6. NPT and NPTF Thread Pitch Chart
NPT and NPTF are tapered pipe thread standards widely used in piping, instrumentation, hydraulic, pneumatic, and fluid-handling systems.
- NPT: National Pipe Taper
- NPTF: National Pipe Taper Fuel, also called Dryseal thread
Both thread types have a 60-degree thread angle and a nominal taper of 1:16 on diameter, equivalent to 3/4 inch per foot. Their diameters decrease toward the end of an external thread and increase toward the opening of an internal thread.
NPT joints normally require a suitable thread sealant or PTFE tape to fill the spiral leakage path between the mating threads. NPTF threads use controlled crest and root geometry to produce greater interference between mating threads. This design can create a pressure-tight dry seal when the threads are correctly manufactured and assembled, although sealants may still be specified for lubrication, corrosion protection, or additional sealing reliability.
NPT and NPTF Thread Pitch Chart
| Nominal pipe size |
Threads per inch |
Pitch |
Approximate outside diameter |
| 1/16 |
27 TPI |
0.941 mm |
7.895 mm |
| 1/8 |
27 TPI |
0.941 mm |
10.287 mm |
| 1/4 |
18 TPI |
1.411 mm |
13.716 mm |
| 3/8 |
18 TPI |
1.411 mm |
17.145 mm |
| 1/2 |
14 TPI |
1.814 mm |
21.336 mm |
| 3/4 |
14 TPI |
1.814 mm |
26.670 mm |
| 1 |
11.5 TPI |
2.209 mm |
33.401 mm |
| 1-1/4 |
11.5 TPI |
2.209 mm |
42.164 mm |
| 1-1/2 |
11.5 TPI |
2.209 mm |
48.260 mm |
| 2 |
11.5 TPI |
2.209 mm |
60.325 mm |
| 2-1/2 |
8 TPI |
3.175 mm |
73.025 mm |
| 3 |
8 TPI |
3.175 mm |
88.900 mm |
| 3-1/2 |
8 TPI |
3.175 mm |
101.600 mm |
| 4 |
8 TPI |
3.175 mm |
114.300 mm |
| 5 |
8 TPI |
3.175 mm |
141.300 mm |
| 6 |
8 TPI |
3.175 mm |
168.275 mm |
| 8 |
8 TPI |
3.175 mm |
219.075 mm |
| 10 |
8 TPI |
3.175 mm |
273.050 mm |
| 12 |
8 TPI |
3.175 mm |
323.850 mm |
The listed outside diameter represents the nominal major diameter at a defined reference or gauge plane. A caliper measurement taken at the end of a tapered male thread may be smaller. Manufacturing tolerances and the measurement location must therefore be considered during identification.
NPT Thread Designation Examples
| Designation |
Meaning |
| 1/8-27 NPT |
1/8-inch nominal size with 27 TPI |
| 1/4-18 NPT |
1/4-inch nominal size with 18 TPI |
| 1/2-14 NPT |
1/2-inch nominal size with 14 TPI |
| 1-11.5 NPT |
1-inch nominal size with 11.5 TPI |
| 1/4-18 NPTF |
1/4-inch Dryseal tapered thread with 18 TPI |
The nominal pipe size is not the measured outside diameter. For example, a 1/2-inch NPT external thread has an approximate major diameter of 21.336 mm, not 12.7 mm.
NPT vs. NPTF Threads
NPT and NPTF threads have the same nominal sizes, taper rates, and TPI values. The main difference lies in the crest and root tolerances.
| Feature |
NPT |
NPTF |
| Thread angle |
60° |
60° |
| Taper |
1:16 on diameter |
1:16 on diameter |
| Pitch series |
Same |
Same |
| Primary sealing principle |
Thread interference plus sealant |
Controlled crest-root interference |
| Sealant normally required |
Yes |
Not necessarily |
| Common applications |
General piping and instrumentation |
Fuel, hydraulic and pneumatic systems |
An NPT component may appear to assemble with an NPTF component because their basic forms are similar. However, a mixed connection may not provide the intended dry-seal performance. The specified thread designation should always be followed for critical pressure applications.
NPT vs. BSPT Pitch Comparison
| Nominal size |
NPT pitch |
BSPT pitch |
| 1/8 |
27 TPI |
28 TPI |
| 1/4 |
18 TPI |
19 TPI |
| 3/8 |
18 TPI |
19 TPI |
| 1/2 |
14 TPI |
14 TPI |
| 3/4 |
14 TPI |
14 TPI |
| 1 |
11.5 TPI |
11 TPI |
| 1-1/4 |
11.5 TPI |
11 TPI |
| 1-1/2 |
11.5 TPI |
11 TPI |
| 2 |
11.5 TPI |
11 TPI |
Even when the pitch appears identical, as with the 1/2-inch and 3/4-inch sizes, NPT and BSPT threads remain incompatible because NPT uses a 60-degree thread angle while BSPT uses a 55-degree Whitworth profile.
7. Thread Pitch vs. Threads per Inch (TPI)

Thread pitch and TPI describe the same thread spacing using different measurement systems.
To calculate pitch in inches:
Pitch (inches) = 1 ÷ TPI
To convert TPI to metric pitch:
Pitch (mm) = 25.4 ÷ TPI
To convert metric pitch to TPI:
TPI = 25.4 ÷ Pitch (mm)
Example: Converting TPI to Metric Pitch
For a 1/2-13 UNC thread:
Pitch = 25.4 ÷ 13 = 1.954 mm
The distance between adjacent threads is approximately 1.954 mm.
Example: Converting Metric Pitch to TPI
For an M12 × 1.75 thread:
TPI = 25.4 ÷ 1.75 = 14.51 TPI
The equivalent thread spacing is approximately 14.51 threads per inch.
These converted values are used for comparison only. They do not make metric and inch threads interchangeable.
Thread Pitch and TPI Conversion Chart
| TPI |
Pitch in inches |
Pitch in millimeters |
| 4 |
0.2500 in |
6.350 mm |
| 4.5 |
0.2222 in |
5.644 mm |
| 5 |
0.2000 in |
5.080 mm |
| 5.5 |
0.1818 in |
4.618 mm |
| 6 |
0.1667 in |
4.233 mm |
| 7 |
0.1429 in |
3.629 mm |
| 8 |
0.1250 in |
3.175 mm |
| 9 |
0.1111 in |
2.822 mm |
| 10 |
0.1000 in |
2.540 mm |
| 11 |
0.0909 in |
2.309 mm |
| 11.5 |
0.0870 in |
2.209 mm |
| 12 |
0.0833 in |
2.117 mm |
| 13 |
0.0769 in |
1.954 mm |
| 14 |
0.0714 in |
1.814 mm |
| 16 |
0.0625 in |
1.588 mm |
| 18 |
0.0556 in |
1.411 mm |
| 19 |
0.0526 in |
1.337 mm |
| 20 |
0.0500 in |
1.270 mm |
| 24 |
0.0417 in |
1.058 mm |
| 27 |
0.0370 in |
0.941 mm |
| 28 |
0.0357 in |
0.907 mm |
| 32 |
0.0313 in |
0.794 mm |
| 36 |
0.0278 in |
0.706 mm |
| 40 |
0.0250 in |
0.635 mm |
| 44 |
0.0227 in |
0.577 mm |
| 48 |
0.0208 in |
0.529 mm |
| 56 |
0.0179 in |
0.454 mm |
| 64 |
0.0156 in |
0.397 mm |
| 72 |
0.0139 in |
0.353 mm |
| 80 |
0.0125 in |
0.318 mm |
Metric Pitch to Approximate TPI Chart
| Metric pitch |
Approximate TPI |
| 0.20 mm |
127.00 |
| 0.25 mm |
101.60 |
| 0.30 mm |
84.67 |
| 0.35 mm |
72.57 |
| 0.40 mm |
63.50 |
| 0.45 mm |
56.44 |
| 0.50 mm |
50.80 |
| 0.60 mm |
42.33 |
| 0.70 mm |
36.29 |
| 0.75 mm |
33.87 |
| 0.80 mm |
31.75 |
| 1.00 mm |
25.40 |
| 1.25 mm |
20.32 |
| 1.50 mm |
16.93 |
| 1.75 mm |
14.51 |
| 2.00 mm |
12.70 |
| 2.50 mm |
10.16 |
| 3.00 mm |
8.47 |
| 3.50 mm |
7.26 |
| 4.00 mm |
6.35 |
| 4.50 mm |
5.64 |
| 5.00 mm |
5.08 |
| 5.50 mm |
4.62 |
| 6.00 mm |
4.23 |
These converted values are mathematical equivalents, not necessarily interchangeable standard thread sizes. For example, a 1.5 mm pitch corresponds to approximately 16.93 TPI, but this does not mean that an M10 × 1.5 thread can mate with a 17-TPI inch thread.
Conversion Example: TPI to Metric Pitch
For a 1/2-13 UNC thread:
Pmm=1325.4=1.954 mm
The thread therefore has an axial spacing of approximately 1.954 mm between adjacent crests.
Conversion Example: Metric Pitch to TPI
For an M12 × 1.75 thread:
TPI=1.7525.4=14.51
This thread has the equivalent spacing of approximately 14.51 threads per inch.
Pitch conversion is useful for identification and comparison, but compatibility also requires the same diameter, thread profile, angle, taper, and tolerance class.
8. How to Measure and Identify Thread Pitch

Correct thread identification requires more than measuring the outside diameter. The pitch, nominal diameter, thread profile, and taper must all be checked before selecting a mating component.
Clean the Thread
Remove dirt, corrosion, sealant, paint, and PTFE tape before taking measurements. Debris can prevent a pitch gauge from seating correctly and may cause inaccurate diameter readings.
Damaged first threads should not be used as the primary measurement area. Whenever possible, measure a clean and undamaged section farther from the thread end.
Determine Whether the Thread Is External or Internal
External threads are located on the outside of a bolt, screw, pipe, or fitting. Internal threads are located inside a nut, port, coupling, or threaded hole.
External threads are easier to measure directly with a caliper. Internal threads may require plug gauges, bore gauges, or comparison with a known mating component.
Measure the Major Diameter
Use a caliper to measure across the crests of an external thread. Take several measurements and avoid measuring only across a damaged or incomplete thread.
For an internal thread, measure the largest accessible diameter near the opening. This measurement is less precise than an external-thread measurement and should be used together with a pitch gauge and reference chart.
Metric fastener threads usually measure close to their nominal diameter. Pipe thread sizes, however, are nominal and do not match their measured outside diameters.
Measure the Pitch with a Thread Pitch Gauge
A thread pitch gauge is the most convenient tool for identifying pitch. The gauge contains multiple blades marked with metric pitch values or TPI values.
To use it:
- Select a blade with a pitch that appears close to the thread.
- Place the blade against the thread profile.
- Check whether the teeth fit completely into the grooves.
- Hold the assembly against a light source and look for gaps.
- Try the adjacent gauge sizes to confirm the closest fit.
The correct blade should sit evenly across several threads without rocking, binding, or leaving visible gaps.
Metric and inch thread pitch gauges are not marked in the same way. A blade marked 1.5 normally represents a 1.5 mm metric pitch, while a blade marked 18 normally represents 18 TPI.
Measure Pitch Without a Gauge
Check Whether the Thread Is Parallel or Tapered
Measure the external thread diameter at two locations separated along the thread axis.
- If the readings are approximately the same, the thread is likely parallel.
- If the diameter changes consistently, the thread is likely tapered.
NPT, NPTF, and BSPT pipe threads have a nominal taper of 1:16 on diameter. This means the diameter changes by approximately 1 unit for every 16 units of axial length.
A short or worn thread may not provide enough length for a reliable taper measurement. In that case, use an appropriate taper gauge or compare the thread against a verified reference component.
Identify the Thread Angle and Profile
Common thread angles include:
| Thread system |
Thread angle |
Typical profile |
| ISO metric |
60° |
Symmetrical V-thread |
| UNC, UNF and UNEF |
60° |
Symmetrical V-thread |
| NPT and NPTF |
60° |
Tapered American pipe thread |
| BSPP and BSPT |
55° |
Rounded Whitworth form |
A profile projector, optical comparator, thread gauge, or verified reference sample may be required to distinguish similar threads accurately.
Compare the Measurements with a Thread Chart
Once the diameter, pitch, and taper have been measured, compare them with a thread identification chart. Select the thread whose dimensions and characteristics match all observed measurements.
For example, an external thread measuring approximately 20.9 to 21.3 mm may potentially be:
- 1/2-inch BSP at approximately 20.955 mm
- 1/2-inch NPT at approximately 21.336 mm
- An M21 metric thread, if applicable
Pitch and thread profile are needed to distinguish among them. A 1/2-inch BSP thread has 14 TPI and a 55-degree profile, while a 1/2-inch NPT thread also has 14 TPI but uses a 60-degree profile and different diameter and taper characteristics.
Verify with a Thread Gauge
For maintenance identification, a pitch gauge and caliper may be sufficient. For manufacturing inspection or safety-critical service, verification should be performed with the correct calibrated gauge.
Common inspection tools include:
- GO and NO-GO thread plug gauges for internal threads
- GO and NO-GO thread ring gauges for external threads
- L1 plug and ring gauges for NPT threads
- Thread micrometers
- Three-wire measuring systems
- Optical comparators
- Coordinate measuring machines
Do not force an unknown male and female thread together as a method of identification. A partially matching thread can engage for several turns before binding, damaging the flanks, or creating an unsafe connection.
9. How to Select the Correct Thread Pitch
Selecting the correct thread pitch requires balancing strength, assembly speed, adjustment accuracy, material properties, vibration resistance, and product availability. The smallest pitch is not automatically the best choice, and threads with similar dimensions should never be assumed to be compatible.
Match the Existing Thread Standard
When replacing a bolt, fitting, adapter, or instrument connection, first identify the complete thread designation. Confirm the following characteristics:
- Nominal diameter or nominal pipe size
- Thread pitch or TPI
- Parallel or tapered construction
- Thread angle and profile
- Internal or external thread
- Right-hand or left-hand direction
- Tolerance or fit class
- Required sealing method
For example, identifying a connection only as “1/2-inch thread” is insufficient. It could refer to 1/2-13 UNC, 1/2-20 UNF, G 1/2 BSPP, R 1/2 BSPT, or 1/2-14 NPT. These threads differ in diameter, pitch, profile, taper, and sealing method.
Choose Coarse Threads for General-Purpose Assembly
Coarse threads have a larger pitch and fewer threads per unit length. Common examples include M12 × 1.75 and 1/2-13 UNC.
Coarse threads are generally preferred when:
- Fast assembly and disassembly are important
- The component is exposed to dirt, corrosion, or minor damage
- The female thread is cut into aluminum, cast iron, plastic, or another relatively soft material
- Thread stripping is a concern
- Frequent field maintenance is expected
- Standard hardware availability is important
The deeper thread form and wider spacing make coarse threads more tolerant of contamination and damage. They also require fewer turns to achieve a given engagement length.
Choose Fine Threads for Precise Adjustment
Fine threads have a smaller pitch and more threads per unit length. Examples include M12 × 1.25 and 1/2-20 UNF.
Fine threads may be appropriate when:
- Precise axial adjustment is required
- Limited radial wall thickness is available
- A larger tensile-stress area is desirable for the same nominal diameter
- The engagement length is relatively short
- Higher clamping control is required
- The application uses established fine-thread components
Because fine threads advance a shorter distance per revolution, they provide more accurate positioning. However, their shallow thread depth makes them more vulnerable to cross-threading, contamination, galling, and damage.
Consider the Parent Material
The material containing the internal thread strongly affects pitch selection. A fine pitch creates more engaged threads within a given length, but its shallower thread form may not be ideal for weak or soft materials.
Coarse threads are commonly preferred in:
- Aluminum
- Magnesium
- Cast iron
- Plastics
- Soft alloys
- Components with damaged or contaminated threaded holes
Fine threads are more often used in steel and other materials capable of supporting their smaller thread profile. Thread inserts may be used when a strong, wear-resistant internal thread is required in a soft parent material.
Evaluate Thread Engagement Length
Thread engagement is the axial length over which the external and internal threads contact each other.
An adequate engagement length is necessary to distribute the load and reduce the risk of stripping. The required length depends on:
- Fastener diameter
- Thread pitch
- External and internal thread materials
- Tensile load
- Shear strength
- Tolerance class
- Required safety factor
Using more engaged threads does not increase strength indefinitely. The first few engaged threads typically carry a larger portion of the load because loading is not distributed perfectly evenly.
Thread engagement should be verified by engineering calculation or the applicable design standard for critical joints.
Consider Vibration and Dynamic Loading
Fine threads are sometimes selected for applications involving vibration because their smaller lead angle and finer axial movement may offer advantages in maintaining preload. However, thread pitch alone does not guarantee resistance to loosening.
A reliable vibration-resistant joint also depends on:
- Correct preload
- Tightening method
- Friction conditions
- Joint stiffness
- Fastener elasticity
- Locking feature
- External loading
- Temperature variation
Locknuts, prevailing-torque nuts, mechanical locking devices, safety wire, locking adhesives, or other approved retention methods may be required.
Check Strength and Load Requirements
For the same nominal diameter, fine threads generally have a larger tensile-stress area because their thread roots are not as deep as those of coarse threads. This can provide greater tensile capacity when the fastener material and joint design are otherwise identical.
However, the complete joint must be evaluated for:
- Bolt tensile failure
- Internal or external thread stripping
- Fatigue
- Bearing stress
- Joint separation
- Shear loading
- Temperature effects
- Corrosion
- Required design factor
Do not select a pitch based only on the bolt’s tensile capacity. A high-strength fine-thread bolt can still strip a weak internal thread.
Select the Correct Pipe Thread
For pipe and instrument connections, pitch is only one selection factor. The required thread must also match the connection standard and sealing method.
| Thread type |
Construction |
Typical sealing method |
| BSPP |
Parallel |
Gasket, bonded washer, O-ring or sealing face |
| BSPT |
Tapered |
Thread interference with suitable sealant |
| NPT |
Tapered |
Thread interference with sealant or PTFE tape |
| NPTF |
Tapered Dryseal |
Controlled crest-root interference |
| Metric parallel |
Parallel |
O-ring, gasket or sealing face, depending on design |
| SAE straight thread |
Parallel |
Elastomeric O-ring |
Never substitute BSPT for NPT merely because the components appear to have similar diameters or pitches. Use a properly rated adapter when connecting different thread systems.
Consider the Required Adjustment per Revolution
For a single-start thread, axial movement during one complete revolution equals the thread pitch:
Axial movement per revolution = Thread pitch
For a thread with a pitch of 1.5 mm:
Axial movement = 1.5 mm per revolution
For an inch thread, axial movement can be calculated from TPI:
Axial movement per revolution (mm) = 25.4 ÷ TPI
For a 20-TPI thread:
Axial movement = 25.4 ÷ 20 = 1.27 mm per revolution
A smaller pitch produces less axial movement per revolution, providing finer adjustment. A larger pitch produces more axial movement per revolution, allowing faster assembly and disassembly.
Check Commercial Availability
Standard coarse pitches are usually easier to source and less expensive than fine, extra-fine, or special pitches. Before specifying an uncommon pitch, confirm the availability of:
- Bolts and screws
- Nuts and threaded inserts
- Taps and dies
- Thread gauges
- Replacement parts
- Repair equipment
- Required material grades and coatings
Using a standard preferred pitch can reduce cost, lead time, and maintenance problems.
Confirm the Tolerance Class
Threads with the same nominal diameter and pitch may have different tolerance classes. The tolerance class controls the allowable variation in thread dimensions and the clearance between mating parts.
Examples include:
- Metric external thread: M12 × 1.75–6g
- Metric internal thread: M12 × 1.75–6H
- Unified external thread: 1/2-13 UNC-2A
- Unified internal thread: 1/2-13 UNC-2B
For unified threads:
- Class 1 provides a loose fit.
- Class 2 provides a general-purpose fit.
- Class 3 provides a closer, more controlled fit.
- “A” identifies an external thread.
- “B” identifies an internal thread.
Surface coatings can change the effective thread dimensions. Galvanizing, plating, painting, or other coatings must therefore be considered when defining thread allowances and tolerances.
Verify Pressure and Temperature Ratings
For fluid systems, a matching thread does not automatically mean that a connection is suitable for service. The complete fitting or component must be rated for the required:
- Working pressure
- Test pressure
- Temperature
- Fluid compatibility
- Vibration
- Thermal cycling
- Corrosion exposure
- Applicable code or standard
The pressure rating is determined by the complete component design and material, not by pitch alone.
Final Thread Selection Checklist
Before specifying or purchasing a threaded component, verify:
- The nominal diameter or pipe size is correct.
- The pitch or TPI matches.
- The thread profile and flank angle match.
- The thread is parallel or tapered as required.
- The male and female tolerance classes are compatible.
- The engagement length is sufficient.
- The selected pitch suits the parent material.
- The sealing method is appropriate.
- Pressure, temperature, and material ratings are adequate.
- The thread can be inspected with the proper gauge.
Conclusion
A thread pitch chart is a practical reference for identifying and comparing metric, UNC, UNF, UNEF, BSP, NPT, and NPTF threads. Metric threads specify the distance between adjacent threads in millimeters, while inch-based systems commonly describe thread spacing in threads per inch.
Thread pitch and TPI can be converted using the following formulas:
Pitch (mm) = 25.4 ÷ TPI
TPI = 25.4 ÷ Pitch (mm)
However, matching pitch values alone does not guarantee thread compatibility. The nominal diameter, thread angle, profile, taper, direction, and tolerance class must also match. This is particularly important when distinguishing between BSP and NPT threads, which may have similar diameters and pitch values but use different thread forms.
For preliminary identification, use a caliper to measure the thread diameter and a thread pitch gauge to determine the pitch or TPI. For manufacturing inspection, pressure-containing connections, or safety-critical applications, confirm the thread using an appropriate calibrated plug, ring, or taper gauge.
Correct thread identification helps prevent cross-threading, leakage, poor engagement, component damage, and premature joint failure. Always verify the complete thread specification before selecting or assembling threaded components.
BSPT Thread Size Chart: Dimensions, TPI, Pitch & Taper
BSPP vs BSPT Threads Size Chart : Differences & Guide