Taper Per Inch Calculator for Shop Setup

Taper Per Inch Calculator

Calculate taper per inch from large diameter, small diameter, and length, then convert it to included angle, taper per foot, mm per 25.4 mm, and practical lathe setup offsets.

Taper Presets

Choose a known shop taper or enter your own measured diameters and taper length.

📐Measured Taper Inputs

Measure the larger end over the finished tapered surface.
Measure the smaller end with the same micrometer method.
Axial length between the two diameter readings.
Travel used for an indicator, sine setup, or short test cut.
Needed when estimating tailstock offset for between-centers work.
Optional extra diameter left for finishing or blue fitting.
The math stays the same, but the setup value changes.
Many engine lathe compounds read the half angle.
Used to show how cleanly the offset can be dialed.
Applies only to the allowance note, not the nominal taper per inch.
Taper Per Inch 0.0499 diameter change per inch
Included Angle 2.858° between taper sides
Taper Per Foot 0.599 diameter change per 12 in
Setup Offset 0.449 in tailstock offset
Diameter change used0.1273 in
Half angle for compound1.429°
Metric equivalent0.0499 mm per 25.4 mm
Indicator reading over setup span0.0499 in diameter
Finish allowance noteLeave 0.0053 in on diameter
Formula check(D large - D small) / length

🔢Conversion Grid

1:20.04 Diameter taper ratio
0.02495 Radial change per inch
4.99% Diameter slope percent
0.0249 Sine bar rise per inch

📋Common Taper Reference

Taper family Typical TPI Taper per foot Included angle
Morse machine tapersAbout 0.050 in/inAbout 0.600 in/ftAbout 2.86°
Jarno tapers0.050 in/in0.600 in/ft2.864°
Brown & Sharpe tapersAbout 0.0417 to 0.0502About 0.500 to 0.602About 2.39° to 2.88°
7/24 toolholder tapers0.2917 in/in3.500 in/ft16.594°
Pipe plug style tapers0.0625 in/in0.750 in/ft3.580°
Custom locating seatsFrom print dimensionsTPI × 122 × atan(TPI / 2)

Setup Offset Reference

Setup method Use this output Shop formula Best use
Compound restHalf angleatan((D - d) / (2L))Short external or internal tapers
Tailstock offsetOffset amountCenter distance × TPI / 2Long shafts between centers
Indicator checkDiameter change over spanTPI × travelVerifying taper attachment travel
Sine barRise over spansin(half angle) × bar lengthGrinding fixtures and inspection
Boring head offsetRadial changeTPI × length / 2Boring tapered seats

🔧Measurement Planning Table

Measurement span At 0.050 TPI At 0.0625 TPI At 0.2917 TPI
0.250 in travel0.0125 in diameter0.0156 in diameter0.0729 in diameter
0.500 in travel0.0250 in diameter0.0313 in diameter0.1459 in diameter
1.000 in travel0.0500 in diameter0.0625 in diameter0.2917 in diameter
2.000 in travel0.1000 in diameter0.1250 in diameter0.5834 in diameter

📑Unit Conversion Table

Output Imperial meaning Metric meaning Conversion note
Taper per inchDiameter change per 1 inSame slope basisUse inches internally
mm per 25.4 mmSame numeric as TPIDiameter mm over 25.4 mmGood for metric prints
mm per 100 mmTPI × 100Diameter mm over 100 mmCheck long metric parts
Taper per footTPI × 12Legacy machine taper calloutCommon in handbooks

💡Shop Tips

Check the sign: This calculator reports the absolute diameter change. When setting a machine, decide which end must grow by looking at the part orientation in the chuck or between centers.
Use the right angle: Taper per inch is based on diameter, while compound and sine setups usually use the radial half angle from the spindle axis.
Always wear appropriate safety equipment. Confirm the machine setup with a short test cut or indicator sweep before cutting a finished taper, and never rely on a single measurement from a worn or damaged surface.

But you look at the tapered arbor and see it doesn’t quite bottom out. You tap it hard and turn the chuck and… well it’s there a bit. Ugh! Now you’re doubting your measurements and tool. Don’t worry, this isn’t usually due to a warped part or bad metal. What happens here is naturaly always a lack of understanding how those numbers are interpreted.

On paper taper per inch sound easy. After all, it’s simply a ratio of how much diameter changes over some linear value. In the shop we convert that ratio into sine bar height, offsets, and angles. Those figures sounds like a foreign language if you haven’t broken them down yet. Let’s let the calculator do the math for us (see above). Why does it spit out those numbers? Because knowing how to interpret them will save time and materials.

How to Set Up Tapers on a Lathe

What do most machinists do? Pick up their micrometer and calipers. Measure the small end and big end of a taper. Divide the difference by the length. Multiply the answer by the length. There you have it, the taper per inch. It is a nice neat number. It tells you exactly how much it slope away from the center line.

But your tailstock doesn’t care about the half angle. Your tailstock cares about the lateral offset. And your lathe compound rest doesn’t care about the diameter change. Your lathe compound rest cares about the half angle. The tool connects the mechanics of your machine and geometry of what you’re trying to make.

One continual source of confusion lies in the difference between half angle and included angle. Setting up is then ruined by that confusion. When you draw a taper and call it a 2 degree taper, you typically mean the total included angle between both sides. You need to have the compound rest on one degree. Set it for two degrees and your cut will be too steep. Nothing will fit. It’s a little thing, but it makes a difference.

The calculator does the conversion for you automatically. It tells you exactly how much to set the compound for. Also gives you individual offset if you’re running between centers.

There’s also issue of measuring tapers. You can’t hold your caliper flat against something sloped and expect it to read correctly. It won’t. The jaws will be angled in such a way as to add error that grows rapidley. Over pins is the ideal method. Alternatively, use a sine plate height gauge. For roughs, a few checks with a micrometer in key spots are usually adequate. Inputting a slight amount of allowance for stock let’s the calculator account for all those fuzzy measurements we know happen. It reminds us that we’re working with metal, not drawing dots on a piece of paper.

The taper can be long and present other issues. If the center distance is large then the slightest offset of the tailstock results in huge changes near the end. Here is the math laid out on the table on the page. How does offset scale with length? A one/tenth offset would appear small on a two inch shaft. However, on an eighteen inch drive shaft it moves the center line so much that it will cause uneven wear or chatter. Think about the whole length of what you are machining. Think about more than just the cut you is currently cutting.

A taper that works as a good benchmark… Something to compare the rest of them against, is Morse or Jarno which are both pretty consistent (Morse is about ½ an inch per foot). So if it’s wildly off from that your probably looking at the worn surface. Or maybe you’re on a completely different standard. At least then knowing what the ballpark should be will help you spot gross error before you go cut stuff. It is nothing but a sanity check that costs nothing. Just a quick look up on this page or in a handbook.

It’s a question of abstraction: of converting the geometric expression from page to metal. That number is merely the map; the cut is the territory. Setting up the taper correctly require understanding angle in relation to length and diameter. It requires taking time with measurements. You must be precise with machine positioning. You should of double-check that set-up before the final pass. When you see that arbor fit exactly, you realize the math was worth it. And all along it goes back to that initial measurement.

Taper Per Inch Calculator for Shop Setup

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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