Parting Tool Feed Rate Calculator
Estimate cutoff RPM, radial feed rate, peck spacing, cycle time, and rigidity margin from blade width, work diameter, SFM, feed per rev, overhang, coolant, and setup stiffness.
Parting feed result
| Material | Carbide SFM | Starter feed | Cutoff note |
|---|---|---|---|
| 1018 mild steel | 220–300 SFM | 0.0025–0.0040 in/rev | Flood coolant, steady feed pressure |
| 4140 prehard | 140–210 SFM | 0.0020–0.0035 in/rev | Reduce RPM if chatter starts near center |
| 304 stainless | 80–140 SFM | 0.0015–0.0030 in/rev | Avoid rubbing; keep coolant on edge |
| 6061 aluminum | 500–900 SFM | 0.0040–0.0070 in/rev | Use sharp polished insert geometry |
| 360 brass | 300–550 SFM | 0.0030–0.0060 in/rev | Dry or light oil usually works well |
| Cast iron | 180–300 SFM | 0.0020–0.0045 in/rev | Use dust control and avoid coolant shock |
| Titanium Ti-6Al-4V | 60–110 SFM | 0.0015–0.0028 in/rev | High pressure coolant strongly preferred |
| Delrin acetal | 700–1200 SFM | 0.0040–0.0090 in/rev | Clear stringy chips before they wrap |
| Blade width | Common use | Starter feed | Rigidity caution |
|---|---|---|---|
| 0.040–0.062 in | Small shafts, thin parts | 0.0010–0.0025 in/rev | Very sensitive to center height |
| 0.078–0.094 in | General bar cutoff | 0.0020–0.0045 in/rev | Keep blade overhang near required depth |
| 0.118–0.157 in | Larger steel and tube | 0.0030–0.0060 in/rev | Needs a stout holder and turret |
| 1.5–2.0 mm | Small metric inserts | 0.03–0.08 mm/rev | Reduce feed in sticky alloys |
| 2.5–3.0 mm | General metric cutoff | 0.06–0.14 mm/rev | Watch chip curl and evacuation |
| 4.0 mm plus | Heavy cutoff or grooving | 0.10–0.20 mm/rev | Power and holder stiffness limit feed |
| Factor | Good range | Calculator effect | Shop meaning |
|---|---|---|---|
| Flood coolant | Direct to groove | 1.00 feed factor | Best chip evacuation and edge cooling |
| Mist or oil stream | Consistent aim | 0.90 feed factor | Usable when chips still clear freely |
| Dry or brush oil | Light materials | 0.68–0.78 factor | Lower feed to avoid welded chips |
| Short overhang | 1.0×–1.8× depth | Small penalty | Blade support is close to the cut |
| Long overhang | 2.5× depth plus | Large penalty | Chatter risk rises quickly |
| Peck interval | 0.06–0.15 in | Adds retract time | Useful when chips pack in deep cuts |
| Preset | Work diameter | Blade width | Starting condition |
|---|---|---|---|
| 1018 Steel Bar | 1.25 in | 0.094 in | Flood coolant, good manual lathe |
| 4140 Prehard | 1.50 in | 0.118 in | Lower SFM and short overhang |
| 304 Stainless | 0.875 in | 0.078 in | Flood coolant, no dwell in cut |
| 6061 Aluminum | 2.00 in | 0.118 in | Sharp insert with mist or flood |
| 360 Brass Rod | 0.750 in | 0.062 in | Light oil, moderate feed per rev |
| Class 40 Iron | 1.125 in | 0.094 in | Dry cut with dust control |
| Ti-6Al-4V | 0.625 in | 0.078 in | Very conservative speed and feed |
| Delrin Rod | 1.750 in | 0.094 in | Fast RPM, clear stringy chips |
| Inconel 718 | 0.500 in | 0.062 in | Short depth pecks and high coolant |
| Bearing Bronze | 1.000 in | 0.094 in | Oil stream and steady feed |
The feed rates for this parting off tool are important because any miscalculation during cutoff operations will typicaly either blow out the insert, throw the part through the shop or ruin surface. Once that blade meets up with that whirling bar, heat builds up and chips does not clear out. Its narrow profile also doesn’t forgive like a turning tool does.
Get your feed and speed dialed in correctly, however, and parting will become one of the most consistant operations on the lathe. There is a balance between control and aggression; the trick is to let the insert do its thing without rubbing but not slam it in as hard than you would face.
How to Cut Parts Safely and Well
Overhang is important. People don’t give it enough credit. An extra quarter inch will cause clean cut to chatter because it acts like a tuning fork and makes blade flex. That’s why the calculator considers how much overhang there is compared to your cutoff depth. It then penalizes it to match what happens when holder flexes.
Also it considers your coolant selection because if you go with flood coolant, that stuff carries heat and chips away, whereas going dry mean slowing down so you don’t weld. Most of this has to do with material behavior. Titanium demands conservative numbers; stainless work-hardens the instant you hesitate, while mild steel forgive a fair amount. Aluminum loves speed (but throws stringy chips that jam up in the groove unless you retract often enough).
That’s why we see peck rhythm in the results. Retracting at just the right time will prevent packing, but each pull-out add time. The tool calculates total cycle time including retracts. This lets you decide for yourself whether a slightly slower continuous feed or faster pecks actualy save minutes on the clock.
Rigidity of set up is one thing that quietly hides in the background but dominates results. If it were a long stickout on a light manual lathe, depth would of tear it apart. But it’s a heavy CNC turret capable of handling it. The calculator folds all of that into a modified feed and a set-up rating that indicates to you if you’re livig dangerously or playing it safe. It does not replace judgment, but it gives you a clear margin number indicating when to trust the math and when to back off.
Blade sharpness and center height are most common errors. If the tool is run just a few thousandths too high, it will push instead of cutting which causes a lot of deflection right at the center. Maintain a keen edge. Running a dull parting blade cause enough heat that the insert substrate softens long before you realize your finish has gone south.
The other element is blade width. A narrower blade limits how hard you can push and let you part closer to the shoulder. A wider blade handles heavier feeds on big stock, but it must have serious rigidity or it will twist. Use page’s reference tables to find your match between width and depth for the material you’re working with so that you stop guessing.
The secret of successful parting is delivering confidence at just the right rate. Rub if you hesitate. Break if you push too hard. Find that sweet spot between those extremes. The cut clears the groove cleanly without gouging, chips neatly curl out and a clean face is left behind. Get your rhythm right there and you’ll find the cutoff almost boring, on a lathe, that’s exactly what you want.
