Appearance
Deep hole drilling on a CNC lathe is not the same as drilling on a dedicated machine. The lathe's live tooling spindle has limited power and speed, the toolholder must share turret space with turning tools, and the coolant system was designed for chip breaking, not for hydraulic chip transport. Yet the ejector system makes it possible — and with the right setup, a lathe can drill holes that rival dedicated machine quality.
Overview
Deep hole drilling on CNC lathes with live tooling is an alternative to dedicated deep hole drilling machines. It is most practical when the workpiece requires both turning and deep hole operations in a single setup, or when production volume does not justify a dedicated machine.
| Drilling Method | CNC Lathe Suitability | Key Requirement | Typical Application |
|---|---|---|---|
| Conventional twist drill (G83 peck) | Good for L/D up to 20:1 | Through-spindle coolant (1–3 MPa) | Standard deep holes |
| Parabolic flute drill | Good for L/D up to 30:1 | Coolant-through tool, peck cycle | Hydraulic components |
| Gun drilling (single-lip) | Possible with coolant-through live tool | High pressure (10–35 MPa), guide bushing | Precision small bores |
| Ejector (DTS) drilling | Best for BTA-class holes on a lathe | 2–8 MPa coolant, no pressure head | Medium to large bores |
| BTA (STS) drilling | Not practical on standard lathes | Pressure head (BOZA) required | Dedicated machines only |
Machine Requirements
Minimum Specifications
| Machine Feature | Required for Deep Hole Drilling | Recommended for Production |
|---|---|---|
| Through-spindle coolant | 2 MPa (290 psi) minimum | 10–35 MPa (1,450–5,000 psi) |
| Live tooling spindle | 4,000–6,000 RPM | 8,000–12,000 RPM |
| Live tool power | 3–5 kW | 7–15 kW |
| C-axis | 0.001° resolution | 0.0001° resolution |
| Turret | VDI or BMT with coolant-through capacity | Capto or HSK for maximum rigidity |
| Coolant filtration | 50 µm | 20 µm (10 µm for gun drilling) |
| Coolant volume | 50 L/min | 100–200 L/min |
Lathe Type Comparison
| Lathe Type | Live Tool Spindle | C-Axis | Y-Axis | Suitability for Deep Hole Drilling |
|---|---|---|---|---|
| 2-axis (no live tool) | No | No | No | Not suitable |
| 3-axis with live tool | Yes | Yes | No | Good for on-axis and radial drilling |
| Multi-axis with Y | Yes | Yes | Yes | Best — off-center drilling possible |
| Swiss-type (sliding headstock) | Yes | Yes | No | Excellent — guide bushing is standard |
Live Tooling Limitations
| Limitation | Impact | Mitigation |
|---|---|---|
| Lower power than main spindle | 3–7 kW vs 15–30 kW | Use smaller drill diameters, reduce feed |
| Lower rigidity than VMC spindle | Chatter risk, especially with axial holders | Use shortest possible tool projection |
| Heat buildup | Bearing wear, tool failure | External coolant on tool body, limit continuous cutting time |
| RPM limited | 4,000–8,000 RPM typical | Accept lower cutting speeds for small diameters |
| Torque limited | Feed reduction needed | Peck drill to reduce torque demand |
Toolholding and Workholding
Toolholder Types
| Holder Type | Rigidity | Best For | Limitation |
|---|---|---|---|
| VDI static (ER collet) | Moderate | Standard drilling, L/D < 10:1 | Collet grip may slip under torque |
| VDI live (driven) | Moderate | Gun drilling, ejector drilling | Higher cost, more wear |
| BMT live | Good | Production deep hole drilling | Machine-specific interface |
| Capto (C6, C8) | Excellent | High-pressure coolant, heavy cutting | Expensive |
| HSK-T | Excellent | High-speed, high-pressure | Expensive, less common |
For deep hole drilling, the toolholder must:
- Support through-spindle coolant at the required pressure without leaks
- Provide concentric clamping within 0.005 mm TIR
- Accommodate the drill tube diameter with a suitable bushing or collet
Workholding
| Workholding Method | Runout | Suitability |
|---|---|---|
| Collet chuck (hydraulic) | < 0.005 mm | Best for round bar stock |
| 3-jaw chuck (set-tru) | 0.01–0.02 mm | Good for irregular parts |
| 3-jaw scroll chuck | 0.03–0.10 mm | Not recommended for deep hole drilling |
| Custom fixture | Application-dependent | Required for non-round parts |
The workpiece must be held concentrically within 0.02 mm TIR at the drilling face. Higher runout causes:
- Drill wander at entry (bell-mouth)
- Oversized holes
- Uneven guide pad loading (accelerated wear)
Tailstock and Steady Rests
| Component | Required For | Purpose |
|---|---|---|
| Tailstock with live center | Through-hole drilling | Support the far end of the workpiece |
| Steady rest (fixed or follow) | L/D > 10:1 workpiece | Prevent workpiece deflection during drilling |
| Multiple steady rests | L/D > 40:1 | Maintain workpiece straightness |
Guide Bushing and Pilot Hole Requirements
Guide Bushings for Gun Drilling
When gun drilling on a lathe, a guide bushing is essential:
| Hole Diameter | Guide Bushing ID | Clearance | Bushing Length |
|---|---|---|---|
| 3–6 mm | H5 | 2–4 µm | 3–5× diameter |
| 6–12 mm | H5 | 3–5 µm | 3–4× diameter |
| 12–25 mm | H6 | 5–8 µm | 2–3× diameter |
The guide bushing can be mounted in the turret adjacent to the gun drill, or as a separate bushing holder in the turret station.
Pilot Hole Requirements
| Method | Pilot Hole Depth | Pilot Diameter | Notes |
|---|---|---|---|
| Gun drilling | 1–2× drill diameter | Bore diameter + 0.01–0.02 mm | Same point angle as gun drill |
| Ejector drilling | 1–2× drill diameter | Nominal diameter | Standard drill of same diameter |
| Conventional (peck) | Not required | — | Start with spot drill |
The pilot hole must be concentric with the spindle axis within 0.005 mm and have the same point angle as the deep hole drill. A mismatched point angle causes the drill to deflect at the pilot-to-full-hole transition.
Allied Machine 6-Step Process
| Step | Action | RPM | Feed | Coolant |
|---|---|---|---|---|
| 1 | Drill pilot hole (2×D min) | 100% | 100% | ON |
| 2 | Feed in (to 1 mm above pilot bottom) | 50 RPM max | Rapid | OFF |
| 3 | Transition (drill 1×D past pilot) | 50% | 75% | ON |
| 4 | Full depth drilling | 100% | 100% | ON |
| 5 | Breakout (for through holes) | 50% | 75% | ON |
| 6 | Retract | 50 RPM max | Rapid | OFF |
Coolant System Requirements
The coolant system is the most critical factor for deep hole drilling on a lathe.
Pressure Requirements
| Drilling Method | Pressure Required | Pressure Available (Standard Lathe) | Gap |
|---|---|---|---|
| Twist drill peck (L/D < 10) | 1–2 MPa | 1–3 MPa (standard) | Generally OK |
| Parabolic drill (L/D 10–20) | 2–5 MPa | 1–3 MPa | May need upgrade |
| Gun drilling | 10–35 MPa | 1–3 MPa | Requires high-pressure pump |
| Ejector drilling | 2–8 MPa | 1–3 MPa | May be acceptable with reduced performance |
High-Pressure Coolant Options
| Option | Pressure | Flow | Cost | Notes |
|---|---|---|---|---|
| Machine-integrated HPC pump | 5–10 MPa | 20–50 L/min | $5,000–$15,000 | Factory option on many lathes |
| External booster pump | 10–35 MPa | 10–40 L/min | $10,000–$30,000 | Additional floor space required |
| Standalone coolant unit | 2–8 MPa | 50–200 L/min | $8,000–$20,000 | Includes filtration and chiller |
Filtration
| Filtration Level | Suitable For | Method |
|---|---|---|
| 50 µm | Twist drilling, roughing | Paper band or screen |
| 20 µm | Ejector drilling, general | Cartridge or cyclone |
| 10 µm | Gun drilling, precision | Cartridge or vacuum |
| 5 µm | High-performance gun drilling | Vacuum or centrifuge |
Insufficient filtration causes:
- Coolant channel blockage in gun drills (tool failure)
- Accelerated guide pad wear from abrasive particles
- Surface finish degradation
- Seal failure in the rotary union
Canned Cycles for Live Tooling
Face Drilling (G83)
G83 is the standard peck drilling cycle for face (Z-axis) drilling with live tooling:
text
M51 ; C-axis indexing mode ON
G00 X0 C0 Z20 ; Position to hole center
M03 S5000 ; Start live spindle
G83 X0 C0 Z-80 R-10 Q3000 P500 F15 M31 ; Drill 80 mm deep
G80 ; Cancel cycle| Parameter | Meaning | Example Value |
|---|---|---|
| X | Hole bottom X position | X0 (center) |
| C | Angular position | C0, C90, C180 |
| Z | Hole bottom Z position | Z-80 (80 mm deep) |
| R | Retract plane (from Z start) | R-10 (10 mm above start) |
| Q | Peck depth (microns) | Q3000 (3 mm peck) |
| P | Dwell at hole bottom (ms) | P500 (0.5 second) |
| F | Feedrate (mm/min) | F15 |
| M | C-axis clamp M-code | M31 (clamp before drilling) |
Radial Drilling (G87)
G87 is the peck drilling cycle for radial (X-axis) drilling with live tooling:
text
M51 ; C-axis indexing mode ON
G00 Z0 C0 Z20 ; Position to hole center
M03 S5000 ; Start live spindle
G87 Z0 C0 X-50 R5 Q2000 P500 F12 M31 ; Drill 50 mm radial
C90 M31 ; Index to 90°, drill
C180 M31 ; Index to 180°, drill
C270 M31 ; Index to 270°, drill
G80 ; Cancel cyclePeck Retraction Types
| Parameter Setting | Retraction Type | Behavior | Use Case |
|---|---|---|---|
| 5101#2 = 0 | High-speed peck (G73) | Partial retraction only | Chip breaking, L/D < 15 |
| 5101#2 = 1 | Full retraction (G83) | Returns to R-point | Chip evacuation, L/D > 15 |
For deep hole drilling, use full retraction (G83/G87 style) to ensure chip evacuation from the flutes.
Custom Deep Hole Programming Techniques
Standard peck cycles have limitations for deep hole drilling. Custom macro programs can implement more sophisticated strategies.
Variable Peck Depth Cycle
text
(DEEP HOLE CYCLE WITH VARIABLE PECK)
(USAGE: G65 P8000 A_depth B_first_peck C_max_peck D_min_peck
F_feed R_retract Z_start)
O8000
#1 = #1 (total depth A)
#2 = #2 (first peck B)
#3 = #3 (max peck C)
#4 = #4 (min peck D)
#9 = #9 (feed F)
#18 = #18 (retract R)
#26 = #26 (Z start)
#30 = #26 (current Z)
#31 = #2 (current peck)
WHILE [#30 GT #1] DO1
#30 = #30 - #31
IF [#30 LT #1] THEN #30 = #1
G01 Z#30 F#9
G00 Z#18
G00 Z[#30 + 1.0]
#31 = #31 * 1.1
IF [#31 GT #3] THEN #31 = #3
END1
M99Peck Strategy Comparison
| Strategy | Description | Best For |
|---|---|---|
| Fixed peck (G83) | Constant peck depth | Simple deep holes |
| Increasing peck | Small at start, larger at depth | Chip control in materials that chip well |
| Decreasing peck | Large at start, smaller at depth | Deep holes with poor chip evacuation |
| Full retract | Return to R-point each peck | Chip evacuation priority |
| Partial retract | Retract 1–3 mm each peck | Chip breaking only |
Programming for Ejector (DTS) on a Lathe
The ejector system is the most practical BTA-class method for CNC lathes because it requires no pressure head seal.
Setup Requirements
| Requirement | Specification |
|---|---|
| Spindle coolant-through | Yes, minimum 2 MPa at 30 L/min |
| Spindle connector | Non-rotating connector mounted in turret |
| Double-tube assembly | Outer tube + inner tube with ring nozzle |
| Guide bushing | Mounted in adjacent turret station or fixture |
| Coolant filtration | 20 µm minimum |
Sample Program
text
(EJECTOR DRILLING CYCLE)
M51 ; C-axis engage
G00 X0 Z50 ; Position to start
M03 S2000 ; Start spindle
M08 ; Coolant ON (through-spindle)
G01 Z60 F200 ; Rapid feed to workpiece entry
G01 Z-300 F30 ; Feed to full depth
G00 Z50 ; Retract
M09 ; Coolant OFF
M05 ; Spindle stop
M155 ; C-axis disengageEjector drilling does not typically require peck cycles because the continuous chip evacuation through the inner tube handles chips as they are produced. However, if chip packing occurs, a peck cycle can be added.
Setup Procedure
Step-by-Step Setup
| Step | Action | Verification |
|---|---|---|
| 1 | Install toolholder with gun drill or ejector assembly | Concentricity < 0.005 mm |
| 2 | Install guide bushing in adjacent turret station | ID matches drill diameter |
| 3 | Install workpiece with runout < 0.02 mm at drilling face | Dial indicator check |
| 4 | Drill pilot hole (1–2× diameter) | Bore scope or pin gauge |
| 5 | Set tool offsets for deep hole drill | Touch off on workpiece face |
| 6 | Set coolant pressure to required value | Pressure gauge at tool |
| 7 | Run first article at reduced parameters (50% feed) | Inspect bore diameter, straightness |
| 8 | Measure bore after first article | Air gauge or bore micrometer |
| 9 | Adjust parameters if needed | Optimize for production |
| 10 | Run production with process monitoring | SPC data collection |
First Article Inspection
| Check | Method | Acceptance Criteria |
|---|---|---|
| Bore diameter | Air gauge or bore micrometer | ±0.01 mm of nominal |
| Hole depth | Depth gauge or machine position | ±0.2 mm |
| Surface finish | Profilometer | Ra < 1.6 µm (unless otherwise specified) |
| Straightness | Pin gauge or CMM | < 0.05 mm per 100 mm |
| Runout at bore exit | Dial indicator | < 0.02 mm |
Common Mistakes and Troubleshooting
| Problem | Cause | Solution |
|---|---|---|
| Drill walks at entry | No pilot hole or mismatched point angle | Add pilot hole with matching angle |
| Oversized bore | Spindle runout, guide bushing wear | Check runout, replace bushing |
| Rough surface finish | Low coolant pressure, worn tool | Increase pressure, resharpen or replace |
| Chip packing in flutes | Insufficient peck retraction, low coolant volume | Increase peck retraction distance, check flow |
| Tool breaks at depth | Chip packing, excessive feed | Reduce feed at depth, add peck cycles |
| Chatter marks | Insufficient rigidity, incorrect speed | Reduce overhang, adjust RPM |
| Bell-mouth at entry | Excessive runout, no guide bushing | Improve concentricity, add bushing |
| Coolant leak at turret | Worn seal, incorrect coupling | Replace seal, check coupling type |
| Poor concentricity | Workholding runout | Indicate workpiece, adjust chuck |
| Excessive tool wear | Low coolant pressure, wrong grade | Increase pressure, check carbide grade |
Summary
| Aspect | Recommendation |
|---|---|
| Best method for CNC lathe | Ejector (DTS) drilling — no pressure head required |
| Coolant pressure target | 2–8 MPa for ejector, 10–35 MPa for gun drilling |
| Guide bushing | Required for gun drilling; recommended for ejector |
| Pilot hole | 1–2× diameter, same point angle as drill |
| Canned cycle | G83 (face) or G87 (radial) with full retraction |
| Peck strategy | Full retraction, decreasing peck depth optimal |
| Toolholding | Capto or HSK-T for high-pressure coolant |
| Workholding runout | < 0.02 mm at drilling face |
| First article | Reduced parameters (50% feed), inspect thoroughly |
FAQ
Can I gun drill on a standard CNC lathe?
Yes, but with limitations. Gun drilling on a standard CNC lathe requires: (1) through-spindle coolant at 10–35 MPa — most standard lathes provide 1–3 MPa, so a high-pressure booster pump is typically needed; (2) a guide bushing mounted in the turret or a bushing holder; (3) a pilot hole 1–2 diameters deep with the same point angle as the gun drill; (4) a stable workholding setup with less than 0.02 mm runout. The ejector (DTS) system is a more practical option for lathes because it operates at lower pressure and does not require a workpiece seal.
What is the deepest hole I can drill on a CNC lathe with live tooling?
The maximum depth depends on the method: conventional peck drilling reaches L/D 20:1, parabolic flute drills reach L/D 30:1, gun drilling reaches L/D 100:1 or more with proper support, and ejector drilling reaches L/D 80:1. The limiting factors are drill rigidity, coolant pressure, and chip evacuation. For depths exceeding L/D 50:1, steady rests along the drill tube and workpiece support become necessary.
What are the G-code differences between face and radial live tool drilling?
Face drilling (Z-axis) uses G83 with X and C coordinates for hole position. Radial drilling (X-axis) uses G87 with Z and C coordinates. Both cycles support peck parameters (Q), dwell (P), and C-axis clamp M-codes. On Fanuc controls, parameter 5101#2 selects between partial retraction (high-speed peck, G73-style) and full retraction (G83-style). Full retraction is recommended for deep holes where chip evacuation is critical.
Do I need a pilot hole for deep hole drilling on a lathe?
For conventional twist drills with L/D < 10:1, a pilot hole is optional — a spot drill is sufficient. For L/D > 10:1, a pilot hole 1–2 diameters deep is strongly recommended. For gun drilling and ejector drilling, a pilot hole is required. The pilot drill should have the same point angle as the deep hole drill. A mismatched point angle causes the drill to deflect during the transition from the pilot hole to the full-depth cut.
What coolant pressure do I need for deep hole drilling on a lathe?
Standard through-spindle coolant (1–3 MPa) is adequate for peck drilling up to L/D 20:1 with coolant-through drills. For L/D 20–30:1 with parabolic drills, 3–5 MPa is recommended. For ejector drilling, 2–8 MPa is typical. For gun drilling, 10–35 MPa is required. Most standard lathes need a high-pressure coolant upgrade for gun drilling or ejector drilling.
Is the ejector system better than gun drilling for CNC lathes?
For most lathe applications, yes. The ejector (DTS) system offers two key advantages: (1) it operates at lower coolant pressure (2–8 MPa vs. 10–35 MPa for gun drilling), making it compatible with standard lathe coolant systems or moderate upgrades; (2) it requires no pressure head seal against the workpiece, simplifying setup and fixture design. The trade-off is a larger minimum diameter (approximately 18 mm vs. 3 mm for gun drilling) and looser tolerances (IT9–IT11 vs. IT7–IT9).
How do I prevent chip packing in deep holes on a lathe?
Chip packing is prevented by: (1) using full-retraction peck cycles (G83/G87 with 5101#2 = 1 on Fanuc) rather than partial retraction; (2) ensuring adequate coolant flow and pressure to flush chips from the cutting zone; (3) reducing feed rate if stringy chips are produced; (4) for gun drilling, verifying that the coolant channel is clear and the chip flute is not blocked; (5) for ejector drilling, checking that the ring nozzle is generating sufficient suction. If packing persists, increase peck frequency and retraction distance.
What are the limitations of live tool spindles for deep hole drilling?
Live tool spindles have lower power (3–7 kW) and lower stiffness than main spindles or VMC spindles. Bearing wear is accelerated by continuous high-pressure coolant and high thrust loads. RPM is typically limited to 4,000–8,000 RPM, which restricts cutting speed for small-diameter drills. Heat buildup during continuous drilling can cause bearing failure — aim to limit continuous drilling to under 30 minutes per cycle. Through-spindle coolant helps but may not be available in all live tool holders.
Can I use BTA (STS) drilling on a CNC lathe?
BTA (STS) drilling is not practical on standard CNC lathes because it requires a pressure head (BOZA) that seals against the workpiece face. The BOZA must be aligned with the spindle axis, and the workpiece must have a flat, concentric sealing surface. This level of integration is standard on dedicated BTA machines but difficult to achieve on a lathe. The ejector (DTS) system is the BTA-compatible method for lathes.
What is the best workholding method for deep hole drilling on a lathe?
A collet chuck (hydraulic or manual) provides the best concentricity for round bar stock. For irregular parts, a set-tru 3-jaw chuck with dial indicator adjustment is recommended. In all cases, indicate the workpiece face at the drilling location and verify runout is below 0.02 mm. For long workpieces (L/D > 10:1), add a steady rest or tailstock support to prevent deflection. For through-hole drilling with a tailstock, use a live center with the OD turned concentrically to the bore axis.
Deep hole drilling on CNC lathes requires careful setup, appropriate coolant pressure, and correct programming. The parameters and recommendations in this article represent typical practice as of 2026. Always verify machine specifications and limitations before attempting deep hole drilling operations on a lathe.