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Smart Instruments and Their Trends: Principles, Features and Directions
source:    date:2026-10-01

1 How smart instruments work

The hardware structure is shown in Fig. 1 (not preserved in the web version). Sensors pick up the measured quantity and convert it to an electrical signal; after filtering, a multiplexer feeds each channel in turn, under single-chip control, into a programmable-gain amplifier; the amplified signal is A/D-converted into the microcontroller, which computes and processes per instrument settings (e.g. nonlinearity correction) and drives display and printing; comparing results with parameters stored in on-chip Flash or E²PROM, it outputs control signals — alarm triggers, relay contacts and the like. Smart instruments can also form distributed measurement-control systems with a PC: the microcontroller as the lower unit collects measurements and data, passing them over serial links to the PC for global management.

2 Functional features

With microelectronics advancing, very-large-scale single-chip microcomputers appeared, integrating CPU, memory, timers/counters, parallel and serial interfaces, watchdogs, preamplifiers, even A/D and D/A converters. Centred on the microcontroller, computer and measurement-control technology merge into the "intelligent measurement-control system" — the smart instrument.

Compared with traditional instruments, smart instruments offer:

  • ① Automated operation: the whole measurement process — keyboard scanning, range selection, switching, data acquisition, transmission, processing, display and printing — is controlled by the microcontroller, fully automating measurement.
  • ② Self-testing: automatic zeroing, fault and status checks, auto-calibration, self-diagnosis and automatic range conversion. Smart instruments can locate faults and even their causes; self-tests run at startup or during operation, greatly easing maintenance.
  • ③ Data processing — a principal advantage: problems once intractable in hardware logic are now solved flexibly in software. A traditional DMM measures resistance and AC/DC voltage and current; a smart DMM also processes results — zero shifting, averaging, extremes, statistics — freeing users from data drudgery and raising measurement precision.
  • ④ Friendly human-machine dialogue: keyboards replace rotary switches; commands entered by keys invoke measurements, while the display reports running state and processed results — easier and more intuitive.
  • ⑤ Programmability: standard GPIB, RS-232C, RS-485 interfaces let smart instruments join PCs and other instruments into automated measurement systems of the user's design for more complex test tasks.

3 Development at home and abroad

In the 1980s microprocessors entered instruments; front panels went keyboard-oriented; measurement systems linked over IEEE-488; and personal instruments, unlike traditional standalone ones, developed.

In the 1990s instrument intelligence showed in: microelectronics deeply influencing instrument design; DSP chips greatly strengthening digital signal processing; microcomputers giving stronger data processing; ubiquitous image processing; and wide VXI-bus adoption.

Recently smart measurement-control instruments have flourished. Domestic examples include smart throttling flowmeters with automatic differential-pressure compensation, multi-segment program-temperature controllers, smart controllers realising digital PID and complex control laws, and smart chromatographs analysing and processing spectra.

International varieties are richer: Honeywell's DSTJ-3000 smart transmitters compound-measure differential pressure with automatic compensation of body temperature and static pressure, accurate to ±0.1% FS; RACA-DANA's 9303 ultra-low-level meter uses a microprocessor to remove resistor thermal noise, measuring down to -77 dB; FLUKE's 5520A multi-function calibrator carries three microprocessors with 1 ppm short-term stability and 0.5 ppm linearity; FOXBORO's digital self-tuning controller applies expert-system technology to tune like an experienced control engineer from field parameters — ideal for frequently changing or nonlinear processes, keeping the whole loop at its best through automatic tuning.

4 Trends

4.1 Miniaturisation

Micro smart instruments combine microelectronics, MEMS and information technology in small, fully featured packages, performing acquisition, linearisation, DSP, control output and amplification, instrument interfacing and human interaction. As MEMS matures and prices fall, applications widen — beyond traditional roles into automation, aerospace, military, biotechnology and medicine. Where a patient once needed several tubes for measuring and controlling several parameters — risking infection — micro smart instruments measure multiple parameters in implantable form.

4.2 Multifunction

Multifunction is itself a hallmark. For fast, complex digital system design, makers built function generators combining pulse generation, frequency synthesis and arbitrary waveform generation — outperforming dedicated pulse generators and synthesisers in accuracy and offering better solutions across test functions.

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