Teradyne
The Teradyne ETS 88 is a precision power and analog test system for production board test. The ETS 88 configuration includes eight DPS 16 modules, seven SPU 100 modules, fifteen APU 12 modules, four QTMU modules, and one CBIT board.[1]

Plate 01ADC Test using ETS-88
The Teradyne ETS-88 is a production board test system designed for precision power and analog testing of printed circuit boards.[1]
The ETS-88 is an automated test system that typically interfaces with a printed circuit board assembly through a bed-of-nails fixture, making electrical contact with test points on the board.
The system contains multiple instrument modules to apply stimulus and measure responses, enabling in-circuit testing of analog and power components such as resistors, capacitors, diodes, and voltage regulators.
The ETS-88 is typically used in the production board test stage of electronics manufacturing, after solder reflow and visual inspection, and before final functional test or system integration.
The tester is employed to verify correct component placement, solder joint integrity, and proper circuit operation on assembled printed circuit board assemblies.
The ETS-88 is used for production board test of printed circuit board assemblies in industries such as automotive, aerospace, and industrial electronics.[1]
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Machines of this class are designed to test a broad variety of semiconductor devices, including digital, analog, mixed-signal, and power management ICs. The specific device types depend on the instrument configuration and the test head used.
The test system connects to a wafer prober through a mechanical interface that aligns the probe card with the wafer. The test head provides electrical connections for all probes, and the prober steps the wafer under computer control while the tester applies signals and collects measurements from each die site.
Typical capabilities include DC parametric measurement (voltage, current, resistance), functional logic testing, frequency and timing measurement, analog waveform generation and capture, and built-in self-test (BIST) support. Many systems also offer parallel test to increase throughput.
Test programs are created using the system's proprietary software environment, often with a graphical user interface for pattern generation, test flow definition, and limit setting. The program is compiled and loaded onto the tester, then debugged using simulation and dry-run modes before production use.
Regular maintenance includes calibration of power supplies and measurement instruments, cleaning of probe card or socket interfaces, and periodic software updates. Downtime is minimized through preventive maintenance schedules and use of spare parts such as Pogo pins, cables, and cooling fans.
The following facts about the ETS 88 are absent from this record as of this revision. First-hand knowledge or a citation closes a gap; every submission is reviewed before publication.
No publicly documented production dates or lifecycle milestones (introduction, end of production, EOL) for the ETS 88 are on record.
Answerable by: OEM historical records or a trade-press announcement
No publicly documented variants, configuration options, or revision breakpoints of the ETS 88 are on record.
Answerable by: an OEM product catalog or an engineer who ordered or specified the tool
The control-system platform and OS era of the ETS 88 are not on record.
Answerable by: an engineer who operated it or OEM installation records
No publicly documented failure modes or field errata for the ETS 88 are on record.
Answerable by: a field service engineer, process engineer, or maintenance technician
The process node or technology generation of the ETS 88 is not on record.
Answerable by: an OEM datasheet or a fab qualification report
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Last updated Oct 2, 2026.