Hole drilling removes a small amount of material from a stressed region, allowing some of the locked-in stress to relax. Strain gauges placed around the hole detect the resulting strain changes, which provide evidence of the original stress state. Because the material removal is local, this approach can assess stress near a selected feature, weld, machined area, or other region of interest.
X-ray diffraction evaluates changes in crystal lattice spacing associated with stress. The measured spacing is compared with the material’s unstressed condition, and the difference is used to infer the residual stress. This approach examines the material’s crystal structure rather than relying on dimensional changes caused by removing material, making it a distinct measurement route for engineering assessments.
The two methods detect different responses to the same underlying condition. Hole drilling uses local material removal and strain gauges to capture stress-release strains, whereas X-ray diffraction infers stress from altered lattice spacing. This distinction affects how engineers investigate a component: one method emphasizes local relaxation and the other crystal-level measurements, supporting complementary evaluations of manufactured or serviced parts.
A typical measurement begins by selecting the region of interest and positioning strain gauges near it. Material is then removed locally to release part of the locked-in stress, while the gauges record the resulting strain or dimensional response. Engineers interpret those changes to assess the original stress condition, particularly around manufacturing features where localized effects may influence performance.
Engineers apply these measurements to examine the effects of welding, machining, additive manufacturing, and heat treatment. The results show whether processing has produced stress patterns that may affect component behavior, even without an external load. Measurements can therefore support quality control and help investigate whether manufacturing or service history contributed to an observed engineering concern.
Measured residual stress provides evidence for evaluating how a component may perform under repeated loading and for interpreting failures after service. Engineers can use the results in fatigue-life prediction and failure analysis, then consider whether design changes or stress-relief procedures are appropriate. The information connects a component’s processing history with decisions about reliability, inspection, and corrective action.