| 1 | Rockwell Hardness Tester | Rapid depth-based hardness testing for production inspection | Rockwell scales commonly use 60, 100, or 150 kgf test forces; results are reported in HRB, HRC, and other applicable scales | Typical display resolution: 0.1 Rockwell unit; direct readings usually take less than one minute | ASTM E18; ISO 6508 | Hardened steel, stainless steel, cast iron, aluminum alloys, and finished components | Verify force accuracy, indenter condition, anvil stability, automatic dwell control, and certified reference blocks |
| 2 | Vickers Microhardness Tester | Micro-scale hardness and case-depth evaluation using a diamond pyramid indenter | Typical test forces range from approximately 10 gf to 100 kgf, depending on the instrument configuration | Optical measurement resolution may reach approximately 0.1–1 µm; suitable for small features and thin layers | ASTM E384; ISO 6507 | Heat-treated surfaces, coatings, weld zones, electronics, thin sections, and metallographic specimens | Look for accurate force application, low-vibration construction, calibrated optics, automatic diagonal measurement, and image analysis |
| 3 | Brinell Hardness Tester | Large-indentation hardness testing for castings, forgings, and coarse-grained metals | Common ball diameters are 1, 2.5, 5, and 10 mm; test forces typically range from 62.5 to 3,000 kgf | Large impressions improve averaging across heterogeneous materials; measurement depends on optical diameter evaluation | ASTM E10; ISO 6506 | Cast iron, aluminum alloys, copper alloys, forgings, and large metal components | Check load repeatability, ball indenter certification, optical reading capability, specimen thickness limits, and maximum workpiece size |
| 4 | Portable UCI Hardness Tester | On-site hardness testing of large, assembled, or difficult-to-access parts | Typical ultrasonic contact impedance forces are approximately 1–10 kgf; hardness scales may include HV, HB, HRC, and HRB after calibration | Typical repeatability is commonly within about ±3% of the measured value when the surface and calibration are suitable | ASTM A1038; ISO 16859 | Welds, gears, shafts, pressure components, large molds, and installed machinery | Assess probe selection, surface roughness tolerance, curved-surface compensation, battery life, data export, and calibration blocks |
| 5 | Handheld or Benchtop X-Ray Fluorescence Analyzer | Non-destructive elemental screening and alloy identification | Depending on configuration, elemental coverage may extend from magnesium or sodium to uranium; detection limits vary from low ppm to percentage levels | Alloy identification can often be completed in seconds; quantitative accuracy depends strongly on calibration, matrix, geometry, and measurement time | ASTM E1621; ASTM E1476; ISO 3497 | Metal sorting, coatings, plating thickness screening, RoHS checks, mining samples, and incoming material verification | Compare detector type, tube voltage, spectral resolution, calibration libraries, safety interlocks, environmental rating, and regulatory requirements |
| 6 | Industrial X-Ray Radiography or CT System | Detection of internal voids, cracks, inclusions, porosity, lack of fusion, and dimensional defects | Industrial systems commonly operate across approximately 80–450 kV; achievable resolution depends on focal spot size, geometry, part density, and detector pitch | Microfocus systems may use focal spots in the micrometer range; image quality is evaluated using IQIs, contrast, and spatial resolution | ASTM E1742; ASTM E2736; ISO 17636-2 | Weld inspection, castings, batteries, aerospace parts, electronic assemblies, and additive-manufactured components | Evaluate penetration capability, detector type, focal spot size, shielding, inspection volume, reconstruction software, and radiation compliance |
| 7 | Optical Emission Spectrometer | Fast quantitative analysis of metallic composition for grade verification and process control | Typical systems cover selected wavelengths across approximately 130–800 nm and analyze major, minor, and trace elements according to the matrix | For well-controlled major-element analysis, repeatability can commonly be below 0.5% relative standard deviation; trace-element performance varies by element | ASTM E415; ASTM E1086; ISO 9556 | Steel, stainless steel, aluminum, copper, nickel, cobalt, and other production alloys | Check elemental coverage, vacuum or argon optics, spark stand design, calibration stability, reference materials, and laboratory temperature control |