CNC Machining Knowledge Base · Aluminum Series

Complete Guide to CNC Drilling Aluminum

Speeds, feeds, drill selection, chip control, deep-hole strategy, burr control and hole quality — written from production practice, not from a catalog.

Speeds & feeds by alloy Drill geometry & coatings G81 / G83 / G73 Deep holes beyond 5×D Burr & chip control Drilling vs reaming vs boring
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Quick answer

CNC drilling aluminum needs a sharp, polished-flute drill, a real feed per revolution, high cutting speed and reliable chip evacuation. Correct parameters depend on the alloy, the hole depth-to-diameter ratio, drill diameter, workholding and machine rigidity — not on a single RPM number. Drilling on its own typically holds around IT11–IT13 on diameter; when a drawing calls for H7/H8 or tight true position, the hole is finished by reaming, boring or helical interpolation.

26 years
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100+
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6061 · 7075 · 5052 · 2024
Aluminum alloys drilled in production
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01Why Aluminum Is Harder to Drill Than It Looks

Aluminum is easy to cut but hard to cut well. Low cutting forces mean the machine is never the limit. The limit is what happens to the chip and to the cutting edge — and both problems get worse, not better, when the operator backs the feed off.

Every recurring defect in aluminum hole making traces back to the same four material properties. Understanding which property is driving a defect is what turns guesswork into a repeatable fix.

PropertyWhat it causes at the drillTypical defect on the part
High ductility, low melting point
6061-T6 melts around 580–650 °C
Aluminum smears and pressure-welds onto the cutting edge instead of shearing away cleanlyBuilt-up edge, oversized and out-of-round holes, torn hole wall
Long, continuous chipsChips coil rather than break, then pack into the flutes and stop evacuatingChip packing, drill seizure, drill breakage, scored hole wall
High thermal conductivity
~167 W/m·K for 6061, roughly 3× steel
Heat is dumped into the workpiece and the chip, not carried away by the chip aloneThermal growth during machining, parts measuring differently hot and cold
Low shear strength, high elongationThe last layer of material at breakthrough is pushed ahead of the drill rather than cutLarge exit burrs, cross-hole burrs, deformed thin walls
The single most common mistake: feeding too lightly. Operators who see a poor hole usually slow the feed down. In aluminum that is exactly backwards. Below roughly 0.03 mm/rev the cutting edge stops shearing and starts rubbing. Rubbing generates heat at the edge, heat promotes adhesion, and adhesion builds a built-up edge that then tears the hole oversized. A heavier, correct feed per revolution usually produces a cooler, cleaner hole.

The five failure modes below account for the overwhelming majority of aluminum drilling scrap. Each one has its own section later in this guide.

Failure 01

Built-up edge

Welded aluminum on the cutting lip changes the effective geometry and diameter of the drill mid-cut.

Failure 02

Chip packing

Flutes fill, the drill can no longer clear material, torque spikes and the tool seizes or snaps.

Failure 03

Oversized hole

Runout, built-up edge or an off-center web makes the drill cut a hole larger than its nominal diameter.

Failure 04

Exit burr

Material is pushed out at breakthrough instead of being sheared, leaving a ring that must be removed.

Failure 05

Poor hole finish

Re-cut chips and a smearing edge score the wall, so the surface fails the drawing callout.

Root cause

Nearly always the chip

Four of the five above are chip problems in disguise. Fix evacuation first, then chase parameters.

02How the Alloy Changes the Job

“Aluminum” is not one material. A drill and parameter set that works perfectly in 6061-T6 can wear out quickly in 2024, tear badly in 5052 and need a completely different tool in high-silicon cast alloys.

The table below covers the wrought and cast alloys we drill most often in production. Machinability ratings are relative comparisons used across the industry, not absolute measurements — treat them as a starting point for tool and parameter choice.

AlloyMachinabilityDrilling difficultyWhat actually happens at the drillTypical applications
6061-T6ExcellentEasy The benchmark. Chips break reasonably well in the T6 condition, tool life is long and hole quality is predictable. General engineering, brackets, housings, jigs
7075-T6GoodMedium Harder and stronger, so cutting forces rise. Reduce cutting speed moderately and watch edge wear; chips are shorter than 6061, which helps evacuation. Aerospace structure, high-load fittings, tooling
2024-T3/T351Fair to goodMedium Copper-bearing. Abrasive intermetallic particles accelerate flank wear, and in the T3 condition chips run long and stringy. Aircraft skins and fittings, fatigue-critical parts
5052-H32GoodEasy to cut, hard to finish Non-heat-treatable and very ductile. It drills with low force but produces long gummy chips and the worst exit burrs of the common alloys. Sheet metal enclosures, marine, fuel and fluid parts
6063-T5GoodEasy to cut, gummy Extrusion alloy, softer than 6061. Prone to smearing and built-up edge if the feed is too light or the edge is not polished. Extruded profiles, heat sinks, frames
A356 / A380 castFairHard on tools Silicon content is the issue, not hardness. Hard silicon particles act as an abrasive; uncoated carbide wears quickly and PCD or diamond-coated tooling pays for itself in volume. Die-cast and gravity-cast housings, automotive
Why 5052 burrs so badly. It has high elongation and cannot be strengthened by heat treatment, so at breakthrough the remaining material stretches and folds outward instead of shearing. The fix is process, not parameters: reduce feed over the last fraction of a millimeter, support the exit face with a backing plate, and plan a deburring operation into the route rather than hoping to avoid one.
Why 2024 eats drills. The copper-rich intermetallic phases that give 2024 its strength are harder than the aluminum matrix around them. They abrade the flank face continuously, so tool life is governed by wear rather than by adhesion. Plan tool changes by hole count, and inspect flank wear rather than waiting for a bad hole.
Choosing between alloys before the hole strategy is even decided? Our companion guide compares strength, machinability, corrosion resistance and cost across the common grades: Best Aluminum Alloys for CNC Machining.

03Drill Selection: Which Tool for Which Hole

Drill choice is decided by three numbers before anything else: hole diameter, depth-to-diameter ratio (L/D), and the tolerance on the drawing. Alloy and coolant type refine the choice; they rarely change it.
Use when — position matters, or the surface is not flat

Spot Drill / Center Drill

A short, extremely rigid tool that creates a conical start so the following drill cannot walk. The point angle of the spot drill should be equal to or larger than the drill that follows, so the drill contacts at its outer corners first and stays centered. A 90° spot followed by a 140° drill is a common and damaging mismatch — the drill lands on its chisel edge in an unsupported cone and can chip.

You can often skip it. A modern solid carbide drill with a 140° self-centering point and a thinned web will start accurately on a flat, clean, square face without spotting. Spotting is genuinely required when the entry face is curved, angled, cast, interrupted or scaled, when using HSS jobber drills, or when true position is tight.

Comparison of drilling into an angled surface with and without a spot drill On the left the drill deflects sideways on an angled face and the hole is off position. On the right a spot drilled cone locates the drill and the hole is on position. WITHOUT SPOT DRILL Angled / cast entry face Drill walks off position Chisel edge slides downhill before it can cut WITH SPOT DRILL Spotted cone locates the drill Hole stays on true position Spot angle ≥ drill angle, so corners contact first
Figure 1 — A spot drill matters most where the entry face is not flat and square. Note the spot angle must be equal to or wider than the following drill.
Use when — low volume, general purpose, shallow holes

HSS and HSS-Co Twist Drill

Still the right answer for one-off work, soft fixturing, hand-fed operations and older machines with limited spindle speed. HSS tolerates interrupted cuts and marginal rigidity better than carbide because it bends before it breaks. The trade-off is cutting speed: HSS in aluminum runs at roughly 30–60 m/min, against 100 m/min and well beyond for carbide.

For aluminum specifically, look for a high-helix (parabolic) HSS drill rather than a standard jobber. The wider, more open flute is what clears a long aluminum chip.

Use when — production volume, rigid setup, quality holes

Solid Carbide Drill

The default for production aluminum on a rigid CNC machine. Higher stiffness holds size and position better, the edge stays sharp far longer, and it supports the cutting speeds that keep aluminum from smearing. A ground, polished-flute solid carbide drill with a 140° self-centering point will typically start without spotting and hold diameter within a few hundredths of a millimeter over its life.

Carbide is unforgiving of what HSS tolerates: runout, a loose vice, a long tool overhang or an interrupted entry will chip it. Check runout at the drill tip before blaming the tool.

Use when — depth exceeds about 4×D, or cycle time matters

Through-Coolant (Internal Coolant) Drill

Coolant is delivered through channels inside the drill body and exits at the point. This does two things external coolant cannot: it cools the cutting edge where the heat actually is, and it flushes chips up and out of the flutes under pressure. Beyond roughly 4–5×D, external flood coolant simply does not reach the bottom of the hole — the chip column blocks it.

A through-coolant drill often lets you run a deep hole in a single pass at full feed where a solid drill would need heavy pecking, so cycle time can drop dramatically. It requires a machine with a through-spindle coolant system and adequate pressure; low pressure through a small-diameter drill achieves nothing.

External flood coolant compared with through-coolant drilling in a deep hole External coolant cannot reach the bottom of a deep hole because chips block the opening, while through-coolant exits at the drill point and flushes chips upward and out. EXTERNAL FLOOD COOLANT Chips trapped coolant blocked Works to roughly 3–4×D, then evacuation fails THROUGH-COOLANT DRILL Chips flushed up and out Enables single-pass drilling well beyond 5×D
Figure 2 — Beyond about 4×D the chip column itself blocks external coolant. Internal coolant delivers pressure exactly where the cutting happens.
Use when — stepped or chamfered holes in one pass, thin sheet

Step Drill

A single tool that produces two or more diameters, or a hole plus its chamfer, in one plunge. In production this removes a tool change and guarantees the chamfer is concentric with the hole. Step drills are also the practical answer for thin sheet, where a conventional twist drill grabs and triangulates the hole as it breaks through.

The limitation is flexibility: the step geometry is fixed, so a design change means a new tool. Reserve them for stable, repeating features.

Use when — diameter is large, odd, or tolerance is tight

Helical Interpolation with an End Mill

Not a drill at all, but often the better answer. Milling a hole in a helical path lets one end mill produce any diameter above its own, adjusts size through cutter compensation without buying a new tool, and generates short chips that evacuate easily. It is the standard approach for large holes where a drill of that diameter would exceed the machine’s torque, and for holes where position accuracy is critical.

The trade-off is cycle time on small holes — below roughly 12 mm a drill is almost always faster. We compare the two approaches in Is CNC Drilling the Same as Milling?

ToolBest forAvoid whenTypical cutting speed in aluminum
HSS / HSS-Co twistPrototype, low volume, less rigid setupsProduction volume, high spindle speed available30–60 m/min
Solid carbideProduction, tight size, good finishExcessive runout, weak workholding, interrupted entry100–200 m/min
Through-coolant carbideDepth beyond 4×D, short cycle timeNo through-spindle coolant, or low pressure150–300 m/min
Step drillHole plus chamfer, thin sheetGeometry still changing between revisionsAs per the largest step diameter
PCD / diamond-coatedHigh-silicon cast alloys such as A356 and A380Low volume — tool cost is not recovered200–500 m/min
Helical interpolationLarge or non-standard diameters, tight positionSmall holes in volume — slower than drillingPer end mill recommendation

04Drill Geometry That Actually Matters

“118°” is not a specification. Point angle, helix angle, web thickness, margin design and coating each control a different failure mode. Choosing them deliberately is the difference between a drill that lasts 200 holes and one that lasts 5,000.
Anatomy of a twist drill showing point angle, helix angle, margin, web and flute Side view of a twist drill with the shank on the left and the point on the right, labelling the shank, flute, helix angle, margin, web thickness, cutting lip and point angle. Point angle 118° / 135° / 140° Helix angle 35–45° for aluminum Shank Flute Margin (land) Web thickness (core) Cutting lip
Figure 3 — The five geometry features that decide how a drill behaves in aluminum. Every one of them is specified independently by the tool maker.

Point angle — why 118°, 135° and 140° are not interchangeable

Comparison of 118 degree, 135 degree and 140 degree drill point angles Three drill points side by side. A 118 degree point is sharper and longer, a 135 degree point is flatter and self-centering, and a 140 degree point is flattest with the lowest thrust and best centering. 118° General purpose HSS Sharper, longer point 135° Split point, self-centering Flatter, starts without spotting 140° Typical solid carbide for aluminum Lowest thrust, best centering
Figure 4 — A flatter point spreads the cut over a longer lip, lowers thrust and centers itself; a sharper point penetrates more easily but walks more readily.
FeatureRecommended for aluminumWhy it matters, and what goes wrong otherwise
Point angle 130°–140° for solid carbide;
118° acceptable for HSS
A flatter point distributes the cut, reduces thrust and self-centers, which is what allows spot-free starting. Sharper points penetrate easily but walk on entry and leave a larger exit burr because more material is pushed rather than sheared.
Helix angle 35°–45° (high helix) The single most aluminum-specific choice. A high helix acts like an auger and lifts the long aluminum chip out of the hole. A standard 30° helix, and certainly a low-helix drill intended for hardened steel, will pack solid in a deep aluminum hole.
Web thickness Thin or thinned web The web is the drill’s core. A thick web is stiff but its chisel edge extrudes rather than cuts, raising thrust sharply and pushing the drill off center. Web thinning cuts thrust noticeably and improves centering — it is a standard feature on good carbide drills.
Margin Narrow, polished, often double margin The margin is the narrow land that rubs the hole wall. Wide margins generate friction and are where aluminum welds itself to the drill. A double margin adds guidance for straightness in deep holes without adding contact width.
Flute surface Ground and polished A polished flute lowers the friction the chip sees on its way out. On a rough, as-sintered flute an aluminum chip drags, heats and eventually welds. This is a real and measurable difference in aluminum, far more than in steel.
Coating Uncoated polished carbide, DLC, ZrN or TiB2.
PCD/diamond for high-silicon cast alloys.
See the warning below — this is the most frequently mis-specified item on the list.
Do not use TiAlN or AlTiN coatings in aluminum. These aluminum-titanium-nitride coatings are excellent in steel, stainless and cast iron, where their alumina layer resists heat. In aluminum they work against you: the coating is chemically similar to the workpiece, so the aluminum has a strong affinity for it and adhesion — built-up edge — gets worse rather than better. For aluminum choose an uncoated, finely polished carbide edge, or a low-friction, non-aluminum-bearing coating such as DLC (diamond-like carbon), ZrN or TiB2. For high-silicon cast alloys, where abrasion rather than adhesion is the wear mechanism, PCD or CVD diamond is the correct answer.
How to read a tool catalog quickly. Ignore the marketing name and look for four things: helix angle above 35°, a point angle of 130° or more, a polished flute, and a coating that is not aluminum-based. A drill meeting all four will outperform a generic “carbide drill” in aluminum by a wide margin regardless of brand.

05Speeds and Feeds for Drilling Aluminum

There is no single correct RPM. Cutting speed is a property of the material and tool; spindle speed is only what that cutting speed happens to become at a given diameter. Always start from cutting speed and feed per revolution, then calculate the machine numbers.
Spindle speed n = (Vc × 1000) ÷ (π × D) rev/min, where Vc is in m/min and D in mm
Feed rate Vf = n × fn mm/min, where fn is feed per revolution in mm/rev
Rule of thumb for fn in aluminum fn ≈ 0.015 – 0.02 × D for solid carbide at L/D ≤ 3

Starting cutting speeds by alloy

These are working ranges for solid carbide drills with flood or through-tool coolant, at a depth of up to about 3×D. Use the lower end of each band for larger diameters, longer tools, weaker workholding or mist-only coolant.

AlloyVc — solid carbideVc — HSSFeed per rev (fn)Preferred coolantNote
6061-T6120–200 m/min35–60 m/min0.015–0.020 × DFlood or throughThe reference case; most forgiving
7075-T6100–160 m/min30–50 m/min0.015–0.020 × DFlood or throughHigher strength, so lower Vc; watch flank wear
2024-T390–150 m/min25–45 m/min0.012–0.018 × DFloodAbrasive; plan tool changes by hole count
5052-H32100–160 m/min30–50 m/min0.015–0.020 × DFloodGummy; never let fn drop — rubbing makes it worse
6063-T5120–200 m/min35–60 m/min0.015–0.020 × DFlood or MQLSoft and sticky; polished flute is essential
A356 / A380 cast100–200 m/min
(PCD: 200–400)
Not recommended0.010–0.015 × DFloodSilicon abrades carbide; diamond tooling for volume
Adjust downward for: hole depth beyond 3×D tool overhang > 4×D thin-wall or vacuum-held parts mist or dry cutting HSS instead of carbide interrupted or angled entry

Worked starting values — 6061-T6, solid carbide, Vc = 150 m/min

This is the table to hand an operator. Spindle speeds are rounded to practical values, and the small-diameter rows are capped at 12,000 rev/min because most vertical machining centers will not exceed it — if your spindle is limited to 8,000 rev/min, accept the lower cutting speed rather than dropping the feed to compensate.

Drill øSpindle speed nFeed/rev fnFeed rate VfEffective VcCycle at L/D ≤ 3
3 mm12,000 rev/min (capped)0.05 mm/rev600 mm/min113 m/minG81, full feed
5 mm9,500 rev/min0.09 mm/rev855 mm/min149 m/minG81, full feed
6 mm8,000 rev/min0.11 mm/rev880 mm/min151 m/minG81, full feed
8 mm6,000 rev/min0.14 mm/rev840 mm/min151 m/minG81, full feed
10 mm4,800 rev/min0.17 mm/rev816 mm/min151 m/minG81, full feed
12 mm4,000 rev/min0.20 mm/rev800 mm/min151 m/minG81, full feed
16 mm3,000 rev/min0.25 mm/rev750 mm/min151 m/minCheck spindle torque
20 mm2,400 rev/min0.28 mm/rev672 mm/min151 m/minConsider helical interpolation
These are starting values, not a guarantee. Achievable parameters depend on your machine’s rigidity and spindle power, tool holder runout, workholding, coolant pressure and the actual drill geometry. Prove them on a test piece, listen to the cut, inspect the chip, and adjust. A correct aluminum chip is a tight, bright, well-formed spiral — not a long ribbon, and not dull grey dust.

Coolant strategy

MethodWhere it belongsStrengthLimitation
Flood emulsionGeneral production, holes to about 4×DGood bulk cooling, washes chips off the part, low costCannot reach the bottom of a deep hole once chips fill it
Through-tool coolantDeep holes, high-volume work, unattended runningCools the edge and flushes chips out under pressureNeeds a through-spindle system and adequate pressure
MQL (minimum quantity lubrication)Shallow holes, thin parts, dry-chip recoveryExcellent lubricity against adhesion; chips stay dry and sellableLimited cooling; not suitable beyond about 3×D
Compressed air onlyVery shallow holes, sheet, prototype workClears chips, no fluid to clean off the partNo lubrication, so built-up edge risk rises sharply
Fully dryRarely appropriate for aluminumAluminum welds to the tool almost immediately without lubricity

06Drilling Cycles: G81, G83 and G73

G73 breaks the chip. G83 removes it. That single distinction decides which cycle a hole needs, and it is the point most often confused — including in code that has been running in a shop for years.
Tool path comparison of G81 straight drilling, G73 high speed peck and G83 full retract peck cycles Three depth against time graphs. G81 plunges straight to depth. G73 steps down with a small retract between each peck. G83 steps down and returns fully to the R plane after each peck. G81 — straight drilling R plane Z depth One continuous plunge, one retract. Use to about 3×D Fastest cycle. Nothing clears the chip. G73 — high-speed peck R plane Small retract each peck — snaps the chip, tool stays in the hole. Use for about 3–5×D G83 — full-retract peck R plane Returns fully to the R plane each peck — the chip actually leaves the hole. Use beyond 5×D
Figure 5 — Depth against time for the three standard cycles. G73 keeps the tool in the hole and only breaks the chip; only G83 lets the chip escape.
CodeNameTool motionWhen to use it in aluminum
G81Drilling cycleFeed to depth, rapid retract to the R or initial plane.Holes to roughly 3×D. Also correct for deeper holes when using a through-coolant drill that can clear chips on its own.
G82Drill with dwellAs G81, plus a programmed pause at the bottom.Spot facing, counterbores and chamfers where a flat, clean bottom face is required.
G73High-speed peckFeeds down by Q, retracts a small fixed amount, feeds again. The tool never leaves the hole.Roughly 3–5×D. Breaks the long aluminum chip so it can be carried out, without paying the time cost of full retracts.
G83Peck (deep hole) cycleFeeds down by Q, retracts all the way to the R plane, then rapids back down before cutting again.Beyond 5×D without through-coolant. The only cycle that genuinely evacuates chips and lets coolant back to the bottom.
The small retract in G73 is a machine parameter, not a program word. On FANUC controls it is set by parameter No.5114; on Haas it is Setting 22. If G73 is not breaking chips as expected, check that value before changing anything in the program — a retract set to 0.1 mm will not break an aluminum chip.
FANUC-style example — ø8 mm through hole, 45 mm deep (5.6×D) in 6061-T6
(TOOL 4 = 8MM SOLID CARBIDE DRILL, 140 DEG, HIGH HELIX)
T4 M6
G90 G54 G0 X40. Y25.          (position over hole)
G43 H4 Z25. M3 S6000       (tool length on, spindle 6000 rev/min)
M8                             (coolant on - allow it to reach the tool)
G83 X40. Y25. Z-48. R2. Q12. F840.   (peck 12mm, full retract to R2)
X70. Y25.                       (cycle repeats at each new position)
X100. Y25.
G80                            (cancel cycle)
G0 Z25. M9
M5
Choosing the peck value Q. For aluminum, start the first peck at 2–3×D and reduce as the hole deepens, because evacuation gets harder with depth. A practical scheme for a 5×D hole is first peck 2×D, then 1.5×D, then 1×D. Very small Q values are counterproductive: they multiply cycle time, and each re-entry risks the drill striking a chip that has fallen back in.
Never reverse the spindle to clear chips. A twist drill has cutting edges ground in one direction only. Running it backwards, even briefly, rubs the relief face against the material and will chip or shatter the lip — and in aluminum it can weld the drill into the hole. If chips are not clearing, change the cycle, the Q value or the coolant delivery. Never the spindle direction.
Control differences worth knowing. Haas uses the same G73/G81/G83 words but reads the peck retract from Setting 22, and offers G83 with an I/J/K variable-peck form. Siemens 840D uses cycles rather than G-codes — CYCLE81, CYCLE83 — with named parameters. Heidenhain uses CYCL DEF 200 DRILLING and CYCL DEF 203 UNIVERSAL DRILLING. The strategy in this section is the same on all of them; only the syntax changes. Always confirm against the manual for your specific control and version.

07Deep Hole Drilling in Aluminum

A hole becomes a deep hole at about 5×D. Past that point three things degrade together: chips cannot get out, coolant cannot get in, and the drill has enough unsupported length to wander. Each one has to be addressed separately.
Depth (L/D)Recommended approachSpeed factorFeed factorWatch for
up to 3×DStandard carbide drill, G81 full feed100%100%Nothing unusual
3–5×DG73 chip breaking, or through-coolant with G8190%90%Chip color and form at the flute exit
5–8×DThrough-coolant drill strongly preferred; otherwise G8380%80%Rising spindle load through the cut
8–12×DThrough-coolant long drill, pilot hole, G83 with reducing Q70%70%Hole straightness and diameter drift at depth
12–20×DDedicated deep-hole drill, high coolant pressure, rigid pilot60%60–70%Runout is now the dominant variable
beyond 20×DGun drilling or BTA — a different process, not a longer drillProcess-specificRequires dedicated equipment and setup

Speed and feed factors are applied to the values from Section 05. They are cumulative with any reduction already taken for the alloy or the setup.

The four things that decide whether a deep hole succeeds

  1. Runout, measured at the tip. A deep drill amplifies every thousandth of runout in the holder. Aim for under 0.02 mm total indicated runout for holes beyond 5×D, and under 0.01 mm beyond 10×D. A shrink-fit or high-precision hydraulic holder is not a luxury here — a standard ER collet chuck often cannot hold it.
  2. A correct pilot hole. Start with a short, rigid drill of the same nominal diameter, to a depth of about 1.5–2×D, and with a point angle equal to or wider than the deep drill. A pilot that is undersized forces the long drill to cut on its corners; a pilot with a narrower point angle leaves the long drill unsupported at its center.
  3. Coolant pressure, not coolant volume. Through-tool coolant needs pressure to push a chip column upward. Small-diameter deep drills in particular need high pressure to work at all. If the machine cannot supply it, the honest answer is to change the process, not to push the tool.
  4. Reducing the peck as you go. The first peck can be aggressive; the last should not be. Evacuation difficulty rises with depth, so the Q value should fall with depth. Variable-peck forms of the cycle exist on most controls specifically for this.
Do not solve a deep-hole problem by slowing the feed. It is the instinctive response and it makes things worse in aluminum: a lighter chip is thinner, more flexible and far more likely to pack, and the reduced feed increases rubbing at the edge. If a deep hole is failing, address evacuation — cycle, coolant, tool choice — before touching the feed.

08Chip Evacuation — the Real Problem in Aluminum

Aluminum is not difficult because it is hard. It is difficult because of the chip. Get evacuation right and most other defects disappear on their own; get it wrong and no parameter change will save the hole.
Successful chip evacuation compared with chip packing in a drilled hole On the left, well-formed spiral chips travel up the flutes and leave the hole. On the right, chips have packed into the flutes, torque rises and the chips are being re-cut against the hole wall. EVACUATING CORRECTLY Tight spirals ride up the flute Stable torque · clean wall · predictable size CHIP PACKING Flutes full chips re-cut wall scored Torque spike · heat · seizure or breakage
Figure 6 — The same drill, the same material. The only difference is whether the chip can leave.

Three distinct chip failures

Failure mode

Chip welding

Aluminum pressure-welds to the cutting edge and the flute wall. The drill effectively grows a new, wrong-shaped cutting edge out of the workpiece material.

Driven by: low feed per revolution, insufficient lubricity, aluminum-bearing coatings, unpolished flutes.

Failure mode

Chip packing

The flute volume fills faster than chips can leave. Torque climbs, coolant is blocked, and the tool either seizes or snaps.

Driven by: depth beyond the cycle’s capability, low helix angle, no peck, coolant that cannot reach the tip.

Failure mode

Re-cutting chips

Chips that fell back into the hole are cut a second time. They score the wall, damage the margin and can wedge the drill.

Driven by: insufficient retract height, chips left in a blind hole, blowing chips back in with air.

The countermeasures, in the order worth trying

  • Get the feed per revolution right first. Most “chip problems” are actually a feed that is too light. A proper chip load produces a chip thick enough to break and stiff enough to travel.
  • Use a high-helix, polished-flute drill. Geometry moves the chip; parameters only create it.
  • Match the cycle to the depth. G81 to 3×D, G73 to 5×D, G83 beyond — as covered in Section 06.
  • Deliver coolant where the cutting is. Through-tool beyond 4×D; flood positioned to actually hit the hole, not the vice.
  • Add an air blast for blind holes. Directed to lift chips out of the hole, not across it. A poorly aimed air jet pushes chips straight back in.
  • Raise the retract plane on blind holes. Retracting only 1 mm above the face on a G83 does not give the chip anywhere to go.
  • Clear the fixture between parts. Aluminum chips that build up around a vice will find their way back into an open hole.
Read the chip, not the spindle load meter. Tight, bright, well-formed spirals roughly the diameter of the drill mean the parameters are right. Long stringy ribbons mean the feed is too light or the helix is wrong. Dull, discoloured or powdery chips mean the edge is worn or rubbing. Chips welded onto the drill when you pull it out mean the coolant, coating or feed is wrong. Five seconds looking at the chip tray tells you more than an hour of adjusting overrides.

09Burr Control

An exit burr is not a machining defect — it is a material behavior. At breakthrough the last layer of aluminum has nothing supporting it, so it is pushed ahead of the drill and folded over instead of being cut. You reduce it by process design; you cannot eliminate it by wishing.
Entry burr, exit burr and cross-hole burr shown in section A sectioned plate shows a small entry burr at the top of the hole and a large folded exit burr at the bottom. A second view shows a burr formed inside an intersecting cross hole. ENTRY BURR vs EXIT BURR Entry burr — small, easy to chamfer Exit burr — large, rolled, must be removed CROSS-HOLE BURR Burr forms inside the intersection — no line of sight, no tool access
Figure 7 — Entry burrs are cosmetic and cheap to remove. Exit and cross-hole burrs drive real cost, and cross-hole burrs often need a dedicated process.
Burr locationWhy it formsHow to control it at the machine
Entry Material is displaced upward as the drill point enters, especially with a sharp point angle or a worn edge. Spot or chamfer first; keep the edge sharp; a chamfer cut after drilling removes it completely and cheaply.
Exit The remaining wall becomes too thin to support the thrust, so it bends outward and folds instead of shearing. Reduce feed to roughly 30–50% over the last 1–2 mm of breakthrough; support the exit face with a backing plate or sacrificial material; use a sharp, unworn drill; consider a step drill or a back-chamfer tool.
Cross hole (intersecting bores) The drill breaks into an existing bore at an angle, with nothing behind the cut and no way to reach the resulting burr. Drill the cross hole before the main bore where the sequence allows; otherwise plan abrasive flow machining, thermal deburring or a dedicated back-deburring tool into the route.
Thin wall / sheet The part flexes away from the drill, then springs back; the hole triangulates and the edges tear. Use a step drill or sheet-specific geometry; clamp close to the hole; back the sheet with sacrificial material; reduce thrust with a flatter point angle.

Deburring methods and where each belongs

MethodBest forCost per partLimitation
In-cycle chamfer toolAccessible entry and exit faces, production volumeVery lowNeeds tool access to both sides of the feature
Back-chamfer / reverse deburr toolBlind-side hole edges reachable through the holeLowDiameter-specific; fragile in small sizes
Manual deburringPrototypes, low volume, awkward geometryHigh and variableOperator-dependent, hard to guarantee consistency
Vibratory / tumble finishingSmall parts in batches, uniform light edge breakLow in volumeCan round sharp features you wanted to keep
Abrasive flow machiningInternal cross-hole intersections, hydraulic manifoldsMedium to highSpecialist process, fixturing cost
Thermal deburring (TEM)Complex internal burrs across many holes at onceMedium in volumeSpecialist equipment; not suited to all geometries
Say it on the drawing. “Remove all burrs” means different things to different shops. A specified edge condition — for example a 0.2–0.4 mm edge break, or a callout that a particular bore must be burr-free — is what lets a supplier plan and price the right deburring process instead of guessing. Where it matters, say which edges are functional.

10Hole Accuracy: Drilling, Reaming, Boring and Interpolation

A drill is a roughing tool. It removes material fast and locates reasonably well, but it is not a sizing tool. When a drawing calls for H7, a tight true position or a fine bore finish, the hole is started by drilling and finished by something else.
A drilled hole compared with a reamed hole, showing wall condition and tolerance band The drilled hole has an irregular wall and a wide tolerance band. The reamed hole has a smooth wall and a much narrower tolerance band. AS-DRILLED Irregular wall, wide size spread Typically IT11–IT13 AFTER REAMING Smooth wall, closely controlled size Typically IT7–IT8
Figure 8 — The tolerance bands are drawn to scale relative to each other. Reaming does not make a badly located hole correct — it makes a correctly located hole the right size and finish.
ProcessTypical diameter capabilityTypical surface finishWhat it is actually good at
Drilling IT11–IT13
roughly ±0.05 to ±0.15 mm depending on diameter
Ra 1.6–6.3 µm Removing material quickly and establishing the hole. Not a sizing operation.
Reaming IT7–IT8
roughly ±0.01 to ±0.02 mm in common sizes
Ra 0.8–1.6 µm Sizing and finishing an existing hole. A reamer follows the hole it is given — it corrects size, not position.
Boring IT6–IT7 or better, equipment dependent Ra 0.4–1.6 µm Correcting both size and position, and producing non-standard diameters. The slowest and most controllable option.
Helical interpolation Good true position; diameter controlled by cutter compensation Ra 0.8–3.2 µm Large or non-standard diameters, tight position, and any size adjustment without a new tool.
These are typical process capabilities, not a commitment. What is actually achievable on a specific part depends on hole diameter and depth, material and temper, workholding and part rigidity, machine and spindle condition, thermal stability during the cut, and how the feature is measured and gauged. Thin-walled and long-reach features in particular behave very differently from a test coupon. We confirm achievable tolerances against your drawing before quoting — see the Aluminum CNC Machining Tolerance Guide for how we assess this.
Reaming allowance matters. Too little stock and the reamer burnishes rather than cuts, which produces a bell-mouthed hole and a poor finish. Too much and it chatters. As a starting point, leave roughly 0.1–0.2 mm on diameter for holes up to about 10 mm, and 0.2–0.3 mm above that. Then run the reamer at a low speed and a generous feed — the opposite instinct to drilling.
When position is the requirement, not size. A reamer cannot pull a hole back onto position; it follows the pilot. If true position is tight, the answer is either to bore the hole, to helically interpolate it, or to control the drilling stage properly with a spot drill, a rigid holder and low runout. Decide this at the process planning stage, not after the first article fails.

11Eight Common Aluminum Drilling Problems and How to Fix Them

These are the failure modes that actually generate scrap and rework on aluminum jobs. For each one, the left column is what is really causing it — which is often not the obvious answer — and the right column is the order in which to change things. Change one variable at a time, and record what you changed.

1

Drill breakage, usually part-way down a deep hole

Likely cause

  • Chips packing in the flutes and jamming the drill — by far the most common cause in aluminum.
  • Coolant not reaching the cutting edge, so the chip welds and the flute loses its clearance.
  • Peck depth left constant beyond about 5×D instead of being reduced as the hole gets deeper.
  • Excessive runout in the holder, which loads one lip far more than the other.
  • Feed reduced "to be safe", which produces stringy chips instead of broken ones.

What to change

  • Switch from G81 to G73, and beyond 5×D switch to G83 with full retract.
  • Reduce peck depth progressively as depth increases — not a single fixed Q for the whole hole.
  • Move to a through-coolant drill above 5×D if the machine supports it.
  • Check runout at the drill shank; target under 0.02 mm TIR for deep holes.
  • If chips are long and stringy, increase feed slightly rather than reducing it.
2

Built-up edge and aluminum welding to the flutes

Likely cause

  • An aluminum-hostile coating — TiAlN and AlTiN both promote adhesion in aluminum.
  • Cutting speed too low, so the chip smears instead of shearing cleanly.
  • Feed too light, so the edge rubs and generates heat without removing material.
  • A rough, unpolished flute surface that gives the chip somewhere to key into.
  • Insufficient coolant concentration or flow at the cutting zone.

What to change

  • Use uncoated polished carbide, or a DLC, ZrN or TiB2 coated drill designed for aluminum.
  • Raise the cutting speed into the recommended band for the alloy rather than backing it off.
  • Bring the feed up to roughly 0.015–0.02 × D per revolution.
  • Increase coolant flow and check the emulsion concentration against the supplier specification.
  • Inspect the flutes between holes on a long run; a drill that has started welding will not recover on its own.
3

Hole comes out oversized

Likely cause

  • Runout in the spindle, holder or collet — the drill sweeps a circle larger than its own diameter.
  • Unequal lip lengths after regrinding, so one lip does all the cutting and the drill is pushed sideways.
  • No spot drill, so the drill wanders on entry and enlarges the mouth of the hole.
  • An overly long, unsupported drill flexing under load.
  • Expecting a drilled hole to hold a tolerance that drilling cannot hold in the first place.

What to change

  • Measure runout with an indicator at the drill body, not at the holder taper.
  • Use hydraulic, shrink-fit or high-accuracy collet holding rather than a worn ER collet.
  • Spot the hole first, or use a self-centering 135° split-point drill.
  • Shorten the drill projection to the minimum that clears the feature.
  • If the print calls for H7 or H8, plan a reaming or boring operation — do not chase it with the drill.
4

Hole position is out of tolerance

Likely cause

  • The drill walked on entry, particularly on a curved, angled or cast surface.
  • Work offset or datum set from the wrong feature, so every hole is shifted together.
  • Part lifting or shifting in the fixture under thrust load.
  • Spot drill diameter smaller than the drill, leaving no chamfer for the drill point to seat into.
  • Position measured from a different datum than the one used to set the job.

What to change

  • Spot with a drill larger in diameter than the hole, at a point angle wider than the drill point.
  • Re-verify the work offset before blaming the tool — a whole pattern shifted the same way is a datum problem. See our CNC machining process for how datums are set in production.
  • Add clamping or support directly under the hole location.
  • On angled or cast faces, mill a small flat before spotting.
  • Confirm the inspection datum matches the drawing datum scheme before rejecting parts.
5

Heavy burrs at the hole exit

Likely cause

  • Full feed maintained right through breakthrough, so the last of the material is pushed rather than cut.
  • Worn drill — a dull point tears the exit instead of shearing it.
  • Thin or unsupported wall at the exit face, which deflects away from the drill.
  • Soft, gummy alloy such as 1100 or 5052 that simply tends to form a lip.
  • Breaking through into an intersecting bore or a cavity with no backing.

What to change

  • Reduce feed to roughly half over the last 1–2 mm of breakthrough.
  • Set a tool-life limit by hole count rather than waiting for visible wear.
  • Back up the exit face with a sacrificial plate or fixture support where geometry allows.
  • Add a controlled back-chamfer or a deburring pass to the program rather than leaving it to hand work.
  • Specify the required edge condition on the drawing so it is quoted and inspected, not assumed.
6

Poor bore surface finish — scoring, smearing or a dull grey wall

Likely cause

  • Chips being dragged back up the flutes and re-cut against the finished wall.
  • Built-up edge material transferring from the flute onto the bore.
  • Margin of the drill rubbing because the drill is bent, worn or running out.
  • Coolant breaking down or too dilute, so lubricity is lost.
  • Retracting under feed instead of rapid, which lets the drill polish and smear the wall.

What to change

  • Improve chip evacuation first — finish problems in aluminum are usually chip problems.
  • Change to an aluminum-specific geometry with polished flutes and a high helix angle.
  • Verify runout, and replace any drill that has visible flank wear or aluminum build-up.
  • Check coolant concentration and filtration; recycled coolant full of fines will score the bore.
  • If the print requires a specific Ra in the bore, plan reaming or boring rather than relying on drilling.
7

Chip packing and long stringy swarf

Likely cause

  • Feed per revolution too low to break the chip — the classic aluminum mistake.
  • Low helix angle drill that does not lift chips out of the hole quickly enough.
  • Peck cycle not used at all, or Q set too large for the depth.
  • Wrought alloys such as 1100, 3003 and 5052 that are naturally gummy.
  • Air blast used alone on a deep hole, with no flushing action.

What to change

  • Increase feed per revolution first — heavier chip loads break more reliably.
  • Use a high-helix (35–40°) aluminum drill and a G73 chip-breaking cycle.
  • Reduce Q and let the cycle break the chip more often rather than fighting it.
  • On gummy alloys, accept shorter pecks and higher coolant pressure as the normal condition.
  • Watch the chip form at the spindle — short C-shaped chips mean the parameters are right.
8

Coolant delivery failure on deep or through-coolant holes

Likely cause

  • Blocked coolant channels in a through-coolant drill, often from fines in unfiltered coolant.
  • Through-spindle coolant pressure too low for the hole depth and drill diameter.
  • Flood nozzles aimed at the spindle rather than at the hole.
  • Coolant tank level dropping during a long unattended run.
  • Air pockets forming in the line after a tool change, so the first holes run dry.

What to change

  • Filter the coolant properly and flush the drill channels when a tool is loaded.
  • Raise through-spindle pressure with hole depth; deep small-diameter holes need the most.
  • Program a short coolant-on dwell before the first peck after a tool change.
  • Add tank level and pressure checks to the shift start-up routine.
  • Treat any hole cut without coolant as suspect — inspect it rather than assuming it is fine.
Diagnostic order that works. When a drilling process misbehaves, check in this sequence: chip form → coolant delivery → runout and tool condition → feed per revolution → cycle and peck strategy → cutting speed. Most shops start at the last item and work backwards, which is why the same problem keeps coming back.

12Drilling Aluminum vs Drilling Steel

Most drilling habits are learned on steel, and almost all of them need adjusting for aluminum. The two materials fail in opposite directions: steel punishes you for going too fast, aluminum punishes you for going too slow and too light. If you carry steel parameters straight across, you will get built-up edge, stringy chips and poor bores.

FactorAluminumCarbon & alloy steel
Cutting speed (carbide)Roughly 100–200 m/min — speed is your friendRoughly 60–110 m/min — speed is the limit
Dominant failure modeAdhesion, built-up edge, chip packingAbrasive and thermal wear at the cutting edge
Chip behaviorLong, ductile, tends to string and weldShorter, more brittle, breaks more readily
Helix angleHigh, typically 35–40° for fast evacuationStandard 25–30°
Point angle118° or 135° split point135° or 140° for harder grades
CoatingUncoated polished, DLC, ZrN, TiB2; never TiAlN/AlTiNTiAlN and AlTiN are the standard choice
Feed philosophyFeed heavier to break the chip — light feed causes smearingFeed moderately; excess feed chips the edge
Thermal behaviorConducts heat into the part; part growth is a real accuracy issueHeat stays in the chip and tool; part growth is smaller
Coolant rolePrimarily flushing and lubrication to stop weldingPrimarily cooling the cutting edge
Burr formationHeavy, ductile burrs; deburring is a planned operationSmaller, more brittle burrs
Peck strategyG73 chip breaking early, G83 beyond about 5×DG83 used earlier because chip load is the constraint
Typical tool life driverAdhesion and coolant deliveryCutting speed and edge temperature
If your shop runs both materials, keep the tooling physically separated. An aluminum drill that has been run in steel is usually finished as an aluminum drill, and a TiAlN steel drill dropped into an aluminum job will start welding within a handful of holes. For a wider process-level comparison, see Aluminum vs Steel CNC Machining.

13How We Drill Aluminum in Production

Everything above is process theory. What follows is how it is actually sequenced on our shop floor in Xiamen, where aluminum hole features are produced daily across automotive, machinery, electronics and medical work. The sequence matters more than any single parameter: each stage removes a specific source of error, and skipping one moves that error into the finished part.

1SpotLarger than the drill, wider point angle. Establishes position and removes any chance of walking.
2PilotUsed above roughly 5×D or on larger diameters, to guide the main drill and reduce thrust.
3DrillAluminum geometry, correct cycle (G81 / G73 / G83), coolant strategy matched to depth.
4Ream / boreOnly where the print demands H7–H8 or a specific bore finish. Otherwise skipped.
5DeburrProgrammed back-chamfer or a defined manual operation, to a stated edge condition.
6InspectPlug gauges, bore gauge or CMM depending on the tolerance and the batch size.

Two habits do most of the work. First, we set the drilling parameters from the alloy and the depth ratio, not from a shop-wide default — a 6061 bracket and a 7075 fitting do not get the same numbers. Second, the inspection method is chosen at process planning, not after the first article. If a hole is going to be checked with a plug gauge, the process has to be capable of that before the job runs, not argued about afterwards.

Where the process gets tightened

  • Threaded holes. Tapping drill size is checked against the required thread engagement, not taken from a generic chart, because aluminum threads strip easily when engagement is over-specified.
  • Deep holes above 10×D. Runout is verified on the machine, coolant pressure is recorded, and peck depth is stepped down through the hole.
  • Thin-wall housings. Exit-side support and reduced breakthrough feed are built into the program rather than left to the operator.
  • Sealing faces. Where an O-ring or gasket crosses a hole, the edge condition is specified and inspected because a burr there is a leak path.

Typical aluminum hole work we run

  • Automotive and machinery brackets in 6061-T6 — bolt patterns where true position matters more than hole size.
  • Electronics and heat-sink plates in 6063 and 6061 — large hole counts, burr-free requirement on both faces.
  • Structural fittings in 7075-T6 — higher strength, tighter fits, more reaming and boring in the route.
  • Cast housings in A356 and ADC12 — abrasive silicon content, so PCD or diamond-coated tooling and controlled tool-life limits.
Goldcattle has manufactured custom precision components in Xiamen for 26 years as a national high-tech enterprise, with CNC machining, injection molding, mold making, die casting, 3D printing and sheet metal all in-house. Aluminum drilling is rarely a standalone job for us — it sits inside milling, turning and finishing routes described in our CNC aluminum machining guide.

14CNC Aluminum Drilling FAQs

What speed and feed should I use for drilling aluminum?

For solid carbide drills in 6061 aluminum, a common starting point is a cutting speed of 120–200 m/min with a feed of roughly 0.015–0.02 mm per revolution per millimeter of drill diameter. Convert speed to spindle RPM with n = Vc × 1000 ÷ (π × D), then feed rate with Vf = n × fn. So a 6 mm drill at 150 m/min runs about 7,960 RPM at roughly 0.10 mm/rev, which is about 800 mm/min. Reduce speed for 7075 and cast alloys, and treat every published figure as a starting value to be confirmed against your machine, holder rigidity and coolant delivery.

Do I need peck drilling for aluminum?

It depends on depth. Below about 3×D a straight G81 cycle with good coolant is usually enough. From roughly 3×D to 5×D, a G73 high-speed peck cycle breaks the chip without losing cycle time. Beyond 5×D you need G83 full-retract pecking so the chips are actually cleared from the hole rather than just broken. The reason is that aluminum chips are ductile and will pack in the flutes, and a packed flute is the single most common cause of drill breakage in aluminum.

What is the best drill bit for aluminum?

For most production work, a solid carbide drill with a high helix angle of 35–40°, polished flutes, a 135° split point and either no coating or an aluminum-friendly coating such as DLC, ZrN or TiB2. High-speed steel is acceptable for occasional or low-volume work, and PCD or diamond-coated drills are worth the cost in abrasive high-silicon cast alloys such as A356 and ADC12. Above about 5×D, a through-coolant carbide drill will outperform anything else.

Why does my drill keep breaking or grabbing in aluminum?

Almost always chip packing rather than excessive load. Aluminum produces long ductile chips that jam in the flutes, and the drill then either seizes or snaps. The usual contributing factors are a feed that is too light to break the chip, no peck cycle or too large a peck depth, coolant not reaching the cutting edge, and excessive runout. Counter-intuitively, the first fix is usually to increase the feed per revolution, not reduce it — a heavier chip breaks more reliably than a thin one.

Can you drill aluminum without coolant?

Shallow holes below about 2×D can often be drilled with air blast or minimum quantity lubrication, and this is common on high-speed machines because it keeps the chips out of the hole. Anything deeper needs real coolant, because aluminum's problem is adhesion rather than heat: without lubrication the chip welds to the cutting edge, builds up, and destroys both the hole finish and the drill. Never run a deep or through-coolant drill dry.

What tolerance can drilling hold in aluminum?

A drilled hole is a roughing feature. In practice, expect roughly IT11 to IT13 on diameter with a surface finish in the region of Ra 1.6–6.3 µm, and note that drills generally cut slightly oversize. If the drawing calls for H7 or H8, or a specific bore finish, the hole has to be reamed, bored or helically interpolated as a separate operation. Position accuracy is a different question again, and depends on spotting, runout and workholding rather than the drill itself.

How deep can you drill in aluminum?

With a standard jobber-length carbide drill and a good peck cycle, up to about 5×D is routine. From 5×D to 10×D you want a through-coolant drill, verified runout under roughly 0.02 mm, and peck depths that reduce as the hole gets deeper. Beyond 10×D the process becomes specialized — a pilot hole, a dedicated deep-hole drill and higher coolant pressure — and past about 20×D gun drilling is normally the right answer rather than a conventional twist drill.

Why should you not use TiAlN or AlTiN coated drills in aluminum?

Those coatings are designed for steel and high-temperature alloys, where their aluminum-oxide layer resists heat. In aluminum workpieces, the same chemistry promotes adhesion: the workpiece material welds to the coating, built-up edge forms quickly, hole finish degrades and the drill fails early. For aluminum, use uncoated polished carbide, or DLC, ZrN or TiB2 coatings, which are specifically chosen for their low affinity to aluminum.

What is the difference between G73 and G83?

Both are peck drilling cycles, but they do different jobs. G73 is a high-speed peck cycle: the drill retracts by a small amount set as a machine parameter, just far enough to snap the chip, then continues. It is fast and suited to moderate depths. G83 is a full-retract peck cycle: the drill withdraws completely from the hole on every peck, which clears the chips and lets coolant back in, at the cost of cycle time. Use G73 for chip breaking up to about 5×D and G83 for genuine chip evacuation beyond that.

How do you drill aluminum without burrs?

You cannot eliminate burrs entirely in a ductile material, so the aim is to control them. Reduce the feed to around half over the last one to two millimeters of breakthrough, keep the drill sharp and replace it on a hole count rather than on appearance, support the exit face where the geometry allows, and program a back-chamfer instead of leaving deburring to hand work. Most importantly, state the required edge condition on the drawing so it is quoted, produced and inspected rather than assumed.

15Why Aluminum Hole Quality Decides Whether the Part Works

Holes are where most aluminum parts are actually assembled, sealed, located or cooled. A hole that is 0.05 mm oversize, 0.1 mm out of position or carrying an uncontrolled burr does not fail on the inspection report — it fails at assembly, on the test rig, or in the field. That is why hole strategy belongs in the quotation conversation, not in the machinist's hands on the day.

Assembly and fit

Dowel holes, bearing bores and press fits depend on diameter and roundness. Drilling alone will not hold H7, so if the print says H7 the route has to include reaming or boring — and that has to be priced in from the start.

Position and stack-up

Bolt patterns that mate with another component live or die on true position. Spotting, runout control and workholding decide this, and no downstream operation can pull a hole back onto position.

Sealing

Where a hole crosses an O-ring groove or a gasket face, a burr is a leak path. Edge condition needs to be a specified, inspected requirement rather than a subjective judgement.

Thread strength

Aluminum threads strip easily. Tapping drill size, thread engagement and hole finish determine whether a threaded hole survives the torque spec or fails on the first assembly.

Flow and cooling

In manifolds, cold plates and heat sinks, hole size, intersection quality and internal burrs directly affect flow rate and pressure drop. Deep-hole strategy is a performance issue here, not a cosmetic one.

Cost

Over-specifying hole tolerance adds reaming, gauging and scrap risk to every part. Under-specifying it causes rework and field failures. Getting it right at the drawing stage is the cheapest change you will ever make.

Need Aluminum Parts with Hole Quality You Can Actually Rely On?

Send a drawing or 3D model and our engineering team will review hole tolerances, depth ratios, thread requirements, edge conditions and inspection method before we quote — so the process route matches what the part actually needs. Goldcattle has manufactured custom precision components in Xiamen, China for 26 years as a national high-tech enterprise, with all production in-house and no outsourcing.

3-axis / 4-axis / 5-axis machining 6061 · 7075 · 2024 · 5052 · 6063 · cast alloys Deep-hole & through-coolant drilling Reaming, boring & thread machining Plug gauge, bore gauge & CMM inspection Prototype to production batches

Achievable tolerances depend on part geometry, alloy, hole diameter, depth ratio and inspection requirements. Capability figures given in this guide apply to suitable features under controlled conditions and are confirmed per part at quotation.

About this guide

Written by: Goldcattle CNC Engineering Team Technical review: Goldcattle CNC manufacturing team Published: Updated:

The speeds, feeds, depth ratios and cycle strategies in this guide reflect general aluminum drilling practice and our own production experience. Every figure quoted is a starting value. Actual parameters depend on the specific alloy and temper, drill grade and geometry, holder rigidity, machine spindle power, coolant type and delivery pressure, and workpiece stability. Cycle syntax, peck parameters and canned-cycle behavior vary by control — always confirm against the programming manual supplied with your machine.

Related reading on this site: CNC aluminum machining guide · Best aluminum alloys for CNC machining · Aluminum CNC machining tolerance guide

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