Appearance
In conventional machining, quality documentation proves that parts meet print. In deep hole drilling, quality documentation must also prove that the process was controlled — because many critical characteristics of a deep hole (straightness, surface finish at the bore midpoint, subsurface integrity) cannot be measured on the finished part. PPAP and first article inspection documentation are how deep hole drilling suppliers demonstrate process control to their customers.
Overview
PPAP (Production Part Approval Process) and FAI (First Article Inspection) are the two dominant quality frameworks for manufacturing documentation. PPAP is primarily used in automotive (governed by AIAG standards) and an increasing number of industrial sectors. FAI per AS9102 is required for aerospace and defence.
| Framework | Governing Standard | Primary Industry | Key Documents |
|---|---|---|---|
| PPAP | AIAG PPAP 4th Edition | Automotive, industrial | PSW, dimensional results, capability studies, control plan, PFMEA |
| FAI | SAE AS9102C | Aerospace, defence | Form 1 (accountability), Form 2 (material/process), Form 3 (characteristics) |
Both frameworks share the same goal: prove that the manufacturing process can produce conforming parts reproducibly. For deep hole drilling, this means demonstrating control over parameters that standard machining does not require: coolant pressure and flow, straightness deviation per metre, and surface finish at depth.
PPAP for Deep Hole Drilling
The AIAG PPAP 4th Edition defines 18 elements required for part approval. For deep hole drilling operations, several of these elements require specific attention.
The 18 PPAP Elements
| # | Element | Deep Hole Drilling Specific Considerations |
|---|---|---|
| 1 | Design Records | Ballooned drawing with all deep hole characteristics (diameter, depth, straightness, surface finish) |
| 2 | Engineering Change Documents | Critical when deep hole specs change — coolant hole position, depth, tolerance |
| 3 | Customer Engineering Approval | Written approval of design |
| 4 | Design FMEA (DFMEA) | Deep hole risks: drill wandering, surface tearing at guide pads |
| 5 | Process Flow Diagram | Must include gun drilling, BTA drilling, stress relief, and finishing operations |
| 6 | Process FMEA (PFMEA) | Key risks: tool deflection, chip evacuation failure, coolant pressure loss |
| 7 | Dimensional Results | Full layout data including straightness, roundness, surface finish at specified depths |
| 8 | Material / Performance Test Results | Material hardness, inclusion content, heat treat verification |
| 9 | Initial Process Study | Capability indices (Cpk/Ppk) for critical deep hole characteristics |
| 10 | Measurement Systems Analysis | Gage R&R for bore gauges, air probes, surface finish measurement |
| 11 | Qualified Lab Documentation | Lab accreditation for metallurgical analysis |
| 12 | Control Plan | Deep hole parameters: speed, feed, coolant pressure/flow, peck cycle, tool change frequency |
| 13 | Part Submission Warrant (PSW) | Summary cover sheet declaring PPAP results |
| 14 | Appearance Approval Report (AAR) | For bore surface finish requirements |
| 15 | Sample Production Parts | Actual parts from the production run — may be sectioned for bore inspection |
| 16 | Master Sample | Retained reference sample — sectioned deep hole for visual bore comparison |
| 17 | Checking Aids | Bore gauges, optical borescopes, depth micrometers, straightness gauges |
| 18 | Customer-Specific Requirements | May include cleanliness specs, coolant flow testing, chip removal verification |
Submission Levels
PPAP defines five submission levels. Level 3 is the default for most production parts:
| Level | Documentation Required | Typical Use |
|---|---|---|
| 1 | PSW only (with appearance approval if required) | Simple parts, established processes |
| 2 | PSW + product samples + limited supporting data | Minor process changes |
| 3 | PSW + product samples + complete supporting data | Default — new parts, new tooling |
| 4 | Customer-defined requirements | Customer-specific programs |
| 5 | PSW + product samples + complete data + on-site review | High-risk or critical safety parts |
For deep hole drilling applications, Level 3 is typical because the process risk is higher than conventional machining and the customer needs visibility into process parameters.
AS9102 First Article Inspection
AS9102 is the aerospace standard for first article inspection. It applies to deep hole drilling suppliers serving aerospace and defence customers.
When FAI Is Required
An AS9102 FAI must be performed for:
| Trigger Event | Deep Hole Drilling Example |
|---|---|
| New part number | First-time production of a deep hole component |
| Design change | Hole pattern, diameter, or tolerance change on the drawing |
| Production interruption > 2 years | Resuming production after a long pause |
| Change in manufacturing process | Switching from gun drilling to BTA, or changing machine type |
| Change in tooling source | New drill supplier or drill geometry change |
| Change in CNC program | Revised peck cycle or feed rate profile |
The Three AS9102 Forms
A complete FAI report (FAIR) comprises three forms:
Form 1 — Part Number Accountability:
- Part number, revision level, and drawing number
- Bill of materials for assemblies
- Overall FAI result (pass/fail with conditions noted)
Form 2 — Product Accountability:
- Raw material certification (steel grade, heat number, mill test report)
- Special process certifications (heat treatment, surface coating, non-destructive testing)
- Functional test results if applicable
Form 3 — Characteristic Accountability:
- Every ballooned design characteristic with actual measurement results
- Critical for deep hole drilling — records diameter at specified depths, straightness deviation, surface finish, true position of cross-holes
Independence Requirement
A critical requirement of AS9102 is that the person performing the FAI measurement cannot be the same person who manufactured the part. For deep hole drilling, this means the inspection should be performed by a quality technician using independent measurement equipment — not the machine operator verifying with the setup tools.
Variable Data vs Attribute Data
AS9102 requires measurement results in quantitative (variable) terms whenever possible. Attribute data (pass/fail) is only acceptable when no quantitative method is feasible. For deep hole characteristics:
| Characteristic | Preferred Method | Data Type |
|---|---|---|
| Hole diameter | Air gauge or bore micrometer | Variable |
| Hole depth | Depth micrometer or CMM | Variable |
| Straightness | Laser measurement system or CMM | Variable |
| Surface finish (Ra) | Profilometer | Variable |
| Thread fit | Go/no-go gauge | Attribute (acceptable) |
Process Flow and PFMEA
The process flow diagram and PFMEA form the foundation of the quality planning documentation.
Process Flow Diagram
For a deep hole drilling operation, the process flow must include every step from raw material receipt to final inspection. A typical deep hole drilling process flow:
- Raw material receipt and inspection — material certification, hardness check, ultrasonic testing
- Facing and centring — preparing the workpiece ends for drilling
- Pilot hole drilling — pre-drilling for BTA or gun drilling start
- Deep hole drilling — the primary operation (gun drilling, BTA, or ejector drilling)
- Intermediate inspection — bore diameter, straightness check
- Secondary operations — cross-hole drilling, port drilling
- Deburring — internal and external burr removal
- Heat treatment (if required) — stress relief after rough drilling
- Finish boring or honing — final size and surface finish
- Final inspection — all characteristics verified
- Cleaning and preservation — FOD prevention, rust protection
PFMEA for Deep Hole Drilling
The PFMEA identifies potential failure modes, their effects and causes, and assigns risk priority numbers (RPN) or action priority (AP) per the AIAG-VDA FMEA Handbook.
| Process Step | Failure Mode | Effect | Cause | Recommended Actions |
|---|---|---|---|---|
| Gun drilling | Hole straightness deviation > 0.2 mm/m | Part scrap or rework | Coolant pressure drop, guide pad wear, feed rate incorrect | Monitor coolant pressure continuously; establish tool life limits; verify feed rate per material |
| BTA drilling | Surface tear at guide pad contact | Reduced fatigue life | Inadequate coolant EP additive concentration, pad wear | Control coolant concentration weekly; inspect pads per tool change interval |
| Cross-hole drilling | Burr at intersection | Hydraulic contamination | Feed rate too high, dull drill | Reduce feed 50% before intersection; establish tool life limit |
| Coolant system | Chip evacuation failure | Tool breakage | Coolant pressure below minimum, clogged filter | Install pressure alarms; 20 μm filtration for gun drilling |
| Final inspection | Undetected out-of-tolerance bore | Customer rejection | Inadequate measurement system | MSA studies on all bore gauges; calibration at specified frequency |
Risk Priority for Deep Hole Drilling
The severity ratings for deep hole drilling failures tend to be higher than for conventional machining because:
- The bore is often a functional surface (bearing surface, oil passage, hydraulic bore)
- Rework is difficult or impossible (straightness deviation cannot be corrected)
- Part value is typically high (large shafts, manifolds, engine components)
- Hidden defects cannot be detected by visual inspection
| Severity | Criterion | Deep Hole Example |
|---|---|---|
| 9–10 | Safety or regulatory risk | Coolant passage blockage leading to system failure |
| 7–8 | Loss of primary function | Straightness deviation causing shaft vibration |
| 5–6 | Loss of secondary function | Surface finish below spec requiring honing rework |
| 3–4 | Minor effect | Oversize entry chamfer |
| 1–2 | No effect | Non-functional burr |
Control Plan
The control plan translates PFMEA outputs into specific controls for each process step. For deep hole drilling, the control plan must specify:
| Parameter | Control Method | Frequency | Reaction Plan |
|---|---|---|---|
| Spindle speed | Tachometer verification | Per setup | Adjust to specification |
| Feed rate | CNC program verification | Per setup | Reprogram if out of range |
| Coolant pressure | Pressure gauge | Continuous (automated) | Alarm if below minimum; stop machining |
| Coolant flow rate | Flow meter | Continuous (automated) | Alarm if below minimum; check filter and pump |
| Coolant concentration | Refractometer | Daily | Add concentrate if below range |
| Coolant filtration | Filter condition indicator | Per shift | Replace filter element |
| Tool wear / tool life | Part count or cutting time counter | Per tool change | Replace at specified interval |
| Bore diameter | Air gauge or bore plug gauge | First piece, then per statistical plan | Adjust tool or replace insert if trending |
| Surface finish | Profilometer | Per statistical plan | Adjust speed/feed, check tool condition |
| Straightness | Laser or CMM | Per statistical plan or per part | Process hold if out of spec |
Tip: For critical deep hole characteristics (straightness, bore diameter at depth), consider 100% inspection at initial production run-down to establish capability, transitioning to statistical sampling only after demonstrating Cpk > 1.67.
Initial Process Capability Studies
PPAP requires initial process capability studies for all special characteristics identified on the drawing or control plan.
Capability Requirements
| Cpk/Ppk Value | Assessment | Action Required |
|---|---|---|
| > 1.67 | Process fully meets requirements | Acceptable for production |
| 1.33 – 1.67 | Acceptable but may need improvement | Monitor, consider improvement for new runs |
| < 1.33 | Not acceptable | Corrective action required; 100% inspection until resolved |
Deep Hole Capability Study Considerations
Capability studies for deep hole drilling require special attention because:
- Sample size: Minimum 30 parts recommended (PPAP minimum is typically 25 for variable data)
- Within-part variation: Measure diameter at multiple depths — the bore may be within tolerance at the entrance but out at depth
- Time-order sampling: Collect parts in production sequence to detect drift from tool wear
- Stratification: If multiple spindles or tool positions are used, collect capability data for each position
Measurement Systems Analysis
Gage R&R studies for deep hole measurement must account for:
| Measurement Factor | Deep Hole Challenge | Mitigation |
|---|---|---|
| Bore depth | Standard gauges cannot reach full depth | Use air probes, extended bore gauges, or CMM with long probe |
| Bore orientation | Horizontal bore on machine, vertical on CMM | Account for gravitational effects on straightness measurement |
| Surface finish | Probe contact may damage finish | Use non-contact (air or laser) gauging for finished bores |
| Temperature | Heat from drilling causes thermal expansion | Allow part to cool to shop temperature before measurement |
Acceptance criteria per AIAG MSA 4th Edition:
- GR&R < 10%: Excellent measurement system
- GR&R 10–30%: Acceptable for most applications
- GR&R > 30%: Unacceptable — system must be improved
Documentation Hierarchy
The quality documentation for a deep hole drilling PPAP or FAI follows a hierarchical structure:
Level 1: Part Submission Warrant (PSW) or FAI Form 1
└── Summary document declaring overall result
Level 2: Supporting Plans
├── Process Flow Diagram
├── PFMEA (with RPN/AP ratings)
└── Control Plan
Level 3: Evidence Documents
├── Dimensional Results (ballooned drawing with measurements)
├── Material Certifications and Test Results
├── Initial Process Capability Study (Cpk/Ppk charts)
├── Measurement Systems Analysis (GR&R)
├── Laboratory Qualifications
└── Sample Parts and Master Sample RecordsFor deep hole drilling, the dimensional results section must include measurements that are specific to deep hole geometry:
- Bore diameter at minimum three depths (entrance, midpoint, exit)
- Straightness deviation per unit length and total
- Roundness at multiple cross-sections
- Surface finish (Ra, Rz) at specified locations
- Wall thickness uniformity (for tubular parts)
- True position of cross-holes relative to the main bore axis
- Burr condition at entry, exit, and cross-hole intersections
Summary
| Aspect | PPAP (Automotive) | FAI per AS9102 (Aerospace) |
|---|---|---|
| Governing standard | AIAG PPAP 4th Edition | SAE AS9102C |
| Primary forms | PSW + 18 element documentation | Forms 1, 2, and 3 |
| Default submission level | Level 3 (full data + samples) | N/A (single standard) |
| Deep hole specific | Coolant parameters in control plan, straightness capability, bore GR&R | Variable data for all hole characteristics, independence requirement |
| Key deliverable | Approved PSW | Completed Form 1 with all characteristics verified |
| Triggers | New part, process change, tooling change, relocation | New part, design change, process change, >2 year break |
| Capability requirement | Cpk/Ppk > 1.33 minimum; > 1.67 preferred | Customer-specified (typically Cpk > 1.33 for critical) |
| Document retention | Life of production + customer-specified period | Life of production + customer-specified period |
FAQ
What is the difference between PPAP and FAI?
PPAP (Production Part Approval Process) is an automotive-industry framework governed by AIAG standards that includes 18 elements covering the complete quality system — from design records through process capability to part submission. FAI (First Article Inspection per AS9102) is an aerospace standard focused on verifying that the first production part meets all design requirements through three specific forms. PPAP is broader in scope; FAI is deeper in dimensional verification.
What PPAP submission level is typical for deep hole drilling?
Level 3 is the most common for deep hole drilling — it requires the part submission warrant, product samples, and complete supporting data including dimensional results, capability studies, PFMEA, control plan, and MSA. The comprehensive documentation is appropriate given the higher process risk and difficulty of rework for deep hole features.
How do I measure deep hole straightness for PPAP dimensional results?
Deep hole straightness is measured using laser displacement systems (non-contact, on-machine), coordinate measuring machines with extended probes (for holes up to ~300 mm depth), or air gauge systems that measure concentricity along the bore. For PPAP, report straightness deviation per unit length (typically mm/m or in/ft) and total deviation over the full bore length.
What capability index (Cpk) is required for deep hole characteristics?
The minimum acceptable Cpk is 1.33 for most automotive applications. For safety-critical or special characteristics, Cpk > 1.67 is typically required. For deep hole drilling, achieving Cpk > 1.33 for straightness and bore diameter at depth may require tighter process controls (coolant pressure monitoring, tool change intervals, feed rate optimisation) than for conventional machining.
What PFMEA failure modes are specific to deep hole drilling?
Key deep-hole-specific failure modes include: hole straightness deviation (caused by guide pad wear or coolant pressure fluctuation), surface tearing at guide pad contact area (inadequate lubricity), chip evacuation failure (coolant pressure below minimum), burr formation at cross-hole intersections, and diameter taper along the bore length. Each of these has higher severity than equivalent failures in conventional drilling because deep hole features are typically functional surfaces.
Is a control plan required for deep hole drilling PPAP?
Yes. The control plan (PPAP element 12) is mandatory for all PPAP submission levels above Level 1. For deep hole drilling, the control plan must specify parameters unique to the process: coolant pressure, flow rate, concentration, filtration level, peck cycle depth and retract distance, tool change frequency, and inspection methods for bore diameter and straightness at specified depths.
How many parts are needed for an initial process capability study?
The AIAG PPAP manual recommends a minimum of 25 parts for variable data capability studies (Cpk/Ppk) and 20 subgroups for attribute data. For deep hole drilling, a minimum of 30 parts is recommended to account for the higher process variability from tool wear and coolant system drift. Parts should be collected in production sequence to detect trends.
What measurement systems are needed for deep hole FAI?
Deep hole FAI requires: bore gauges or air probes for diameter measurement at multiple depths (with appropriate reach), surface finish profilometer, laser or mechanical straightness measurement system, CMM for true position and geometric tolerances, and borescope for internal visual inspection. All gauges must have GR&R < 30% (preferably < 10%) and current calibration traceable to national standards.
Can standard PPAP documentation cover deep hole drilling?
Standard PPAP templates designed for conventional machining do not adequately cover deep hole drilling. The control plan must include coolant parameters (pressure, flow, concentration, filtration) that are irrelevant to conventional machining. The PFMEA must address failure modes unique to deep hole drilling (straightness deviation, guide pad wear, chip evacuation). Customised templates are required.
What triggers a PPAP re-submission for deep hole drilling?
PPAP must be re-submitted when any of the following change: manufacturing process (e.g., gun drilling to BTA), tooling source or geometry, CNC program (affecting feed, speed, or peck cycle), coolant type or concentration range, inspection method, or production location. A change in drill manufacturer or drill geometry — even if the hole print remains the same — triggers a PPAP re-submission because the change affects the process capability.