Drilling Feed Rate Calculator Metric

Drilling Feed Rate Calculator Metric

Calculate metric drill RPM, feed in mm/min, peck depth, hole cycle time, coolant adjustment, and material-specific starting points.

⚙Metric drill presets

🔩Drill and material inputs

Use the actual drill diameter, not the tapped thread size.

Calculator applies coolant factor to this starting speed.

For twist drills, feed per rev is the main feed input.

Enter a machine spindle speed if you cannot run the calculated RPM.

Recommended RPM
0
rev/min after coolant factor
Feed Rate
0
mm/min
Peck Depth
0
mm per peck
Total Cycle Time
0
for all holes
Formula usedRPM = 1000 x Vc / (pi x D); feed = RPM x mm/rev
Adjusted cutting speed0 m/min
Stroke and pecks0 mm stroke, 0 pecks per hole
Material removal rate0 cm3/min
Coolant and rigidityFlood coolant, 1.00 rigidity factor
Practical noteUse this as a starting point and listen to the cut.

Cycle time includes feed travel, breakthrough allowance, peck retract allowance, and a short approach time per hole. It does not include tool changes, clamping, probing, or operator handling time.

📊Drill and material grid

80
Aluminum m/min
Mist or flood, open chip flute.
28
Mild steel m/min
HSS twist drill baseline.
18
Stainless m/min
Keep feed positive to avoid rubbing.
12
Titanium m/min
Use coolant and sharp drills.
70
Brass m/min
Steady feed, avoid grabbing.
25
Cast iron m/min
Usually dry with dust control.
55
Acrylic m/min
Clear chips to limit melting.
90
Wood m/min
Feed by chip quality.

📘Metric speed and feed reference

Material Starting Vc m/min Feed for 3-6 mm Feed for 6-12 mm Coolant note
Aluminum 6061 / 608270-1000.04-0.08 mm/rev0.08-0.18 mm/revMist, flood, or air blast
Mild steel22-320.04-0.08 mm/rev0.08-0.16 mm/revOil or flood coolant
Stainless steel 304 / 31612-220.03-0.06 mm/rev0.06-0.12 mm/revFlood coolant preferred
Cast iron18-300.04-0.08 mm/rev0.08-0.18 mm/revDry or air, control dust
Brass / bronze55-850.04-0.10 mm/rev0.10-0.22 mm/revLight oil if needed
Titanium alloy8-160.02-0.05 mm/rev0.05-0.10 mm/revStrong flood coolant
Acrylic / polycarbonate40-700.03-0.08 mm/rev0.08-0.18 mm/revAir blast, avoid heat
Hardwood / MDF70-1200.05-0.15 mm/rev0.15-0.35 mm/revChip extraction

🔧Common metric drill presets table

Preset Diameter Material Depth Starting setting
Small brass pilot2.0 mmBrass8 mmHigh RPM, light feed
Acrylic panel hole3.0 mmAcrylic5 mmClear chips often
Titanium lug hole4.0 mmTitanium10 mmLow speed, flood coolant
Aluminum plate hole5.0 mmAluminum12 mmMist coolant, moderate feed
M8 tap drill6.8 mmMild steel18 mmPeck at about 1D
Stainless bracket8.0 mmStainless16 mmDo not dwell
Cast iron clearance10.0 mmCast iron25 mmDry, steady feed
Deep aluminum bore20.0 mmAluminum60 mmWide pecks, chip evacuation

📝Peck drilling and cycle time guide

Hole depth ratio Suggested peck Retract allowance When to use
Up to 2DNo peck or 2D0-1 sec per peckThrough holes with good chip flow
2D to 4D1D to 1.5D1-2 sec per peckGeneral workshop drilling
4D to 6D0.5D to 1D2-3 sec per peckBlind holes or stringy chips
Over 6D0.5D or less3+ sec per peckDeep holes, coolant-starved cuts

💧Coolant factor table

Coolant method Speed factor Feed confidence Best fit
Dry / air only0.90Lower heat marginCast iron, wood, light aluminum
Mist coolant1.00Good chip clearingAluminum and plastics
Flood coolant1.10Stable temperatureSteel and stainless
Through-tool coolant1.20Best for deep holesCNC deep drilling
Feed tip: If chips come out blue, dusty, or welded to the drill, reduce speed first and verify coolant flow before lowering feed too far.
Peck tip: For holes deeper than three drill diameters, peck depth and chip evacuation usually matter more than chasing the highest calculated RPM.
Always wear appropriate safety equipment. Never exceed the maximum rated RPM of your blade or bit.

When a drill is doing its job well, you know it by the smell of hot metal and cutting fluid. That means you’re getting somewhere.

If you spin it too fast or let it sit in one place for to long, you’ll know it by a different smell: the sharp, acrid odor of burning steel. Even though it only has one axis of motion, drilling can be an unforgiving process. Get the feed rate wrong and you may burn the workpiece; you may break the drill; you may make a hole that’s too wide.

How to Drill Safely and Well

The metric drilling feed rate calculator does those math problem for you. It turns abstract charts into exact spindle speed and feed rates suitable for your machine.

Drilling presents a problem: How do you balance speed against material removal? To answer that, there are two factors. One is cutting speed, how rapidly does the drill turn on its edge? The second is the feed rate, how far does the tool advance per turn?

You can go too slow or too fast, and both will result in a rubbed-out drill bit rather than a cut. Rubbing creates tons of heat and makes the metal (stainless steel in particular) harder, so it’s virtually impossible to drill through.

Flood coolant is important for keeping cutting edge stable at a good temperature. Not only does it wash away the chips, but it also ensures the metal stay soft and shears off cleanly.

Cutting Speeds: Cutting speeds are based off the speed recommendations from the machine manufacturers. It is assumed that they is using new drills in a rigid machine tool. In the real world, things aren’t so rosy.

That’s where the machine rigidity factor comes into play on the calculator. If you have a light-weight mill, or a good old bench drill press, then you can’t approach it like you would a big beefy CNC center. The hole will wander, the tool will deflect, and the drill bit will snap off.

By lowering your rigidity factor you’ll decrease the recommended speeds and give yourself a safe margin of error. It is not much, just enough to save you some set-up frustration and more expensive furnitures.

You may also have heard of peck drilling. This also can be confusing, particulary if you’ve been doing clearance holes in wood and are now operating deeper. As a drill plunges deeper, the flutes fills up with chips. When these chips don’t get out, they jam up and become sort of a grinding abrasive paste between the drill bit and the material being cut. Friction rises dramatically; so does heat.

With each peck, the drill backs off for a moment, breaking the chips and letting coolant flush across the cutting edge. How deep you go determines how many pecks will be required; the peck factor dictates this. So even though it might feel like pecking slows you down, it prevents bog-down and maintains a consistent average feed rate.

The whole equation becomes different than what materials you use. For example, aluminum cuts fast and is forgiving. All you need is air or maybe a little mist coolant to knock out those sticky chips.

Titanium is like a thermal battery. You realy have to go slow and steady, cutting it with lots of coolant. If that drill heats up, you won’t make it through a single hole.

The starting points come from the reference tables on the page. But these are only starting points. The actual art comes into play when you listen to the machine.

If it’s humming smoothly and low then you’re dialed in. If there’s a stutter on the feed, or it sounds like a high pitched squeal, then you’re probably spinning too fast for the material or not feeding it enough.

Look at the chips. Your eyes and ears will tell you more than any calculator ever could. For example, good chips is continuous ribbons for aluminum; they’re blue-ish and curly for steel. Bad ones are welded to the flute, dark, or powdery.

Dial it in by using your eyes and ears while getting close with the numbers. Go conservative if cutting a deep hole or a tough alloy. When the process settles, step up the speed or feed to increase your material removal rate.

You should of balance tool life and efficiency. That is what separates a rough draft from a finished part.

Drilling Feed Rate Calculator Metric

Author

  • Thomas Martinez

    Hi, I am Thomas Martinez, the owner of ToolCroze.com! As a passionate DIY enthusiast and a firm believer in the power of quality tools, I created this platform to share my knowledge and experiences with fellow craftsmen and handywomen alike.

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