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Ejector Drilling (Double Tube System): Principles and Applications

A manufacturer of oilfield valve bodies was drilling Ø50 mm × 1,200 mm bores (L/D 24:1) in 4130 steel (22 HRC) for Christmas tree valve blocks. The existing process used a single-point boring bar on a horizontal boring mill, requiring three passes with a total cycle time of 8.5 hours per valve body. The company compared BTA drilling with a pressure head (requiring a flat, sealed entry surface and a dedicated machine at €450,000) versus ejector drilling retrofitted onto an existing CNC lathe (€95,000: €55,000 for tooling, €25,000 for coolant pump upgrade to 50 bar, €15,000 for chip conveyor and filtration). The ejector process achieved Ø50 mm × 1,200 mm in a single pass at Vc = 120 m/min, f = 0.35 mm/rev, 267 mm/min penetration, with drilling time of 4.5 minutes per bore. Bore straightness was 0.06 mm/m, diameter IT9, surface finish Ra 3.2 µm. The single-point boring process was eliminated, reducing total machining time from 8.5 hours to 45 minutes per valve body.

Ejector Drilling Principles

How the Ejector System Works

The ejector drilling system uses a double-concentric tube assembly: an outer tube (typically 1.5–2.0 mm wall thickness) and an inner tube (typically 1.0–1.5 mm wall thickness), with the drill head attached to the end of the outer tube. Coolant is pumped into the annulus between the outer and inner tubes at moderate pressure (10–50 bar). At the drill head end, approximately two-thirds of the coolant flows through the drill head to the cutting zone (providing cooling and lubrication), while the remaining one-third passes through specially designed ejector nozzles or slots near the drill head. These ejector nozzles create a Venturi effect — the high-velocity coolant passing through the nozzles creates a low-pressure region that draws the chip-laden coolant from the cutting zone back through the inner tube. The chip-laden coolant then flows through the inner tube and out of the system to the filtration and cooling system.

The key advantages of this design are: no high-pressure seal at the workpiece is needed — the chip evacuation is driven by the Venturi effect rather than by external pressure; the coolant pressure requirement is lower (10–50 bar versus 10–100 bar for BTA STS and 50–200 bar for gun drilling); and the system can be used on standard machine tools without a dedicated pressure head feed unit.

Ejector Drilling vs BTA Single Tube System

ParameterEjector Drilling (Double Tube)BTA Drilling (Single Tube)
Tube configurationDouble concentric tube (coolant in annulus, chips through inner tube)Single tube (coolant in annulus between tube OD and bore ID, chips through tube ID)
Coolant pressure10–50 bar (moderate)10–100 bar (low to high)
Coolant flowHigher (ejector flow + cutting zone flow)Lower (all coolant through cutting zone)
Pressure head sealNot requiredRequired at workpiece entry
Workpiece entry surfaceNo special requirement; irregular surfaces acceptableRequires flat, sealed surface perpendicular to bore axis
Retrofit on standard machinesExcellent — can be fitted to standard lathes and machining centersLimited — requires pressure head feed unit
Diameter range18–180 mm (typical), up to 250 mm (special)18–300 mm (standard), up to 1,250 mm (special)
L/D ratio capabilityUp to 80:1Up to 100:1
Penetration rate (steel)80–250 mm/min100–400 mm/min
Surface finish Ra (steel)2.0–5.0 µm1.5–4.0 µm
Diameter toleranceIT8–IT10IT8–IT10
Tool costModerate (BTA-type head with indexable inserts)Moderate (BTA head with indexable inserts)
System cost (retrofit)€80,000–150,000€100,000–250,000 (including pressure head)
Machine cost (new)€250,000–500,000€250,000–600,000
MaterialVc (m/min)f (mm/rev)Coolant Pressure (bar)Penetration Rate (mm/min)Expected Ra (µm)Expected Tool Life (m)
Low-carbon steel (1018, 1026)120–1800.25–0.5015–30200–4502.0–4.0200–500
Alloy steel (4140, 4340) annealed80–1300.20–0.4020–40120–3202.0–4.5150–400
Alloy steel (4140, 4340) Q&T (28–35 HRC)60–1000.15–0.3025–5090–2402.5–5.0100–300
Stainless steel (304, 316)60–900.12–0.2530–5072–1803.0–5.560–200
Cast iron (gray)80–1400.30–0.6010–25240–6002.5–5.0200–600
Cast iron (CGI)50–700.15–0.3020–4075–1503.0–5.540–120
Aluminum (6061, 7075)200–4000.30–0.6010–20600–1,2001.5–3.5500–2,000
Copper alloys100–2500.20–0.4510–25200–5002.0–4.0300–1,000

Tooling System Components

Ejector Drill Head Design

ComponentFunctionTypical DesignMaterialReplacement Interval
Cutting inserts (indexable, typically 3–5 per head)Remove material; form the boreISO standard trigon or square inserts with chip breaker; coated carbide (TiAlN, AlCrN)Carbide P20–P40 gradeEvery edge: 50–300 m (steel); index 3–6 times per insert
Guide pads (2–4 per head)Guide the head in the bore; burnish the bore surfaceRectangular or wedge-shaped pads brazed or clamped into head bodyCarbide K10–K20; PCD for high-wear materialsEvery 20–100 bores depending on material abrasiveness
Head bodyHolds inserts and guide pads; connects to outer tubePrecision-machined from alloy steel or heat-treated stainless4140 HT (35–42 HRC) or 17-4 PH500–2,000 bores (body life)
Ejector nozzle ringCreates Venturi effect; directs ejector flowAnnular ring with angled slots or holes positioned behind the drill headHardened steel or carbide200–1,000 bores (wear from coolant flow)
Outer tube connectionThreaded connection between head body and outer tubeAPI-type or custom threadAlloy steel HT200–500 cycles (thread life)

Double Tube Assembly

ComponentFunctionMaterialTypical DimensionsMaintenance
Outer tubeCarries coolant to the drill head; provides torsional driveCarbon steel (seamless, cold drawn) or alloy steelOD: drill diameter − 3–6 mm; Wall: 1.5–2.5 mm; Length: bore depth + 300 mmInspect for straightness (bend < 0.2 mm/m); replace if worn OD below minimum
Inner tubeCarries chips back to the machine exit; provides the return flow pathCarbon steel or stainless steelOD: outer tube ID − 2–4 mm (annulus gap); Wall: 1.0–2.0 mmInspect for wear (inner tube ID increases from chip abrasion); replace if wall < 0.8 mm
Tube connector / couplingConnects tube sections (for deep bores requiring multiple tube lengths)Alloy steel HTThreaded or flangedInspect threads each use; replace if thread wear exceeds 50% of thread height
Coolant inlet / rotary unionTransfers coolant from stationary supply to rotating outer tubeMulti-seal assemblyCustom to machine spindleSeal replacement: 1,000–3,000 hours; bearing replacement: 5,000–8,000 hours

Retrofit Considerations

Machine Tool Requirements for Ejector Drilling Retrofit

Machine RequirementMinimum SpecificationPreferred SpecificationRetrofit Cost if Not Existing
Spindle power30 kW (for Ø50 mm in steel)50+ kW€20,000–60,000 (spindle motor upgrade)
Spindle speed range100–3,000 RPM50–4,000 RPMTypically sufficient on most CNC lathes
Feed force (Z-axis)20 kN40+ kNUsually sufficient on standard CNC lathes
Coolant pump20 bar, 200 L/min50 bar, 500 L/min€15,000–35,000 (pump + plumbing upgrade)
Coolant filtration50 µm paper band30 µm paper band + magnetic separator€15,000–30,000
Chip conveyorHinged belt or drag chainHeavy-duty drag chain€10,000–25,000
Coolant tank1,000 L3,000–5,000 L€5,000–15,000
CNC controlStandardStandard with M-codes for coolant controlNo change typically required
Rotary union (through-spindle coolant)50 bar rated70 bar rated€8,000–20,000
Tool holdingHydraulic or mechanical chuck for outer tubeCustom collet system for tube diameter€3,000–8,000

FAQ

What is the main advantage of ejector drilling over BTA single tube drilling?

The main advantage of ejector drilling is that it does not require a high-pressure seal between the drill head and the workpiece. In BTA single tube (STS) drilling, coolant is pumped into the annulus between the drill tube OD and the bore ID, and a pressure head seal at the workpiece entry is required to contain the coolant pressure and direct it into the annulus. This seal requires: a flat, machined entry surface on the workpiece perpendicular to the bore axis; a pressure head (a specialized clamping and sealing device) mounted on the machine feed unit; and the workpiece to be positioned such that the pressure head can seal against the entry surface. These requirements add significant cost and complexity and prevent BTA STS drilling of parts with irregular or non-flat entry surfaces. Ejector drilling eliminates the pressure head entirely because the chip evacuation is driven by the Venturi effect within the tool itself — the coolant pressure difference that drives chip flow is generated at the drill head, not at the workpiece entry. This means: the workpiece entry surface can be irregular (casting surface, forged surface, angled face); no pressure head or specialized feed unit is required (the tool can be mounted in a standard tool holder); the system can be easily retrofitted onto standard lathes and machining centers; and the setup time is shorter because there is no pressure head alignment.

What is the Venturi effect in ejector drilling?

The Venturi effect in ejector drilling works as follows: coolant is pumped into the annulus between the outer and inner tubes at 10–50 bar. At the drill head end, a portion of the coolant (typically 30–40%) is diverted through specially designed ejector nozzles or slots positioned in the head body or a nozzle ring. These nozzles are designed with a converging-diverging cross-section that accelerates the coolant to high velocity, creating a low-pressure region at the nozzle exit (the Venturi effect — the same principle used in a carburetor or a vacuum ejector). This low-pressure region creates a suction effect that draws the chip-laden coolant from the cutting zone through the inner tube. The remaining 60–70% of the coolant flows through the drill head to the cutting zone, providing cooling and lubrication. The ejector action is self-regulating — as the drilling resistance changes (e.g., tool wear, material hardness variation), the back pressure in the cutting zone changes, which automatically adjusts the pressure differential across the ejector nozzles and maintains approximately constant chip evacuation flow. The magnitude of the Venturi effect depends on: the ratio of ejector flow to total flow (30–40% is optimal); the nozzle geometry (converging angle 15–20°, diverging angle 8–12°); the nozzle cross-sectional area relative to the annulus area; and the coolant supply pressure.

What are the limitations of ejector drilling?

Ejector drilling has four main limitations compared to BTA STS: lower maximum L/D ratio — ejector drilling is typically limited to L/D 80:1 versus 100:1 for BTA STS. The Venturi effect becomes less effective at very long bore depths because the flow resistance in the inner tube increases with length, reducing the pressure differential available for chip evacuation. Lower pressure capability — the double tube design limits the maximum coolant pressure to approximately 50 bar (higher pressures risk collapsing the inner tube or causing excessive deflection of the outer tube). This makes ejector drilling less suitable for materials requiring high coolant pressure (stainless steel > 150 bar, titanium > 180 bar). Lower penetration rate — typically 20–40% lower than BTA STS for the same material and diameter, because the ejector flow (30–40% of total coolant bypassing the cutting zone) reduces the coolant available for chip evacuation from the cutting zone. Higher coolant flow requirement — the total coolant flow is higher for ejector drilling than for BTA STS because 30–40% of the flow is used for the ejector effect rather than for cutting zone cooling. This requires a larger coolant pump and filtration system for the same bore diameter. The practical implication is that ejector drilling is best suited for moderate L/D ratios (up to 80:1), moderate materials (carbon steel, alloy steel, cast iron, aluminum), and applications where the BTA pressure head requirement is a barrier.

Can ejector drilling be used on a standard CNC lathe?

Yes, ejector drilling can be retrofitted onto a standard CNC lathe with relatively modest modifications. The requirements are: spindle power sufficient for the drilling operation (30–50 kW for Ø40–80 mm in steel); through-spindle coolant capability (a rotary union rated for 50 bar is typically required); a coolant pump upgrade (from the standard 5–10 bar to 20–50 bar, with flow capacity of 200–500 L/min); a coolant filtration system upgrade (paper band filter at 30–50 µm, or magnetic separator + paper band for cast iron); a chip conveyor (standard hinged belt is usually adequate); a coolant tank of sufficient capacity (3,000–5,000 L for a typical retrofitted system); and a tool holding system for the ejector drill outer tube (a hydraulic chuck with a bushing to match the tube diameter, or a custom collet). The total retrofit cost is typically €80,000–150,000 including tooling, which is substantially less than the €250,000–600,000 cost of a new dedicated BTA drilling machine. The retrofit can typically be completed in 2–4 weeks including installation and commissioning (plus 2–4 weeks for tooling delivery). The lathe retains its full functionality for conventional turning operations after the retrofit, making ejector drilling a cost-effective entry point for companies adding deep hole drilling capability.

What is the difference between ejector drilling and BTA STS tooling?

The tooling differences between ejector drilling and BTA STS are: drill head — the ejector drill head includes an integral ejector nozzle ring (or nozzles in the head body) that creates the Venturi effect. The BTA STS head has a simpler construction without ejector nozzles. Tube assembly — ejector drilling uses a double concentric tube (outer tube for coolant supply, inner tube for chip return). BTA STS uses a single tube (the annulus between the tube OD and the bore ID is the coolant supply path, and the tube ID is the chip return path). Coolant connection — ejector drilling requires a coolant inlet at the machine end that connects to the annulus between the tubes. BTA STS requires a rotary union at the spindle connection and a pressure head at the workpiece. The drill heads look similar externally — both use indexable carbide inserts and guide pads — but the ejector head has internal coolant passages that divide the flow between the ejector nozzles and the cutting zone. Interchangeability is limited — an ejector drill head cannot be used on a BTA STS system and vice versa. The tube assemblies are also not interchangeable because the coolant flow path is fundamentally different.

Disclaimer: The ejector drilling parameters, design guidelines, and retrofit cost estimates presented in this article are based on published technical literature, tool manufacturer data, and industry-reported experience. Actual results depend on specific machine tool condition, workpiece material, coolant system capability, and operating parameters. Retrofit feasibility and cost should be evaluated by qualified machine tool integrators for each specific application. No guarantee of specific penetration rate, tool life, or retrofit performance is expressed or implied. All data is provided for informational purposes and reflects industry practices as of 2026.

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