UNC threads are among the most widely used inch-based screw threads in mechanical, structural, automotive, agricultural, and general industrial applications. The abbreviation UNC stands for Unified National Coarse, one of the principal thread series defined by the Unified Thread Standard. UNC threads use a 60-degree thread profile and have fewer threads per inch than corresponding UNF sizes, resulting in a larger and more widely spaced thread form.
The coarse thread profile offers several practical advantages. UNC fasteners are generally quicker to assemble, more resistant to cross-threading, and better able to tolerate dirt, minor damage, and surface imperfections. They are also commonly preferred for threaded connections in relatively soft or brittle materials, such as aluminium, cast iron, and some plastics, because their deeper threads provide improved resistance to stripping. These characteristics make UNC threads suitable for general-purpose bolts, screws, nuts, machinery, construction equipment, and maintenance applications.
A typical UNC designation, such as 1/2-13 UNC-2A, provides several important pieces of information. The value 1/2 identifies the nominal thread diameter in inches, 13 indicates the number of threads per inch, UNC identifies the coarse thread series, and 2A specifies a standard commercial tolerance class for an external thread.
Selecting or identifying a UNC thread requires more than matching its nominal diameter. Engineers, machinists, technicians, and maintenance personnel must also consider the threads per inch, pitch, major diameter, pitch diameter, minor diameter, tolerance class, and required tap-drill size. Using the wrong thread series or drill size can cause cross-threading, poor engagement, excessive assembly force, or premature joint failure.
This guide provides a comprehensive UNC thread size chart, covering common numbered and fractional sizes, thread pitches, dimensional terminology, thread classes, tap-drill recommendations, and measurement methods. It also explains how to read UNC designations, compare UNC with UNF and metric threads, and select the correct thread size for a particular application. For precision manufacturing or inspection, the chart should be used together with the applicable limits and tolerances specified in ASME B1.1.
1. What Is a UNC Thread?

A UNC thread, or Unified National Coarse thread, is a general-purpose inch-based screw thread belonging to the Unified Thread Standard. It is one of the three primary Unified thread series:
- UNC — Unified National Coarse
- UNF — Unified National Fine
- UNEF — Unified National Extra Fine
UNC threads have a 60-degree symmetrical V-shaped profile and relatively large spacing between adjacent threads. For a given nominal diameter, a UNC thread has fewer threads per inch than its UNF or UNEF equivalent. For example, a 1/2-inch UNC fastener has 13 threads per inch, while the corresponding UNF fastener has 20 threads per inch:
The number of threads per inch determines the axial distance between adjacent thread forms. Fewer threads per inch produce a larger pitch, deeper thread form, and generally more robust thread.
UNC thread characteristics
The principal characteristics of UNC threads include:
- Inch-based nominal sizes
- A 60-degree included thread angle
- Relatively large thread pitch
- Deeper threads than corresponding fine-thread series
- Faster assembly and disassembly
- Greater resistance to dirt and minor thread damage
- Lower risk of cross-threading
- Good stripping resistance in softer materials
Because of their wider spacing, UNC threads are easier to manufacture and less sensitive to small amounts of contamination or surface damage. They are frequently selected for equipment that must be assembled and disassembled in field conditions.
UNC threads are also commonly used in materials such as aluminium, cast iron, brass, and some engineering plastics. Their deeper thread form can provide stronger engagement in these materials, although the required engagement length must still be calculated according to the material strength and applied load.
Understanding a UNC thread designation
A UNC thread designation normally contains the nominal size, threads per inch, thread series, and tolerance class. Consider the following example:
Each part has a specific meaning:
- 1/2 — Nominal major diameter in inches
- 13 — Number of threads per inch
- UNC — Unified National Coarse thread series
- 2 — Thread fit or tolerance class
- A — External thread
Internal threads use the letter B. Therefore, the matching internally threaded nut or tapped hole would normally be designated:
For numbered screw sizes, the designation follows the same general format. For example:
This identifies a No. 10 external screw thread with 24 threads per inch and a Class 2 fit.
If a thread is left-handed, the letters LH are added to the designation:
When the direction is not stated, the thread is assumed to be right-handed.
External and internal UNC threads
UNC threads can be divided into two basic categories:
- External threads are formed on bolts, screws, studs, and threaded shafts.
- Internal threads are formed inside nuts, tapped holes, and threaded components.
External threads are identified by the letter A, while internal threads are identified by B. A properly selected external and internal thread pair must have the same nominal diameter, TPI, thread series, and compatible tolerance classes.
For example, a 3/8-16 UNC-2A bolt is typically assembled with a 3/8-16 UNC-2B nut. A 3/8-24 UNF nut cannot be used because it has a different pitch, even though the nominal diameter is the same.
Advantages of UNC threads
UNC threads offer several practical advantages in general engineering applications:
-
Faster assembly
A coarse thread advances farther with each complete rotation, so fewer turns are required to install or remove the fastener.
-
Improved resistance to thread damage
The larger, deeper thread form is less likely to be damaged by rough handling, minor corrosion, or contamination.
-
Lower risk of cross-threading
The wider pitch makes it easier to align the external and internal threads during assembly.
-
Good performance in soft materials
Coarse threads generally provide improved resistance to stripping in aluminium, cast iron, and plastics because each thread has a larger cross-section.
-
Better suitability for field service
UNC fasteners are convenient for equipment exposed to dirt, repeated maintenance, and less-controlled assembly conditions.
-
Reduced sensitivity to manufacturing variation
Coarse threads are generally easier to manufacture and inspect than very fine threads.
Limitations of UNC threads
UNC threads are not automatically the best choice for every application. Compared with a fine thread of the same nominal diameter, a UNC fastener normally has a smaller tensile-stress area because its threads are deeper. It may therefore provide lower tensile capacity when fastener material, diameter, and grade are otherwise identical.
UNC threads may also provide less precise axial adjustment and may be less resistant to loosening under certain vibration conditions. Fine threads can sometimes produce greater clamping force for a given tightening torque because of their smaller helix angle. However, actual joint performance depends on friction, preload, material, tightening method, engagement length, and service conditions.
Common UNC thread applications
UNC threads are commonly found in:
- General-purpose bolts and screws
- Structural and construction equipment
- Industrial machinery
- Agricultural machinery
- Automotive and off-road equipment
- Pumps and compressors
- Machine frames and guards
- Maintenance and repair assemblies
- Cast and machined components
- Woodworking and fabrication equipment
- Threaded connections in aluminium and cast iron
For critical structural, pressure-retaining, lifting, aerospace, or high-temperature applications, selection should not be based on thread size alone. Fastener grade, material compatibility, preload, engagement length, fatigue, corrosion, and the applicable engineering standard must also be evaluated.
2. UNC Thread Terminology and Dimensions
Understanding a UNC size chart requires familiarity with the dimensions used to describe a thread. Although a thread may be identified by a simple designation such as 1/4-20 UNC, its complete geometry includes the major diameter, minor diameter, pitch diameter, pitch, lead, crest, root, flank, and thread depth.
Nominal thread size
The nominal thread size is the size used to identify the thread. For fractional UNC threads, it approximately corresponds to the basic major diameter of the external thread.
For example:
- A 1/4-20 UNC thread has a nominal diameter of 0.2500 inch.
- A 1/2-13 UNC thread has a nominal diameter of 0.5000 inch.
- A 3/4-10 UNC thread has a nominal diameter of 0.7500 inch.
The actual measured major diameter of a manufactured external thread is normally slightly smaller than the nominal value because allowance and tolerances must be provided.
Small UNC threads are commonly identified by numbered screw sizes rather than fractions. The nominal diameter of a numbered thread can be calculated using:
where:
- D = nominal diameter in inches
- N = screw number
For a No. 10 screw:
Therefore, a No. 10-24 UNC thread has a nominal diameter of 0.190 inch and 24 threads per inch.
Major diameter
The major diameter is the largest diameter of the thread.
- On an external thread, it is measured across the thread crests.
- On an internal thread, it is measured across the thread roots.
For a 1/2-13 UNC thread, the basic major diameter is:
However, the maximum and minimum permissible major diameters depend on whether the thread is internal or external and on its tolerance class.
The major diameter is often the first dimension checked when identifying an unknown external thread, but it cannot identify the thread by itself. The TPI must also be measured because UNC, UNF, and UNEF threads may share the same nominal diameter.
Minor diameter
The minor diameter is the smallest diameter of the thread.
- On an external thread, it is measured across the thread roots.
- On an internal thread, it is measured across the thread crests.
The minor diameter influences the remaining cross-sectional area of a bolt and the amount of material removed when producing a tapped hole. For an internal thread, the tap-drill diameter is closely related to the minor diameter, but the two values are not always identical.
A larger tap drill creates a larger internal minor diameter and reduces the percentage of thread engagement. A smaller drill produces greater engagement but also increases tapping torque and the risk of tap breakage.
Pitch diameter
The pitch diameter is the diameter of an imaginary cylinder that passes through the thread profile at the point where the thread thickness equals the width of the space between adjacent threads.
Pitch diameter is one of the most important dimensions for controlling thread fit. It determines how tightly the internal and external threads engage and is commonly inspected using:
- Thread plug gauges
- Thread ring gauges
- Thread micrometers
- The three-wire measurement method
- Optical or coordinate measuring equipment
Two threads can have acceptable major diameters but still fail to assemble correctly if their pitch diameters are outside the permitted limits.
Threads per inch
Threads per inch, abbreviated TPI, is the number of complete thread pitches contained in one inch of axial length.
Examples include:
- No. 6-32 UNC: 32 TPI
- 1/4-20 UNC: 20 TPI
- 3/8-16 UNC: 16 TPI
- 1/2-13 UNC: 13 TPI
- 3/4-10 UNC: 10 TPI
- 1-8 UNC: 8 TPI
As nominal diameter increases, the standard UNC thread normally uses fewer threads per inch and therefore has a larger pitch.
Thread pitch
The thread pitch is the axial distance from one point on a thread to the corresponding point on the next thread. For inch threads, pitch is calculated from TPI:
where:
TPI = threads per inch
For a 1/4-20 UNC thread:
P=120=0.0500 inP=\frac{1}{20}=0.0500\text{ in}
For a 1/2-13 UNC thread:
P=113=0.07692 inP=\frac{1}{13}=0.07692\text{ in}
To convert the pitch to millimetres:
Pmm=25.4TPIP_{\mathrm{mm}}=\frac{25.4}{\mathrm{TPI}}
For a 1/2-13 UNC thread:
Pmm=25.413=1.9538 mmP_{\mathrm{mm}}=\frac{25.4}{13}=1.9538\text{ mm}
The metric result is a conversion of the UNC pitch, not a metric thread designation. A 1/2-13 UNC thread is therefore not interchangeable with a metric thread having a similar pitch.
Lead
The lead is the axial distance a screw advances during one complete revolution.
For a standard single-start UNC thread:
L=PL=P
where:
L= Lead
P = pitch
Most UNC fasteners are single-start threads, so lead and pitch are equal. For a multi-start thread, the lead would equal the pitch multiplied by the number of thread starts. Multi-start configurations are not typical for standard UNC fasteners.
Thread angle and flanks
UNC threads use a symmetrical 60-degree included angle. Each flank is therefore positioned at 30 degrees relative to a plane perpendicular to the thread axis.
The flanks are the angled sides connecting the crest and root. Contact between the flanks of the internal and external threads transfers the assembly load. The crest and root are normally truncated or rounded according to the standardized Unified thread profile rather than forming perfectly sharp V-points.
Crest and root
The crest is the outermost surface of a thread:
- On an external thread, it is located at the major diameter.
- On an internal thread, it is located at the minor diameter.
The root is the innermost surface between adjacent thread flanks:
- On an external thread, it is located at the minor diameter.
- On an internal thread, it is located at the major diameter.
Root geometry is especially important in fatigue-loaded fasteners because sharp transitions can create stress concentrations. Rolled threads often have smoother root contours and improved fatigue performance compared with poorly formed cut threads.
Thread depth
The thread depth is the radial distance between the crest and root. It must not be confused with the difference between major and minor diameters, which represents twice the radial depth:
h=D−d2h=\frac{D-d}{2}
where:
- h=radial thread depth
- D= major diameter
d= minor diameter
The theoretical height of a sharp 60-degree thread form is:
H=32P=0.866025PH=\frac{\sqrt{3}}{2}P=0.866025P
However, actual Unified threads have truncated crests and specified root forms. Their finished thread depth is therefore less than the theoretical sharp-V height. Exact dimensions should be obtained from the appropriate standard rather than calculated solely from the theoretical profile.
Basic dimensions versus tolerance limits
A UNC thread chart may provide basic dimensions, which represent the theoretically exact geometry used as the starting point for applying allowances and tolerances. Basic dimensions are not necessarily the actual acceptable manufacturing limits.
The final permissible dimensions depend on:
- Nominal thread size
- Threads per inch
- Internal or external thread
- Thread tolerance class
- Allowance
- Manufacturing tolerance
- Coating or plating requirements
For example, 1/2-13 UNC-2A and 1/2-13 UNC-3A have the same nominal size and basic thread geometry, but their acceptable dimensional limits differ. Class 3A provides a closer fit and generally has a narrower tolerance than Class 2A.
For machining, inspection, or acceptance of precision threads, dimensional limits should be taken from the applicable edition of ASME B1.1 or the governing project specification.
3. Complete UNC Thread Size Chart
The following UNC thread size chart lists the standard diameter–pitch combinations for Unified National Coarse threads. It covers numbered screw sizes from No. 1 through No. 12 and fractional sizes from 1/4 inch through 4 inches.
All diameters shown are basic dimensions, representing the theoretically exact thread geometry before allowances and manufacturing tolerances are applied. They should not be treated as maximum or minimum inspection limits.
UNC thread size and basic dimensions chart
| UNC thread size |
Major diameter (in) |
Major diameter (mm) |
TPI |
Pitch (in) |
Pitch (mm) |
Basic pitch diameter (in) |
External minor diameter (in) |
Internal minor diameter (in) |
| No. 1-64 UNC |
0.0730 |
1.854 |
64 |
0.01562 |
0.397 |
0.0629 |
0.0538 |
0.0561 |
| No. 2-56 UNC |
0.0860 |
2.184 |
56 |
0.01786 |
0.454 |
0.0744 |
0.0641 |
0.0667 |
| No. 3-48 UNC |
0.0990 |
2.515 |
48 |
0.02083 |
0.529 |
0.0855 |
0.0734 |
0.0764 |
| No. 4-40 UNC |
0.1120 |
2.845 |
40 |
0.02500 |
0.635 |
0.0958 |
0.0813 |
0.0849 |
| No. 5-40 UNC |
0.1250 |
3.175 |
40 |
0.02500 |
0.635 |
0.1088 |
0.0943 |
0.0979 |
| No. 6-32 UNC |
0.1380 |
3.505 |
32 |
0.03125 |
0.794 |
0.1177 |
0.0997 |
0.1042 |
| No. 8-32 UNC |
0.1640 |
4.166 |
32 |
0.03125 |
0.794 |
0.1437 |
0.1257 |
0.1302 |
| No. 10-24 UNC |
0.1900 |
4.826 |
24 |
0.04167 |
1.058 |
0.1629 |
0.1389 |
0.1449 |
| No. 12-24 UNC |
0.2160 |
5.486 |
24 |
0.04167 |
1.058 |
0.1889 |
0.1649 |
0.1709 |
| 1/4-20 UNC |
0.2500 |
6.350 |
20 |
0.05000 |
1.270 |
0.2175 |
0.1887 |
0.1959 |
| 5/16-18 UNC |
0.3125 |
7.938 |
18 |
0.05556 |
1.411 |
0.2764 |
0.2443 |
0.2524 |
| 3/8-16 UNC |
0.3750 |
9.525 |
16 |
0.06250 |
1.588 |
0.3344 |
0.2983 |
0.3073 |
| 7/16-14 UNC |
0.4375 |
11.113 |
14 |
0.07143 |
1.814 |
0.3911 |
0.3499 |
0.3602 |
| 1/2-13 UNC |
0.5000 |
12.700 |
13 |
0.07692 |
1.954 |
0.4500 |
0.4056 |
0.4167 |
| 9/16-12 UNC |
0.5625 |
14.288 |
12 |
0.08333 |
2.117 |
0.5084 |
0.4603 |
0.4723 |
| 5/8-11 UNC |
0.6250 |
15.875 |
11 |
0.09091 |
2.309 |
0.5660 |
0.5135 |
0.5266 |
| 3/4-10 UNC |
0.7500 |
19.050 |
10 |
0.10000 |
2.540 |
0.6850 |
0.6273 |
0.6417 |
| 7/8-9 UNC |
0.8750 |
22.225 |
9 |
0.11111 |
2.822 |
0.8028 |
0.7387 |
0.7547 |
| 1-8 UNC |
1.0000 |
25.400 |
8 |
0.12500 |
3.175 |
0.9188 |
0.8466 |
0.8647 |
| 1 1/8-7 UNC |
1.1250 |
28.575 |
7 |
0.14286 |
3.629 |
1.0322 |
0.9497 |
0.9704 |
| 1 1/4-7 UNC |
1.2500 |
31.750 |
7 |
0.14286 |
3.629 |
1.1572 |
1.0747 |
1.0954 |
| 1 3/8-6 UNC |
1.3750 |
34.925 |
6 |
0.16667 |
4.233 |
1.2667 |
1.1705 |
1.1946 |
| 1 1/2-6 UNC |
1.5000 |
38.100 |
6 |
0.16667 |
4.233 |
1.3917 |
1.2955 |
1.3196 |
| 1 3/4-5 UNC |
1.7500 |
44.450 |
5 |
0.20000 |
5.080 |
1.6201 |
1.5046 |
1.5335 |
| 2-4.5 UNC |
2.0000 |
50.800 |
4.5 |
0.22222 |
5.644 |
1.8557 |
1.7274 |
1.7594 |
| 2 1/4-4.5 UNC |
2.2500 |
57.150 |
4.5 |
0.22222 |
5.644 |
2.1057 |
1.9774 |
2.0094 |
| 2 1/2-4 UNC |
2.5000 |
63.500 |
4 |
0.25000 |
6.350 |
2.3376 |
2.1933 |
2.2294 |
| 2 3/4-4 UNC |
2.7500 |
69.850 |
4 |
0.25000 |
6.350 |
2.5876 |
2.4433 |
2.4794 |
| 3-4 UNC |
3.0000 |
76.200 |
4 |
0.25000 |
6.350 |
2.8376 |
2.6933 |
2.7294 |
| 3 1/4-4 UNC |
3.2500 |
82.550 |
4 |
0.25000 |
6.350 |
3.0876 |
2.9433 |
2.9794 |
| 3 1/2-4 UNC |
3.5000 |
88.900 |
4 |
0.25000 |
6.350 |
3.3376 |
3.1933 |
3.2294 |
| 3 3/4-4 UNC |
3.7500 |
95.250 |
4 |
0.25000 |
6.350 |
3.5876 |
3.4433 |
3.4794 |
| 4-4 UNC |
4.0000 |
101.600 |
4 |
0.25000 |
6.350 |
3.8376 |
3.6933 |
3.7294 |
The diameter–pitch combinations and basic dimensions follow the standardized Unified coarse-thread series described in the National Bureau of Standards thread handbook. The current contractual requirements should be confirmed against the applicable edition of ASME B1.1. NIST Handbook H28
How the chart dimensions are determined
The thread pitch in inches is calculated using:
P=1nP=\frac{1}{n}P=n1
where:
- p= pitch in inches
- n= threads per inch
The metric equivalent of the pitch is:
Pmm=25.4n
For example, a 3/8-16 UNC thread has 16 threads per inch:
P=116=0.0625 in
Pmm=25.416=1.5875 mmP_{\mathrm{mm}}=\frac{25.4}{16}=1.5875\text{ mm}
For the basic Unified thread profile, the pitch diameter can be calculated approximately as:
E=D−0.649519P
where:
- E= basic pitch diameter
- D= basic major diameter
- P= thread pitch
The basic minor diameters of the internal and external thread are different because the crest and root truncations are not identical.
For an external thread:
d1=D−1.226869P
For an internal thread:
D1=D−1.082532P
These equations describe the basic profile. They do not include the allowance or tolerance associated with Classes 1A, 2A, 3A, 1B, 2B, or 3B.
Numbered versus fractional UNC sizes
UNC sizes smaller than 1/4 inch are generally designated by screw numbers. The nominal diameter can be estimated from:
D=0.060+0.013N
where N is the screw number.
For example, the major diameter of a No. 8 screw is:
D=0.060+(0.013×8)=0.164 in
Its complete coarse-thread designation is therefore No. 8-32 UNC, indicating a 0.164-inch nominal diameter and 32 threads per inch.
Fractional designations begin at 1/4 inch and express the nominal major diameter directly. For example:
- 1/4-20 UNC: 0.250-inch major diameter and 20 TPI
- 3/8-16 UNC: 0.375-inch major diameter and 16 TPI
- 1/2-13 UNC: 0.500-inch major diameter and 13 TPI
- 1-8 UNC: 1.000-inch major diameter and 8 TPI
Important chart limitations
The chart should be used as a dimensional reference, not as a complete inspection specification.
The actual acceptable thread dimensions depend on:
- Internal or external thread
- Thread tolerance class
- Length of engagement
- Manufacturing method
- Surface treatment or plating
- Required thread engagement
- Applicable standard edition
Tap-drill diameters are also not identical to the listed basic internal minor diameters. The selected drill size depends on the desired percentage of thread engagement, workpiece material, tap type, and machining conditions. Recommended tap-drill sizes are covered separately in the UNC tap-drill chart.
4. How to Read a UNC Thread Designation

A UNC thread designation communicates the essential characteristics needed to manufacture, select, or inspect the thread. A complete designation normally contains the nominal size, threads per inch, thread series, tolerance class, and external or internal thread identification.
The general format is:
Nominal size–TPI UNC–Class
A typical example is:
1/2-13 UNC-2A
This designation can be divided into four elements:
| Designation element |
Example |
Meaning |
| Nominal size |
1/2 |
Basic major diameter in inches |
| Threads per inch |
13 |
Number of complete pitches per inch |
| Thread series |
UNC |
Unified National Coarse |
| Thread class |
2A |
Standard commercial external thread |
Nominal thread size
The first element identifies the nominal major diameter. Fractional sizes are stated directly in inches.
For example:
- 1/4-20 UNC has a nominal diameter of 0.250 inch.
- 3/8-16 UNC has a nominal diameter of 0.375 inch.
- 1/2-13 UNC has a nominal diameter of 0.500 inch.
- 3/4-10 UNC has a nominal diameter of 0.750 inch.
For numbered screws, the first element is a number rather than a fraction:
No. 10-24 UNC-2A
A No. 10 thread has a nominal major diameter of 0.190 inch. The number does not represent the diameter in millimetres or tenths of an inch.
Threads per inch
The number following the diameter indicates the thread count in threads per inch.
In the designation:
3/8-16 UNC
the value 16 means that 16 complete thread pitches occur over one inch of axial length. It does not indicate the thread depth or fastener length.
The pitch is found by taking the reciprocal of the TPI:
P=116=0.0625 in
A 3/8-inch fine thread may be designated 3/8-24 UNF. Although both threads have the same nominal diameter, their pitches are different. They cannot be assembled together safely.
Thread-series abbreviation
The letters UNC identify the thread as part of the Unified National Coarse series.
Other common Unified designations include:
- UNF — Unified National Fine
- UNEF — Unified National Extra Fine
- UN — Unified constant-pitch series
- UNS — Unified Special thread
The series abbreviation is essential because diameter alone cannot identify the thread. A 1/2-inch fastener, for example, may use 1/2-13 UNC, 1/2-20 UNF, or another permitted diameter–pitch combination.
Thread tolerance class
The number following the thread series identifies the thread class. Unified threads normally use Classes 1, 2, or 3:
- Class 1 provides the loosest fit.
- Class 2 provides a general-purpose commercial fit.
- Class 3 provides the closest and most accurate fit.
The class number must be followed by either A or B:
- A identifies an external thread.
- B identifies an internal thread.
Common examples include:
- 1A — Loose-fit external thread
- 1B — Loose-fit internal thread
- 2A — General-purpose external thread
- 2B — General-purpose internal thread
- 3A — Close-fit external thread
- 3B — Close-fit internal thread
The most common commercial combination is a Class 2A bolt or screw assembled with a Class 2B nut or tapped hole.
For example:
1/2-13 UNC-2A
identifies an external thread, while:
1/2-13 UNC-2B
identifies its corresponding internal thread.
The A and B letters do not mean that the two components have identical dimensional limits. External threads require clearance from internal threads, and the applicable allowances and tolerances determine the permitted fit.
Right-hand and left-hand designations
UNC threads are assumed to be right-handed unless otherwise specified. A right-hand thread tightens when turned clockwise when viewed from the fastener end.
A left-hand thread is identified by adding LH:
1/2-13 UNC-2A-LH
This identifies:
- 1/2-inch nominal diameter
- 13 TPI
- UNC thread series
- Class 2 external thread
- Left-hand direction
Left-hand threads are used where normal rotation could loosen a right-hand fastener, or where opposite thread directions are required for adjustment.
Examples of UNC thread designations
Example 1: No. 8-32 UNC-2A
- No. 8: 0.164-inch nominal major diameter
- 32: 32 threads per inch
- UNC: Unified National Coarse series
- 2A: Class 2 external thread
This designation typically applies to a machine screw or externally threaded component.
Example 2: 1/4-20 UNC-2B
- 1/4: 0.250-inch nominal diameter
- 20: 20 threads per inch
- UNC: Coarse thread series
- 2B: Class 2 internal thread
This designation normally applies to a nut or tapped hole.
Example 3: 3/4-10 UNC-3A
- 3/4: 0.750-inch nominal diameter
- 10: 10 threads per inch
- UNC: Coarse thread series
- 3A: Close-tolerance external thread
Example 4: 1-8 UNC-2B-LH
- 1: 1.000-inch nominal diameter
- 8: 8 threads per inch
- UNC: Coarse thread series
- 2B: General-purpose internal thread
- LH: Left-hand thread
Thread callouts on engineering drawings
A drawing callout for an external thread may appear as:
3/8-16 UNC-2A×1.00 LONG
This specifies the thread form and the required threaded length.
A tapped-hole callout may appear as:
1/4-20 UNC-2B×0.50 DEEP
The drawing may separately state:
- Tap-drill depth
- Full-thread depth
- Through or blind hole
- Countersink or chamfer
- Quantity of holes
- Surface coating
- Inspection requirements
For blind holes, the drilling depth must normally exceed the required full-thread depth because the tap has a chamfered lead and the drill point creates a conical bottom.
Coated and plated thread designations
Plating, galvanizing, anodizing, or other coatings can change the effective thread dimensions. A coating increases the external thread size and reduces the available space in an internal thread. Because the coating is applied to both flanks, a small coating thickness can produce a considerably larger change in functional pitch diameter.
The drawing or purchasing specification should therefore state:
- Whether dimensional limits apply before or after coating
- Required coating type and thickness
- Whether allowance has been provided
- Applicable thread-gauging condition
- Any oversize tapping requirement
A standard Class 2A designation should not be assumed to provide adequate room for every coating. Heavy coatings, especially hot-dip galvanizing, may require special allowances or oversize internal threads.
Avoiding designation errors
Common mistakes when reading UNC callouts include:
- Treating TPI as thread pitch
- Confusing No. 10 with a 10 mm diameter
- Omitting the A or B thread classification
- Assuming UNC and UNF threads are interchangeable
- Confusing a converted metric pitch with a metric thread
- Ignoring an LH suffix
- Using basic dimensions as final inspection limits
- Failing to account for plating or coating thickness
The complete designation must be checked before selecting the fastener, tap, die, or gauge. Diameter and visual appearance alone are not enough to confirm thread compatibility.
5. UNC Thread Classes and Tolerances
UNC thread dimensions are controlled through a system of classes, allowances, and tolerances. These controls ensure that separately manufactured bolts, screws, nuts, and tapped components can assemble correctly while providing the required amount of clearance.
A thread class does not change the nominal diameter, TPI, or basic thread profile. Instead, it determines how far the manufactured dimensions may vary from the basic profile and how loosely or closely the internal and external threads fit together.
Unified threads use three principal classes:
| Thread class |
External thread |
Internal thread |
General fit |
| Class 1 |
1A |
1B |
Loose |
| Class 2 |
2A |
2B |
General-purpose |
| Class 3 |
3A |
3B |
Close and accurate |
The letter following the class number identifies the thread type:
- A — external thread, such as a bolt, screw, or stud
- B — internal thread, such as a nut or tapped hole
Allowance and tolerance
Although the terms are sometimes used interchangeably, allowance and tolerance have different meanings.
Allowance is the intentional difference between the maximum-material sizes of mating internal and external threads. It creates a minimum guaranteed clearance between the components.
Tolerance is the permitted variation in a manufactured thread dimension. It represents the difference between the maximum and minimum acceptable sizes.
For Unified threads, allowance is normally applied to Classes 1A and 2A external threads. Class 3A external threads have no allowance at the basic pitch diameter, which helps produce a closer fit.
The actual fit between mating threads is primarily controlled by their pitch diameters. Major and minor diameters are also controlled, but pitch diameter has the greatest influence on whether the parts assemble freely, tightly, or not at all.
Class 1A and 1B threads
Classes 1A and 1B provide the loosest fit and the greatest assembly clearance among the standard Unified thread classes.
They may be selected where:
- Quick and easy assembly is important
- Dirt or contamination may be present
- Threads may experience minor damage
- Components require frequent assembly and disassembly
- Accurate alignment is not critical
- A large clearance is acceptable
Class 1 threads are less common in modern commercial fasteners than Class 2 threads. Their greater clearance can permit more movement between assembled components, making them unsuitable for applications requiring precise positioning or minimum backlash.
A typical Class 1 pairing is:
1/2-13 UNC-1A with 1/2-13 UNC-1B
Class 2A and 2B threads
Classes 2A and 2B provide the standard general-purpose commercial fit. They are the most widely used thread classes for UNC bolts, screws, nuts, and tapped holes.
Class 2 threads provide a practical balance between:
- Manufacturing cost
- Ease of assembly
- Interchangeability
- Dimensional control
- Strength and load distribution
- Allowance for light coatings or surface variation
A typical designation for a commercial bolt is:
1/2-13 UNC-2A
The corresponding nut or tapped hole is normally:
1/2-13 UNC-2B
Typical applications include:
- General industrial machinery
- Structural assemblies
- Automotive equipment
- Pumps and compressors
- Agricultural machinery
- Maintenance fasteners
- Equipment frames and supports
- General fabricated components
Unless a drawing or specification requires another class, Class 2A for external threads and Class 2B for internal threads are generally the expected choices for standard commercial UNC fasteners.
Class 3A and 3B threads
Classes 3A and 3B provide a close and accurate fit. Their tolerances are narrower than those of Class 2 threads, and Class 3A has no pitch-diameter allowance.
Class 3 threads may be used where:
- Accurate positioning is required
- Thread alignment is important
- Minimum looseness or backlash is desired
- High-quality controlled assembly is available
- Close dimensional control can be maintained
- The application specification explicitly requires a close fit
Applications may include:
- Precision machinery
- Aerospace components
- Measuring instruments
- High-quality tooling
- Critical positioning assemblies
- Specialized high-strength joints
Class 3 threads require more accurate manufacturing and inspection. They are also more sensitive to burrs, contamination, distortion, plating thickness, and dimensional changes caused by heat treatment.
A Class 3A external thread should not automatically be paired with any internal thread of the same diameter and TPI without checking the specified fit. Manufacturing capability and coating requirements must also be considered.
Comparison of UNC thread classes
| Characteristic |
Class 1 |
Class 2 |
Class 3 |
| Fit |
Loose |
Medium |
Close |
| Assembly clearance |
Greatest |
Moderate |
Smallest |
| Manufacturing accuracy |
Lowest |
Standard |
Highest |
| Manufacturing cost |
Generally lowest |
Moderate |
Generally highest |
| Sensitivity to contamination |
Lowest |
Moderate |
Highest |
| Commercial availability |
Limited |
Very common |
Specialized |
| Typical use |
Rough or quick assembly |
General engineering |
Precision assemblies |
Basic dimensions versus limits of size
The basic dimensions in a UNC thread chart define the theoretical thread geometry. They do not represent the complete acceptable size range for a manufactured part.
For example, the basic pitch diameter of a 1/2-13 UNC thread is approximately:
E=0.4500 in
However, the acceptable pitch-diameter limits for the following threads are not identical:
- 1/2-13 UNC-1A
- 1/2-13 UNC-2A
- 1/2-13 UNC-3A
- 1/2-13 UNC-1B
- 1/2-13 UNC-2B
- 1/2-13 UNC-3B
Each class has its own maximum and minimum values. Therefore, a machinist or inspector cannot determine compliance using only the basic-dimension chart.
The Unified thread standard establishes separate dimensional limits for external and internal threads. The allowable dimensions should be obtained from the applicable edition of ASME B1.1 or the governing product specification.
Effect of plating and coatings
Plating and coatings can significantly affect thread fit. When a coating is added to an external thread, material accumulates on both thread flanks. This increases the functional pitch diameter by more than the coating thickness measured perpendicular to the surface.
Similarly, coating an internal thread reduces its available clearance. If coating thickness is not considered, the finished components may bind or fail to assemble.
Common surface treatments affecting thread dimensions include:
- Zinc plating
- Nickel plating
- Cadmium plating
- Chromium plating
- Hot-dip galvanizing
- Phosphate coatings
- Anodizing
- Paint and polymer coatings
- Dry-film lubricants
The drawing or specification should clarify whether thread dimensions apply:
- Before coating
- After coating
- Before coating with a specified allowance
- After coating using specified GO and NO-GO gauges
Light coatings may sometimes be accommodated within the allowance of a Class 2A external thread. Heavy coatings, such as hot-dip galvanizing, normally require special consideration and may require oversize internal threads or modified external-thread dimensions.
Inspection of UNC threads
UNC threads are commonly inspected using functional gauges rather than relying only on direct diameter measurements.
Typical inspection equipment includes:
- GO thread plug gauges for internal threads
- NO-GO thread plug gauges for internal threads
- GO thread ring gauges for external threads
- NO-GO thread ring gauges for external threads
- Thread micrometers
- Three-wire measuring systems
- Optical comparators
- Coordinate measuring machines
A GO gauge verifies that the thread can assemble under maximum-material conditions. A NO-GO gauge helps confirm that the thread has not exceeded the permitted minimum-material limit.
Thread gauges must match the complete thread designation. A gauge marked 1/2-13 UNC-2B is intended for a different thread condition from a gauge marked 1/2-13 UNC-3B.
6. UNC Tap Drill Size Chart and Thread Engagement
A tap drill creates the hole that will subsequently be threaded with a tap. Its diameter has a direct effect on thread engagement, tapping torque, tool life, and the risk of damaging the workpiece.
If the drilled hole is too small:
- Thread engagement becomes excessive
- Tapping torque increases
- The tap may wear or break
- Threads may tear or gall
- Thin-walled parts may distort
If the hole is too large:
- Thread engagement decreases
- The internal thread becomes weaker
- Stripping resistance may be reduced
- The finished hole may fail inspection
The following chart provides commonly used cutting-tap drill sizes for standard UNC threads. These are practical starting recommendations, not universal requirements.
UNC tap drill size chart
| UNC thread |
TPI |
Recommended drill |
Drill diameter (in) |
Drill diameter (mm) |
Approx. thread engagement |
| No. 1-64 UNC |
64 |
No. 53 |
0.0595 |
1.511 |
65% |
| No. 2-56 UNC |
56 |
No. 50 |
0.0700 |
1.778 |
67% |
| No. 3-48 UNC |
48 |
No. 47 |
0.0785 |
1.994 |
74% |
| No. 4-40 UNC |
40 |
No. 43 |
0.0890 |
2.261 |
69% |
| No. 5-40 UNC |
40 |
No. 38 |
0.1015 |
2.578 |
71% |
| No. 6-32 UNC |
32 |
No. 36 |
0.1065 |
2.705 |
76% |
| No. 8-32 UNC |
32 |
No. 29 |
0.1360 |
3.454 |
67% |
| No. 10-24 UNC |
24 |
No. 25 |
0.1495 |
3.797 |
73% |
| No. 12-24 UNC |
24 |
No. 16 |
0.1770 |
4.496 |
70% |
| 1/4-20 UNC |
20 |
No. 7 |
0.2010 |
5.105 |
74% |
| 5/16-18 UNC |
18 |
Letter F |
0.2570 |
6.528 |
75% |
| 3/8-16 UNC |
16 |
5/16 in |
0.3125 |
7.938 |
75% |
| 7/16-14 UNC |
14 |
Letter U |
0.3680 |
9.347 |
73% |
| 1/2-13 UNC |
13 |
27/64 in |
0.4219 |
10.716 |
76% |
| 9/16-12 UNC |
12 |
31/64 in |
0.4844 |
12.303 |
70% |
| 5/8-11 UNC |
11 |
17/32 in |
0.5313 |
13.494 |
77% |
| 3/4-10 UNC |
10 |
21/32 in |
0.6563 |
16.669 |
70% |
| 7/8-9 UNC |
9 |
49/64 in |
0.7656 |
19.447 |
74% |
| 1-8 UNC |
8 |
7/8 in |
0.8750 |
22.225 |
75% |
| 1 1/8-7 UNC |
7 |
63/64 in |
0.9844 |
25.003 |
74% |
| 1 1/4-7 UNC |
7 |
1 7/64 in |
1.1094 |
28.178 |
74% |
| 1 3/8-6 UNC |
6 |
1 7/32 in |
1.2188 |
30.956 |
70% |
| 1 1/2-6 UNC |
6 |
1 11/32 in |
1.3438 |
34.131 |
70% |
The engagement percentages are approximate because actual engagement depends on the finished minor diameter, tap geometry, thread tolerance class, material behavior, and hole quality.
Calculating an approximate tap-drill diameter
A commonly used approximation for a 75% UNC thread is:
Ddrill≈Dmajor−1TPI
Because:
P=1TPIP=\frac{1}{\mathrm{TPI}}
the equation can also be written as:
Ddrill≈Dmajor−P
For a 1/2-13 UNC thread:
Ddrill≈0.5000−113 Ddrill≈0.5000−0.07692D_{\text{drill}}\approx0.5000-0.07692
Ddrill≈0.4231 in
The nearest commonly selected fractional drill is 27/64 inch:
2764=0.421875 in
This approximation is useful for workshop estimates, but a verified tap-drill chart should be used for final tool selection.
Percentage of thread engagement
Thread engagement percentage describes how much of the theoretical thread height is produced in the tapped hole. Increasing the percentage does not increase connection strength proportionally.
For many general-purpose tapped holes, approximately 60% to 75% thread engagement provides a useful balance between strength and machinability. Beyond this range, tapping torque may increase substantially while the improvement in stripping strength remains relatively small.
Approximate engagement for a 60-degree Unified thread can be estimated using:
Thread engagement (%)≈75(Dmajor−DdrillP)
For a 1/4-20 UNC thread drilled with a No. 7 drill:
Dmajor=0.2500 inD_{\text{major}}=0.2500\text{ in}
Ddrill=0.2010 inD_{\text{drill}}=0.2010\text{ in}
P=120=0.0500 inP=\frac{1}{20}=0.0500\text{ in}
Therefore:
Engagement≈75(0.2500−0.20100.0500)
Engagement≈73.5%
This is an approximate workshop calculation. It does not replace the exact dimensional limits for a specified internal-thread class.
Selecting drill size by workpiece material
The standard drill size may be adjusted according to the material being tapped.
Carbon and alloy steel
A conventional tap-drill size producing approximately 70% to 75% engagement is normally suitable. Adequate cutting fluid and correct tap geometry are important, especially for deep or blind holes.
Stainless steel
Stainless steel can work-harden and create high tapping torque. A slightly larger drill may reduce friction, galling, and tap breakage while still providing adequate thread strength.
Sharp tools, rigid alignment, suitable cutting fluid, and controlled tapping speed are particularly important.
Aluminium
Aluminium is relatively soft, so adequate engagement length is important for stripping resistance. However, an excessively small tap drill can cause material pickup or loading on the tap.
A standard or slightly larger drill may be appropriate depending on the aluminium alloy, tap design, and required strength.
Brass and bronze
Free-machining brass is generally easy to tap, but tap geometry must prevent grabbing. Engagement requirements vary with alloy strength and whether the tapped hole will be repeatedly assembled.
Cast iron
Cast iron is commonly tapped dry or with application-specific lubrication. Its brittleness and chip formation should be considered when selecting the tap style and engagement percentage.
Plastics
Plastic materials may deform, recover elastically, or creep after tapping. Drill size, tap geometry, engagement length, and assembly torque should be established through material-specific guidance or testing.
Cutting taps versus forming taps
The tap-drill chart above primarily applies to cutting taps. A cutting tap removes material to create the thread form.
Common cutting-tap styles include:
- Taper taps
- Plug taps
- Bottoming taps
- Spiral-point taps
- Spiral-flute taps
A forming tap, also called a roll tap, displaces material instead of cutting it. Forming taps require a larger pre-drilled hole because material flows inward to create the thread crests.
Using a cutting-tap drill size with a forming tap can cause:
- Extremely high torque
- Tap breakage
- Oversized or malformed threads
- Workpiece cracking
- Machine overload
The drill size specified by the forming-tap manufacturer should therefore be used. Forming taps are generally best suited to ductile materials and are not appropriate for brittle materials such as grey cast iron.
Through holes and blind holes
The correct tap style also depends on whether the hole passes completely through the workpiece.
For a through hole, a spiral-point or gun tap pushes chips forward and out of the hole. This reduces chip accumulation in the flutes.
For a blind hole, a spiral-flute tap pulls chips upward and away from the bottom. The drilled hole must be deeper than the required full-thread depth to provide space for:
- Drill-point length
- Tap chamfer
- Chip accumulation
- Bottom clearance
Thread depth and drill depth are not the same. A drawing should clearly distinguish between:
- Total drilled-hole depth
- Tapped depth
- Minimum full-thread depth
- Usable thread engagement length
Thread engagement length
Thread engagement length is the axial length over which the internal and external threads contact each other. It should not be confused with the percentage of thread height created by the tap drill.
A high percentage of thread height cannot compensate for inadequate engagement length. The required engagement depends on:
- Fastener tensile strength
- Internal-thread material strength
- Nominal diameter
- Thread pitch
- Applied tensile and shear loads
- Safety factor
- Repeated assembly requirements
A tapped hole in aluminium, plastic, or cast iron may require a greater engagement length than a tapped hole in high-strength steel.
For critical connections, tap-drill selection and engagement length should be verified by engineering calculation rather than relying exclusively on general rules of thumb.