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Deep Hole Drilling for Paper & Printing Roller Manufacturing

A paper machine suction roll 6 metres long with 30,000 precision-drilled holes removes 1,200 litres of water per minute from the forming web — every hole must be within 0.1 mm of its true position, or the dewatering pattern becomes uneven and the paper tears. In roller manufacturing, deep hole drilling is not secondary machining; it is the process that defines functional performance.

Roller Types and Their Drilling Requirements

Paper and printing machines use several distinct roller types, each requiring a different deep hole drilling approach:

Roller TypeIndustryDrilling PurposeHole Count per RollTypical Dimensions
Suction rollPapermakingRadial through-holes for vacuum dewatering5,000–50,000+Ø0.3–1.5 m × 3–10 m length
Press roll (blind drilled)PapermakingBlind holes in rubber cover for water removal10,000–100,000Ø0.5–2 m × 3–10 m length
Chill roll / cooling rollPrinting, coatingAxial cooling channels for temperature control10–40 per rollØ0.2–1.5 m × 2–8 m length
Printing cylinderFlexo, gravure, offsetInk passages, thermal control bores1–20Ø0.1–1 m × 1–6 m length
Central impression cylinderFlexographic printingSpiral cooling channels for temperature uniformity1–2 channels, spiral pathØ1–3 m × 2–4 m length
Calendar rollPaper, plastic filmCentral bore for heating/cooling fluid1 (large bore) + 10–30 axial channelsØ0.3–1 m × 2–8 m length

Note: Anilox rollers (flexographic printing) use laser engraving for ink cell creation, not deep hole drilling. The deep hole drilling process is applied to the roller core or cooling channels, not the surface ink-carrying layer.

Suction Roll Drilling

Suction rolls are rotating perforated shells in the forming and press sections of paper machines. A vacuum box inside the roll draws water through the holes, dewatering the paper web.

Hole Pattern and Geometry

ParameterTypical ValueNotes
Hole diameter2.5–4.0 mmLarger holes for higher drainage; smaller for finer paper grades
Shell thickness25–75 mmDetermines drilling depth (through-hole)
Hole spacing (circumferential)8–15 mmDetermines open area ratio
Hole spacing (axial)10–20 mmStaggered pattern for uniform dewatering
Open area ratio20–30%Critical for dewatering capacity
Drilling angle0–20° from radialAngled holes reduce water throw from centrifugal force

The open area ratio is the key design parameter. A typical suction roll with 3 mm holes on 12 mm staggered spacing achieves approximately 25% open area — meaning one quarter of the roll surface is open hole.

Drilling Process

Suction roll shells are drilled using multi-spindle gang drilling machines:

  1. Setup: The roll is mounted on a heavy-duty indexing system that rotates it in precise circumferential increments
  2. Gang drill: A row of 10–50 drill spindles, spaced to match the axial hole pattern, advances radially into the shell
  3. Indexing: After drilling one row of holes, the drill head indexes axially by one row spacing, or the roll rotates for the next circumferential row
  4. Through-hole detection: Each drill breaks through the inner shell surface — drill feed length confirms full penetration
  5. Pattern completion: The process repeats until the full roll surface is drilled

Tip: For suction rolls requiring millions of holes over the production lifetime, multi-spindle drilling reduces cycle time from weeks to days. A 50-spindle gang drill can complete one suction roll in 3–5 days versus 3–4 weeks for single-spindle drilling.

Drilling MethodSpindle CountTypical Cycle Time per RollBest For
Single-spindle13–4 weeksLow volume, prototype rolls
Multi-spindle gang drill10–201–2 weeksMedium production
Multi-spindle gang drill30–503–5 daysHigh-volume production
On-machine drilling5–15In-situ (no removal)Roll remains in paper machine

On-Site Drilling Technology

Several patents (US 6,361,254; US 6,789,984; US 5,344,259) describe apparatus for drilling paper machine cylinders without removing them from the machine frame:

  • A multi-spindle drilling head is supported on adjacent cylinders using fastening belts and adjustable frames
  • Separate motors drive spindle rotation and feed movement
  • Drill guides contact the cylinder face to maintain position
  • Air blast nozzles clear chips from drilled holes

This is particularly valuable for re-drilling or pattern modification on existing paper machines where roll removal would require weeks of downtime.

Suction Roll Materials

MaterialApplicationDrillabilityWear Resistance
Bronze (SAE 64, 660)Traditional suction rollsExcellentGood
Stainless steel (316L, 17-4 PH)Corrosion-resistant rollsModerateExcellent
Duplex stainless steelHigh-strength, corrosive environmentsModerate-difficultExcellent
Alloy steel (Ni-Cr-Mo)High-load press rollsModerateVery good
Rubber or polyurethane coverBlind drilled press rollsSoft, easyCover wear limits life

Warning: Stainless steel and duplex stainless steel suction rolls require rigid drill guidance and pecking cycles to prevent work-hardening at the hole entry point. Cobalt HSS drills or carbide-tipped drills are recommended for production quantities.

Press Roll Blind Drilling

Press rolls in paper machines combine a steel core with a rubber or polyurethane cover (15–40 mm thick). Blind drilled holes in the cover carry water away from the press nip:

ParameterTypical Value
Blind hole diameter2–3 mm
Blind hole depth7–15 mm (cover thickness minus ~5 mm)
Hole patternStaggered, typically 25–30% open area
Cover materialPolyurethane (20–25 mm typical), rubber
Core materialCast steel or stainless steel

The blind holes are drilled radially into the roll cover after the rubber or polyurethane has been applied and ground to finished diameter. Multi-spindle drills with depth stops control penetration — the drill must not contact the steel core.

BTA Trepanning for Large Roller Bores

Heavy paper machine rolls (calendar rolls, press rolls, large drying cylinders) require a large central bore for:

  • Weight reduction
  • Heat transfer fluid circulation
  • Mounting and shaft assembly

BTA trepanning is the preferred method because it produces a precision bore while recovering a solid core that can be used for other components.

Process Parameters

ParameterBTA TrepanningBTA Solid Drilling
Bore diameter50–250 mm40–120 mm
Max depth16 m16 m
Depth-to-diameterUp to 100:1Up to 100:1
Coolant pressure2.5 MPa2.5 MPa
Coolant flow800 L/min800 L/min
Core recoveryYes — solid bar recoveredNo — material becomes chips
Typical roll OD100–670 mm100–670 mm

Working Modes

For large paper rolls, three working modes are available on BTA machines such as the Premach T2150/T2250 series:

ModeWorkpiece RotationTool RotationFeedBest For
1✓ Rotates✓ RotatesReciprocalLargest rolls, highest straightness
2✓ Rotates— StationaryReciprocalModerate length, simpler setup
3— Stationary✓ RotatesReciprocalRolls that cannot be rotated (assembled rollers)

Mode 1 (counter-rotation) produces the straightest bore because rotational errors from both the workpiece and tool cancel out. This is the preferred mode for calendar rolls and large press rolls where bore straightness directly affects roll balance.

Trepanning vs. Solid Drilling

FactorBTA TrepanningBTA Solid Drilling
Material wasteLow (core recovered)High (all chips)
Power requiredLowerHigher
Bore straightnessExcellentExcellent
Equipment costHigher (trepanning head)Standard
Typical bore size> 60 mm< 120 mm

Cooling Channels for Chill Rolls and Printing Cylinders

Temperature-controlled rollers — chill rolls for extrusion coating, cooling rolls for film processing, and printing cylinders — require precision axial channels for heat transfer fluid circulation.

Channel Configurations

ConfigurationDescriptionTemperature UniformityComplexity
Single large boreOne central channel with inserted coolant pipe±5–10°CLow
Multiple axial bores10–40 parallel gun-drilled channels near periphery±1–3°CMedium
Spiral channelHelical path machined or formed in roll shell±1–2°CHigh
Supply/return pairsChannels grouped in pairs with end-connected mixing chambers±1°CHigh

Multiple axial bores are the most common approach for precision temperature control. The process:

  1. Gun drill 10–40 parallel channels through the roll body, spaced evenly around the circumference
  2. Channels are typically 6–20 mm diameter, located 10–30 mm below the roll surface
  3. End caps or manifolds connect alternating channels into supply/return circuits
  4. Coolant flows through one set of channels and returns through the adjacent set

Gun Drilling Parameters for Cooling Channels

ParameterTypical Value
Channel diameter6–20 mm
Channel length2,000–8,000 mm
Number of channels per roll10–40
Radial position tolerance±0.5 mm from nominal
Surface finish inside channelRa 1.6–3.2 μm
Coolant typeWater, thermal oil, or glycol mixture
Temperature uniformity target±1°C across roll face

Tip: For chill rolls in extrusion coating, a temperature variation of just ±3°C across the roll face produces visible coating thickness variation. Gun-drilled cooling channels positioned close to the roll surface (10–15 mm) with high coolant velocity (3–5 m/s) achieve the best uniformity.

Spiral Cooling Channels

Modern flexographic printing central impression cylinders use spiral flow channels for temperature control:

  • Research on satellite flexographic press cylinders (2024) shows that spiral channels with optimized rectangular cross-sections achieve axial temperature differences as low as 2.46°C
  • Channel cross-section aspect ratio (height/width) significantly impacts heat transfer — a ratio of 0.6 produces optimal uniformity
  • Spiral channels are typically machined or cast rather than gun-drilled, but they connect to axially gun-drilled supply and return passages

Printing Cylinder Manufacturing

Printing cylinders (for flexographic, gravure, and offset printing) require deep hole drilling for:

ApplicationDrilling RequirementProcess
Cylinder shaft borePrecision axial through-hole for mountingGun drilling or BTA
Ink supply channelsSmall-diameter axial or radial passagesGun drilling
Temperature controlAxial cooling channel arraysGun drilling
Lightweight constructionLarge central boreBTA trepanning
Journal boresPrecision concentric bores at each endGun drilling or boring

Industry suppliers like Hole Specialists Inc. and Hone-All Precision provide gun drilling and deep hole drilling services specifically for printing industry rollers. Key requirements include concentricity within 0.05 mm and surface finishes of Ra 0.4–0.8 μm for bearing surfaces.

Machine Specifications Comparison

Machine SeriesProcessMax Bore ØMax DepthCoolantApplication
Premach T2150/T2250BTA trepanning, drilling, boring250 mm (trepan), 500 mm (bore)16 m2.5 MPa, 800 L/minLarge paper rolls
Multi-spindle gang drillRadial drilling2–6 mm (per spindle)75 mmEmulsion mistSuction rolls
Horizontal gun drilling machineGun drilling1–40 mm8 m+5–10 MPaCooling channels
On-site drilling apparatusRadial re-drilling2–6 mmShell thicknessAir blastRoller maintenance

Quality Requirements

Dimensional Accuracy

ParameterSuction RollChill RollPrinting Cylinder
Hole position tolerance±0.2–0.5 mm±0.5 mm (axial position)±0.1 mm
Hole diameter tolerance±0.05–0.1 mm±0.02–0.05 mm±0.02 mm
Bore concentricity±0.05 mm±0.02–0.05 mm
Surface finish Ra1.6–3.2 μm (channel ID)0.4–0.8 μm
Open area tolerance±1%

Inspection Methods

InspectionMethodFrequency
Hole positionCoordinate measuring machine (CMM) or optical templateFirst-off + spot check every 10th row
Hole diameterPlug gauge or air gauge100% for suction rolls
Bore straightnessLaser alignment systemEvery roll
Channel pressure testHydrostatic test at 1.5× working pressure100%
Roll concentricityDial indicator during rotationEvery roll
Surface temperatureThermal camera or contact thermocouple arrayCalibration run

Manufacturers and Service Providers

Deep Hole Drilling Machine Builders

ManufacturerMachine/ServiceKey Capability
Premach (China)T2150/T2250 BTA seriesTrepanning up to 250 mm Ø × 16 m
MWN Niefern (Germany)Suction roll manufacturing800+ suction rolls, 3,500+ covers
TBT (Germany)Deep hole drilling machinesPrecision BTA and gun drilling
Mollart (UK)Accubore deep hole drilling centre7-axis, multi-process capability

Contract Drilling Services

Service ProviderSpecializationCertifications
Hole Specialists Inc.Printing industry componentsPrecision gun drilling
Hone-All PrecisionThin-wall rollers, packaging industrySpecialised in complex geometries
Various Chinese manufacturersBlind drill press rollsCast steel + rubber coated

FAQ

Why do paper machine suction rolls need so many drilled holes?

Suction rolls dewater the paper web by vacuum — each hole acts as a drainage channel. A typical roll with 25% open area and 3 mm holes requires approximately 25,000–50,000 holes to achieve the water removal capacity needed for modern paper machines running at 1,500+ m/min.

What is BTA trepanning and why is it used for roller bores?

BTA trepanning cuts an annular groove around a solid core, producing a precision bore while recovering the centre material as a usable solid bar. It is used for large roller bores because it produces excellent straightness, minimises material waste, and handles the 100:1 L/D ratios typical of paper machine rolls.

What is the difference between a suction roll and a blind drilled press roll?

Suction rolls have through-holes drilled completely through the shell, with internal vacuum pulling water through. Blind drilled press rolls have shallow holes 7–15 mm deep in a rubber or polyurethane cover — these holes compress and release in the press nip, mechanically squeezing water out.

How are cooling channels made in chill rolls?

Axial cooling channels are gun-drilled parallel to the roll axis, typically 10–40 channels spaced around the circumference. End caps or manifolds connect them into supply/return circuits. Channel diameter is 6–20 mm, drilled up to 8,000 mm deep.

Can printing cylinders be re-drilled on site?

Yes. Specialised on-site drilling apparatus can be mounted on adjacent cylinders in the paper machine or printing press. Multi-spindle drilling heads with adjustable spacing and guide jigs allow hole pattern modification or re-drilling without removing the roll.

What materials are used for paper machine suction rolls?

Bronze (traditional, excellent drillability), 316L stainless steel (corrosion resistance), 17-4 PH stainless steel (high strength), duplex stainless steels (aggressive environments), and alloy steels (Ni-Cr-Mo for high-load applications).

What is the typical open area of a suction roll?

20–30% of the roll surface area. Higher open area increases dewatering capacity but reduces shell strength. The optimal ratio depends on paper grade, machine speed, and roll diameter.

How is hole position accuracy maintained across 50,000 holes?

Multi-spindle gang drills with precision indexing systems maintain hole position within ±0.2–0.5 mm. The roll rotates on a computer-controlled rotary axis, and the drill head indexes axially between rows. Laser or mechanical templates verify pattern accuracy at regular intervals.

What is the temperature uniformity requirement for printing chill rolls?

±1°C across the full roll face width is the standard for high-quality printing. Achieving this requires multiple gun-drilled cooling channels (10–40) with optimised flow distribution and end-connected supply/return circuits.

Can deep hole drilling create spiral cooling channels?

Spiral channels are typically machined or cast rather than deep-hole drilled. However, spiral flow paths can be created by drilling axial channels and connecting them with cross-drilled holes at the ends, or by inserting baffles into gun-drilled channels.

Conclusion

Deep hole drilling serves three distinct functions in paper and printing roller manufacturing: dewatering hole creation in suction and press rolls, large bore generation through BTA trepanning for lightweight and thermally controlled rollers, and precision cooling channel drilling for temperature-critical chill rolls and printing cylinders. Each application requires a different drilling process — multi-spindle gang drilling for radial through-holes, BTA trepanning for large central bores, and gun drilling for small-diameter axial cooling channels — but all share the requirement for precision, repeatability, and process control. Modern multi-spindle drilling technology has reduced suction roll drilling cycle time from weeks to days, while gun-drilled cooling channels enable the ±1°C temperature uniformity that high-speed printing and coating processes demand. The deep hole drilling processes described here are not peripheral to roller manufacturing; they are the core manufacturing operations that determine functional performance.

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