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Borescope Inspection for Deep Hole Quality Control

A deep hole's internal surface is invisible to conventional measurement instruments. Calipers, micrometers, and CMM probes measure the entry and exit — but the entire length between them remains unseen. Borescope inspection fills this gap, providing visual confirmation that the hole's internal surface meets quality requirements.

Borescope Types for Deep Hole Inspection

Comparison of Borescope Types

TypeDiameter RangeMax LengthImage QualityCostBest For
Rigid borescope2–20 mm0.5–3 mExcellent$2,000–$10,000Straight holes, small diameters
Flexible fiberscope3–12 mm1–10 mGood (grainy)$3,000–$15,000Curved access, long holes
Video borescope4–20 mm1–30 mExcellent (digital)$5,000–$40,000Production inspection, documentation
Rigid video borescope6–20 mm0.5–3 mExcellent$8,000–$25,000High-volume production, automated

Selection by Hole Parameters

Hole Diameter (mm)Recommended Borescope TypeMinimum Outer DiameterMaximum Working Length
3–6Rigid borescope2.7 mm (for 3 mm hole)300 mm (typical)
6–15Rigid or video borescope4–6 mm1,000–2,000 mm
15–30Video borescope or fiberscope6–10 mm2,000–5,000 mm
30–50Video borescope8–12 mm5,000–15,000 mm
> 50Video borescope (larger lens for better image)10–20 mmUp to 30 m

Selection Criteria

Key Specifications

SpecificationWhat It DeterminesMinimum for Deep Hole QCRecommended for Production
Working lengthMaximum hole depth inspectableMatch to longest hole + 20%Same + margin
Outer diameterSmallest hole inspectable0.5–1.0 mm less than hole ID2 mm less than hole ID
ResolutionImage clarity for defect detection640 × 4801280 × 720 (HD)
Field of viewArea visible in one image50°70–90°
Depth of fieldFocus range10 mm to infinity5 mm to infinity
ArticulationAbility to steer tipN/A (rigid) or 2-way4-way (for flexible)
Image captureDocumentation capabilityStill imageVideo + still

Lighting Considerations

Lighting TypeBest ForLimitation
Integrated LED (distal tip)General inspectionShadows in rough surfaces
Ring light (proximal)Even illuminationLess light at depth
Dedicated light source (fiber optic)Maximum brightnessBulky, tethered
UV light sourceFluorescent penetrant inspectionRequires dye application

Inspection Procedure

Preparation

StepActionDetail
1Clean the hole thoroughlyRemove coolant, chips, oil with solvent
2Dry the holeCompressed air or lint-free swabs
3Set up borescopeConnect light source, camera, monitor
4Calibrate white balanceIf using video borescope
5Verify focusTest on known reference surface
6Set insertion speed guideMaximum 25 mm/s to avoid damage

Inspection Sequence

StepActionWhat to Look For
1Inspect hole entryBell mouth, tool marks, edge condition
2Insert borescope to first 10 mmSurface finish, circumferential marks
3Advance in 50 mm incrementsScan entire circumference at each stop
4Rotate probe 360° at each stopCheck for localized defects
5Record images at key positionsEntry, suspected defects, exit
6Advance to full depthHole straightness, spiral marks
7Inspect hole exitBreakout condition, burrs
8Retract slowlySecond pass verification
9Clean probe after removalWipe with lint-free cloth

Defect Identification

Common Internal Defects

DefectAppearanceTypical CauseSeverity
Tool marks / feed marksContinuous spiral linesFeed too high, worn drillMinor to moderate
Wash-out marksSmooth, wavy surface variationCoolant erosion, incorrect pressureModerate
Drill walking marksWavy entry sectionDrill deflection at startModerate
Spiral marks / helical groovesDeep spiral pattern on bore wallGuide pad wear, chip packingSevere
Scale / discolorationDark patchesOverheating, coolant breakdownModerate to severe
Surface tearingRough, torn appearanceBuilt-up edge, insufficient lubricitySevere
Reaming chatterFine circumferential linesReamer vibration, speed mismatchMinor to moderate
Step / ledgeAbrupt diameter changeTool change mark, misalignmentModerate
Scratches (longitudinal)Axial lines along boreDebris in coolant, guide pad damageMinor to moderate
PittingSmall pits in surfaceCorrosion, material defectModerate to severe

Defect Measurement Using Borescope

MeasurementMethodTypical AccuracyLimitation
Defect lengthScale bar in image±0.5 mmRequires calibration
Defect widthComparison to probe OD±0.1 mmSubjective
Depth of defectShadow measurement±0.05 mmRequires practice
Surface finish comparisonVisual comparison to referenceRa ±0.2 µm (rough estimate)Subjective, not quantitative
Hole straightness (qualitative)Probe insertion feelPass/failOperator-dependent

Tip: For quantitative surface finish measurement, use a surface roughness comparator or profilometer replica. Borescope visual inspection detects defects but cannot measure Ra or Rz with precision. Combine borescope inspection with surface roughness measurement for complete quality data.

Documentation Standards

Image Capture Requirements

RequirementMinimum StandardRecommended Standard
Resolution640 × 4801920 × 1080
File formatJPEGJPEG + RAW
Image labelingDate, part ID, hole IDDate, part ID, hole ID, depth, orientation
Lighting referenceAutoManual (consistent across inspections)
Scale referenceNone (probe diameter known)Scale bar in image

Inspection Report Format

FieldContentExample
Part numberCustomer part identifierPN-4140-CYL-01
Hole IDSpecific hole identifierHole #3
Inspection dateDate of inspection2026-06-04
InspectorWho performed inspectionJ. Smith
Borescope usedEquipment identificationOlympus IPLEX GX-8
Inspection lengthFull depth or partialFull depth (1,200 mm)
Defects foundType, location, severityLight spiral marks at 200–400 mm
MeasurementsKey dimensions at defectsLine width approx 0.15 mm
AcceptancePass / fail / reworkPass
Image referencesFile names of captured imagesIMG_20260604_001–012

Integration with QC Systems

Borescope in the Quality Workflow

StageActionDocumentation
First articleFull borescope inspection of first holeComplete report + image set
Production monitoringReduced inspection every Nth partChecklist + exception images
Process changeFull inspection before and after changeComparative report
Final inspection100% or AQL sampling per specificationCertificate of conformance
Rework verificationRe-inspect after reworkRework report + new images

Automated Inspection Systems

System TypeCapabilityInvestmentThroughput
Manual borescope with cameraOperator-controlled, image capture$5,000–$15,0005–10 holes/hour
Semi-automated (motorized insertion)Programmed scan path, video recording$20,000–$50,00015–30 holes/hour
Fully automated (robotic)Programmed inspection, auto-defect detection$100,000–$300,00030–60 holes/hour
In-line borescope (integrated in machine)Post-drill inspection without unload$50,000–$150,00060+ holes/hour

FAQ

What type of borescope is best for deep hole drilling inspection?

A video borescope with articulation is best for most deep hole drilling applications. It combines digital image quality, long working length (up to 30 m), and the ability to steer the tip around corners. For small-diameter holes (< 6 mm), a rigid borescope provides better image quality at a lower cost. For production inspection requiring documentation, a video borescope with built-in recording is essential.

How do I identify spiral marks on a borescope image?

Spiral marks appear as continuous helical lines following the drill's rotation pattern. They are typically caused by guide pad wear or chip packing that forces the drill off-center. The marks have a consistent pitch matching the feed per revolution. Compare the pitch to the programmed feed rate — if the pitch matches, the marks are tool feed marks. If deeper and irregular, they indicate a vibration or deflection problem.

Can a borescope measure surface roughness quantitatively?

No — borescope inspection is qualitative, not quantitative for surface roughness. Visual inspection can detect defects, compare surface texture to reference images, and identify anomalies, but it cannot measure Ra, Rz, or other roughness parameters with accuracy. For quantitative roughness measurement, use a surface profilometer, a roughness comparator, or make a silicone replica of the bore surface for lab measurement.

How often should I calibrate a borescope?

Calibrate the borescope image measurement system (scale bars, measurement software) every 12 months or per manufacturer recommendation. White balance should be checked before each inspection session. Focus should be verified at the start of each shift. After any impact or damage, the borescope must be recalibrated before use — a bent probe gives inaccurate images.

What is the difference between a fiberscope and a video borescope?

A fiberscope uses a coherent fiber-optic bundle to transmit the image from the distal tip to the eyepiece or camera. The image has a visible pixel pattern (honeycomb or grain). A video borescope has a miniature CCD or CMOS camera chip at the distal tip, producing a direct digital image without fiber-optic grain. Video borescopes offer significantly better image quality, higher resolution, and built-in recording capabilities, at a higher cost.


Borescope inspection reveals what external measurements cannot — the internal surface quality of a deep drilled hole. Combined with diameter and straightness measurements, it provides complete quality assurance for deep hole drilling operations. This article reflects industry practice as of 2026.

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