20A direct measurement capability, the UTE323G accepts external current and voltage sensors to extend measurement range. Two external sensor input types support different transducer specifications:

  • EXT1 Input: Accepts 2.5V, 5V, or 10V signals from current transducers, Rogowski coils, and isolation amplifiers
  • EXT2 Input: Accepts 50mV, 100mV, 200mV, 500mV, 1V, or 2V signals from current shunts and Hall effect sensors

For each external input, configure the transducer ratio and scaling to display measurements in engineering units. Measure kiloamp currents with Rogowski coils, kilovolt potentials with high-voltage dividers, or isolated measurements in floating systems with isolation amplifiers. The external inputs use the same 300 kHz bandwidth and 300 kSa/s sampling as direct inputs, ensuring wideband transducers operate at full capability.

External sensor capability enables measurements beyond the benchtop environment: characterize three-phase industrial motors drawing hundreds of amps, measure high-voltage power converters operating at kilovolt potentials, or test equipment in electrically noisy environments where isolation is essential. The UTE323G's sensor inputs transform it from a benchtop power meter into a measurement platform accommodating virtually any voltage or current range through appropriate transducers.

Technical Specifications

Parameter Specification
Number of Channels 3 independent measurement channels
Measurement Bandwidth DC, 0.1 Hz to 300 kHz
Sample Rate 300 kSa/s per channel
Voltage Range 15V, 30V, 60V, 150V, 300V, 600V (auto or manual ranging)
Current Range (Direct Input) 500mA, 1A, 2A, 5A, 10A, 20A (auto or manual ranging)
Voltage Accuracy ±(0.1% reading + 0.05% range) @ 45Hz-66Hz
Current Accuracy ±(0.1% reading + 0.05% range) @ 45Hz-66Hz
Power Accuracy ±(0.1% reading + 0.05% range) @ 45Hz-66Hz, PF=1
Voltage Resolution 1 mV
Current Resolution 10 μA
Power Range 750 mW to 12 kW
Crest Factor 3:1 standard, 6:1 selectable
Measurement Modes RMS (true RMS), VMean (rectified average), DC (simple average)
Wiring Configurations 1P2W, 1P3W, 3P3W, 3P4W, 3V3A
Harmonic Measurement 50th order, IEC 61000-4-7:2002 compliant, PLL synchronization with FFT
Integration Function Wh, Wh+, Wh-, Ah, Ah+, Ah- up to 10,000 hours, ±999,999 MWh capacity
Math Functions A+B, A-B, A×B, A/B, A²/B, A/B²
D/A Output 12 channels, ±5V F.S. (±7.5V max), 16-bit resolution
Display 5-inch TFT LCD, 800×480 resolution, capacitive touch
Communication Interfaces LAN (10/100/1000 Base-T), USB Device, USB Host, GPIB (IEEE-488)
Communication Protocols SCPI, Modbus RTU, Modbus TCP
External Sensor Inputs EXT1: 2.5V/5V/10V, EXT2: 50mV/100mV/200mV/500mV/1V/2V
Operating Temperature 5°C to 40°C (full accuracy), 20% to 80% RH non-condensing
Power Supply 100-240 VAC, 50/60 Hz, <30 VA
Dimensions (W×H×D) 400mm × 158mm × 225mm
Weight Approximately 4 kg
Calibration Period One year recommended
Safety Standards IEC 61010-1, CAT II 600V, Pollution Degree 2

Package Contents

  • UTE323G Digital Power Meter with GPIB
  • Power cord (country-specific)
  • 3× Test lead sets (banana to banana, 10A, 1m) - UT-L0110-BB
  • 3× Test lead sets (banana to U-type, 10A, 1m) - UT-L0110-BU
  • 6 pairs fork-type pre-insulated terminals (for permanent installations)
  • Quick start guide
  • Calibration certificate

Frequently Asked Questions

Can I use the UTE323G for IEC 61000-4-7 harmonic compliance testing?

Yes, the UTE323G implements IEC 61000-4-7:2002 compliant harmonic measurement methodology. This standard specifies the measurement methods for harmonic and interharmonic analysis used in power quality assessment. The UTE323G's implementation includes PLL-based synchronization to the fundamental frequency, rectangular windowing, appropriate FFT data length selection, and grouping methods as defined in the standard. The 200 ms measurement window for 50/60 Hz systems and the calculation of total harmonic distortion through the 40th order match the methodology certification laboratories use. This compliance means your pre-qualification harmonic measurements will correlate directly with official certification test results, helping you identify and resolve compliance issues in-house before submitting products for expensive official testing. The instrument supports both IEC 61000-3-2 (harmonic current emission limits) and IEC 61000-3-3 (voltage fluctuation limits) testing requirements commonly applied to grid-connected equipment.

How does the UTE323G help with Energy Star and 80 PLUS efficiency testing?

The UTE323G's ±0.1% basic accuracy provides the measurement precision required for efficiency testing where differences of 1-2% determine compliance or certification level. Energy Star specifications typically require efficiency measurements at 25%, 50%, 75%, and 100% load, plus standby power measurement—the UTE323G measures all these conditions accurately. The integration function measures energy consumption over the 24-hour periods required for standby power verification, automatically calculating average power. For 80 PLUS certification, measure power supply efficiency at the required load points under both 115V and 230V input conditions—the UTE323G's three channels simultaneously measure input power while you measure output power, enabling real-time efficiency calculation via the math functions. The high accuracy is particularly critical at light loads where efficiency differences are small but compliance requirements are strict. While the UTE323G provides pre-certification verification with measurement methods matching certification lab standards, official certification still requires testing at accredited facilities—the UTE323G ensures you'll pass on the first submission, avoiding costly retest cycles.

What's the advantage of 300 kHz bandwidth versus the 100 kHz bandwidth typical of competitive power meters?

The bandwidth difference directly determines which harmonics you can measure accurately. With a 10 kHz fundamental frequency (common for high-speed motor drives and modern switching power supplies), the UTE323G's 300 kHz bandwidth enables accurate measurement through the 30th harmonic, while a 100 kHz instrument stops at approximately the 10th harmonic. Those missing higher-order harmonics contain real power and contribute to total harmonic distortion—measurements that 100 kHz instruments physically cannot capture. For IEC 61000-3-2 compliance testing, standards specify harmonic limits through the 40th order. A 100 kHz bandwidth cannot verify compliance for any system operating above 2-2.5 kHz fundamental. Modern power converters increasingly use SiC and GaN devices switching at 20+ kHz to reduce magnetic component size—characterizing these designs requires bandwidth extending well beyond the fundamental to capture switching harmonics and EMI signatures. Higher harmonics also contribute to RMS current heating and electromagnetic interference. Without adequate bandwidth, you're making incomplete measurements that underestimate current stress, power dissipation, and EMI emissions, potentially leading to field failures or compliance violations you didn't detect during development.

How does the waveform display help with power analysis and troubleshooting?

The waveform display transforms abstract numeric measurements into visual patterns that engineers can interpret immediately. Phase relationships between voltage and current become visually obvious—see whether your load is inductive (current lagging voltage) or capacitive (current leading voltage) without mentally interpreting power factor signs. Harmonic distortion appears as waveform deformation—a flattopped voltage waveform immediately indicates clipping, while a current waveform with sharp peaks reveals excessive harmonic content. Identify switching artifacts from PWM drives, commutation spikes from motor controllers, and rectifier problems through waveform asymmetry. Verify that power factor correction circuits are properly shifting current phase to align with voltage. This visualization capability is completely absent from 7-segment competitive instruments, which provide only numeric values. Engineers consistently report that seeing waveforms accelerates troubleshooting because problems become visually obvious that would require extensive analysis from numbers alone. For many power analysis tasks, the waveform display eliminates the need to connect a separate oscilloscope, simplifying test setups and reducing measurement setup time.

Can I automate the UTE323G in production testing or integrate it into an automated test system?

Yes, the UTE323G provides comprehensive automation capability through multiple interfaces and protocols. For network-based control, the standard LAN port supports SCPI commands over VXI-11 or raw socket connections, enabling integration with test automation frameworks, LabVIEW, Python, or C++ programs. The USB Device interface provides direct computer control using USB-TMC protocol. RS-232 supports legacy test systems and point-to-point connections. Both SCPI and Modbus protocols are available—SCPI provides comprehensive instrument control with standardized commands recognized across test automation platforms, while Modbus (RTU and TCP variants) enables integration with PLCs and industrial control systems common in production environments. The comparator function with digital outputs enables hardware-based pass/fail indication for production test fixtures. D/A outputs provide analog signals for strip chart recorders or process control systems. For production testing, you can save complete instrument configurations (ranges, limits, display layouts) and recall them via remote commands, ensuring consistent test parameters across all production units and shifts. The UTE323G's fast measurement updates (configurable from 0.1s to 20s) support high-throughput testing requirements.

Warranty and Support

UNI-T guarantees that the instrument is free from defects in material and workmanship for three years from the purchase date. Accessories carry a one-year warranty. Comprehensive technical support is available through our experienced engineering team, with responsive service via phone, email, and our online knowledge base. Calibration services and extended warranty options are available to ensure your instrument maintains peak performance throughout its service life. Visit instruments.uni-trend.com for full warranty information and technical resources.

Why Choose the UNI-T UTE323G?

The UTE323G delivers professional power measurement capability with workflow advantages that competitive 7-segment instruments cannot match. The 5-inch TFT display with multi-parameter viewing, integrated waveform visualization, 300 kHz bandwidth, and 300 kSa/s sampling provide measurement completeness and user interface efficiency that accelerates development and reduces test time. The GPIB (IEEE-488) interface ensures seamless integration with established test automation infrastructure from National Instruments, Keysight, and Tektronix, making the UTE323G ideal for automated production testing and legacy system integration. Whether you're validating power supply efficiency against Energy Star requirements, characterizing motor drive harmonics for IEC compliance, or building high-throughput automated test stations, the UTE323G provides the measurement accuracy, bandwidth, connectivity, and interface clarity needed for confident results.

For applications requiring higher voltage capability (1000V), consider the UTE333HG with GPIB. For environments where RS-232, LAN, and USB connectivity are preferred over GPIB, the standard UTE323 model provides identical measurement specifications. UNI-T's commitment to measurement accuracy, comprehensive warranty, and responsive technical support ensures your investment delivers consistent value throughout your product development cycle.

Feature Specification
Model Number UTE323G
Warranty 3 years
DATA SHEETS and MANUALS
Not Currently Available. Contact us with questions.
SOFTWARE/FIRMWARE DOWNLOADS
Not Currently Available. Contact us with questions.
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UNI-T 2025 Instruments Selection Guide
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