Deep hole drilling assumes the workpiece is round — held in a chuck, between centers, or in a collet. When the workpiece is a hex bar, a square casting, a forging, or a flat plate, the standard workholding does not apply. The challenge is the same: hold the workpiece rigidly and align the hole axis with the drill. The solution is custom workholding that adapts the workpiece shape to the drilling machine's round-centric clamping system.
Workholding Challenges
Common Challenges
| Challenge | Effect | Difficulty |
|---|
| Part not concentric to hole axis | Drill enters off-center — drill wander, oversize hole | High |
| Part surface not perpendicular to drill axis | Drill entry angle incorrect — drill deflection | Moderate |
| Clamping on irregular surface | Part shifts under drilling force | High |
| Part shape cannot be held in standard chuck | Cannot use existing machine clamping | Critical |
| Part has thin sections | Deforms under clamping — hole position error | Moderate |
| Part has existing features that interfere | Clamp points limited | Moderate |
| Part unbalanced (off-center mass) | Vibration during rotation | High |
| Small clamping surface area | Insufficient grip — part slips | High |
Risk Assessment
| Part Shape | Clamping Difficulty | Alignment Difficulty | Vibration Risk | Recommended Approach |
|---|
| Hex bar | Low | Moderate | Low | Collet block or hex soft jaws |
| Square bar | Low | Moderate | Low | Collet block or square soft jaws |
| Rectangular plate | High | High | High | Custom fixture with edge clamping |
| Rough casting | High | Very high | Moderate | Custom fixture with datum points |
| Forging (as-forged) | Very high | Very high | Moderate | Custom fixture with locating pads |
| Thin-walled section | Moderate | Low | High | Full support — reduce clamping force |
| Off-center / unbalanced | High | High | Very high | Counterweight or non-rotating |
Workholding Methods
Method Comparison
| Method | Best For | Setup Time | Repeatability | Cost | Comments |
|---|
| Soft jaws (custom machined) | Hex, square, rectangular | Moderate | Excellent | Low | Most common — versatile |
| Collet block | Hex, square | Fast | Excellent | Low | Standard for bar stock |
| Pot chuck (cup chuck) | One end of irregular part | Moderate | Good | Moderate | Holds by OD of complex shape |
| Custom fixture (dedicated) | Complex castings, forgings | Slow | Excellent | High | Best for production runs |
| Vise with special jaws | Rectangular, thin parts | Fast | Good | Low | Manual clamping |
| Expanding mandrel (internal) | Hollow parts with bore | Fast | Excellent | Moderate | Clamps from inside |
| Magnetic chuck | Flat ferrous parts | Fast | Good | Moderate | Limited to ferrous |
| Vacuum chuck | Thin flat parts | Fast | Fair | Moderate | Low clamping force |
Soft Jaws
| Step | Action | Detail |
|---|
| 1 | Mount standard soft jaw blanks on chuck | — |
| 2 | Bore or mill jaw profile to match workpiece shape | Match part contour within 0.1 mm |
| 3 | Cut clearance at jaw base | Allows part to seat fully |
| 4 | Install workpiece in jaws | Light clamping |
| 5 | Indicate workpiece for alignment | Adjust position |
| 6 | Tighten clamp | To required force |
| 7 | Check alignment | Re-indicate after clamping |
| 8 | Begin drilling | — |
Collet Blocks for Hex and Square
| Step | Action | Detail |
|---|
| 1 | Select collet block matching workpiece shape | Hex collet block for hex bar |
| 2 | Insert workpiece through collet block | To required depth |
| 3 | Tighten collet block | Even force |
| 4 | Mount collet block in machine chuck | Or between centers with drive |
| 5 | Indicate workpiece end | Check concentricity |
| 6 | Begin drilling | — |
Custom Fixture Design
| Design Element | Requirement | Reason |
|---|
| Locating points | 3-2-1 locating principle | Kinematic location — repeatable positioning |
| Clamping points | Directly over solid support | Prevent part deflection |
| Clamp type | Positive lock — not friction-only | Hold against drilling thrust |
| Drill bushing (if needed) | Guide drill at entry | Compensates for irregular entry surface |
| Coolant seal | Seal at drill entry | Contain high-pressure coolant |
| Chip clearance | Space for chips to exit | Prevent chip packing |
| Weight | Manageable for operator | Ergonomic |
Alignment Methods
Alignment Procedure for Non-Round Parts
| Step | Action | Detail |
|---|
| 1 | Indicate workpiece surface relative to spindle | Use dial indicator on a machined surface |
| 2 | Adjust position until runout is within spec | Shim or adjust fixture |
| 3 | Check alignment in two axes | X (vertical) and Y (horizontal) |
| 4 | Check perpendicularity of entry face | Face must be square to drill axis |
| 5 | Tighten all clamps | Recheck alignment after tightening |
| 6 | Indicate again | Confirm clamping did not shift part |
| 7 | Install drill bushing (if used) | Aligned to spindle axis |
Alignment Tolerances
| Machine Class | Entry Surface Runout | Hole Axis to Datum | Face Perpendicularity |
|---|
| Precision gun drilling | < 0.025 mm TIR | ± 0.05 mm | < 0.01 mm / 25 mm |
| Standard gun drilling | < 0.05 mm TIR | ± 0.1 mm | < 0.02 mm / 25 mm |
| BTA drilling | < 0.075 mm TIR | ± 0.15 mm | < 0.03 mm / 25 mm |
Clamping Strategy
Balanced vs Unbalanced Parts
| Part Type | Clamping Strategy | Rotation? | Special Consideration |
|---|
| Symmetric (hex, square centered) | Clamp on OD — standard | Yes | Standard setup |
| Off-center feature | Offset fixture or support | Yes | Balance required |
| Heavy on one side | Counterweight fixture | Yes | Reduce RPM — balance |
| Very long irregular shape | Center steady rest + fixture | Yes | Support near drill entry |
| Large flat plate | Edge clamp or fixture | No (stationary) | Gun drilling only — not BTA |
Clamping Force Guidelines
| Workpiece Material | Clamping Force | Risk if Too High | Risk if Too Low |
|---|
| Steel (rigid) | High — 2000–5000 N | Minimal | Part slips |
| Aluminum | Moderate — 1000–3000 N | Part distortion | Part slips |
| Brass / bronze | Moderate — 1000–3000 N | Part marking | Part slips |
| Cast iron | High — 2000–5000 N | Part cracking | Part slips |
| Plastic / composite | Low — 200–500 N | Part deformation | Part moves |
| Thin-walled (any material) | Low — as needed | Crushing | Chatter |
Vibration Damping
| Method | Effectiveness | Application |
|---|
| Full-contact soft jaws | High | Any — best damping |
| Lead or copper hammer (embed damping) | Moderate | Thin sections |
| Fill cavity with damping material | High | Hollow parts |
| Reduce RPM | Low — compromises process | When unavoidable |
| Increase feed (to break chatter) | Moderate | If surface finish allows |
FAQ
How do I hold a hex bar for deep hole drilling?
The best methods are: hex collet block (fastest — standard tooling, insert hex bar through block, tighten, mount in chuck), hex soft jaws (machine hex profile into soft jaw blanks — holds the full hex length), or pot chuck (a cup that surrounds the hex OD). For short runs, a collet block is the most practical. For production, custom soft jaws machined to the hex profile provide the best grip and alignment.
How do I drill a deep hole in a square bar?
Use a square collet block or machine soft jaws with a square pocket. The square bar must be aligned so that the hole axis is concentric to the bar center (or at the correct offset if off-center). For long square bars, use a steady rest with modified pads that contact the square faces — standard V-rollers will not work on square cross-sections. Set up a dial indicator to verify alignment before drilling.
Can I drill a deep hole in a flat plate?
Yes — but the plate must be held securely and the hole must be positioned correctly. For thin plates, use a vise with wide soft jaws that support the full plate width. For thick plates, use a fixture that clamps the plate edge-on with the drill entering the narrow face. The challenge is maintaining alignment — the plate's entry face must be perpendicular to the drill axis. Gun drilling is preferred over BTA for non-round workpieces, as the workpiece does not rotate.
What is the best way to hold an irregular casting for deep hole drilling?
Design a custom fixture that locates off machined datum surfaces (not off the as-cast surfaces). Use the 3-2-1 locating principle: three points on the primary datum, two on the secondary, one on the tertiary. Clamp directly over solid support sections of the casting — never clamp over thin sections or unsupported areas. Include a drill bushing at the entry face to guide the drill through the irregular surface. Test the fixture with a sample part and verify hole position and alignment.
How do I prevent vibration when drilling non-round parts?
Vibration in non-round parts is caused by interrupted cutting (if the drill entry surface is not perpendicular) or by part resonance (if the part has thin sections or is unbalanced). Solutions: use full-contact soft jaws that support the part across a large area, support the part near the drill entry point with a steady rest or bushing, fill hollow sections with damping material, reduce spindle speed, or add mass to the fixture to change the resonant frequency.
Non-round parts require adapted workholding for deep hole drilling, but the principles are the same as round parts — hold the workpiece rigidly, align the hole axis with the drill, and support thin sections. Soft jaws machined to the part profile are the most versatile solution for most shapes. Custom fixtures are needed for complex castings and forgings. Take the time to set up alignment carefully — the first article will confirm whether the workholding is adequate. This article reflects industry practice as of 2026.