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Injection Mold Cooling Channel and Die Deep Hole Drilling

In 2017, a large automotive injection mold for a polypropylene bumper fascia catastrophically cracked across the cavity surface after 12,000 production cycles. Metallurgical investigation revealed that the cooling channel layout — gun-drilled at 16 mm diameter in P20 steel — had a ligament thickness of only 6 mm between the cooling channel and the cavity surface at one critical location, compared to the recommended minimum of 24 mm for 16 mm channels. The inadequate ligament combined with localized overheating caused thermal fatigue cracking. The mold replacement cost USD 180,000 and required 14 weeks of manufacturing lead time, causing production delays for a major automotive assembly plant.

Injection Mold Cooling Channel and Die Deep Hole Drilling Overview

Cooling channels in injection molds and forming dies are among the most functionally critical deep-drilled features in toolmaking. The arrangement, diameter, and surface quality of these channels directly determine the thermal performance of the mold, which controls cycle time, part quality, and dimensional stability.

In injection molding, cooling typically accounts for 50–80% of the total cycle time. Well-designed cooling channels reduce cycle time by providing efficient heat removal from the molded part. Gun drilling is the primary manufacturing method for these channels, producing straight, precision bores through tool steel plates at lengths up to 1,500 mm.

Beyond injection molds, deep hole drilling is used for cooling channels in blow molds, compression dies, extrusion dies, and thermoforming tools. Each application has specific requirements for channel diameter, depth, surface finish, and cleanliness.

Materials for Injection Molds and Dies

Mold tool steels are selected for hardness, wear resistance, polishability, and thermal conductivity — properties that also affect their machinability in gun drilling.

P20 (AISI P20, DIN 1.2311): The most common pre-hardened mold steel for injection molds. Supplied at 28–36 HRC (270–330 HB). Good machinability with excellent polishability. Used for molds up to 500,000 cycles for commodity plastics.

P20HH / 1.2312: Higher hardness variant at 33–38 HRC. Improved wear resistance for higher-volume production. Reduced machinability compared to standard P20.

H13 (AISI H13, DIN 1.2344): Hot-work tool steel for molds operating at elevated temperatures. Supplied at 44–52 HRC. Used for engineering plastics (nylon, PC, PEEK) requiring mold temperatures above 80°C. Significantly harder to gun drill than P20.

S7 (AISI S7): Shock-resistant tool steel for molds subjected to high impact loads. Hardness 48–54 HRC. Used for tooling inserts and slides. Requires reduced gun drilling feeds.

420SS (AISI 420, DIN 1.2083): Stainless mold steel for corrosive plastics (PVC, flame-retardant grades). Hardness 48–52 HRC. Corrosion resistant but challenging to gun drill — requires positive rake geometry.

S136 / 1.2085: Pre-hardened stainless mold steel at 30–36 HRC. Used for optical and medical molds requiring corrosion resistance. Better machinability than full-hard 420SS.

Thermal conductivity of mold materials:

MaterialHardnessThermal Cond. (W/mK)Gun Drill Feed
P20 (1.2311)28–36 HRC291.0 (baseline)
H13 (1.2344)44–52 HRC24–280.4–0.6× P20
S748–54 HRC220.3–0.5× P20
420SS48–52 HRC220.4–0.5× P20
S13630–36 HRC180.7–0.8× P20
Cu-Be (C17200)35–42 HRC1051.5–2.0× P20

Gun Drilling of Cooling Channels in Mold Plates

Cooling channels are gun-drilled through mold plates from the plate edges, intersecting to form a circuitous cooling path. Channel diameters typically range from 6–20 mm with depths of 200–1,500 mm.

Gun drilling parameters for mold tool steels:

MaterialHardnessCutting Speed (m/min)Feed (mm/rev)Coolant (bar)
P2028–36 HRC70–1000.03–0.0850–100
P20HH33–38 HRC60–850.025–0.0660–110
H1344–52 HRC40–650.020–0.0580–140
S748–54 HRC30–500.015–0.04100–150
420SS48–52 HRC25–450.015–0.04100–140
S13630–36 HRC50–750.025–0.0660–120
Cu-Be (C17200)35–42 HRC40–700.03–0.0840–80

Feed rates by channel diameter (P20 steel):

Channel Diameter (mm)Feed (mm/rev)Penetration Rate (mm/min at 80 m/min)
60.020–0.03575–130
80.025–0.04580–170
100.030–0.05595–175
120.035–0.065115–210
160.040–0.075130–240
200.045–0.080145–255

Surface finish requirements:

ApplicationRa (µm)Notes
Standard cooling channel1.6–3.2As-drilled, acceptable for water
High-efficiency channel0.8–1.6Reduced fouling, improved heat transfer
Hot runner manifold bore0.4–0.8Polished for melt flow
Die cooling bore1.6–3.2As-drilled

TIP

For gun drilling of P20 mold steel at 32 HRC, use TiAlN-coated carbide gun drills with a point angle of 120–130°. P20 produces short, broken chips at feeds above 0.04 mm/rev, making it one of the most cooperative mold steels for gun drilling. A 12 mm diameter × 800 mm cooling channel in P20 can typically be drilled in 4–5 minutes at 80 m/min cutting speed and 0.055 mm/rev feed. Do not use coolant pressures below 50 bar — inadequate pressure causes chip packing in the drill flute, leading to tool breakage at the bottom of the channel.

Cooling Channel Design Principles

Cooling channel geometry directly determines mold thermal performance. Established design rules apply regardless of the drilling method.

Cooling channel spacing rules:

ParameterRecommended ValueEffect of Deviation
Pitch (center-to-center)≤ 3× channel diameterWider pitch causes hot spots between channels
Distance to cavity surface≤ 1.5× channel diameterGreater distance reduces cooling efficiency
Distance to adjacent channel≥ 2× channel diameterCloser spacing risks ligament fracture
Distance to mold edge/insert≥ 3× channel diameterInsufficient web causes cracking
Channel diameter8–16 mm (typical)Smaller = pressure drop; larger = flow wasteful

Flow requirements:

  • Reynolds number: ≥ 8,000 (fully turbulent flow) for maximum heat transfer
  • Water velocity: 1.5–3.0 m/s at Re 8,000–20,000
  • Pressure drop per circuit: ≤ 2 bar for balanced cooling

Channel layout patterns:

  • Series circuit: Single path through multiple zones — simple but temperature rise along the circuit reduces uniformity
  • Parallel circuit: Multiple paths from a manifold — better temperature uniformity but risk of flow imbalance
  • Cascade circuit: Staged parallel paths — balances flow distribution and temperature rise

T-junction and L-junction intersections:

Cooling channels typically intersect at right angles at the mold edges. These intersections create dead zones where flow velocity drops and mineral deposits accumulate. Design guidelines:

  • At T-junctions: the through-channel continues, the intersecting channel connects
  • At L-junctions: use cross-drilled plugs to redirect flow
  • Avoid sharp internal corners at channel ends — use spot-faced end mills for a flat bottom with edge radius
  • All intersecting channels should be deburred by abrasive flow machining or manual polishing

Deep Hole Drilling for Hot Runner Manifolds

Hot runner manifolds distribute molten plastic from the injection machine nozzle to multiple mold cavities. These manifolds require precisely drilled flow channels with smooth internal surfaces for uninterrupted melt flow.

Manifold drilling specifications:

  • Channel diameter: 8–25 mm (depending on shot volume)
  • Channel depth: 200–800 mm
  • Material: H13 (44–48 HRC) or S7 (48–52 HRC)
  • Surface finish: Ra 0.4–0.8 µm (polished)
  • Intersection radius: ≥ 5 mm at all T-junctions and L-junctions

Gun drilling parameters for hot runner steels:

MaterialSpeed (m/min)Feed (mm/rev)Coolant (bar)
H13 (44 HRC)40–550.02–0.04100–140
S7 (50 HRC)30–450.015–0.03120–150

Manifold flow channel design:

Hot runner manifolds face a fundamental design challenge with gun drilling: only straight channels can be produced. This creates L-shaped and T-shaped intersections where melt flow must turn corners. These intersections create:

  • Dead spots where material stagnates and degrades
  • Shear stress concentration at the inside corner
  • Glass fiber breakage at sharp edges (filled materials)

For critical applications, alternative manufacturing methods are used: split-plate construction (machined channel halves bonded together) or additively manufactured manifold inserts with conformal runner geometry.

Die and Extrusion Tool Deep Hole Drilling

Forming dies and extrusion tools require deep hole drilling for cooling channels, heating element bores, and sensor passages.

Applications in dies:

  • Blow mold die cooling: Channels around the cavity contour for uniform cooling of blown containers
  • Extrusion die cooling/heating: Passages for temperature control in profile dies and sheet dies
  • Forging die cooling: Water-cooled channels in hot forging dies for extended tool life
  • Thermoforming tool vacuum/air passages: Small-diameter bores for vacuum holes and air ejection

Drilling parameters for die materials:

Die TypeMaterialDia. (mm)Speed (m/min)Feed (mm/rev)
Blow moldP20 (30 HRC)8–2070–950.03–0.08
Extrusion dieH13 (46 HRC)6–1640–600.02–0.05
Forging dieH13 (50 HRC)10–2530–500.015–0.04
Thermoforming6061-T6 Al2–8100–2000.04–0.12
ThermoformingP203–660–800.02–0.05

Baffle, Bubbler, and Thermal Pin Cooling

In deep mold cavities where straight cooling channels cannot reach, baffles, bubblers, and thermal pins provide localized cooling.

Baffle cooling channels: A baffle is a drilled hole perpendicular to the cavity surface with a dividing wall inserted to direct coolant flow down one side and up the other. The baffle hole is typically 10–20 mm diameter, gun-drilled to the required depth (30–200 mm), then fitted with a brass or steel baffle blade.

Bubbler cooling channels: Similar to baffles but without the dividing wall. A small-diameter tube inserted into the drilled hole delivers coolant to the bottom, which then flows upward around the tube. Bubbler holes are 6–15 mm diameter, gun-drilled to depths of 20–150 mm.

Thermal pins (heat pipes): Sealed copper tubes containing a working fluid that transfers heat by evaporation and condensation. These are installed in gun-drilled holes that cannot be connected to the cooling circuit. Thermal pin holes are 6–12 mm diameter with a length-to-diameter ratio typically below 20:1.

Drilling parameters for baffle/bubbler holes:

Cavity MaterialSpeed (m/min)Feed (mm/rev)Coolant (bar)
H13 (48 HRC)35–550.015–0.03580–120
P20 (32 HRC)60–850.025–0.0650–90
Cu-Be (C17200)40–650.03–0.0740–70

Conformal Cooling vs. Drilled Channels

Additive manufacturing (DMLS, SLM) enables conformal cooling channels that follow the mold cavity contour. A comparison of the two approaches:

AspectGun-Drilled ChannelsConformal Channels (AM)
GeometryStraight, linear onlyCurved, follow cavity contour
Minimum distance to cavityLimited by drilling access2–5 mm achievable
Surface finishRa 0.8–3.2 µmRa 5–15 µm (as-built)
Dimensional accuracy±0.05 mm±0.1–0.3 mm
Material optionsAny machinable steelLimited to weldable AM alloys
Cost per channelLow (USD 10–100)High (USD 500–5,000+)
Cycle time reductionBaseline10–40%
Channel cleaningPossibleDifficult

Conformal cooling is preferred for complex geometries where uniform cooling is critical and cycle time reduction justifies the cost premium. Gun-drilled channels remain the standard for simpler geometries and larger mold plates where conformal cooling offers diminishing returns.

Where both methods are combined in a hybrid approach — conformal inserts for complex cavity regions connected to gun-drilled manifold channels in the mold plate — the best balance of performance and cost is achieved.

WARNING

Cooling channels drilled in P20 and H13 mold steels are subject to mineral scale buildup and corrosion from untreated cooling water. In 2019, a 16-cavity PET preform mold produced 18% reject rate due to hot spots caused by scale deposits in gun-drilled cooling channels after 8 months of operation. The 12 mm diameter channels had become restricted to 8–9 mm effective diameter by calcium carbonate deposits. Never use untreated tap water for mold cooling. Use treated water with maximum 100 ppm total dissolved solids, and install magnetic or electronic scale prevention. Include cleanout access (NPT plugs) at all dead-end channel terminations for periodic brushing.

Quality Standards and Inspection

Cooling channel drilling in mold tooling follows industry standards for dimensional accuracy, surface finish, and cleanliness.

Key standards:

  • SPI/ANSI B151.2: Injection Molding Machine Safety
  • NADCA #207: Design for Die Casting Cooling
  • ISO 9001: Quality Management for Tooling
  • DME (Die Mold Engineering) cooling channel specifications
  • ASTM A681: Tool Steel Standards

Cooling channel inspection:

ParameterStandard ChannelsPrecision ChannelsMethod
Diameter tolerance±0.10 mm±0.05 mmPin gauge, air gauge
Position±0.5 mm±0.25 mmCoordinate measurement
Straightness0.1 mm/300 mm0.05 mm/300 mmLaser alignment
Surface finish Ra≤ 3.2 µm≤ 1.6 µmProfilometer
CleanlinessNo chips, oil-freeNo chips, oil-freeBorescope, flush test
Intersection burr≤ 0.1 mm≤ 0.05 mmMicroscope
Pressure test1.5× working press.1.5× working press.Hydrostatic

Pressure testing protocol:

After all cooling channels are drilled and plugged, the complete cooling circuit is pressure tested:

  1. Fill circuit with water and vent all air
  2. Pressurize to 1.5× maximum working pressure (typically 10–15 bar)
  3. Hold for 15 minutes
  4. Maximum allowable pressure drop: 0.5 bar in 15 minutes
  5. Visually check all plugs, connections, and welded closures for leaks

Flow testing protocol:

After pressure testing, each circuit is flow-tested to verify turbulent flow:

  1. Connect circuit to pump at specified pressure
  2. Measure flow rate (L/min) and compare to design specification
  3. Minimum acceptable flow: 90% of design flow
  4. Measure pressure drop across circuit — verify ≤ 2 bar

FAQ

  1. What is the standard method for drilling cooling channels in injection molds? Gun drilling is the standard method, producing straight, precision channels (6–20 mm diameter × 200–1,500 mm depth) through tool steel mold plates.

  2. What tool steel is most commonly used for injection molds? P20 (AISI P20, DIN 1.2311) at 28–36 HRC is the most common pre-hardened mold steel, offering good machinability and polishability.

  3. What cutting speed is recommended for gun drilling cooling channels in P20 steel? Recommended cutting speeds are 70–100 m/min for P20 at 28–36 HRC, with feed of 0.03–0.08 mm/rev and coolant pressure of 50–100 bar.

  4. What are the design rules for cooling channel spacing? Pitch should not exceed 3× the channel diameter, distance to the cavity surface should not exceed 1.5× diameter, and coolant flow must achieve Reynolds number above 8,000 for turbulent heat transfer.

  5. How are cooling channel intersections deburred? Abrasive flow machining is the preferred method for deburring intersecting cooling channels, followed by borescope verification. Manual polishing with flexible hones is used for smaller channels.

  6. What is the difference between conformal cooling and gun-drilled cooling channels? Gun drilling produces straight, linear channels only. Conformal cooling uses additive manufacturing to create curved channels that follow the cavity contour, providing 10–40% cycle time reduction at higher manufacturing cost.

  7. What coolant pressure is needed for gun drilling H13 tool steel? H13 at 44–52 HRC requires coolant pressure of 80–140 bar for effective chip evacuation and tool life.

  8. How are hot runner manifold flow channels manufactured? Channels are gun-drilled through H13 or S7 tool steel, followed by polishing to Ra 0.4–0.8 µm. For critical applications, split-plate construction with machined channel grooves or AM inserts replaces drilled channels.

  9. What causes cooling channel scaling and how is it prevented? Mineral scale deposits from untreated cooling water restrict flow and reduce heat transfer. Prevention includes using treated water (≤ 100 ppm TDS), magnetic scale prevention, and periodic channel brushing.

  10. What is the typical cycle time contribution of cooling in injection molding? Cooling accounts for 50–80% of the total injection molding cycle time. Optimized cooling channel design is the most effective single factor for reducing cycle times.


Summary Table

ComponentTypical MaterialProcessDia. Range (mm)Depth (mm)ToleranceSurface Finish
Mold cooling channelP20 (32 HRC)Gun drill6–20200–1,500±0.10 mmRa 1.6–3.2
Mold cooling channelH13 (48 HRC)Gun drill6–16200–1,200±0.10 mmRa 1.6–3.2
Hot runner manifold boreH13 (46 HRC)Gun drill + polish8–25200–800H8–H9Ra 0.4–0.8
Baffle/bubbler holeH13 (48 HRC)Gun drill6–2020–200±0.10 mmRa 1.6–3.2
Extrusion die channelH13 (46 HRC)Gun drill6–16300–1,500±0.10 mmRa 1.6–3.2
Blow mold cooling boreP20 (30 HRC)Gun drill8–20300–800±0.10 mmRa 1.6–3.2
Thermoforming vac. boreP20 (30 HRC)Gun drill3–6200–600±0.05 mmRa 1.6–3.2

Injection mold cooling channel and die deep hole drilling requires material-specific gun drilling parameters, adherence to established cooling channel design rules, and rigorous quality verification. The combination of correct channel geometry, surface finish, and flow characteristics directly determines the thermal performance, cycle time, and part quality of the injection molding or forming process.

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