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First Article Inspection for Deep Hole Drilled Components

A deep-hole-drilled aerospace shaft arrives at first article inspection. The bore is specified at 25.000 mm H7 (+0.021 mm). The CMM reports 25.035 mm. The supplier's air gauge measured 25.006 mm. The difference is 0.029 mm — three times the entire H7 tolerance band. Investigation reveals two root causes: the supplier calibrated their air gauge at 20°C but the shaft was measured at 35°C immediately after machining, and the CMM operator used a 4-point circle on a bore with 3-lobe spiralling from the BTA process. A properly conducted first article inspection would have caught both issues before production began.

What Is First Article Inspection and Why It Matters for Deep Hole Drilling

First article inspection (FAI) is a complete dimensional and quality verification of the first production part from a new or changed manufacturing process. For deep hole drilled components, FAI is critical because:

FactorWhy FAI Is Essential
High workpiece value (€500–€15,000)A setup error can scrap the first part before production begins
Hidden bore geometryBore defects are invisible without dedicated measurement equipment
Process sensitivity to setupGuide bushing alignment, coolant pressure, and tool geometry all affect bore quality
Long cycle timesHours of production can be wasted before an error is detected
Multiple interacting characteristicsDiameter, straightness, and surface finish are interdependent in deep hole drilling

Standards Governing FAI

StandardApplicationKey Requirement
AS9102B/AS9102DAerospaceThree-form FAI documentation, ballooned drawing, independent verification
PPAP (AIAG)Automotive18-element submission, including dimensional results, capability studies, material certifications
ISO 9001 / AS9100DGeneral / AerospaceClause 8.3.4 requires verification of first production parts
Customer-specificVariesAdditional requirements for defence, oil and gas, nuclear

The AS9102 FAI Framework

AS9102 uses a three-form structure for documenting first article inspections. Each form serves a specific purpose.

Form 1: Part Number Accountability

FieldContent
Part number and revisionMust match the drawing
Part nameDescription of the component
Drawing number and revisionCurrent drawing revision used for inspection
Organisation name and supplier codeManufacturer performing the FAI
FAI numberUnique identifier for this FAI
Material certification referenceHeat number and material specification
Special process certificationsHeat treatment, surface treatment, NDT
Change documentationECR/ECO numbers if applicable

Form 2: Product Accountability — The Ballooned Drawing

The ballooned drawing is a key FAI deliverable. Every dimension, tolerance, and note on the drawing is assigned a numbered balloon, and the corresponding characteristic is listed on Form 2.

For deep hole drilled components, typical ballooned characteristics include:

Balloon NumberCharacteristicTolerance
1Bore diameter — entryØ25.000 H7 (+0.021)
2Bore diameter — mid-pointØ25.000 H7 (+0.021)
3Bore diameter — exitØ25.000 H7 (+0.021)
4Bore roundness0.010 mm
5Bore cylindricity0.025 mm
6Bore straightness0.050 mm per metre
7Bore concentricity to datum AØ0.050 mm
8Bore surface finish (Ra)1.6 µm
9Bore surface finish (Rz)6.3 µm
10Bore position (true position to datums A-B-C)Ø0.100 mm
11Overall length500 ±1.0 mm
12Outer diameter at journal AØ50.000 h6 (−0.016/−0.025)

Form 3: Characteristic Accountability

Form 3 records the actual measured value, the inspection method, and the result for each ballooned characteristic:

BalloonCharacteristicRequirementActualMethodResult
1Bore dia. — entry25.000–25.02125.008Air gaugePass
2Bore dia. — mid25.000–25.02125.012Air gaugePass
3Bore dia. — exit25.000–25.02125.018Air gaugePass
4Bore roundness0.010 max0.004CMMPass
5Bore cylindricity0.025 max0.011CMMPass
6Bore straightness0.050/m max0.032UltrasonicPass
7Concentricity to AØ0.050 max0.018CMMPass
8Ra surface finish1.6 µm max0.85ProfilometerPass

Note: AS9102 §4.7.3(b) requires that inspection results be expressed in quantitative (variable) terms. Attribute data (pass/fail) is only permitted when no variable measurement technique is feasible. For deep hole drilling applications, variable measurement is always feasible — air gauges, CMMs, and profilometers all produce quantitative data.

Deep-Hole-Specific Inspection Characteristics

Deep hole bores require additional verification points beyond those of conventional machined features:

CharacteristicWhy It MattersWhere to Measure
Bore diameter at multiple depthsBTA drilling produces taper along the bore lengthEntry, 25%, 50%, 75%, exit
Roundness (2-lobe and 3-lobe)Spiralling creates lobing that two-point measurement misses3+ cross-sections along bore
CylindricityCombined measure of roundness, taper, and straightnessFull bore length
StraightnessDetermines shaft balance and bearing load distributionFull bore centreline
ConcentricityBore must be concentric to OD to avoid imbalanceMultiple cross-sections
Surface finish inside boreAffects seal life, fluid flow, fatigue initiationBore interior wall
Borescope inspectionDetects scoring, chatter marks, chip entrapmentFull bore length

Measurement Method Selection

CharacteristicRecommended MethodAlternative MethodNotes
Bore diameterAir gauge (±1 µm)3-point bore gauge (±3 µm)Measure at minimum 3 axial positions
RoundnessCMM (12+ points)Roundness tester4-point CMM may miss 3-lobe error
CylindricityCMM scanningRequires scanning probe, not touch-trigger
StraightnessUltrasonic wall thicknessCMM with long stylusUltrasonic method preferred for L/D > 10
ConcentricityCMM (bore to OD)Ultrasonic wall thicknessRequires both bore and OD measurement
Surface finishStylus profilometerOptical profilometerRa and Rz per ISO 4287
Internal visualBorescope/videoscopeFull-length inspection for scoring, chatter
HardnessRockwell or BrinellPer material specification
Material verificationPMI (positive material ID)Chemical analysisXRF or OES

FAI Workflow for Deep Hole Components

Phase 1: Pre-Inspection Review

StepActivity
1Review the drawing and all specification requirements
2Identify all characteristics requiring verification (ballooning)
3Select measurement methods for each characteristic
4Verify that all inspection equipment is calibrated and within validity
5Establish temperature control (workpiece, gauges, and environment)
6Prepare inspection plan (characteristic-by-characteristic)

Phase 2: Temperature Conditioning

Deep hole drilled components are typically long (1–20 metres) and sensitive to thermal expansion:

MaterialCoefficient of ExpansionExpansion of 1 m shaft per °C
Steel11.5 × 10⁻⁶ /°C0.0115 mm
Aluminium23.0 × 10⁻⁶ /°C0.0230 mm
Stainless steel17.0 × 10⁻⁶ /°C0.0170 mm

For H7 bores (tolerance typically 0.015–0.035 mm), a temperature difference of 2–5°C between measurement and calibration can consume the entire tolerance band.

Recommended practice: Soak the workpiece in the measurement environment for a minimum of 4 hours before FAI measurement. Record the workpiece temperature and the reference temperature of all master rings and gauges.

Phase 3: Dimensional Measurement

Perform measurements in the following sequence:

  1. External dimensions — OD, length, step positions (least sensitive to bore-specific thermal effects)
  2. Bore diameter at multiple depths — Air gauge, starting at entry, progressing to full depth
  3. Bore geometry — CMM for roundness, cylindricity, concentricity
  4. Bore straightness — Ultrasonic wall thickness scan
  5. Surface finish — Profilometer inside the bore
  6. Borescope inspection — Visual inspection of the entire bore surface

Phase 4: Documentation

Complete AS9102 Forms 1, 2, and 3 (or equivalent):

FormContentSign-off
Form 1Part number, revision, material, special processesQuality manager
Form 2Ballooned drawing with all characteristics listedInspection planner
Form 3Actual measurements with methods and resultsInspector
Supporting dataCMM reports, air gauge readings, material certs, NDT reportsAttached to FAI

Phase 5: Review and Approval

StepActivity
1Review all measurements against drawing requirements
2Investigate any non-conformances (disposition per engineering)
3Resolve measurement disputes (correlation between methods)
4Submit FAI package to customer (if required)
5Approve process for production
6Retain FAI documentation per record retention requirements

Warning: A common FAI pitfall in deep hole drilling is using a 4-point CMM circle on a bore with 3-lobe spiralling. The CMM will fit a circle through points that do not capture the lobing, producing an incorrect diameter and roundness result. Always verify lobing by comparing 2-point and 3-point measurements, or by using a CMM scanning probe with 12+ points per cross-section.

Common FAI Issues in Deep Hole Drilling

IssueRoot CausePrevention
CMM and air gauge disagree on diameterDifferent measurement definitions (clearance average vs. circle fit); or 3-lobe bore with 2-point measurementUse master artefact correlation; verify lobe count before CMM programming
Bore passes at entry, fails at exitDrill wander or whiplash in deep boreIncrease sampling positions; measure at minimum 5 depths
Surface finish fails specificationRoughness from worn guide pads detected only inside boreInclude borescope and profilometer in FAI plan
Temperature-related measurement errorWorkpiece not stabilised to reference temperatureSoak workpiece; record and report temperatures
Straightness fails on CMM but passes ultrasonicCMM stylus deflection error in deep boreUse ultrasonic method for L/D > 10; verify CMM stylus calibration
Material certification missingRaw material traceability not establishedVerify material certs at incoming inspection, before machining

PPAP for Deep Hole Components (Non-Aerospace)

For non-aerospace applications, the Production Part Approval Process (PPAP) is used instead of AS9102. PPAP requires:

PPAP ElementDeep Hole Drilling Application
Dimensional resultsComplete FAI dimensional report including bore measurements
Material certificationSteel grade verification (e.g., 34CrNiMo6, EA4T1)
Process capability studyCp and Cpk for bore diameter (minimum 30 parts, 25+ subgroups)
Control planSPC sampling frequency, corrective action plan
Process flow diagramAll manufacturing steps from raw material to final inspection
Gauge R&R studyRepeatability and reproducibility of bore measurement system
Initial sampleFirst article part or production run sample

Complete FAI Checklist for Deep Hole Drilled Components

CheckCompleted
Drawing and revision verified current
All characteristics ballooned on drawing
Measurement methods selected for each characteristic
Inspection equipment calibrated and current
Temperature conditioning completed (min 4-hour soak)
Workpiece temperature recorded at time of measurement
Bore diameter measured at minimum 3 depths (entry, mid, exit)
Bore measured in minimum 2 axes at each depth
Roundness verified with sufficient points (12+ for CMM, or air gauge jet comparison)
Straightness measured (ultrasonic preferred for L/D > 10)
Concentricity between bore and external datums verified
Surface finish measured inside bore (Ra and Rz)
Borescope inspection completed for full bore length
Material certification reviewed and attached
Special process certifications attached (heat treat, NDT, surface treatment)
All measurements recorded as variable data (actual values)
Non-conformances identified and dispositioned
FAI package completed and approved

Troubleshooting

ProblemLikely CauseCorrective Action
Bore diameter passes air gauge but fails CMM3-lobe bore geometryCheck lobe count; use 3-jet air plug; increase CMM point count
CMM results non-repeatable on deep boreLong stylus deflectionUse shorter stylus; apply stylus compensation; verify with air gauge
Straightness fails specificationDrill wander or misalignmentCheck guide bushing alignment; reduce feed rate; verify pilot hole
Surface finish fails inside boreWorn guide pads or chatterInspect and replace guide pads; check for chatter marks
Temperature affecting measurementsInadequate soak timeExtend soak to 4+ hours; measure and record temperature

FAQ

What is a first article inspection for deep hole drilling?

A first article inspection (FAI) is a complete dimensional and quality verification of the first production part from a new deep hole drilling setup. It verifies that the bore diameter, roundness, straightness, concentricity, surface finish, and all other specified characteristics meet the drawing requirements before production begins.

What standard governs first article inspection for aerospace deep hole components?

AS9102B/AS9102D is the governing standard. It requires three forms of documentation: Form 1 (part number accountability), Form 2 (product accountability with ballooned drawing), and Form 3 (characteristic accountability with actual measurement values). All inspection results must be expressed in quantitative (variable) terms.

What bore measurements are required in a deep hole FAI?

Bore diameter must be measured at multiple depths (minimum 3, recommended 5 positions along the bore). Roundness, cylindricity, straightness, and concentricity to external datums must also be verified. Surface finish (Ra and Rz) must be measured inside the bore. Borescope inspection is recommended for the full bore length.

Why do CMM and air gauge give different bore diameter results?

CMM and air gauge measure different geometric properties. An air gauge averages the clearance over the air jet area and reports an average diameter. A CMM samples discrete points and fits a circle. On a perfectly round bore, both methods agree. On a bore with lobing or ovality, they produce different results. Correlation through a calibrated master artefact is recommended.

How does temperature affect deep hole FAI measurements?

A steel shaft expands by approximately 0.0115 mm per metre per °C. For an H7 bore with a tolerance of 0.021 mm, a 2°C temperature difference between calibration and measurement can consume the entire tolerance band. Workpieces must be temperature-conditioned (soaked) for a minimum of 4 hours before measurement.

What is a ballooned drawing?

A ballooned drawing is a copy of the engineering drawing on which every dimension, tolerance, and note requirement has been assigned a numbered balloon (circle with number). The balloon numbers correspond to the characteristic numbers on AS9102 Form 2 and Form 3, providing traceability from the drawing to the inspection report.

How many points should a CMM measure on a deep hole bore?

A minimum of 8–12 points per cross-section is recommended for diameter and roundness measurement. A 4-point measurement can miss 3-lobe spiralling patterns common in BTA drilling. For cylindricity, measure at minimum 3 cross-sections with 12 points each, or use a scanning probe for continuous data.

What is the difference between AS9102 and PPAP?

AS9102 is the aerospace first article inspection standard, using a three-form structure (Forms 1, 2, 3). PPAP is the automotive Production Part Approval Process, requiring 18 elements including dimensional results, material certifications, process capability studies, control plans, and gauge R&R studies. Both serve the same purpose — verifying that the production process produces conforming parts — but use different documentation frameworks.

What measurement method is best for bore straightness in deep holes?

Ultrasonic wall thickness measurement is the preferred method for straightness verification in deep holes (L/D > 10). The workpiece outer diameter is measured, wall thickness is scanned at multiple positions and angles, and the bore centreline is calculated. CMM with a long stylus is an alternative for shallower bores but suffers from stylus deflection error.

What should be done when a first article fails?

When a first article fails, the non-conformance must be documented, the root cause identified, and corrective action implemented. The process setup must be adjusted (tool change, parameter adjustment, fixture alignment) and a new first article produced and inspected. The failed part must be clearly identified and segregated. A deviation or waiver may be requested if the non-conformance does not affect fit, form, or function.

Conclusion

First article inspection for deep hole drilled components requires a comprehensive protocol that addresses the unique challenges of bore measurement: temperature sensitivity of long components, the multiple geometric characteristics that define bore quality, the selection of appropriate measurement methods for each characteristic, and the independent verification requirement of AS9102. The three engineering priorities for FAI in deep hole drilling are: establishing proper temperature conditioning and control before any measurement is taken, using measurement methods that correctly characterise the specific geometry errors relevant to deep hole drilling (lobing, taper, straightness, concentricity), and documenting all results quantitatively according to the AS9102 framework to ensure traceability and reproducibility.

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