UN Thread Size Chart: UNC, UNF, UNEF Dimensions
Contents
- 1 1. What Is a UN Thread?
- 2 2. UN Thread Terminology and Dimensions
- 3 3. Types of Unified Threads: UNC, UNF, UNEF, and UNS
- 4 4. Complete UN Thread Size Chart
- 5 5. UN Thread Classes: 1A, 2A, 3A, 1B, 2B, and 3B
- 6 6. UN Thread Drill Size Chart
- 7 7. How to Read a UN Thread Designation
- 7.1 Nominal Diameter
- 7.2 Threads per Inch
- 7.3 Thread Series
- 7.4 Tolerance Class and Thread Type
- 7.5 Example: 1/4-20 UNC-2A
- 7.6 Example: 3/8-24 UNF-2B
- 7.7 Example: 1/2-28 UNEF-3A
- 7.8 Reading a Constant-Pitch UN Designation
- 7.9 Left-Hand Thread Designations
- 7.10 Multiple-Start Thread Designations
- 7.11 Thread Depth or Engagement Length
- 7.12 Common Thread Callout Errors
- 8 7. How to Read a UN Thread Designation
- 8.1 Nominal Thread Diameter
- 8.2 Threads per Inch
- 8.3 Thread Series
- 8.4 Thread Tolerance Class
- 8.5 External and Internal Thread Identification
- 8.6 Example: 1/4-20 UNC-2A
- 8.7 Example: 1/2-20 UNF-2B
- 8.8 Example: 1/2-28 UNEF-3A
- 8.9 Reading a Constant-Pitch UN Thread
- 8.10 Left-Hand Thread Designation
- 8.11 Thread Depth on Engineering Drawings
- 8.12 Common UN Thread Callout Mistakes
- 9 8. UN Threads vs. Metric and Other Inch Thread Standards
- 9.1 UN Threads vs. Metric Threads
- 9.2 UN Threads vs. British Standard Whitworth Threads
- 9.3 UN Threads vs. BSP Threads
- 9.4 UN Threads vs. NPT Threads
- 9.5 UN Threads vs. SAE Straight Threads
- 9.6 UN Threads vs. JIC Threads
- 9.7 UN Threads vs. UNJ Threads
- 9.8 UN Threads vs. ACME Threads
- 9.9 Comparison of Common Thread Standards
- 9.10 Why Similar Threads Must Not Be Forced Together
- 10 9. How to Identify and Measure a UN Thread
- 10.1 Clean and Inspect the Thread
- 10.2 Identify an Internal or External Thread
- 10.3 Measure the Major Diameter
- 10.4 Determine the Threads per Inch
- 10.5 Compare Diameter and TPI
- 10.6 Verify the Thread Angle
- 10.7 Check for Parallel or Tapered Geometry
- 10.8 Determine the Thread Direction
- 10.9 Measure the Pitch Diameter
- 10.10 Three-Wire Measurement Method
- 10.11 Inspect with GO and NO-GO Gauges
- 10.12 UN Thread Identification Checklist
- 11 10. Selecting the Correct UN Thread Size
- 11.1 Select the Nominal Diameter
- 11.2 Choose Between UNC and UNF
- 11.3 Use UNEF for Specialized Applications
- 11.4 Consider the Tensile Stress Area
- 11.5 Determine the Required Thread Engagement
- 11.6 Consider the Internally Threaded Material
- 11.7 Account for Vibration and Fatigue
- 11.8 Select the Thread Class
- 11.9 Consider Coating and Plating Thickness
- 11.10 Prevent Galling
- 11.11 Consider the Operating Environment
- 11.12 Practical Selection Guide
- 12 Conclusion
Unified National (UN) threads are among the most widely used inch-based screw threads in engineering, manufacturing, construction, automotive equipment, hydraulic systems, and industrial machinery. They provide a standardized method for connecting bolts, screws, nuts, fittings, and other threaded components.
The UN thread system specifies a symmetrical 60-degree thread profile and identifies thread sizes according to nominal diameter and threads per inch (TPI). A designation such as 1/2-13 UNC indicates a nominal diameter of 1/2 inch, 13 threads per inch, and the Unified National Coarse thread series.
Several UN thread series are available to meet different mechanical requirements. The most common are Unified National Coarse (UNC), Unified National Fine (UNF), Unified National Extra Fine (UNEF), and Unified National Special (UNS). Each series offers a different balance of strength, assembly speed, adjustment accuracy, and resistance to loosening.
A UN thread size chart helps engineers, machinists, maintenance technicians, and purchasing personnel identify the correct thread specifications. It normally includes the nominal size, TPI, thread pitch, major diameter, pitch diameter, minor diameter, and recommended tap drill size.
This guide explains UN thread dimensions, series, tolerance classes, designations, and measurement methods. It also provides practical information for selecting and identifying UN threads in industrial applications.
1. What Is a UN Thread?

A UN thread is a screw thread manufactured according to the Unified Thread Standard (UTS). It uses inch-based nominal sizes and a symmetrical V-shaped profile with a 60-degree included thread angle. The system standardizes the geometry and dimensions of internal and external threads so that compatible parts can be assembled interchangeably.
UN threads are commonly used in the United States, Canada, and many international industries that use inch-based components. Typical applications include:
- Bolts, screws, studs, and nuts
- Industrial machinery and equipment
- Automotive and aerospace assemblies
- Hydraulic and pneumatic components
- Pipe supports and structural connections
- Instrumentation mounting hardware
- Maintenance and replacement parts
The term UN stands for “Unified.” It represents the general thread form, while additional letters identify the thread series. The four principal series are:
- UNC: Unified National Coarse
- UNF: Unified National Fine
- UNEF: Unified National Extra Fine
- UNS: Unified National Special
For example, the designation 3/8-16 UNC-2A contains the following information:
- 3/8: Nominal major diameter in inches
- 16: Number of threads per inch
- UNC: Unified National Coarse series
- 2: Thread tolerance class
- A: External thread
An internal thread with the corresponding dimensions may be written as 3/8-16 UNC-2B, where the letter B identifies an internal thread.
Basic UN Thread Profile
The UN thread profile consists of alternating crests and roots connected by angled flanks. Its principal geometric features include:
- Major diameter: The largest diameter of an external thread or the largest basic diameter of an internal thread
- Minor diameter: The smallest diameter of the thread form
- Pitch diameter: The theoretical diameter where the widths of the thread ridges and grooves are equal
- Pitch: The axial distance between corresponding points on adjacent threads
- Thread angle: The 60-degree included angle between the two flanks
- Crest: The top surface of a thread
- Root: The bottom surface between adjacent thread flanks
- Flank: The angled surface connecting the crest and root
For UN threads, pitch is normally expressed indirectly as threads per inch:
P=TPI1
For example, a 1/2-20 UNF thread has 20 threads per inch. Its pitch is:
P=201=0.050 in
The metric equivalent is approximately:
0.050×25.4=1.27 mm
UN Thread Size Designation
A complete UN thread callout generally follows this format:
Nominal diameter – TPI – thread series – tolerance class
For example:
1/2-13 UNC-2A
| Designation element | Meaning |
|---|---|
| 1/2 | Nominal thread diameter of 0.500 inch |
| 13 | 13 threads per inch |
| UNC | Unified National Coarse thread series |
| 2 | Standard commercial tolerance class |
| A | External thread |
For thread diameters below 1/4 inch, numbered screw sizes are commonly used. Examples include #4-40 UNC, #8-32 UNC, and #10-24 UNC. The approximate nominal diameter of a numbered screw can be calculated using:
D=0.060+0.013N
Where:
- D = nominal diameter in inches
- N = screw number
For example, the nominal diameter of a #10 screw is:
D=0.060+(0.013×10)=0.190 in
UN Threads and Unified National Threads
The terms UN thread and Unified National thread are often used interchangeably. However, “UN” technically refers to the standardized Unified thread form, while UNC, UNF, UNEF, and UNS describe specific combinations of diameter and thread pitch.
A designation containing only UN, such as 1-12 UN-2A, may be used when the diameter and pitch combination does not need to be identified as UNC, UNF, or UNEF. This is common for certain larger diameters where a constant-pitch thread series is used.
Key Characteristics of UN Threads
UN threads can generally be recognized by the following features:
- Dimensions are specified in inches.
- Pitch is expressed as threads per inch.
- The thread profile has a 60-degree included angle.
- External threads use the letter A.
- Internal threads use the letter B.
- Fit and tolerance are identified by Classes 1, 2, or 3.
- Both coarse and fine thread series are available.
- Thread dimensions are standardized for interchangeability.
It is important not to confuse UN threads with British Standard Whitworth or BSP threads. Whitworth-based threads use a 55-degree thread angle and have different crest and root profiles. Even when two threads have similar diameters and pitches, they may not be mechanically compatible.
Correct identification should therefore be based on the nominal diameter, TPI, thread angle, and tolerance class rather than diameter alone.
2. UN Thread Terminology and Dimensions
Understanding UN thread terminology is essential when reading a thread chart, preparing a drawing, selecting a fastener, or inspecting a machined thread. UN threads use a 60-degree profile, but their actual dimensions depend on the nominal diameter, threads per inch, thread series, and tolerance class.
Nominal Thread Size
The nominal thread size identifies the general diameter of the fastener. It is not always equal to the measured outside diameter because manufacturing tolerances require the actual diameter to be slightly smaller or larger than the basic value.
For sizes of 1/4 inch and above, the nominal diameter is normally written as a fraction:
- 1/4 in
- 5/16 in
- 3/8 in
- 1/2 in
- 3/4 in
- 1 in
Thread sizes below 1/4 inch are usually expressed as numbered screw sizes, such as #4, #6, #8, #10, and #12.
The nominal diameter of a numbered screw can be estimated using:
D=0.060+0.013N
Where:
- D = nominal diameter in inches
- N = screw number
For example, the nominal diameter of a #8 screw is:
D=0.060+(0.013×8)=0.164 in
Threads per Inch
Threads per inch, abbreviated as TPI, indicates the number of complete thread pitches within one inch of axial length.
For example:
- 1/2-13 UNC has 13 threads per inch.
- 1/2-20 UNF has 20 threads per inch.
- 1/2-28 UNEF has 28 threads per inch.
A higher TPI value means the threads are more closely spaced. Fine threads therefore have a smaller pitch than coarse threads of the same nominal diameter.
Thread Pitch
Thread pitch is the axial distance between corresponding points on two adjacent threads. For inch-based UN threads, pitch is calculated from TPI:
P=TPI1
Where:
- P = thread pitch in inches
- TPI = threads per inch
To convert the pitch into millimetres:
Pmm=TPI25.4
For a 3/8-16 UNC thread:
P=161=0.0625 in Pmm=1625.4=1.5875 mm
For a 3/8-24 UNF thread:
P=241=0.0417 in=1.0583 mm
Major Diameter
The major diameter is the largest diameter of the basic thread profile.
For an external thread, it is measured across the thread crests and is approximately equal to the nominal thread size. For an internal thread, the major diameter is measured across the roots of the internal thread.
For example, the basic major diameter of a 1/2-inch UN thread is:
0.5000 in
The actual external major diameter is normally slightly smaller than this basic dimension because of the specified tolerance and allowance.
Minor Diameter
The minor diameter is the smallest diameter of the thread profile.
- On an external thread, it is measured across the roots.
- On an internal thread, it is measured across the crests.
The minor diameter affects the remaining cross-sectional area of a bolt and the amount of material removed when tapping an internal thread. It is also closely related to the recommended tap drill size.
Pitch Diameter
The pitch diameter is the theoretical diameter at which the width of a thread ridge equals the width of the adjacent thread groove. It lies between the major and minor diameters.
Pitch diameter is one of the most important dimensions for determining whether two threads will fit correctly. Thread gauges, thread micrometers, and the three-wire measurement method are commonly used to inspect it.
For a basic 60-degree UN external thread, the pitch diameter can be approximated by:
E=D−0.649519P
Where:
- E = basic pitch diameter
- D = basic major diameter
- P = thread pitch
For a 1/2-13 UNC thread:
P=131=0.076923 in E=0.5000−(0.649519×0.076923) E≈0.4500 in
This is a basic theoretical dimension. The acceptable production limits depend on whether the thread is internal or external and whether it is Class 1, 2, or 3.
Thread Angle
UN threads use a symmetrical 60-degree included angle. Each thread flank is positioned at 30 degrees relative to a line perpendicular to the thread axis.
This angle distinguishes UN threads from several other thread forms. For example, BSP and Whitworth threads use a 55-degree profile and different crest and root shapes.
Thread Height
The height of the fundamental sharp V-thread triangle is:
H=0.866025P
However, actual UN threads do not have perfectly sharp crests and roots. The profile is truncated to improve strength, allow manufacturing clearance, and prevent interference between mating parts.
For the basic UN thread profile:
Basic external minor diameter=D−1.226869P
This formula provides the theoretical basic dimension before applying tolerance limits and root-radius requirements.
Crest, Root, and Flank
The principal parts of a thread profile include:
- Crest: The top surface joining the two thread flanks
- Root: The bottom surface between adjacent thread flanks
- Flank: The angled surface connecting a crest and a root
- Thread form: The complete profile viewed in an axial section
- Thread axis: The imaginary centreline around which the thread is formed
The crest and root are truncated rather than perfectly sharp. External thread roots may also incorporate a controlled radius, particularly for fatigue-resistant thread forms.
Lead
Lead is the axial distance a threaded component travels during one complete revolution.
For a single-start thread:
L=P
For a multiple-start thread:
L=nP
Where:
- L = lead
- n = number of thread starts
- P = pitch
Most standard UNC, UNF, and UNEF fasteners use single-start threads, so their lead is equal to their pitch.
Thread Engagement
Thread engagement is the axial length over which the internal and external threads contact each other. Sufficient engagement is required to prevent the internal thread from stripping before the bolt reaches its intended tensile load.
The required engagement depends on:
- Fastener material
- Internally threaded material
- Nominal diameter
- Thread pitch
- Required load
- Tolerance class
- Operating temperature
- Corrosion allowance
Threads in aluminium, plastics, and other relatively soft materials typically require more engagement than threads in steel.
Basic, Maximum, and Minimum Dimensions
A UN thread chart may show three different types of dimensions:
- Basic dimension: The theoretical reference dimension
- Maximum dimension: The largest acceptable manufactured size
- Minimum dimension: The smallest acceptable manufactured size
The actual permissible limits depend on the thread class and whether the thread is internal or external. Therefore, basic dimensions should not be treated as final machining inspection limits.
3. Types of Unified Threads: UNC, UNF, UNEF, and UNS

The Unified Thread Standard divides UN threads into different series based primarily on the relationship between nominal diameter and TPI. The four commonly encountered series are UNC, UNF, UNEF, and UNS.
Unified National Coarse Threads
UNC stands for Unified National Coarse. It uses fewer threads per inch and a larger pitch than UNF or UNEF threads of the same nominal diameter.
Common examples include:
- 1/4-20 UNC
- 5/16-18 UNC
- 3/8-16 UNC
- 1/2-13 UNC
- 3/4-10 UNC
- 1-8 UNC
UNC threads are generally easier and faster to assemble. Their deeper thread form also makes them suitable for softer materials and for applications in which threads may become dirty or slightly damaged.
Advantages of UNC threads include:
- Faster installation and removal
- Lower risk of cross-threading
- Better tolerance of dirt and surface damage
- Greater thread depth
- Good performance in aluminium, cast iron, and plastics
- Wide availability of fasteners and tools
UNC threads are commonly used for structural bolting, general machinery, equipment frames, cast components, maintenance hardware, and construction applications.
Unified National Fine Threads
UNF stands for Unified National Fine. UNF threads have more threads per inch and a smaller pitch than UNC threads of the same nominal diameter.
Common examples include:
- 1/4-28 UNF
- 5/16-24 UNF
- 3/8-24 UNF
- 1/2-20 UNF
- 3/4-16 UNF
- 1-12 UNF
Because their threads are shallower, UNF fasteners generally have a larger tensile stress area than equivalent UNC fasteners. Fine threads also provide more precise axial adjustment and can develop high clamping force with smaller rotational movement.
Advantages of UNF threads include:
- Larger tensile stress area
- Precise adjustment
- Higher potential clamping force
- Better suitability for thin-wall components
- Smaller change in axial position per revolution
- Good performance where thread depth is limited
UNF threads are frequently used in automotive assemblies, aircraft components, hydraulic equipment, precision machinery, and applications requiring controlled adjustment.
Fine threads are more susceptible to cross-threading, contamination, and damage than coarse threads. They may also be unsuitable for weak or brittle internally threaded materials unless sufficient engagement is provided.
Unified National Extra Fine Threads
UNEF stands for Unified National Extra Fine. These threads use an even higher TPI than UNF threads.
Common examples include:
- 1/4-32 UNEF
- 5/16-32 UNEF
- 3/8-32 UNEF
- 7/16-28 UNEF
- 1/2-28 UNEF
- 3/4-20 UNEF
- 1-20 UNEF
UNEF threads are typically selected when a very small pitch, thin wall, short thread depth, or highly precise axial adjustment is required.
Typical applications include:
- Aerospace components
- Instrumentation
- Electrical connectors
- Thin-wall nuts and fittings
- Precision adjustment mechanisms
- Specialized hydraulic components
Although UNEF threads provide high adjustment resolution, their shallow profiles are relatively sensitive to damage and contamination. They also require more installation turns than comparable UNC or UNF threads.
Unified National Special Threads
UNS stands for Unified National Special. UNS threads use diameter-and-pitch combinations that are not part of the regular UNC, UNF, or UNEF series.
Examples may include:
- 1/4-24 UNS
- 5/8-18 UNS
- 7/8-16 UNS
- 1-14 UNS
UNS threads are used when a standard thread series does not meet a particular design requirement. They may be found on proprietary equipment, bearing locknuts, fittings, instruments, connectors, and legacy machinery.
Because UNS sizes are not always widely stocked, replacement parts and cutting tools may be more difficult or expensive to obtain. Designers should use a standard UNC, UNF, or UNEF thread whenever it can meet the application requirements.
Constant-Pitch UN Thread Series
Large-diameter UN threads may also use constant-pitch series such as:
- 4-UN
- 6-UN
- 8-UN
- 12-UN
- 16-UN
- 20-UN
- 28-UN
- 32-UN
In these designations, the number before “UN” indicates the number of threads per inch. For example, a 2-8 UN thread has a 2-inch nominal diameter and 8 TPI.
Constant-pitch series are useful when multiple diameters need to use the same thread pitch. The 8-UN series is especially common for large bolts, flanges, pressure equipment, and high-temperature applications.
Comparison of Unified Thread Series
| Thread series | Relative pitch | General characteristics | Typical applications |
|---|---|---|---|
| UNC | Coarse | Fast assembly, durable, tolerant of contamination | Structures, machinery and softer materials |
| UNF | Fine | Greater adjustment accuracy and tensile stress area | Automotive, aerospace and hydraulic equipment |
| UNEF | Extra fine | Very small pitch and precise axial adjustment | Instruments, connectors and thin-wall parts |
| UNS | Special | Nonstandard diameter-and-pitch combination | Proprietary and specialized equipment |
| Constant-pitch UN | Fixed TPI across multiple diameters | Suitable for larger threaded components | Flanges, pressure equipment and large fasteners |
UNC and UNF threads are not interchangeable even when they have the same nominal diameter. For example, a 1/2-13 UNC bolt cannot be correctly assembled with a 1/2-20 UNF nut because their pitches are different.
4. Complete UN Thread Size Chart

The following chart lists commonly standardized UNC, UNF, and UNEF diameter-and-pitch combinations. A dash indicates that the diameter is not normally assigned a preferred thread in that particular series.
Numbered UN Thread Sizes
| Nominal size | Basic major diameter (in) | UNC | UNF | UNEF |
|---|---|---|---|---|
| #0 | 0.0600 | — | 80 | — |
| #1 | 0.0730 | 64 | 72 | — |
| #2 | 0.0860 | 56 | 64 | — |
| #3 | 0.0990 | 48 | 56 | — |
| #4 | 0.1120 | 40 | 48 | — |
| #5 | 0.1250 | 40 | 44 | — |
| #6 | 0.1380 | 32 | 40 | — |
| #8 | 0.1640 | 32 | 36 | — |
| #10 | 0.1900 | 24 | 32 | — |
| #12 | 0.2160 | 24 | 28 | 32 |
The values under UNC, UNF, and UNEF indicate threads per inch.
Fractional UN Thread Sizes
| Nominal size | Basic major diameter (in) | UNC TPI | UNF TPI | UNEF TPI |
|---|---|---|---|---|
| 1/4 | 0.2500 | 20 | 28 | 32 |
| 5/16 | 0.3125 | 18 | 24 | 32 |
| 3/8 | 0.3750 | 16 | 24 | 32 |
| 7/16 | 0.4375 | 14 | 20 | 28 |
| 1/2 | 0.5000 | 13 | 20 | 28 |
| 9/16 | 0.5625 | 12 | 18 | 24 |
| 5/8 | 0.6250 | 11 | 18 | 24 |
| 11/16 | 0.6875 | — | 16 | 24 |
| 3/4 | 0.7500 | 10 | 16 | 20 |
| 13/16 | 0.8125 | — | 16 | 20 |
| 7/8 | 0.8750 | 9 | 14 | 20 |
| 15/16 | 0.9375 | — | 14 | 20 |
| 1 | 1.0000 | 8 | 12 | 20 |
| 1 1/16 | 1.0625 | — | 12 | 18 |
| 1 1/8 | 1.1250 | 7 | 12 | 18 |
| 1 3/16 | 1.1875 | — | 12 | 18 |
| 1 1/4 | 1.2500 | 7 | 12 | 18 |
| 1 5/16 | 1.3125 | — | 12 | 18 |
| 1 3/8 | 1.3750 | 6 | 12 | 18 |
| 1 7/16 | 1.4375 | — | 12 | 18 |
| 1 1/2 | 1.5000 | 6 | 12 | 18 |
| 1 9/16 | 1.5625 | — | 12 | 18 |
| 1 5/8 | 1.6250 | — | 12 | 18 |
| 1 11/16 | 1.6875 | — | 12 | 18 |
| 1 3/4 | 1.7500 | 5 | 12 | 16 |
| 1 13/16 | 1.8125 | — | 12 | 16 |
| 1 7/8 | 1.8750 | — | 12 | 16 |
| 1 15/16 | 1.9375 | — | 12 | 16 |
| 2 | 2.0000 | 4.5 | 12 | 16 |
| 2 1/4 | 2.2500 | 4.5 | — | — |
| 2 1/2 | 2.5000 | 4 | — | — |
| 2 3/4 | 2.7500 | 4 | — | — |
| 3 | 3.0000 | 4 | — | — |
| 3 1/4 | 3.2500 | 4 | — | — |
| 3 1/2 | 3.5000 | 4 | — | — |
| 3 3/4 | 3.7500 | 4 | — | — |
| 4 | 4.0000 | 4 | — | — |
For large diameters, constant-pitch thread series such as 8-UN and 12-UN are commonly used instead of relying only on the coarse or fine series.
UN Thread Pitch Conversion Chart
| TPI | Pitch (in) | Pitch (mm) |
|---|---|---|
| 4 | 0.2500 | 6.350 |
| 4.5 | 0.2222 | 5.644 |
| 5 | 0.2000 | 5.080 |
| 6 | 0.1667 | 4.233 |
| 7 | 0.1429 | 3.629 |
| 8 | 0.1250 | 3.175 |
| 9 | 0.1111 | 2.822 |
| 10 | 0.1000 | 2.540 |
| 11 | 0.0909 | 2.309 |
| 12 | 0.0833 | 2.117 |
| 13 | 0.0769 | 1.954 |
| 14 | 0.0714 | 1.814 |
| 16 | 0.0625 | 1.588 |
| 18 | 0.0556 | 1.411 |
| 20 | 0.0500 | 1.270 |
| 24 | 0.0417 | 1.058 |
| 28 | 0.0357 | 0.907 |
| 32 | 0.0313 | 0.794 |
| 36 | 0.0278 | 0.706 |
| 40 | 0.0250 | 0.635 |
| 44 | 0.0227 | 0.577 |
| 48 | 0.0208 | 0.529 |
| 56 | 0.0179 | 0.454 |
| 64 | 0.0156 | 0.397 |
| 72 | 0.0139 | 0.353 |
| 80 | 0.0125 | 0.318 |
Basic UN Thread Dimension Formulas
The following formulas can be used to estimate basic dimensions for a standard 60-degree UN thread:
P=TPI1 E=D−0.649519P d1=D−1.226869P
Where:
- P = thread pitch
- D = basic major diameter
- E = basic pitch diameter
- d1 = basic external minor diameter
- TPI = threads per inch
Example: 1/2-13 UNC
For a 1/2-13 UNC thread:
D=0.5000 in P=131=0.076923 in E=0.5000−(0.649519×0.076923)≈0.4500 in d1=0.5000−(1.226869×0.076923)≈0.4056 in
Therefore, its approximate basic dimensions are:
| Dimension | Basic value |
|---|---|
| Major diameter | 0.5000 in |
| Pitch | 0.0769 in |
| Pitch diameter | 0.4500 in |
| External minor diameter | 0.4056 in |
These are theoretical basic dimensions, not manufacturing acceptance limits. Final inspection must use the maximum and minimum dimensions specified for the applicable thread class, such as 2A for an external thread or 2B for an internal thread.
5. UN Thread Classes: 1A, 2A, 3A, 1B, 2B, and 3B
UN thread classes define the amount of dimensional tolerance and clearance between mating internal and external threads. Selecting the correct class is important because it affects assembly ease, thread fit, interchangeability, manufacturing cost, and positional accuracy.
A complete thread designation includes a class number followed by the letter A or B:
- A: External thread, such as a bolt or screw
- B: Internal thread, such as a nut or tapped hole
For example:
- 1/2-13 UNC-2A: External Class 2 thread
- 1/2-13 UNC-2B: Internal Class 2 thread
When the external and internal parts are assembled, a Class 2A bolt is normally paired with a Class 2B nut or tapped hole.
Class 1A and 1B Threads
Class 1 threads provide the loosest fit and the largest amount of assembly clearance. They are used where rapid assembly and easy disassembly are more important than precise positioning.
Typical characteristics include:
- Generous dimensional tolerance
- Easy manual assembly
- Better tolerance of dirt and minor thread damage
- Reduced risk of interference
- Lower positional accuracy
- Noticeable clearance between mating threads
Typical applications include:
- Temporary assemblies
- Adjustment mechanisms
- Low-precision equipment
- Components exposed to dirt or corrosion
- Assemblies that require frequent removal
Class 1 threads are less common than Class 2 threads in modern general-purpose manufacturing.
Class 2A and 2B Threads
Class 2 threads provide a medium fit and are the most commonly used UN thread classes. They balance manufacturing economy, interchangeability, strength, and assembly performance.
Typical characteristics include:
- Standard commercial fit
- Reliable interchangeability
- Moderate manufacturing tolerance
- Easy assembly without excessive looseness
- Suitable for mass-produced fasteners
- Widely available gauges and tooling
Typical applications include:
- Commercial bolts and nuts
- Machinery and industrial equipment
- Automotive assemblies
- Structural connections
- Hydraulic and pneumatic equipment
- General maintenance fasteners
A designation such as 3/8-16 UNC-2A identifies a standard external coarse thread. The matching internal thread is normally specified as 3/8-16 UNC-2B.
Class 2A external threads normally include an allowance that creates intentional clearance between mating components. Class 2B internal threads generally use the basic profile as their maximum-material reference, with tolerance extending toward additional clearance.
Class 3A and 3B Threads
Class 3 threads provide a close and accurate fit. Their dimensional tolerances are tighter than those of Classes 1 and 2.
Typical characteristics include:
- Small clearance between mating threads
- High positional accuracy
- Tight dimensional tolerance
- Higher manufacturing and inspection cost
- Greater sensitivity to dirt, damage, and plating thickness
- Careful alignment required during assembly
Typical applications include:
- Aerospace fasteners
- Precision instruments
- High-performance machinery
- Critical mechanical assemblies
- Applications requiring accurate alignment
- Components subjected to demanding fatigue conditions
Class 3A external threads typically have no intentional allowance at maximum material condition. Consequently, plating, coatings, dimensional variation, or contamination can interfere with assembly if they are not properly considered.
Comparison of UN Thread Classes
| Thread class | Fit | Clearance | Manufacturing cost | Typical use |
|---|---|---|---|---|
| 1A/1B | Loose | High | Relatively low | Rapid assembly and contaminated environments |
| 2A/2B | Standard | Moderate | Economical | General industrial and commercial fasteners |
| 3A/3B | Close | Low | Higher | Precision, aerospace, and critical assemblies |
The thread class does not change the nominal diameter or TPI. A 1/2-13 UNC thread remains a 1/2-inch, 13-TPI thread whether it is Class 1, 2, or 3. The class changes its dimensional limits and fit.
Allowance and Tolerance
Although allowance and tolerance are related, they have different meanings.
Allowance is the intentional difference between the maximum-material sizes of mating external and internal threads. It provides a designed minimum clearance.
Tolerance is the permitted dimensional variation during manufacturing. It defines the acceptable range between the maximum and minimum sizes.
External Class 1A and 2A threads normally have an allowance. Class 3A threads generally have no allowance, which creates a closer fit but demands tighter production control.
Coated and Plated Threads
Surface treatments can increase the dimensions of external threads and reduce the available space inside internal threads. Zinc plating, nickel plating, paint, dry-film lubricant, and other coatings must therefore be considered when selecting thread limits.
If an external thread is manufactured to its maximum permissible pre-plating size, adding a coating may cause it to exceed the final allowable dimension. The machining or rolling dimensions may need to be adjusted so the finished coated thread remains within specification.
For coated threads, engineers should define whether the specified dimensions apply:
- Before coating
- After coating
- Before and after coating
- At maximum or minimum coating thickness
Selecting the Correct Thread Class
Class 2A and 2B are appropriate for most general industrial applications. Class 3 should be selected only when tighter fit and accuracy provide a functional benefit, because it increases manufacturing and inspection requirements.
Selection should consider:
- Required assembly clearance
- Manufacturing method
- Expected contamination
- Frequency of assembly
- Surface treatment thickness
- Temperature variation
- Alignment requirements
- Inspection capabilities
- Industry standards
A tighter thread class does not automatically make the joint stronger. Joint strength depends on fastener material, tensile stress area, engagement length, preload, joint geometry, and installation method.
6. UN Thread Drill Size Chart
A tap drill creates the initial hole into which an internal thread is cut or formed. The correct drill size must provide enough material for strong thread engagement while avoiding excessive tapping torque.
If the hole is too small:
- Tapping torque increases.
- The tap may break.
- The thread may tear or gall.
- Tool life is reduced.
- Dimensional accuracy may deteriorate.
If the hole is too large:
- Thread engagement decreases.
- The internal thread may strip under load.
- The finished thread may fail inspection.
- Joint strength may be reduced.
The following chart lists commonly used drill sizes for cutting standard Class 2B internal threads. Exact drill selection may vary with material, required percentage of thread, tap type, hole depth, and applicable standard.
Numbered Screw Tap Drill Sizes
| Thread size | Series | TPI | Common tap drill | Drill diameter (in) | Approx. diameter (mm) |
|---|---|---|---|---|---|
| #0-80 | UNF | 80 | 3/64 in | 0.0469 | 1.19 |
| #1-64 | UNC | 64 | #53 | 0.0595 | 1.51 |
| #1-72 | UNF | 72 | #53 | 0.0595 | 1.51 |
| #2-56 | UNC | 56 | #50 | 0.0700 | 1.78 |
| #2-64 | UNF | 64 | #50 | 0.0700 | 1.78 |
| #3-48 | UNC | 48 | #47 | 0.0785 | 1.99 |
| #3-56 | UNF | 56 | #45 | 0.0820 | 2.08 |
| #4-40 | UNC | 40 | #43 | 0.0890 | 2.26 |
| #4-48 | UNF | 48 | #42 | 0.0935 | 2.37 |
| #5-40 | UNC | 40 | #38 | 0.1015 | 2.58 |
| #5-44 | UNF | 44 | #37 | 0.1040 | 2.64 |
| #6-32 | UNC | 32 | #36 | 0.1065 | 2.71 |
| #6-40 | UNF | 40 | #33 | 0.1130 | 2.87 |
| #8-32 | UNC | 32 | #29 | 0.1360 | 3.45 |
| #8-36 | UNF | 36 | #29 | 0.1360 | 3.45 |
| #10-24 | UNC | 24 | #25 | 0.1495 | 3.80 |
| #10-32 | UNF | 32 | #21 | 0.1590 | 4.04 |
| #12-24 | UNC | 24 | #16 | 0.1770 | 4.50 |
| #12-28 | UNF | 28 | #14 | 0.1820 | 4.62 |
| #12-32 | UNEF | 32 | #13 | 0.1850 | 4.70 |
Fractional UNC Tap Drill Sizes
| Thread size | TPI | Common tap drill | Drill diameter (in) | Approx. diameter (mm) |
|---|---|---|---|---|
| 1/4-20 UNC | 20 | #7 | 0.2010 | 5.11 |
| 5/16-18 UNC | 18 | F | 0.2570 | 6.53 |
| 3/8-16 UNC | 16 | 5/16 in | 0.3125 | 7.94 |
| 7/16-14 UNC | 14 | U | 0.3680 | 9.35 |
| 1/2-13 UNC | 13 | 27/64 in | 0.4219 | 10.72 |
| 9/16-12 UNC | 12 | 31/64 in | 0.4844 | 12.30 |
| 5/8-11 UNC | 11 | 17/32 in | 0.5313 | 13.49 |
| 3/4-10 UNC | 10 | 21/32 in | 0.6563 | 16.67 |
| 7/8-9 UNC | 9 | 49/64 in | 0.7656 | 19.45 |
| 1-8 UNC | 8 | 7/8 in | 0.8750 | 22.23 |
| 1 1/8-7 UNC | 7 | 63/64 in | 0.9844 | 25.00 |
| 1 1/4-7 UNC | 7 | 1 7/64 in | 1.1094 | 28.18 |
| 1 3/8-6 UNC | 6 | 1 7/32 in | 1.2188 | 30.96 |
| 1 1/2-6 UNC | 6 | 1 11/32 in | 1.3438 | 34.13 |
Fractional UNF Tap Drill Sizes
| Thread size | TPI | Common tap drill | Drill diameter (in) | Approx. diameter (mm) |
|---|---|---|---|---|
| 1/4-28 UNF | 28 | #3 | 0.2130 | 5.41 |
| 5/16-24 UNF | 24 | I | 0.2720 | 6.91 |
| 3/8-24 UNF | 24 | Q | 0.3320 | 8.43 |
| 7/16-20 UNF | 20 | 25/64 in | 0.3906 | 9.92 |
| 1/2-20 UNF | 20 | 29/64 in | 0.4531 | 11.51 |
| 9/16-18 UNF | 18 | 33/64 in | 0.5156 | 13.10 |
| 5/8-18 UNF | 18 | 37/64 in | 0.5781 | 14.68 |
| 3/4-16 UNF | 16 | 11/16 in | 0.6875 | 17.46 |
| 7/8-14 UNF | 14 | 13/16 in | 0.8125 | 20.64 |
| 1-12 UNF | 12 | 59/64 in | 0.9219 | 23.42 |
| 1 1/8-12 UNF | 12 | 1 3/64 in | 1.0469 | 26.59 |
| 1 1/4-12 UNF | 12 | 1 11/64 in | 1.1719 | 29.77 |
| 1 3/8-12 UNF | 12 | 1 19/64 in | 1.2969 | 32.94 |
| 1 1/2-12 UNF | 12 | 1 27/64 in | 1.4219 | 36.12 |
Common UNEF Tap Drill Sizes
| Thread size | TPI | Common tap drill | Drill diameter (in) | Approx. diameter (mm) |
|---|---|---|---|---|
| 1/4-32 UNEF | 32 | 7/32 in | 0.2188 | 5.56 |
| 5/16-32 UNEF | 32 | 9/32 in | 0.2813 | 7.14 |
| 3/8-32 UNEF | 32 | 11/32 in | 0.3438 | 8.73 |
| 7/16-28 UNEF | 28 | #Z | 0.4130 | 10.49 |
| 1/2-28 UNEF | 28 | 15/32 in | 0.4688 | 11.91 |
| 9/16-24 UNEF | 24 | 33/64 in | 0.5156 | 13.10 |
| 5/8-24 UNEF | 24 | 37/64 in | 0.5781 | 14.68 |
| 3/4-20 UNEF | 20 | 45/64 in | 0.7031 | 17.86 |
| 7/8-20 UNEF | 20 | 53/64 in | 0.8281 | 21.03 |
| 1-20 UNEF | 20 | 61/64 in | 0.9531 | 24.21 |
Estimating a Tap Drill Size
A simple approximation for a cutting tap is:
Tap drill diameter=D−TPI1
Where:
- D = nominal major diameter in inches
- TPI = threads per inch
For a 1/2-13 UNC thread:
0.5000−131=0.4231 in
The nearest commonly used drill is 27/64 inch:
6427=0.4219 in
This formula provides only a practical estimate. Production applications should use the drill size recommended for the required thread percentage, workpiece material, and tap manufacturer.
Cutting Taps vs. Forming Taps
The drill sizes above are primarily intended for conventional cutting taps. A forming tap displaces material instead of removing it and therefore requires a larger pilot hole.
Using a cutting-tap drill size with a forming tap can produce excessive torque, tap breakage, or an oversized thread crest. Always follow the forming-tap manufacturer’s recommended hole size.
7. How to Read a UN Thread Designation
A UN thread designation communicates the size, pitch, thread series, tolerance class, and whether the thread is internal or external. Additional information may define the thread direction, engagement length, coating, or special inspection requirements.
A typical designation is:
1/2-13 UNC-2A
This callout can be divided into four principal elements:
| Element | Meaning |
|---|---|
| 1/2 | Nominal major diameter in inches |
| 13 | Threads per inch |
| UNC | Unified National Coarse series |
| 2 | Thread tolerance class |
| A | External thread |
The corresponding internal thread would be:
1/2-13 UNC-2B
Nominal Diameter
The first value represents the nominal major diameter. Fractional sizes are used for threads 1/4 inch and larger.
Examples include:
- 1/4-20 UNC
- 3/8-24 UNF
- 1/2-28 UNEF
- 1-8 UNC
For small machine screws, the first value is a number:
- #4-40 UNC
- #6-32 UNC
- #8-36 UNF
- #10-32 UNF
A #10 thread, for example, has a nominal major diameter of 0.190 inch.
Threads per Inch
The number following the nominal size identifies TPI. It determines the pitch of the thread.
For example:
- 3/8-16 has a pitch of 1/16 inch.
- 3/8-24 has a pitch of 1/24 inch.
- 3/8-32 has a pitch of 1/32 inch.
Although all three threads have the same nominal diameter, they cannot mate because their pitches are different.
Thread Series
The letters after the TPI identify the thread series:
- UNC: Unified National Coarse
- UNF: Unified National Fine
- UNEF: Unified National Extra Fine
- UNS: Unified National Special
- UN: Unified constant-pitch or general UN-series designation
Examples include:
- 5/16-18 UNC-2A
- 5/16-24 UNF-2A
- 5/16-32 UNEF-2A
- 5/16-28 UNS-2A
The thread series should not be assumed from diameter alone. Both the diameter and TPI must be checked.
Tolerance Class and Thread Type
The class number defines the fit and tolerance, while the letter identifies the thread location.
- 1A: Loose-fit external thread
- 1B: Loose-fit internal thread
- 2A: Standard external thread
- 2B: Standard internal thread
- 3A: Close-fit external thread
- 3B: Close-fit internal thread
For general commercial equipment, Classes 2A and 2B are the most common.
Example: 1/4-20 UNC-2A
The designation 1/4-20 UNC-2A means:
- Nominal diameter: 1/4 inch
- Basic major diameter: 0.2500 inch
- TPI: 20
- Pitch: 0.0500 inch
- Series: Unified National Coarse
- Class: 2
- Thread type: External
A mating nut or tapped hole would typically be specified as 1/4-20 UNC-2B.
Example: 3/8-24 UNF-2B
The designation 3/8-24 UNF-2B means:
- Nominal diameter: 3/8 inch
- Basic major diameter: 0.3750 inch
- TPI: 24
- Pitch: approximately 0.0417 inch
- Series: Unified National Fine
- Class: 2
- Thread type: Internal
Example: 1/2-28 UNEF-3A
The designation 1/2-28 UNEF-3A means:
- Nominal diameter: 1/2 inch
- TPI: 28
- Pitch: approximately 0.0357 inch
- Series: Unified National Extra Fine
- Class: 3
- Thread type: External
This callout identifies a precision external thread with a relatively small pitch.
Reading a Constant-Pitch UN Designation
A thread such as 2-8 UN-2A has:
- A 2-inch nominal diameter
- Eight threads per inch
- A Unified constant-pitch thread form
- Class 2 fit
- An external thread
The designation differs from 1-8 UNC-2A, even though both have eight threads per inch. The nominal diameters are different, and one belongs to a coarse series while the other uses a general constant-pitch UN designation.
Left-Hand Thread Designations
Standard threads are right-hand threads unless otherwise stated. A right-hand fastener tightens when turned clockwise.
A left-hand thread must be identified by the letters LH:
1/2-20 UNF-2A-LH
This designation indicates:
- 1/2-inch nominal diameter
- 20 TPI
- UNF series
- Class 2 external thread
- Left-hand thread direction
Left-hand threads are used where normal rotation could loosen a right-hand thread or where opposing adjustment is required.
Multiple-Start Thread Designations
Most standard fasteners use single-start threads. If a thread has two or more starts, the designation must provide enough information to identify both the pitch and lead.
For example, a two-start thread advances twice the pitch during one complete revolution:
L=2P
Multiple-start UN threads are specialized and should be fully defined on the engineering drawing to prevent confusion.
Thread Depth or Engagement Length
A drawing may add a depth after an internal thread designation:
3/8-16 UNC-2B × 0.75 DEEP
This means the component requires a 3/8-16 UNC Class 2B internal thread with a specified threaded depth of 0.75 inch.
For a blind hole, the drawing may need to distinguish between:
- Full thread depth
- Drilled hole depth
- Usable thread length
- Tap runout allowance
The drilled hole must normally extend beyond the required full thread depth to provide space for the tap point, chips, and incomplete threads.
Common Thread Callout Errors
Frequent specification mistakes include:
- Omitting the TPI
- Using only the nominal diameter
- Confusing UNC with UNF
- Omitting the internal or external designation
- Specifying an unavailable diameter-and-pitch combination
- Failing to identify a left-hand thread
- Treating a basic dimension as a production tolerance
- Failing to account for plating or coating
- Confusing UN threads with similarly sized metric or BSP threads
A complete and unambiguous designation should include at least the nominal size, TPI, series, class, and internal or external identification.
7. How to Read a UN Thread Designation
A UN thread designation provides the information needed to identify and manufacture a thread correctly. A standard callout normally includes the nominal diameter, threads per inch, thread series, tolerance class, and whether the thread is external or internal.
A typical designation is:
1/2-13 UNC-2A
| Designation element | Meaning |
|---|---|
| 1/2 | Nominal thread diameter in inches |
| 13 | Number of threads per inch |
| UNC | Unified National Coarse series |
| 2 | Thread tolerance class |
| A | External thread |
The corresponding internal thread is normally designated:
1/2-13 UNC-2B
Nominal Thread Diameter
The first part of the designation indicates the nominal major diameter. For threads 1/4 inch and larger, the diameter is usually expressed as a fraction or whole number.
Examples include:
- 1/4-20 UNC
- 3/8-24 UNF
- 1/2-28 UNEF
- 1-8 UNC
- 1 1/2-12 UN
For machine screws smaller than 1/4 inch, numbered sizes are used:
- #4-40 UNC
- #6-32 UNC
- #8-36 UNF
- #10-32 UNF
The nominal diameter of a numbered screw can be estimated using:
D=0.060+0.013N
Where N is the screw number. For example, a #10 screw has a nominal diameter of:
D=0.060+(0.013×10)=0.190 in
Threads per Inch
The second value indicates the number of threads per inch. It defines how closely the threads are spaced.
For example:
- 3/8-16 UNC has 16 TPI.
- 3/8-24 UNF has 24 TPI.
- 3/8-32 UNEF has 32 TPI.
Thread pitch can be calculated from TPI:
P=TPI1
For a 3/8-24 UNF thread:
P=241=0.0417 in
Although the three examples have the same nominal diameter, they cannot mate because their thread pitches are different.
Thread Series
The letters following the TPI identify the Unified thread series:
- UNC: Unified National Coarse
- UNF: Unified National Fine
- UNEF: Unified National Extra Fine
- UNS: Unified National Special
- UN: General Unified or constant-pitch thread series
For example:
- 5/16-18 UNC: Coarse thread
- 5/16-24 UNF: Fine thread
- 5/16-32 UNEF: Extra-fine thread
- 5/16-28 UNS: Special diameter-and-pitch combination
A thread series should never be identified from the diameter alone. The nominal diameter and TPI must both be measured.
Thread Tolerance Class
The number following the thread series identifies the tolerance class:
- Class 1: Loose fit
- Class 2: Standard commercial fit
- Class 3: Close precision fit
Class 2 is the most frequently used choice for general industrial fasteners. Class 3 is used when closer control and more accurate positioning are required.
External and Internal Thread Identification
The final letter indicates whether the thread is external or internal:
- A: External thread
- B: Internal thread
External threads are found on bolts, screws, studs, and externally threaded shafts. Internal threads are found in nuts, tapped holes, and internally threaded components.
A typical mating pair is:
- External: 3/8-16 UNC-2A
- Internal: 3/8-16 UNC-2B
The external and internal components must have the same nominal diameter, TPI, thread series, and compatible tolerance classes.
Example: 1/4-20 UNC-2A
This designation means:
| Characteristic | Value |
|---|---|
| Nominal diameter | 1/4 in |
| Basic major diameter | 0.2500 in |
| Threads per inch | 20 |
| Pitch | 0.0500 in |
| Thread series | UNC |
| Tolerance class | Class 2 |
| Thread type | External |
The mating internal thread would normally be specified as 1/4-20 UNC-2B.
Example: 1/2-20 UNF-2B
This designation means:
- Nominal diameter: 1/2 inch
- Basic major diameter: 0.5000 inch
- Threads per inch: 20
- Pitch: 0.0500 inch
- Thread series: UNF
- Tolerance class: Class 2
- Thread type: Internal
Notice that a 1/2-20 UNF thread has the same pitch as a 1/4-20 UNC thread. However, they cannot mate because their nominal diameters are different.
Example: 1/2-28 UNEF-3A
This designation identifies:
- A 1/2-inch nominal diameter
- 28 threads per inch
- Unified National Extra Fine series
- Class 3 precision fit
- An external thread
The corresponding internal component would generally use the designation 1/2-28 UNEF-3B.
Reading a Constant-Pitch UN Thread
Large-diameter threads may use a constant-pitch series. For example:
2-8 UN-2A
This designation indicates:
- 2-inch nominal diameter
- Eight threads per inch
- Unified constant-pitch thread series
- Class 2 external thread
Other constant-pitch series include 4-UN, 6-UN, 8-UN, 12-UN, 16-UN, 20-UN, 28-UN, and 32-UN.
Left-Hand Thread Designation
UN threads are assumed to be right-hand unless otherwise specified. A left-hand thread is identified by the suffix LH.
For example:
1/2-20 UNF-2A-LH
This identifies a 1/2-inch, 20-TPI, Class 2 external UNF left-hand thread.
Left-hand threads are used where normal equipment rotation could loosen a right-hand connection or where two opposing threads provide directional adjustment.
Thread Depth on Engineering Drawings
A blind tapped hole may be designated as:
3/8-16 UNC-2B × 0.75 DEEP
This specifies a Class 2B internal thread with a required thread depth of 0.75 inch.
The drawing should distinguish between:
- Full thread depth
- Usable thread length
- Drilled hole depth
- Tap runout
- Bottom clearance
The drilled depth is normally greater than the required full thread depth because the end of a standard tap cannot produce complete threads all the way to the bottom of a blind hole.
Common UN Thread Callout Mistakes
Common mistakes include:
- Omitting the TPI
- Omitting the thread class
- Failing to identify an internal or external thread
- Confusing UNC and UNF
- Specifying an unavailable thread combination
- Failing to identify a left-hand thread
- Ignoring plating or coating thickness
- Confusing nominal diameter with measured outside diameter
A complete thread callout prevents manufacturing errors and ensures that mating components are interchangeable.
8. UN Threads vs. Metric and Other Inch Thread Standards
UN threads can appear similar to metric, BSP, Whitworth, and other inch-based thread forms. However, threads with similar outside diameters are not necessarily compatible. Differences in pitch, thread angle, crest shape, root geometry, and tolerance system can prevent correct assembly or create an unsafe connection.
UN Threads vs. Metric Threads
UN and ISO metric threads both use a symmetrical 60-degree thread profile. Their main difference is the measurement system used to define diameter and pitch.
UN threads use:
- Nominal diameter in inches
- Threads per inch
- UNC, UNF, UNEF, or UNS series
- Classes such as 2A and 2B
Metric threads use:
- Nominal diameter in millimetres
- Pitch measured directly in millimetres
- Coarse or fine pitch series
- Tolerance classes such as 6g and 6H
For example:
- 1/2-13 UNC-2A: 1/2-inch diameter with 13 TPI
- M12 × 1.75-6g: 12 mm diameter with a 1.75 mm pitch
A 1/2-inch thread has a basic major diameter of 12.700 mm, while an M12 thread has a basic major diameter of 12.000 mm. Although they may look similar, they are not interchangeable.
| Feature | UN thread | ISO metric thread |
|---|---|---|
| Measurement system | Inch | Metric |
| Thread angle | 60° | 60° |
| Diameter format | Fractional or numbered inch size | Millimetres |
| Pitch format | Threads per inch | Millimetres per thread |
| Example | 1/2-13 UNC-2A | M12 × 1.75-6g |
| External class | 1A, 2A, or 3A | Such as 6g |
| Internal class | 1B, 2B, or 3B | Such as 6H |
Because both standards use a 60-degree profile, some combinations may begin to engage. This does not make them compatible. Forcing them together can damage the threads and significantly reduce joint strength.
UN Threads vs. British Standard Whitworth Threads
British Standard Whitworth threads use a 55-degree thread angle and rounded crests and roots. UN threads use a 60-degree profile with different truncation and root geometry.
| Feature | UN thread | Whitworth thread |
|---|---|---|
| Thread angle | 60° | 55° |
| Pitch specification | TPI | TPI |
| Crest and root form | Truncated UN profile | Rounded profile |
| Common series | UNC, UNF and UNEF | BSW and BSF |
| Measurement system | Inch | Inch |
UNC and BSW threads sometimes have similar nominal sizes and TPI values. For example, 1/4-20 UNC and 1/4-20 BSW share the same nominal size and TPI. However, their thread angles and profiles are different.
They may appear to assemble in loose or worn components, but they should not be treated as interchangeable in a properly engineered connection.
UN Threads vs. BSP Threads
BSP stands for British Standard Pipe. Unlike standard UN fastener threads, BSP threads are intended primarily for pipe and fluid connections.
The two main BSP types are:
- BSPP: British Standard Pipe Parallel
- BSPT: British Standard Pipe Taper
BSP threads use a 55-degree Whitworth thread profile. UN threads use a 60-degree profile.
Another major difference is nominal sizing. A BSP thread designation refers to the nominal bore of the associated pipe rather than directly representing the measured outside diameter.
For example, a 1/2-inch BSP male thread has an outside diameter of approximately 0.825 inch, not 0.500 inch.
| Feature | UN thread | BSP thread |
|---|---|---|
| Primary use | Fasteners and mechanical assemblies | Pipe and fluid connections |
| Thread angle | 60° | 55° |
| Diameter basis | Nominal major diameter | Nominal pipe bore |
| Parallel or tapered | Normally parallel | BSPP parallel or BSPT tapered |
| Sealing method | Usually not pressure-sealing by thread alone | Seal, gasket, bonded washer, or thread interference |
| Example | 1/2-13 UNC | G 1/2 or R 1/2 |
A UN bolt thread should not be used as a replacement for a BSP connection, even if the measured diameter appears similar.
UN Threads vs. NPT Threads
NPT stands for National Pipe Taper. Both NPT and UN threads use a 60-degree thread angle, but they serve different purposes and have different geometries.
NPT threads are tapered at a rate of 1 in 16 on diameter. Standard UN threads are parallel. NPT sizes are also based on nominal pipe size rather than actual outside diameter.
| Feature | UN thread | NPT thread |
|---|---|---|
| Thread angle | 60° | 60° |
| Thread shape | Parallel | Tapered |
| Primary purpose | Mechanical fastening | Fluid and pressure connections |
| Size basis | Nominal thread diameter | Nominal pipe size |
| Sealing | Not normally through thread interference | Interference plus sealant |
| Example | 1/2-13 UNC | 1/2-14 NPT |
For example, a 1/2-14 NPT male thread has an outside diameter much larger than 0.500 inch. It must not be confused with a 1/2-inch UN fastener thread.
UN Threads vs. SAE Straight Threads
The term “SAE thread” can be ambiguous. In some industries, it informally refers to UNF fastener threads. In hydraulic systems, however, an SAE straight thread commonly refers to an SAE O-ring boss, or SAE ORB, connection.
An SAE ORB fitting normally uses a straight UN or UNF thread, but the thread itself does not create the pressure seal. Sealing is provided by an elastomeric O-ring compressed against a machined port surface.
For example, an SAE ORB connection may use a 3/4-16 UNF thread. A normal 3/4-16 bolt could share the nominal thread geometry, but it does not necessarily have the required fitting shoulder, O-ring groove, port dimensions, material, or pressure rating.
Thread compatibility alone does not establish functional interchangeability.
UN Threads vs. JIC Threads
JIC fittings typically use straight UNF threads and a 37-degree flare sealing surface. The threads draw the mating flare surfaces together but do not directly provide the fluid seal.
A JIC fitting is identified by several combined features:
- Straight UNF thread
- 37-degree flare seat
- Tube or hose dash size
- Correct male and female sealing surfaces
A component with a matching UNF thread but no 37-degree sealing seat is not a functional JIC connection.
UN Threads vs. UNJ Threads
UNJ threads are based on the Unified thread system but use a controlled larger root radius on the external thread. This design reduces stress concentration and improves fatigue resistance.
UNJ threads are widely used in aerospace and other high-fatigue applications.
| Feature | UN thread | UNJ thread |
|---|---|---|
| Thread angle | 60° | 60° |
| External root | Standard UN root form | Larger controlled root radius |
| Fatigue resistance | Standard | Improved |
| Typical application | General industry | Aerospace and fatigue-critical joints |
| Interchangeability | Standard UN rules | Requires careful dimensional verification |
A UNJ external thread may require a larger minor diameter and a specially controlled internal thread form to provide clearance for its root radius. UN and UNJ components should not be assumed interchangeable without checking the applicable specifications.
UN Threads vs. ACME Threads
ACME threads are power-transmission threads rather than general-purpose fastening threads. They use a 29-degree included angle and have broad, flat crests and roots.
| Feature | UN thread | ACME thread |
|---|---|---|
| Thread angle | 60° | 29° |
| Primary purpose | Fastening | Linear power transmission |
| Profile | V-shaped | Trapezoidal |
| Typical application | Bolts, screws and nuts | Lead screws, jacks and actuators |
ACME threads are better suited to transmitting axial motion and high loads in lead screws. They are not interchangeable with UN threads.
Comparison of Common Thread Standards
| Standard | Thread angle | Size system | Pitch expression | Parallel or tapered | Typical purpose |
|---|---|---|---|---|---|
| UN | 60° | Inch | TPI | Parallel | Mechanical fastening |
| ISO metric | 60° | Metric | Millimetres | Parallel | Mechanical fastening |
| BSW/BSF | 55° | Inch | TPI | Parallel | British fasteners |
| BSPP | 55° | Nominal pipe size | TPI | Parallel | Fluid connections |
| BSPT | 55° | Nominal pipe size | TPI | Tapered | Fluid connections |
| NPT | 60° | Nominal pipe size | TPI | Tapered | Pressure piping |
| UNJ | 60° | Inch | TPI | Parallel | Fatigue-resistant fasteners |
| ACME | 29° | Inch | TPI | Parallel | Power transmission |
Why Similar Threads Must Not Be Forced Together
Two threads may appear to fit during the first few turns but still be incompatible. Forcing mismatched threads together can cause:
- Cross-threading
- Flank deformation
- Reduced engagement
- Inaccurate preload
- Leakage in fluid systems
- Thread stripping
- Fatigue failure
- Difficulty during future disassembly
Correct identification requires checking at least:
- Outside diameter
- Threads per inch or metric pitch
- Thread angle
- Parallel or tapered geometry
- Thread series
- Sealing surface
- Tolerance class
A thread gauge and caliper can provide an initial identification, but critical threads should be verified using the applicable dimensional standard, plug gauge, ring gauge, or manufacturer’s specification.
9. How to Identify and Measure a UN Thread

Correctly identifying a UN thread requires checking several features, including the outside diameter, threads per inch, thread angle, thread direction, and whether the thread is parallel or tapered. Measuring only the outside diameter is not sufficient because UN, metric, BSP, and pipe threads may have similar dimensions.
Clean and Inspect the Thread
Before measuring, remove dirt, oil, corrosion, sealant, and metal particles from the thread. Inspect it for:
- Damaged or flattened crests
- Worn thread flanks
- Cross-threading
- Burrs and deformation
- Corrosion
- Coating buildup
- Incomplete threads
Measurements taken over damaged or contaminated areas may produce incorrect results.
Identify an Internal or External Thread
First, determine whether the component has an external or internal thread:
- External thread: Found on bolts, screws, studs, shafts, and male fittings
- Internal thread: Found inside nuts, tapped holes, and female components
In UN designations, external threads use the letter A, while internal threads use the letter B.
For example:
- 1/2-13 UNC-2A: External thread
- 1/2-13 UNC-2B: Internal thread
Measure the Major Diameter
Use a caliper or micrometer to measure across the crests of an external thread. Take several measurements along the threaded length to check for wear, taper, and out-of-roundness.
The measured value should be compared with the nearest nominal UN size.
| Approximate measured diameter | Likely nominal size |
|---|---|
| 0.250 in | 1/4 in |
| 0.3125 in | 5/16 in |
| 0.375 in | 3/8 in |
| 0.4375 in | 7/16 in |
| 0.500 in | 1/2 in |
| 0.625 in | 5/8 in |
| 0.750 in | 3/4 in |
| 0.875 in | 7/8 in |
| 1.000 in | 1 in |
An actual external thread may measure slightly smaller than its nominal diameter because of manufacturing allowance and tolerance. For example, a 1/2-inch external thread may measure slightly below 0.500 inch.
Internal thread diameters are more difficult to measure directly. Plug gauges, internal micrometers, bore gauges, or known mating components are normally used.
Determine the Threads per Inch
Use an inch thread pitch gauge to determine the TPI. Place different gauge leaves against the thread until the teeth fit evenly into the thread grooves.
The correct gauge should:
- Contact the thread flanks evenly
- Fit without rocking
- Show no visible gaps
- Match several consecutive threads
If a thread pitch gauge is unavailable, count the number of thread intervals over a known axial distance.
For example, if eight pitches occupy 1/2 inch:
TPI=0.58=16
The thread therefore has 16 TPI.
For short threaded components, measure several pitches and calculate:
TPI=Ln
Where:
- n = number of thread intervals
- L = measured axial length in inches
Measuring across several pitches provides a more accurate result than measuring only one.
Compare Diameter and TPI
Once the major diameter and TPI have been measured, compare both values with a UN thread size chart.
| Approximate diameter | TPI | Likely designation |
|---|---|---|
| 0.250 in | 20 | 1/4-20 UNC |
| 0.250 in | 28 | 1/4-28 UNF |
| 0.250 in | 32 | 1/4-32 UNEF |
| 0.375 in | 16 | 3/8-16 UNC |
| 0.375 in | 24 | 3/8-24 UNF |
| 0.375 in | 32 | 3/8-32 UNEF |
| 0.500 in | 13 | 1/2-13 UNC |
| 0.500 in | 20 | 1/2-20 UNF |
| 0.500 in | 28 | 1/2-28 UNEF |
| 0.750 in | 10 | 3/4-10 UNC |
| 0.750 in | 16 | 3/4-16 UNF |
| 1.000 in | 8 | 1-8 UNC |
| 1.000 in | 12 | 1-12 UNF |
Both diameter and TPI must match. A 1/2-13 UNC bolt cannot mate correctly with a 1/2-20 UNF nut, even though their nominal diameters are identical.
Verify the Thread Angle
UN threads have a symmetrical 60-degree included angle. A thread profile gauge, optical comparator, or toolmaker’s microscope may be used to verify the angle.
This check helps distinguish UN threads from Whitworth-based threads, including BSP, BSW, and BSF, which use a 55-degree profile.
Threads with similar diameters and pitches should not be considered interchangeable unless their profiles also match.
Check for Parallel or Tapered Geometry
Standard UN fastening threads are parallel. Their diameter remains nearly constant over the threaded length.
Measure an external thread near both ends. A progressively changing diameter may indicate a tapered pipe thread such as NPT or BSPT rather than a standard UN thread.
This distinction is important because NPT threads also use a 60-degree profile but are tapered and sized according to nominal pipe dimensions.
Determine the Thread Direction
Most UN threads are right-hand threads. They tighten when turned clockwise and loosen when turned counterclockwise.
Left-hand threads tighten counterclockwise and should include the suffix LH:
1/2-20 UNF-2A-LH
Viewed from the side, a right-hand thread helix rises toward the right, while a left-hand thread helix rises toward the left.
Measure the Pitch Diameter
Pitch diameter is the most important dimension controlling the fit between internal and external threads. It cannot normally be measured accurately with a standard caliper.
Common pitch-diameter measurement methods include:
- Thread micrometer
- Three-wire method
- Optical comparator
- Coordinate measuring machine
- GO and NO-GO gauges
A thread micrometer uses a V-shaped anvil and conical spindle designed to contact the thread flanks. The correct measuring anvils must be selected for the applicable TPI range.
Three-Wire Measurement Method
The three-wire method is a highly accurate way to measure the pitch diameter of an external thread. Three precision wires are placed in the thread grooves, and a micrometer measures over the wires.
For a 60-degree thread, the approximate best wire size is:
W=0.57735P
Where:
- W = best wire diameter
- P = thread pitch
The measured value over the wires is then converted into pitch diameter using the applicable formula and correction factors.
This method is commonly used for precision machining and calibration work.
Inspect with GO and NO-GO Gauges
Thread gauges provide a practical way to verify whether a thread meets its specified dimensional class.
For internal threads, use:
- GO plug gauge
- NO-GO plug gauge
For external threads, use:
- GO ring gauge
- NO-GO ring gauge
The GO gauge should engage the complete functional thread length without excessive force. The NO-GO gauge should not engage beyond the limit permitted by the applicable inspection standard.
Simply testing a thread with a normal bolt or nut does not prove that it meets the specified tolerance class.
UN Thread Identification Checklist
Before identifying a thread as UN, verify:
- Nominal major diameter
- Threads per inch
- 60-degree thread angle
- Parallel geometry
- Internal or external thread
- Right-hand or left-hand direction
- UNC, UNF, UNEF, UN, or UNS series
- Required tolerance class
- Coating or plating condition
- Sealing surface if the thread belongs to a fluid fitting
10. Selecting the Correct UN Thread Size
Selecting a UN thread requires more than choosing a bolt diameter. The thread series, pitch, tolerance class, material strength, engagement length, loading conditions, and operating environment all affect joint performance.
Select the Nominal Diameter
The nominal diameter must be large enough to support the applied tensile, shear, bending, and fatigue loads.
A larger thread diameter generally provides:
- Greater tensile capacity
- Higher shear strength
- More thread contact area
- Greater bending resistance
- Higher potential clamp load
However, larger fasteners also require more space, material, installation torque, and larger tools. Safety-critical fasteners should be selected using engineering calculations rather than diameter alone.
Choose Between UNC and UNF
UNC and UNF threads offer different advantages.
UNC threads are commonly selected for:
- General machinery
- Structural assemblies
- Rapid installation
- Soft internally threaded materials
- Cast components
- Dirty working environments
- Frequent assembly and disassembly
UNF threads are commonly selected for:
- Precise adjustment
- Automotive and aerospace equipment
- Thin-wall components
- Short engagement in strong materials
- Higher tensile stress area
- Smaller axial movement per revolution
| Selection factor | UNC | UNF |
|---|---|---|
| Assembly speed | Faster | Slower |
| Resistance to handling damage | Better | Lower |
| Suitability for soft materials | Better | Requires more care |
| Tensile stress area | Smaller | Larger |
| Adjustment accuracy | Lower | Higher |
| Contamination tolerance | Better | Lower |
| Cross-threading risk | Lower | Higher |
Neither thread series is always stronger. The correct choice depends on the anticipated failure mode and the materials used in the joint.
Use UNEF for Specialized Applications
UNEF threads provide a very small pitch and precise axial adjustment. They are used for:
- Thin retaining nuts
- Precision instruments
- Aerospace components
- Electrical connectors
- Thin-wall fittings
- Specialized hydraulic equipment
Because UNEF threads are shallow and closely spaced, they are more sensitive to dirt, galling, and mechanical damage. They also require more turns to assemble.
Consider the Tensile Stress Area
The tensile stress area represents the effective cross-sectional area of a threaded fastener subjected to axial tension. It can be approximated by:
At=4π(D−TPI0.9743)2
Where:
- At = tensile stress area
- D = nominal diameter in inches
- TPI = threads per inch
For the same nominal diameter, fine threads generally provide a larger tensile stress area because their thread depth is smaller.
For example:
| Thread size | Approximate tensile stress area |
|---|---|
| 1/2-13 UNC | 0.1419 in² |
| 1/2-20 UNF | 0.1599 in² |
However, the larger tensile area of UNF does not automatically make the complete joint stronger. Internal-thread stripping, fatigue, preload loss, material strength, and engagement length must also be evaluated.
Determine the Required Thread Engagement
Thread engagement is the axial length over which the internal and external threads are in contact. Insufficient engagement can cause thread stripping before the fastener reaches its intended tensile load.
The required engagement depends on:
- External thread strength
- Internal thread material
- Thread diameter
- Thread pitch
- Applied load
- Operating temperature
- Manufacturing tolerances
- Number of assembly cycles
Steel-to-steel joints may require less engagement than a hardened steel bolt installed in aluminium or plastic.
Engagement of approximately one nominal diameter is sometimes used as a preliminary starting point for steel components, but it is not a universal design requirement. Critical joints require a thread-stripping calculation.
Consider the Internally Threaded Material
The internal thread is often the weakest part of a joint, particularly when a high-strength steel bolt is installed into aluminium, cast iron, brass, or plastic.
General considerations include:
- Steel: Commonly suitable for UNC or UNF threads
- Aluminium: Often benefits from UNC threads and greater engagement
- Cast iron: Coarse threads help provide deeper engagement
- Brass: Requires controlled torque to avoid stripping
- Plastic: Usually requires coarse threads, long engagement, or inserts
- Thin sheet: May require a nut, threaded insert, or formed feature
Threaded inserts can improve durability when a soft material must withstand repeated assembly.
Account for Vibration and Fatigue
Fine threads have a smaller helix angle and permit more precise preload adjustment, but thread pitch alone does not prevent loosening.
Vibration resistance depends mainly on:
- Correct preload
- Joint stiffness
- Prevention of joint slip
- Surface condition
- Installation accuracy
- Locking method
- Repeated external loading
Where loosening is possible, consider prevailing-torque nuts, thread-locking adhesive, lock wire, tab washers, or other approved locking methods.
For fatigue-loaded joints, avoid exposing the first engaged thread to excessive stress and ensure the fastener maintains adequate preload throughout operation.
Select the Thread Class
For most industrial applications, the normal selection is:
- 2A: External thread
- 2B: Internal thread
Use Class 1 when generous clearance and easy assembly are required. Use Class 3 when close fit and high positional accuracy provide a clear functional benefit.
An unnecessarily tight tolerance class increases:
- Machining cost
- Inspection requirements
- Rejection risk
- Sensitivity to contamination
- Sensitivity to coating thickness
- Risk of assembly interference
A tighter thread class does not automatically increase joint strength.
Consider Coating and Plating Thickness
Plating and coating change the effective dimensions of a thread. A coating increases the effective size of an external thread and decreases the available clearance in an internal thread.
Common finishes include:
- Zinc plating
- Nickel plating
- Cadmium plating
- Hot-dip galvanizing
- Paint
- Dry-film lubricant
- PTFE-based coating
The drawing should specify whether thread dimensions apply before or after coating. Thick coatings may require additional allowance or special tapping dimensions.
Prevent Galling
Stainless steel, nickel alloys, aluminium, and titanium threads may gall during assembly. Galling occurs when contacting surfaces adhere and tear under pressure.
The risk can be reduced by:
- Cleaning the threads
- Using a compatible lubricant
- Reducing installation speed
- Avoiding impact tools where inappropriate
- Preventing misalignment
- Selecting suitable material combinations
- Using approved surface coatings
- Controlling tightening torque
Lubrication reduces friction and can significantly increase fastener preload for the same applied torque. Dry and lubricated torque values should not be treated as equivalent.
Consider the Operating Environment
Thread selection should account for:
- Corrosive chemicals
- Marine exposure
- High or low temperature
- Thermal cycling
- Dirt and dust
- Repeated disassembly
- Vibration
- Pressure
- Radiation
- Cleanroom requirements
Material, coating, lubricant, and locking method must all remain suitable for the expected environment.
Practical Selection Guide
| Application | Typical selection |
|---|---|
| General industrial fastening | UNC-2A/2B |
| Standard commercial machinery | Class 2A/2B |
| Soft internally threaded material | UNC with increased engagement |
| Precision adjustment | UNF or UNEF |
| Thin-wall component | UNF or UNEF |
| Dirty operating environment | UNC |
| Frequent assembly and removal | UNC |
| Aerospace precision assembly | Class 3A/3B where specified |
| Large-diameter fastener | Constant-pitch UN series may be suitable |
| Unusual diameter-and-pitch requirement | UNS |
| Coated fastener | Allowance must account for coating thickness |
The final thread selection should comply with the applicable design standard and be verified by calculation for safety-critical joints.
Conclusion
UN threads are standardized inch-based screw threads used extensively in machinery, structural assemblies, automotive equipment, aerospace components, hydraulic systems, and general industrial applications. Their 60-degree profile and defined diameter-and-pitch combinations allow properly manufactured internal and external threads to be assembled interchangeably.
The principal Unified thread series are:
- UNC: Coarse threads for general use, rapid assembly, and softer materials
- UNF: Fine threads for precise adjustment and a larger tensile stress area
- UNEF: Extra-fine threads for thin-wall and precision applications
- UNS: Special diameter-and-pitch combinations
- UN: Constant-pitch series commonly used for larger diameters
A UN thread size chart helps users identify the nominal diameter, TPI, pitch, thread series, basic dimensions, tolerance class, and tap drill size. Correct identification requires checking both the major diameter and threads per inch. The thread angle, direction, taper, and fit class should also be verified.
Threads that appear similar should never be forced together. UN, metric, BSP, NPT, Whitworth, and other thread standards may differ in diameter, pitch, angle, taper, and sealing method.
For general commercial applications, Classes 2A and 2B are normally appropriate. Critical components should be manufactured and inspected using the dimensional limits specified by the applicable standard rather than relying only on basic chart values. Proper thread selection, adequate engagement, correct preload, compatible materials, and controlled installation are all necessary to produce a safe and reliable threaded joint.
Contents1 1. What Is a BSP Thread?2 2. BSPP vs. BSPT Threads2.1 BSPP Threads2.2 BSPT Threads3 3. BSP Thread Terminology and Dimensions3.1 Nominal BSP Size3.2 Major Diameter3.3 Minor Diameter3.4 Pitch Diameter3.5 Threads per Inch3.6 Thread Pitch3.7 Thread Angle3.8 Thread Taper3.9 Male and Female Thread Designations4 4. BSP Thread Size Chart5 5. BSPP Thread Size Chart5.1 […]
Contents1 1. What Is a UNC Thread?1.1 UNC thread characteristics1.2 Understanding a UNC thread designation1.3 External and internal UNC threads1.4 Advantages of UNC threads1.5 Limitations of UNC threads1.6 Common UNC thread applications2 2. UNC Thread Terminology and Dimensions2.1 Nominal thread size2.2 Major diameter2.3 Minor diameter2.4 Pitch diameter2.5 Threads per inch2.6 Thread pitch2.7 Lead2.8 Thread angle […]
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