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Medical Deep Hole Drilling: Bone Screws and Spinal Implants

Cannulated bone screws and spinal implants — those with a hollow central bore — have transformed orthopedic surgery by enabling minimally invasive percutaneous placement over guide wires. The bore that runs through these implants, often no wider than a hypodermic needle yet extending up to 400 mm through titanium alloy, is produced almost exclusively by gun drilling. This is deep hole drilling at its most precise, in materials where any deviation from specification means a rejected implant that can never be reworked.

Cannulated Implant Types

Bone Screws

Cannulated bone screws are used in orthopedic trauma, foot and ankle, hand and wrist, and spinal surgery. The cannulation hole runs the full length of the screw and accommodates a Kirschner wire (K-wire) that guides the screw into precise position.

Screw TypeTypical DiameterCannulation DiameterLength Range
Small fragment (hand/wrist)2.0–4.0 mm1.0–1.5 mm10–40 mm
Large fragment (trauma)4.5–7.3 mm1.5–2.8 mm30–120 mm
Pedicle screw (spinal)4.5–8.5 mm1.6–2.5 mm30–80 mm
Interference screw (knee)7–12 mm1.5–2.0 mm20–40 mm

Intramedullary Nails

IM nails are inserted into the medullary canal of long bones (femur, tibia, humerus) to stabilize fractures. They require a cannulation hole through the entire length for guide wire placement during insertion and for later nail removal.

Nail TypeTypical LengthCannulation DiameterWall Thickness
Tibial nail250–400 mm2.5–4.0 mm3.5–5.0 mm
Femoral nail300–480 mm3.0–5.0 mm3.5–6.0 mm
Humeral nail200–350 mm2.5–3.5 mm3.0–4.5 mm

Spinal Implants

Spinal implants requiring deep hole drilling include:

  • Pedicle screws: Cannulated screws placed through the pedicle of the vertebra
  • Interbody fusion cages: Some designs have drilled passages for bone graft
  • Spinal rods: Some rod-based systems use drilled end holes for set screw engagement
  • Anchors and hooks: May have drilled through-holes for fixation

Deep Hole Drilling Process

Gun Drilling for Cannulated Implants

Gun drilling is the standard process for producing cannulation holes in medical implants because it uniquely meets the requirements for straightness, surface finish, and repeatability in deep, small-diameter holes.

ParameterTypical Range for Medical Implants
Hole diameter1.0–6.0 mm (micro gun drilling)
Length-to-diameter ratio20:1–200:1
Concentricity0.015 mm TIR over 400 mm
Surface finishRa 0.4–0.8 μm
Diameter toleranceH7–H8

The gun drill operates with a single cutting edge and a high-pressure coolant channel that delivers oil directly to the cutting tip. Chips are evacuated through an external V-flute along the drill body. The single cutting edge produces a natural burnishing effect from the guide pads that results in excellent surface finish.

Titanium Gun Drilling Parameters

For Ti-6Al-4V ELI (Grade 23), the most common medical implant alloy:

ParameterSmall Diameter (1–3 mm)Medium Diameter (3–6 mm)Large Diameter (6–18 mm)
Cutting speed15–30 m/min25–40 m/min30–50 m/min
Feed rate0.003–0.010 mm/rev0.008–0.020 mm/rev0.015–0.035 mm/rev
Coolant pressure150–250 bar100–200 bar80–150 bar
Coolant typeOil, EP additivesOil, EP additivesOil, EP additives
Tool materialMicro-grain carbideMicro-grain carbideCarbide

Challenges of Titanium Deep Hole Drilling

Titanium presents specific difficulties that make gun drilling the only viable process for cannulated implants:

ChallengeCauseConsequenceSolution
Heat concentrationLow thermal conductivity (7 W/mK vs. 50 for steel)Tool edge welding, built-up edgeHigh-pressure coolant, sharp tool geometry
Tool deflectionLow modulus of elasticity (114 GPa)Hole wander, concentricity lossCounter-rotation, whip guides
Chip controlStringy, segmented chipsChip packing, tool breakageOptimized feed, chip breaker geometry
Work hardeningPlastic deformation ahead of cutting edgeIncreased cutting forcesConsistent feed, no dwell
GallingChemical affinity between titanium and toolPoor surface finishCoated tooling (DLC, TiAlN)

Counter-Rotation for Straightness

For longer implants (IM nails over 300 mm), counter-rotation — where the workpiece rotates in the opposite direction to the tool — is essential for maintaining concentricity between the cannulation bore and the implant outer diameter.

Rotation ConfigurationTypical Concentricity
Tool rotation only0.05–0.10 mm
Workpiece rotation only0.03–0.08 mm
Counter-rotation0.015–0.05 mm
Counter-rotation + steady rests0.01–0.03 mm

Machine Tools for Medical Deep Hole Drilling

Mollart VDMF Micro Drilling Machine

The Mollart VDMF is a vertical micro gun drilling machine designed specifically for medical implants:

FeatureSpecification
Hole diameter range0.5–6.0 mm
Maximum depth300 mm
Spindle speedUp to 20,000 RPM
Number of spindlesUp to 4
Guide bushingTungsten carbide, close-tolerance
Coolant systemHigh-pressure oil, 5 μm filtration
Counter-rotationAvailable

Mollart LD Series (Drillsprint)

For larger implants such as IM nails:

FeatureSpecification
Hole diameter range4–25 mm
Maximum depth1,000 mm
Counter-rotationStandard
Guide bushingAdjustable, hardened steel
Typical applicationFemur and tibia nails

Precihole Micro Gun Drilling Machines

Precihole machines (distributed by Absolute Machine Tools in North America) offer tabletop configurations for micro medical drilling:

FeatureSpecification
Hole diameter range1.0–6.0 mm (0.04–0.25 in)
Maximum depth300 mm (12 in)
Spindle speed1,000–25,000 RPM
Spindle power1.5 hp per spindle
Feed rate0–1,000 mm/min
Coolant pressureUp to 2,500 psi (170 bar)
Filtration5 μm
Counter-rotationAvailable
MonitoringVibration and power monitoring standard

Multi-Spindle Configurations

Modern medical gun drilling machines often use multiple spindles for simultaneous drilling:

  • 2-spindle: Common for medium-volume production
  • 4-spindle: High-volume screw production
  • 8-spindle: Lights-out, high-volume automated production

With multi-spindle setups, one operator can run multiple machines, and automated loading/unloading enables 24/7 production.

Manufacturing Process Flow

Cannulated Bone Screw

StepOperationProcess
1Bar stock preparationCut Ti-6Al-4V ELI bar to length
2Rough turningCNC Swiss-type lathe, turn OD and head profile
3Cannulation drillingGun drill central bore (the critical operation)
4Head broachingBroach hex or multi-lobe drive feature
5Thread profileThread grinding (preferred) or thread turning/milling
6Self-tapping flutesCut flute at screw tip
7Tip geometryMachine trocar tip or blunt tip
8DeburringMechanical or thermal deburr all edges
9CleaningUltrasonic wash, DI water rinse
10ElectropolishingSurface smoothing, corrosion resistance
11PassivationNitric acid passivation per ASTM F86
12Final inspectionDimensional, visual, surface finish
13SterilizationGamma or EtO sterilization
14PackagingCleanroom packaging per ISO 13485

Intramedullary Nail

StepOperationProcess
1Tube or bar preparationPre-cannulated tube or solid bar
2Gun drilling (if solid bar)Drill full-length cannulation (up to 480 mm)
3OD turningMachine external profile, taper, and curvature
4Locking screw holesGun drill cross-holes for locking screws
5Slot cuttingMachine slots for insertion tools
6End machiningMachine proximal and distal ends
7Deburring and cleaningUltrasonic wash, passivation
8Final inspectionDimensions, surface, straightness
9Sterilization and packagingPer ISO 13485

The Hollow Bar Alternative

Instead of gun drilling each implant individually, some manufacturers use pre-cannulated bar stock:

  • Process: Tubing or hollow bar is drawn to final dimensions with the cannulation already in place
  • Advantage: Eliminates the gun drilling step, freeing Swiss-type CNC machines for other work
  • Production increase: 50–74% improvement in overall throughput
  • Cost trade-off: Raw material cost is higher (tubing vs. solid bar), but drilling cost is eliminated

A cost comparison from Forécreu shows the two approaches are surprisingly close in total cost. For a typical cannulated screw, drilling in-house costs approximately $16.06 per part (including material, drilling time, and tool cost), while using cannulated bar stock costs $15.92 per part — nearly identical, but with higher throughput.

Quality Requirements and Standards

Regulatory Standards

StandardRequirement
ISO 13485Medical device quality management system
FDA 21 CFR 820Quality system regulation (US)
ASTM F136Ti-6Al-4V ELI wrought material specification
ASTM F67Unalloyed titanium material specification
ASTM F86Surface preparation and passivation
ISO 5832Implant material standards (multiple parts)

Critical Quality Characteristics

CharacteristicTypical ToleranceMeasurement Method
Cannulation diameter±0.025–0.050 mmPin gauge, air gauge, optical
Concentricity (bore to OD)0.015–0.050 mm TIRCMM with rotary table
Straightness0.015 mm per 100 mmLaser gauge or mechanical
Surface finish (bore)Ra 0.4–0.8 μmProfilometer (entry/exit)
Burr conditionNo burrs at either endVisual (10× microscope)
CleanlinessNo chips, oil, or debrisVisual, solvent flush
Thread fitClass 2A/2B or tighterThread gauge

Cannulation Bore Inspection

Inspecting the cannulation bore is challenging because it is deep and narrow. Common methods include:

  • Go/no-go pin gauges: Quick verification of minimum diameter
  • Air gauging: Measures diameter at multiple depths
  • X-ray inspection: Verifies straightness and detects voids
  • Sectioning: Destructive test for full cross-section verification (first article only)
  • Borescope: Visual inspection of bore surface

Cleanliness Requirements

Medical implants have strict cleanliness requirements:

  • No cutting oil residue inside the cannulation
  • No metal chips or particles
  • No burrs that could dislodge in the body
  • Surface free of contamination that could affect biocompatibility

Cleaning validation must demonstrate that the cannulation bore is clean, typically through solvent flush analysis or rinse water testing.

Materials

Ti-6Al-4V ELI (Grade 23)

The most commonly used material for cannulated implants:

PropertyValue
Tensile strength860–965 MPa
Yield strength795–875 MPa
Elongation10–15%
Elastic modulus114 GPa
Thermal conductivity7 W/mK
BiocompatibilityExcellent (ASTM F136)

Other Implant Materials

MaterialApplicationsDeep Hole Drilling Challenge
Ti-6Al-4V (Grade 5)General traumaModerate (similar to ELI)
Ti-6Al-7NbDental, spinalSimilar to Grade 5
Commercially pure Ti (Grade 2/4)Dental implantsEasier (lower strength)
316L stainless steelTrauma, spinalFair (work hardens)
Cobalt chrome (ASTM F75)Spinal, dentalVery difficult (high strength, abrasion)

Surface Treatment After Drilling

After deep hole drilling, implant surfaces are typically treated:

TreatmentPurposeEffect on Bore
ElectropolishingSmooth surface, remove micro-burrsImproves Ra to 0.2–0.4 μm
Passivation (nitric acid)Restore passive oxide layerNo dimensional change
Anodic oxidationEnhanced corrosion resistanceMinimal dimensional change
Micro-bead blastingSurface roughening for osseointegrationNot applied to bore

Alternative and Emerging Technologies

Modulated Drilling (TriboMAM)

Modulation-assisted machining (MAM) applies high-frequency oscillation to the drilling process:

  • How it works: The toolholder oscillates the drill axially at approximately 1,000 cycles/second
  • Effect: Creates controlled chip segmentation, improving evacuation in deep holes
  • Results (Alphatec Spine pedicle screws):
    • Cycle time: 11.9 min → 6.9 min (42% reduction)
    • Tool life: doubled
    • Eliminated need for expensive cannulated bar stock
    • Cost savings exceeding $1,000/day

Laser Drilling

Laser drilling is used for micro features where gun drilling is impractical:

  • Hole diameters down to 0.05 mm
  • Used for surface porosity in dental implants
  • Can create shaped holes (vase, conical) not possible with mechanical drilling
  • Typically limited to depths under 5 mm

Hybrid Processing

Some manufacturers combine gun drilling with other processes:

  • Gun drill + hone: For ultra-smooth bore surfaces (Ra < 0.2 μm)
  • Gun drill + electropolish: Standard process for medical implants
  • Gun drill + ultrasonic clean: Ensures bore cleanliness

FAQ

Q: What is a cannulated bone screw? A cannulated bone screw has a hollow central bore (cannulation) that allows it to be placed over a guide wire during surgery. This enables minimally invasive percutaneous procedures where the surgeon can verify screw position with fluoroscopy before insertion.

Q: How are cannulated bone screws manufactured? The cannulation hole is typically produced by gun drilling — a single-lip deep hole drilling process that achieves the required straightness, concentricity, and surface finish in deep, small-diameter holes. After drilling, the screw is turned, threaded, and surface treated.

Q: What diameter cannulation is typical for bone screws? Cannulation diameters range from 1.0 mm for small hand/wrist screws to 2.8 mm for large fragment screws. Intramedullary nails can have cannulation diameters up to 5.0 mm.

Q: Why is titanium difficult to gun drill? Titanium has very low thermal conductivity (7 W/mK), so heat concentrates at the cutting edge. It also has a low elastic modulus (114 GPa), causing tool deflection, and a tendency to gall and smear against carbide tooling.

Q: What machine is used for gun drilling cannulated implants? Specialized micro gun drilling machines such as the Mollart VDMF, Precihole micro gun drill, or similar machines with high spindle speeds (up to 25,000 RPM), high coolant pressure (up to 2,500 psi), and counter-rotation capability.

Q: What is counter-rotation and why is it important? Counter-rotation rotates the workpiece in the opposite direction to the tool. This cancels tool deflection effects and improves concentricity between the bore and the implant outer diameter. It is essential for longer implants like IM nails.

Q: What is the typical straightness requirement for a cannulation bore? Straightness of 0.015 mm total indicator reading (TIR) over the full implant length is achievable with gun drilling. Some implants require this tolerance over 400 mm depth.

Q: Are there alternatives to gun drilling for cannulated implants? Yes. Pre-cannulated bar stock (hollow tubing) eliminates the drilling step entirely, increasing production throughput by 50–74%. Modulation-assisted machining (MAM/TriboMAM) applies high-frequency oscillation to the drill, improving chip evacuation and reducing cycle time.

Q: What quality standards apply to cannulated implant manufacturing? ISO 13485 (QMS), FDA 21 CFR 820 (US quality system regulation), ASTM F136 (Ti-6Al-4V ELI material), and ASTM F86 (surface preparation). ISO 13485 certification is required for CE marking.

Q: What are the cost considerations for cannulated screw production? Gun drilling in-house costs approximately $16 per part including tools and time. Cannulated bar stock costs similar ($15.92 per part) but offers higher throughput by freeing up machine capacity. The breakeven depends on production volume and labor costs.

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