WELCOME TO HYDRAULIC INSIGHT !!!

Hydraulic Thread Identification Chart & Size Guide

Contents

Hydraulic fittings use several thread systems that can appear almost identical but are not necessarily compatible. NPT, BSP, JIC, SAE, ORFS, and metric fittings may have similar diameters, yet differ in thread pitch, thread angle, taper, sealing surface, or dimensional standard. Connecting the wrong thread types can damage the fitting, reduce its pressure capacity, and cause hydraulic fluid leakage.

A hydraulic thread identification chart helps technicians compare the most important characteristics of an unknown fitting, including:

  • Male or female thread
  • Straight or tapered thread
  • Outside or inside thread diameter
  • Threads per inch or metric pitch
  • Thread profile angle
  • Flare or sealing-seat angle
  • Sealing method
  • Applicable thread standard

Thread size alone is not enough to confirm a connection. For example, a 1/2-inch NPT thread and a 1/2-inch BSPT thread have similar outside diameters, but they use different pitches and thread-profile angles. They should not be connected even if they appear to engage during initial assembly.

Correct identification requires checking both the thread and the sealing surface. Some hydraulic connections seal through tapered thread interference, while others use an O-ring, a bonded washer, a cutting ring, or a metal-to-metal flare. This guide explains how to inspect an unknown hydraulic fitting and compare its measurements with a hydraulic thread identification chart.

1. What Is a Hydraulic Thread?

Hydraulic Thread Identification Chart & Size Guide

A hydraulic thread is the helical ridge machined into a fitting, adapter, hose end, valve, pump, cylinder, or equipment port. Male threads are formed on the outside of a component, while female threads are located inside a port or swivel nut.

The primary function of a hydraulic thread is to connect components securely and provide the mechanical force needed to maintain a pressure-tight joint. However, the thread itself does not always create the fluid seal. Depending on the connection type, sealing may occur at the threads, an O-ring, a metal flare, a cone, a bonded washer, or a cutting ring.

Hydraulic systems use several thread standards because equipment is manufactured in different countries and for different industries. The most common thread and connection families include:

  • NPT and NPTF
  • BSPP and BSPT
  • JIC 37-degree flare
  • SAE 45-degree flare
  • SAE O-ring boss
  • ORFS
  • Metric 24-degree cone
  • ISO 6149 metric O-ring port
  • JIS hydraulic connections

These systems can look similar but are not necessarily interchangeable.

Male and Female Hydraulic Threads

A male hydraulic fitting has threads on its outside surface. Its size is normally checked by measuring the major outside diameter across the thread crests.

A female fitting has internal threads. Its diameter is measured inside the opening, although this measurement may be less accurate because the caliper cannot always reach the full thread diameter.

Some female connections use a swivel nut. The nut pulls the mating components together, while an internal flare, cone, or O-ring creates the actual pressure seal.

Straight and Tapered Threads

Hydraulic threads are generally classified as straight or tapered.

A straight thread maintains approximately the same diameter along its threaded length. Common examples include:

  • BSPP
  • JIC
  • SAE ORB
  • ORFS
  • Metric parallel threads

Straight threads usually provide the mechanical clamping force rather than sealing directly on the threads. A separate sealing element or surface is therefore required.

A tapered thread gradually increases in diameter toward the fitting body. Examples include:

  • NPT
  • NPTF
  • BSPT

As a tapered male thread is tightened into a matching female port, the threads interfere and create an increasingly tight connection. NPT and BSPT connections normally require an approved thread sealant.

Thread Type and Connection Type

A thread type and a complete connection type are not always the same thing.

For example, JIC and SAE ORB fittings may use the same Unified thread size. However, they seal differently:

  • JIC seals on a 37-degree metal flare.
  • SAE ORB seals with an O-ring against the port chamfer.

Similarly, ORFS uses straight Unified threads, but the pressure seal is created by an O-ring located on the flat face of the male fitting.

Therefore, identifying only the thread diameter and pitch is not enough. The sealing surface must also be inspected.

Important Hydraulic Thread Characteristics

The following characteristics are used to identify a hydraulic thread:

Characteristic Description
Gender Male external thread or female internal thread
Major diameter Largest diameter measured across a male thread
Minor diameter Smallest diameter at the thread root
Pitch Distance between adjacent thread crests
TPI Number of threads per inch
Thread angle Included angle between the thread flanks
Taper Change in thread diameter along its length
Seat angle Angle of the flare or sealing cone
Sealing method Thread interference, O-ring, flare, washer, or cutting ring

Metric threads specify pitch in millimetres. For example, M18 × 1.5 indicates an 18 mm nominal diameter and a 1.5 mm pitch.

Inch threads commonly use TPI. For example, 9/16-18 UNF indicates a nominal thread diameter of 9/16 inch with 18 threads per inch.

2. How to Identify Hydraulic Threads

Hydraulic threads should be identified systematically. Avoid selecting a fitting based only on its apparent diameter or the number stamped on the component.

Step 1: Determine Whether the Thread Is Male or Female

A male fitting has external threads, while a female fitting has internal threads.

For a male thread, measure the major outside diameter across the thread crests. For a female thread, measure the inside diameter near the thread opening. Female-thread measurements are generally less reliable, so use a mating male fitting or manufacturer data whenever possible.

Some fittings contain a swivel nut with female threads. Although the nut is female, the connection may seal against an internal cone or flare rather than on the threads.

Step 2: Determine Whether the Thread Is Straight or Tapered

Straight, or parallel, threads maintain approximately the same diameter along their entire threaded length. Examples include:

  • BSPP
  • SAE straight thread
  • JIC
  • ORFS
  • Metric parallel thread

Tapered threads become progressively smaller toward the end of a male fitting. Common examples include NPT, NPTF, and BSPT.

A caliper can be used to check the thread form. Measure the diameter near the first complete thread and then measure it again several threads farther back. A noticeable difference normally indicates a tapered thread.

Do not assume that a connection seals on the threads simply because it uses a tapered thread. The complete fitting design and the manufacturer’s assembly instructions must also be considered.

Step 3: Measure the Thread Diameter

Use a vernier or digital caliper to measure the thread diameter.

For a male thread:

  1. Position the caliper across the thread crests.
  2. Measure the largest outside diameter.
  3. Avoid measuring over damaged or incomplete threads.

For a female thread:

  1. Measure near the opening of the fitting.
  2. Position the caliper against the thread crests inside the connection.
  3. Treat the result as an approximate value.

The measured diameter is often different from the nominal thread size. A 1/2-inch pipe thread, for example, does not have an outside diameter of exactly 0.500 inch. Nominal pipe sizes originated from pipe-bore classifications rather than the actual thread diameter.

Step 4: Measure the Thread Pitch

Thread pitch is one of the most useful characteristics for distinguishing between similar hydraulic threads.

Inch threads are normally specified in threads per inch, or TPI. A thread identified as 18 TPI has 18 complete thread crests over a one-inch length.

Metric threads specify the distance between adjacent thread crests in millimetres. For example:

M22×1.5

indicates a nominal thread diameter of 22 mm and a pitch of 1.5 mm.

The most reliable method is to place a thread-pitch gauge against the fitting and find the blade that fits fully between the threads. There should be no visible gaps between the gauge and the thread profile.

If a pitch gauge is unavailable, measure the distance across several thread crests and divide by the number of spaces. Measuring several threads produces a more accurate result than measuring only one.

Step 5: Inspect the Sealing Surface

The sealing method often identifies the connection family more reliably than the thread itself.

Look for the following features:

  • A tapered threaded surface
  • A 37-degree flare
  • A 45-degree flare
  • A 24-degree cone
  • A 30-degree seat
  • An O-ring in a groove behind the thread
  • An O-ring on the flat face
  • A flat shoulder for a bonded washer
  • A cutting ring or compression sleeve

JIC and SAE 45-degree fittings, for example, may use similar-looking UNF threads. However, their flare angles are different and the sealing surfaces are not interchangeable.

Likewise, SAE O-ring boss and JIC fittings can use the same thread size. An SAE ORB connection seals with an O-ring against the port chamfer, whereas a JIC connection seals at a 37-degree metal flare.

Step 6: Identify the Thread Profile Angle

Most Unified and metric threads use a 60-degree thread-profile angle. BSP threads use a 55-degree Whitworth profile.

This characteristic is particularly useful when distinguishing NPT from BSPT:

  • NPT and NPTF: 60-degree thread form
  • BSPP and BSPT: 55-degree thread form

The angle is measured between the two flanks of an individual thread, not between the fitting axis and its sealing seat.

Step 7: Compare All Measurements

Compare the measured diameter, pitch, thread form, and sealing surface with a hydraulic thread identification chart. A reliable identification should match every major characteristic.

Do not force together two fittings merely because the first few threads engage. Partial engagement can occur between incompatible threads and may permanently deform both components.

3. Hydraulic Thread Identification Chart

The following chart summarizes the hydraulic thread types most commonly found on industrial machinery, mobile equipment, hydraulic power units, and process systems.

Thread or Connection Type Common Standard Thread Form Thread Angle Typical Sealing Method Identification Feature
NPT ASME B1.20.1 Tapered 60° Thread interference with sealant Tapered pipe thread commonly used in North America
NPTF ASME B1.20.3 Tapered 60° Controlled thread interference Similar to NPT but designed for a tighter dry-seal fit
BSPP / G ISO 228-1 Parallel 55° Bonded washer, O-ring, or sealing face Constant thread diameter; thread itself normally does not create the pressure seal
BSPT / R ISO 7-1 Tapered male 55° Thread interference with sealant Whitworth thread profile and tapered male thread
JIC 37° SAE J514 / ISO 8434-2 Straight UN/UNF 60° 37° metal-to-metal flare Visible 37° cone or flared tube seat
SAE 45° Flare SAE J512 Straight UNF 60° 45° metal flare Similar to JIC but uses a steeper 45° sealing seat
SAE ORB SAE J1926-1 Straight UN/UNF 60° O-ring against port chamfer O-ring located behind the male thread
ORFS SAE J1453 / ISO 8434-3 Straight UN/UNF 60° Face-seal O-ring Flat fitting face with an O-ring groove
Metric 24° Cone ISO 8434-1 / DIN 2353 Straight metric 60° 24° cone with cutting ring or elastomeric seal Metric thread used with L, S, or LL tube-fitting series
Metric O-Ring Port ISO 6149-1 Straight metric 60° O-ring against port chamfer Metric thread with an O-ring behind the male thread
JIS 30° Flare JIS B 8363 Usually BSPP 55° 30° metal seat Common on Japanese hydraulic equipment
Komatsu-Style Metric 30° Manufacturer/Japanese designs Straight metric 60° 30° metal seat Metric thread combined with a 30° sealing cone

Common Pipe Thread Identification Chart

Nominal Size NPT/NPTF TPI BSPP/BSPT TPI Approx. NPT Male OD Approx. BSP Male OD
1/8 in 27 28 10.3 mm 9.7 mm
1/4 in 18 19 13.7 mm 13.2 mm
3/8 in 18 19 17.1 mm 16.7 mm
1/2 in 14 14 21.3 mm 21.0 mm
3/4 in 14 14 26.7 mm 26.4 mm
1 in 11.5 11 33.4 mm 33.2 mm
1 1/4 in 11.5 11 42.2 mm 41.9 mm
1 1/2 in 11.5 11 48.3 mm 47.8 mm
2 in 11.5 11 60.3 mm 59.6 mm

The dimensions above are intended for preliminary identification. Actual measurements can vary depending on the measurement position, thread tolerance, coating thickness, wear, and whether the thread is tapered.

Common JIC, SAE ORB, and ORFS Thread Sizes

JIC, SAE ORB, and ORFS connections often use the same Unified thread sizes. They are distinguished primarily by the sealing arrangement.

Dash Size Common Thread Size JIC 37° Flare SAE ORB ORFS
-4 7/16-20 UNF Yes Yes No
-5 1/2-20 UNF Yes Yes No
-6 9/16-18 UNF Yes Yes Yes
-8 3/4-16 UNF Yes Yes Yes
-10 7/8-14 UNF Yes Yes No
-12 1 1/16-12 UN Yes Yes Yes
-16 1 5/16-12 UN Yes Yes Yes
-20 1 5/8-12 UN Yes Yes Yes
-24 1 7/8-12 UN Yes Yes Yes
-32 2 1/2-12 UN Yes Yes Yes

A matching thread size does not mean the fittings are interchangeable. Always inspect the sealing end:

  • JIC uses a 37-degree flare.
  • SAE ORB uses an O-ring behind the male thread.
  • ORFS uses an O-ring installed in the flat face.

Common Metric Hydraulic Thread Sizes

Metric Thread Nominal Diameter Pitch Common Hydraulic Applications
M10 × 1.0 10 mm 1.0 mm Small instrumentation and hydraulic connections
M12 × 1.5 12 mm 1.5 mm Small metric fittings
M14 × 1.5 14 mm 1.5 mm Metric tube fittings and ports
M16 × 1.5 16 mm 1.5 mm DIN and mobile hydraulic fittings
M18 × 1.5 18 mm 1.5 mm Metric 24° cone connections
M20 × 1.5 20 mm 1.5 mm Hydraulic adapters and ports
M22 × 1.5 22 mm 1.5 mm Common DIN tube-fitting connection
M26 × 1.5 26 mm 1.5 mm Medium-size hydraulic fittings
M27 × 2.0 27 mm 2.0 mm Metric O-ring ports
M30 × 2.0 30 mm 2.0 mm Larger hydraulic connections
M36 × 2.0 36 mm 2.0 mm High-flow hydraulic connections
M42 × 2.0 42 mm 2.0 mm Large metric fittings and ports

Metric thread size must be considered together with the fitting series and sealing surface. An M22 × 1.5 thread may occur on different connection designs and does not, by itself, prove that two fittings are compatible.

For final component selection, confirm the dimensions against the applicable standard or the fitting manufacturer’s technical catalog. The chart should be used as an identification guide rather than as a substitute for pressure-rating and compatibility verification.

4. NPT, NPTF, BSPP, and BSPT Thread Size Chart

Pipe threads are widely used for hydraulic ports, adapters, gauges, valves, pumps, and other fluid-system components. The four common pipe-thread systems are NPT, NPTF, BSPP, and BSPT.

Although their nominal sizes may be similar, these threads differ in profile, pitch, taper, and sealing method.

NPT Threads

NPT stands for National Pipe Taper. It is a tapered pipe thread commonly used on hydraulic equipment manufactured in North America.

NPT threads have:

  • A 60-degree thread profile
  • A taper of 1:16 on diameter
  • Flattened thread crests and roots
  • Nominal sizes that differ from the actual thread diameter
  • A seal produced by thread interference and sealing compound

Because small spiral leak paths may remain between the mating threads, NPT connections normally require a suitable thread sealant or PTFE tape.

PTFE tape must be applied carefully. Loose pieces entering the hydraulic circuit can contaminate valves, pumps, and small control passages.

NPTF Threads

NPTF stands for National Pipe Taper Fuel, and it is also called a dry-seal pipe thread. It has the same nominal sizes, taper, and basic thread profile as NPT, but the crest and root dimensions are controlled differently.

During proper assembly, the crests of one thread interfere with the roots of the mating thread. This deformation is intended to eliminate the spiral leakage path.

NPT and NPTF threads may physically engage, but mixing them can affect sealing reliability. For critical hydraulic service, both components should comply with the specified thread standard.

BSPP Threads

BSPP stands for British Standard Pipe Parallel. It is also identified by the letter G, such as G 1/4 or G 1/2.

BSPP threads have:

  • A constant thread diameter
  • A 55-degree Whitworth thread profile
  • Rounded thread crests and roots
  • No sealing action between parallel threads

The threads provide the mechanical clamping force, while sealing is achieved separately through:

  • A bonded sealing washer
  • An O-ring
  • A metal sealing washer
  • A cone or flare seat
  • A port-face seal

Applying thread sealant to a standard BSPP connection does not compensate for a missing or damaged sealing element.

BSPT Threads

BSPT stands for British Standard Pipe Taper. It also uses a 55-degree Whitworth thread profile but has a tapered configuration.

Common ISO 7-1 thread designations include:

  • R: tapered external thread
  • Rc: tapered internal thread
  • Rp: parallel internal thread intended to mate with a tapered external thread

BSPT connections usually require an approved thread sealant. A tapered male R thread can be assembled into an Rc or suitable Rp female thread, depending on the connection design.

NPT and BSP Thread Identification Chart

Nominal Size Approx. NPT Male OD NPT/NPTF Pitch Approx. BSP Male OD BSPP/BSPT Pitch
1/8 in 10.3 mm 27 TPI 9.7 mm 28 TPI
1/4 in 13.7 mm 18 TPI 13.2 mm 19 TPI
3/8 in 17.1 mm 18 TPI 16.7 mm 19 TPI
1/2 in 21.3 mm 14 TPI 21.0 mm 14 TPI
3/4 in 26.7 mm 14 TPI 26.4 mm 14 TPI
1 in 33.4 mm 11.5 TPI 33.2 mm 11 TPI
1 1/4 in 42.2 mm 11.5 TPI 41.9 mm 11 TPI
1 1/2 in 48.3 mm 11.5 TPI 47.8 mm 11 TPI
2 in 60.3 mm 11.5 TPI 59.6 mm 11 TPI

The dimensions are approximate because tapered-thread measurements vary according to the location at which the caliper is placed.

NPT vs. BSPT

NPT and BSPT are frequently confused because both are tapered pipe threads. Their outside diameters are also close enough that an incorrect fitting may begin to screw into the port.

However, they have different thread profiles:

Feature NPT/NPTF BSPT
Thread angle 60° 55°
Thread profile Flattened crests and roots Rounded crests and roots
Common size designation 1/2-14 NPT R 1/2
Governing standard ASME B1.20.1 or B1.20.3 ISO 7-1
Typical sealing method Thread interference and sealant Thread interference and sealant

At 1/2 and 3/4 inch, both systems have 14 TPI. Therefore, pitch alone cannot distinguish them. The diameter, thread-profile angle, and fitting origin must also be checked.

NPT and BSPT should not be treated as interchangeable. Forcing them together can damage the threads while producing an unreliable pressure seal.

5. SAE, JIC, ORB, and ORFS Thread Identification Chart

JIC, SAE ORB, and ORFS fittings use straight Unified threads. Unlike tapered pipe threads, these connections do not seal between the male and female threads. The threads generate clamping force, while the flare or O-ring creates the pressure seal.

JIC 37-Degree Flare

JIC fittings are standardized primarily by SAE J514 and use a 37-degree metal flare.

A typical JIC connection consists of:

  • A male fitting with a 37-degree external cone
  • A female swivel with a matching 37-degree internal flare
  • Straight UN or UNF threads
  • A flared tube or hose-end fitting

When tightened, the two 37-degree surfaces are pressed together to form a metal-to-metal seal.

JIC fittings are commonly identified by dash size. The dash number generally represents the nominal tube outside diameter in sixteenths of an inch. For example:

  • -4 corresponds to 4/16 inch, or 1/4-inch tubing
  • -6 corresponds to 6/16 inch, or 3/8-inch tubing
  • -8 corresponds to 8/16 inch, or 1/2-inch tubing
  • -12 corresponds to 12/16 inch, or 3/4-inch tubing

SAE O-Ring Boss

SAE O-ring boss, commonly abbreviated as SAE ORB, is a straight-thread port connection covered by SAE J1926.

The male fitting has an O-ring positioned in a groove between the threads and the fitting shoulder. During assembly, the O-ring enters the port chamfer and is compressed to create the pressure seal.

SAE ORB offers several advantages over tapered pipe threads:

  • The O-ring provides a predictable sealing mechanism
  • Less assembly torque is required
  • The port is less likely to crack from excessive tightening
  • Adjustable elbows and tees can be oriented before final tightening
  • The connection can provide reliable performance at high hydraulic pressures

JIC and SAE ORB commonly use the same thread-size sequence, but their sealing ends are completely different.

JIC and SAE ORB Thread Size Chart

Dash Size Thread Size Approx. Male Thread OD Nominal Tube Size
-2 5/16-24 UNF 7.9 mm 1/8 in
-3 3/8-24 UNF 9.5 mm 3/16 in
-4 7/16-20 UNF 11.1 mm 1/4 in
-5 1/2-20 UNF 12.7 mm 5/16 in
-6 9/16-18 UNF 14.3 mm 3/8 in
-8 3/4-16 UNF 19.1 mm 1/2 in
-10 7/8-14 UNF 22.2 mm 5/8 in
-12 1 1/16-12 UN 27.0 mm 3/4 in
-14 1 3/16-12 UN 30.2 mm 7/8 in
-16 1 5/16-12 UN 33.3 mm 1 in
-20 1 5/8-12 UN 41.3 mm 1 1/4 in
-24 1 7/8-12 UN 47.6 mm 1 1/2 in
-32 2 1/2-12 UN 63.5 mm 2 in

Not every product series is available in every dash size. Always confirm the manufacturer’s catalog before selecting a component.

ORFS Connections

ORFS stands for O-Ring Face Seal. These connections are standardized by SAE J1453 and ISO 8434-3.

The male fitting has a flat face containing an O-ring groove. The female swivel has a corresponding flat sealing face. Tightening the swivel nut compresses the O-ring axially between the two faces.

ORFS connections are particularly suitable for:

  • High-pressure hydraulic systems
  • Applications exposed to vibration
  • Equipment subjected to pressure impulses
  • Systems requiring low leakage
  • Mobile hydraulic machinery

The O-ring is easily visible on the face of the male fitting, making ORFS relatively easy to identify. However, its straight threads can still be confused with other SAE connections if the sealing face is not inspected.

ORFS Thread Size Chart

ORFS Dash Size Thread Size Approx. Male Thread OD Nominal Tube OD
-4 9/16-18 UNF 14.3 mm 1/4 in
-6 11/16-16 UN 17.5 mm 3/8 in
-8 13/16-16 UN 20.6 mm 1/2 in
-10 1-14 UN 25.4 mm 5/8 in
-12 1 3/16-12 UN 30.2 mm 3/4 in
-16 1 7/16-12 UN 36.5 mm 1 in
-20 1 11/16-12 UN 42.9 mm 1 1/4 in
-24 2-12 UN 50.8 mm 1 1/2 in
-32 2 1/2-12 UN 63.5 mm 2 in

SAE 45-Degree Flare

SAE 45-degree flare fittings use a metal-to-metal sealing surface similar in principle to JIC fittings. However, their sealing seat is 45 degrees rather than 37 degrees.

They are more commonly found in:

  • Refrigeration systems
  • Fuel systems
  • Low- and medium-pressure lines
  • Older industrial and mobile equipment

A 45-degree flare should never be assembled with a 37-degree JIC seat. The threads may fit, but the sealing surfaces will contact incorrectly and can leak.

Quick Identification Comparison

Connection Thread Form Sealing Feature Main Visual Indicator
JIC Straight UN/UNF 37° metal flare Pointed external cone on male fitting
SAE 45° Straight UNF 45° metal flare Steeper cone than JIC
SAE ORB Straight UN/UNF O-ring at port chamfer O-ring behind male thread
ORFS Straight UN/UNF Flat-face O-ring O-ring visible on male face

Never identify these connections from the thread size alone. The sealing surface is the deciding feature.

6. Metric Hydraulic Thread Identification Chart

Metric hydraulic threads are widely used on European, Asian, and internationally manufactured equipment. They are particularly common on construction machinery, machine tools, injection-molding equipment, hydraulic power units, and industrial production systems.

A metric thread is designated by the letter M, followed by the nominal major diameter and pitch.

For example:

M22×1.5\mathrm{M22 \times 1.5}

This designation means:

  • Nominal major diameter: 22 mm
  • Distance between adjacent thread crests: 1.5 mm
  • Thread profile: normally 60 degrees

Metric hydraulic fittings should not be identified from diameter and pitch alone. The same metric thread may be used with several sealing arrangements.

Common Metric Sealing Designs

Metric hydraulic connections may use:

  • A 24-degree cutting-ring connection
  • A 24-degree cone with an O-ring
  • A metric straight-thread O-ring port
  • A bonded washer
  • A metal sealing ring
  • A 30-degree flare or cone
  • A flat face with an elastomeric seal

The fitting series, cone angle, tube diameter, and sealing element must all be verified.

DIN 2353 and ISO 8434-1 Fittings

DIN 2353 and ISO 8434-1 fittings use a 24-degree cone and metric threads. They are commonly divided into three series:

  • LL Series: Extra-light-duty applications
  • L Series: Light-duty and medium-pressure applications
  • S Series: Heavy-duty and high-pressure applications

The series designation relates to the fitting geometry, wall thickness capability, and pressure range. It does not mean that fittings with the same tube diameter are interchangeable.

For example, a 12 mm tube may be used with both 12L and 12S fittings, but the corresponding nut threads are different:

  • 12L commonly uses M18 × 1.5
  • 12S commonly uses M20 × 1.5

Metric 24-Degree Fitting Identification Chart

Tube OD L-Series Thread S-Series Thread
6 mm M12 × 1.5 M14 × 1.5
8 mm M14 × 1.5 M16 × 1.5
10 mm M16 × 1.5 M18 × 1.5
12 mm M18 × 1.5 M20 × 1.5
14 mm M22 × 1.5
15 mm M22 × 1.5
16 mm M24 × 1.5
18 mm M26 × 1.5
20 mm M30 × 2.0
22 mm M30 × 2.0
25 mm M36 × 2.0
28 mm M36 × 2.0
30 mm M42 × 2.0
35 mm M45 × 2.0
38 mm M52 × 2.0
42 mm M52 × 2.0

A dash indicates that the tube size is not normally part of that series.

How a DIN Cutting-Ring Connection Seals

A typical DIN 2353 assembly contains:

  • A fitting body with a 24-degree cone
  • A cutting ring
  • A union nut
  • Metric tubing

As the nut is tightened, the cutting ring moves along the fitting cone and bites into the outside surface of the tube. This action creates the mechanical grip and pressure seal.

Some modern versions incorporate an elastomeric seal on the cutting ring or use a separate O-ring on a 24-degree sealing cone. These designs may have similar threads but different assembly procedures.

ISO 6149 Metric O-Ring Ports

ISO 6149 specifies metric straight-thread ports with an elastomeric O-ring seal.

The male stud has:

  • A metric parallel thread
  • An O-ring behind the threaded section
  • A retaining groove or washer
  • A shoulder that controls assembly

The O-ring seals against the chamfer of the female port. The threads do not provide the fluid seal.

Common ISO 6149 port threads include:

Port Thread Nominal Diameter Pitch
M8 × 1.0 8 mm 1.0 mm
M10 × 1.0 10 mm 1.0 mm
M12 × 1.5 12 mm 1.5 mm
M14 × 1.5 14 mm 1.5 mm
M16 × 1.5 16 mm 1.5 mm
M18 × 1.5 18 mm 1.5 mm
M22 × 1.5 22 mm 1.5 mm
M27 × 2.0 27 mm 2.0 mm
M33 × 2.0 33 mm 2.0 mm
M42 × 2.0 42 mm 2.0 mm
M48 × 2.0 48 mm 2.0 mm

The presence of an O-ring behind the male thread helps distinguish ISO 6149 from a metric 24-degree tube connection.

Metric vs. Unified Threads

Metric and Unified threads can occasionally have similar diameters, but their pitches are specified differently.

For example:

  • M18 × 1.5 has a nominal diameter of 18 mm and a 1.5 mm pitch.
  • 3/4-16 UNF has a nominal diameter of 19.05 mm and 16 threads per inch.
  • Sixteen TPI corresponds to a pitch of approximately 1.588 mm.

These dimensions are close enough to create confusion, but the threads are not interchangeable. Forcing them together can damage both the male and female components.

To confirm a metric hydraulic fitting, verify:

  1. The major thread diameter
  2. The pitch in millimetres
  3. The 60-degree thread profile
  4. The tube outside diameter
  5. The fitting series
  6. The cone or sealing-face angle
  7. The presence and location of an O-ring

The applicable standard and manufacturer’s technical data should always be checked before the fitting is installed in a pressurized hydraulic system.

7. How to Measure Hydraulic Fitting Threads

Accurate measurement is essential because several hydraulic threads have nearly identical diameters. A visual inspection may narrow the possibilities, but the thread diameter, pitch, taper, and sealing surface must all be checked before a fitting is selected.

Tools Required for Thread Identification

The following tools are commonly used:

  • Digital or vernier caliper
  • Inch and metric thread-pitch gauges
  • Thread identification kit
  • 37°, 45°, and 24° seat-angle gauges
  • Steel ruler
  • Good lighting and a magnifying glass
  • Manufacturer’s thread identification chart

Clean the fitting before taking measurements. Dirt, paint, corrosion, thread sealant, and damaged thread crests can affect the result.

Depressurize and isolate the hydraulic system before removing any fitting. Never loosen a connection while the system is pressurized.

Measure the Male Thread Diameter

For a male fitting, measure across the crests of the external threads.

  1. Open the caliper slightly wider than the thread.
  2. Position the jaws perpendicular to the fitting axis.
  3. Close the jaws gently against the thread crests.
  4. Record the largest outside diameter.
  5. Repeat the measurement at several positions.

Do not measure across damaged or incomplete threads near the end of the fitting.

The measured diameter should be compared with the actual major diameter in the chart, not directly with the nominal size. For example, a 1/2-inch NPT male thread measures approximately 21.3 mm across its major diameter rather than 12.7 mm.

Measure the Female Thread Diameter

Female threads are more difficult to measure accurately because the caliper jaws contact the internal thread at a limited depth.

To measure a female thread:

  1. Insert the internal jaws into the thread opening.
  2. Position them across the thread crests.
  3. Expand the jaws carefully until they contact both sides.
  4. Record the inside diameter.
  5. Compare the result with the female-thread dimensions in the relevant standard.

Treat this measurement as an initial reference. Confirm the identification using the thread pitch and sealing surface.

Check for a Straight or Tapered Thread

Measure the diameter at two locations along the male thread:

  • Near the end of the fitting
  • Near the last complete thread

If the two measurements are essentially equal, the thread is probably straight. If the diameter increases toward the fitting body, it is probably tapered.

This check helps separate:

  • NPT and NPTF from SAE straight threads
  • BSPT from BSPP
  • Metric tapered threads from metric parallel threads

A short threaded section may make the taper difficult to detect. In that case, compare the fitting against a known straight edge or use a dedicated thread identification tool.

Measure Threads per Inch

Inch threads are identified by the number of thread crests within one inch. This measurement is expressed as threads per inch, or TPI.

The easiest method is to use a thread-pitch gauge:

  1. Select an inch gauge blade.
  2. Place it against the thread.
  3. Check whether every tooth enters the thread grooves.
  4. Try adjacent sizes until there are no visible gaps.
  5. Record the matching TPI.

Common hydraulic thread pitches include:

  • 11 TPI
  • 11.5 TPI
  • 12 TPI
  • 14 TPI
  • 16 TPI
  • 18 TPI
  • 19 TPI
  • 20 TPI
  • 27 TPI
  • 28 TPI

If a pitch gauge is unavailable, place a ruler parallel to the fitting axis and count the number of thread crests over a known distance. Counting over 1/2 inch and multiplying by two can provide an approximate TPI value.

Measure Metric Thread Pitch

Metric pitch is the axial distance from one thread crest to the next, measured in millimetres.

For example:

  • M14 × 1.5 has a 14 mm nominal diameter and a 1.5 mm pitch.
  • M22 × 1.5 has a 22 mm nominal diameter and a 1.5 mm pitch.
  • M30 × 2.0 has a 30 mm nominal diameter and a 2.0 mm pitch.

Use a metric pitch gauge and select the blade that fits the thread profile without gaps. If no gauge is available, measure the distance across ten thread intervals and divide the result by ten.

Measuring multiple intervals reduces the effect of caliper positioning errors.

Convert Between Metric Pitch and TPI

When comparing metric and inch threads, the following formulas may be useful:

TPI=25.4Metric pitch in mm\text{TPI}=\frac{25.4}{\text{Metric pitch in mm}} Metric pitch in mm=25.4TPI\text{Metric pitch in mm}=\frac{25.4}{\text{TPI}}

For a 1.5 mm metric pitch:

TPI=25.41.5=16.93\text{TPI}=\frac{25.4}{1.5}=16.93

Therefore, a 1.5 mm pitch is close to 17 TPI. It must not be confused with a 16 or 18 TPI inch thread.

Measure the Seat Angle

The seat angle identifies connections that use a metal cone or flare to create the pressure seal.

Common hydraulic seat angles include:

Connection Type Nominal Seat Angle
JIC 37°
SAE flare 45°
DIN/ISO metric tube fitting 24°
JIS BSPP flare 30°
BSPP 60° cone 60°

Use a dedicated seat-angle gauge where possible. Position the gauge against the sealing surface and inspect it against a light source. The correct gauge should contact the surface evenly without a visible gap.

Be aware that fitting literature may describe the included cone angle differently from the angle measured relative to the fitting centerline. Always use a gauge intended specifically for hydraulic fittings.

Account for Measurement Tolerance

A measured diameter may differ slightly from the nominal chart value because of:

  • Manufacturing tolerances
  • Protective plating or coating
  • Thread wear
  • Corrosion
  • Previous over-tightening
  • Damaged crests
  • Measurement position on a tapered thread
  • Caliper accuracy

Do not select the closest size based on diameter alone. A valid identification should match the thread diameter, pitch, thread form, and sealing design.

8. How to Identify the Hydraulic Sealing Method

The thread holds the connection together, but it does not always create the fluid seal. Many hydraulic fittings use identical or similar threads while relying on completely different sealing surfaces.

Identifying the sealing method is therefore one of the most important parts of hydraulic fitting identification.

Tapered Thread Sealing

NPT, NPTF, and BSPT connections use tapered threads. As the male fitting is tightened, the increasing thread diameter creates interference with the female thread.

Typical identification features include:

  • Male thread diameter increases toward the fitting body
  • No separate flare or face-sealing surface
  • Sealant may be visible on previously installed fittings
  • Thread resistance increases progressively during assembly

NPT and BSPT connections generally require an approved sealing compound. NPTF is designed for controlled crest-to-root interference, but lubrication or sealant requirements should still follow the equipment manufacturer’s instructions.

Avoid applying excessive sealant. Sealant entering the system may block small passages or contaminate sensitive hydraulic components.

Metal-to-Metal Flare Sealing

Flared connections seal when two matching metal surfaces are clamped together.

Common examples include:

  • JIC 37-degree flare
  • SAE 45-degree flare
  • JIS 30-degree flare
  • BSPP 60-degree cone connections

The threads do not create the seal. Applying PTFE tape to the threads will not repair a damaged or mismatched flare.

Inspect the seat for:

  • Scratches
  • Dents
  • Cracks
  • Corrosion
  • Embedded contamination
  • Incorrect cone angle
  • Deformation from excessive tightening

A 37-degree JIC fitting and a 45-degree SAE fitting may have compatible-looking threads, but their seats do not make full surface contact.

SAE O-Ring Boss Sealing

An SAE ORB fitting seals with an O-ring located behind the male straight thread.

During installation, the O-ring enters the female port chamfer and is compressed between the fitting and port. The shoulder or locknut controls the final position of the fitting.

Identification features include:

  • Straight UN or UNF male thread
  • O-ring behind the threaded section
  • Machined port chamfer
  • No flare on the port end

Fixed fittings are tightened until the shoulder reaches the port face. Adjustable fittings use a backup washer and locknut to allow orientation before final tightening.

Metric O-Ring Port Sealing

ISO 6149 connections operate similarly to SAE ORB but use metric threads.

Identification features include:

  • Metric thread designation
  • O-ring behind the male thread
  • Straight thread form
  • Port chamfer for O-ring compression

An ISO 6149 fitting should not be confused with a DIN 24-degree tube connection. Both may use metric threads, but their sealing locations are different.

O-Ring Face Seal

An ORFS fitting has an O-ring installed in a groove on the flat face of the male fitting. The female swivel has a flat mating face.

When the nut is tightened, the O-ring is compressed axially between the two faces.

ORFS is easy to recognize because:

  • The male sealing face is flat
  • The O-ring is visible at the end of the fitting
  • The female swivel has a flat internal sealing surface
  • The threads are straight and located behind the sealing face

Thread tape or compound should not be applied to ORFS threads. The O-ring provides the pressure seal.

Bonded Washer Sealing

BSPP and metric port fittings may use a bonded washer between the fitting shoulder and the machined port face.

A bonded washer normally consists of:

  • A metal outer ring
  • An elastomeric inner sealing section

Tightening the fitting compresses the elastomer between the fitting shoulder and the port face.

The port face must be sufficiently flat and smooth. A bonded washer cannot seal reliably against a rough, angled, or damaged surface.

DIN Cutting-Ring Sealing

DIN 2353 and ISO 8434-1 fittings commonly use a cutting ring with a 24-degree fitting cone.

During assembly:

  1. The nut pushes the cutting ring forward.
  2. The cutting edges contact the tube surface.
  3. The ring bites into and grips the tube.
  4. The ring and fitting cone create the sealing interface.

Correct tube preparation and assembly are essential. An under-tightened fitting may not develop sufficient bite, while excessive tightening can damage the ring, tube, or fitting body.

24-Degree Cone with O-Ring

Some metric fittings use a 24-degree cone combined with an elastomeric seal. The O-ring improves sealing performance while the cone supports alignment and load transfer.

These fittings can resemble conventional cutting-ring fittings. Check whether the seal is located:

  • On the male cone
  • Inside the swivel end
  • Behind the thread
  • On the flat port face

The exact seal location determines the connection type.

Hydraulic Sealing Method Comparison

Sealing Method Typical Connection Seal Location Thread Sealant Required?
Tapered thread interference NPT, BSPT Between mating threads Normally yes
Dry-seal thread interference NPTF Thread crests and roots Depends on application instructions
Metal flare JIC, SAE 45°, JIS 30° Mating cone surfaces No
O-ring boss SAE ORB, ISO 6149 Behind male thread and inside port chamfer No
O-ring face seal ORFS Flat end face No
Bonded washer BSPP or metric port Fitting shoulder and port face No
Cutting ring DIN 2353 Tube, cutting ring, and 24° cone No
24° cone with O-ring Metric DKO-style fitting Cone sealing surface No

9. Common Hydraulic Thread Identification Mistakes

Incorrect thread identification can cause leakage, fitting failure, damaged equipment, and unsafe fluid release. The following mistakes are especially common during hydraulic maintenance and hose replacement.

Confusing BSPT with NPT

BSPT and NPT are both tapered pipe threads and have similar major diameters. Some sizes may begin to engage even though the thread profiles are incompatible.

NPT uses a 60-degree thread angle, while BSPT uses a 55-degree Whitworth profile. Several corresponding sizes also have different pitches.

Always verify:

  • Major diameter
  • Thread pitch
  • Thread-profile angle
  • Equipment country of origin
  • Thread designation on the drawing or component

Confusing BSPP with BSPT

BSPP is parallel, while BSPT is tapered. Both use a 55-degree thread profile and similar nominal size designations.

Measure the thread diameter at two points. A BSPP thread remains approximately constant, while a BSPT male thread increases in diameter toward the fitting body.

BSPP normally seals with a washer, O-ring, or cone. BSPT normally seals through thread interference.

Using Nominal Size as the Actual Diameter

Nominal pipe-thread size does not equal the measured outside diameter.

For example:

  • A 1/4-inch NPT male thread measures approximately 13.7 mm.
  • A 1/2-inch NPT male thread measures approximately 21.3 mm.
  • A G 1/2 BSPP male thread measures approximately 21.0 mm.

Selecting a thread from the nominal size alone can produce an incorrect identification.

Mixing Metric and Inch Threads

Metric and Unified threads may have similar diameters and pitches.

An M18 × 1.5 thread, for example, may appear similar to some inch-thread connections. However, the diameter and pitch do not match exactly.

If an incompatible fitting is forced into the port, it may:

  • Damage the first few threads
  • Create cross-threading
  • Reduce engagement length
  • Produce an unreliable seal
  • Damage an expensive valve, pump, or manifold

Use both metric and inch pitch gauges before making a final decision.

Confusing JIC 37° with SAE 45°

JIC and SAE flare fittings both use straight threads and metal-to-metal sealing seats. Their primary difference is the flare angle.

A JIC fitting uses a 37-degree seat, while an SAE flare fitting uses a 45-degree seat. The mating surfaces make only partial contact if the two types are mixed.

Partial seat contact can initially appear tight but may leak under vibration, pressure cycling, or temperature changes.

Assuming JIC, ORB, and ORFS Are Interchangeable

These connections all use straight Unified threads, but their sealing methods differ:

  • JIC seals at a 37-degree flare.
  • SAE ORB seals with an O-ring behind the male thread.
  • ORFS seals with an O-ring on the flat face.

Even where thread dimensions appear compatible, the fittings cannot be substituted unless a correctly designed adapter is used.

Applying Sealant to Flare or O-Ring Threads

Thread sealant should not be used on JIC, ORFS, SAE ORB, metric O-ring, or standard cutting-ring connection threads.

In these fittings, the threads provide clamping force rather than fluid sealing. Adding sealant can:

  • Contaminate the hydraulic fluid
  • Interfere with correct torque
  • Hide a damaged sealing surface
  • Create false confidence in an incompatible connection
  • Damage O-rings during assembly

Sealant should be used only when required for the applicable tapered-thread connection.

Ignoring the Fitting’s Sealing Surface

Two fittings with the same thread diameter and pitch may use different sealing surfaces. Therefore, every inspection should include the end of the fitting and the port geometry.

Check for:

  • A 24°, 30°, 37°, 45°, or 60° seat
  • A flat ORFS face
  • An O-ring behind the thread
  • A bonded washer
  • A cutting ring
  • A tapered thread without a separate seat

Thread compatibility does not guarantee sealing compatibility.

Reusing Damaged O-Rings

An O-ring may become flattened, cut, hardened, swollen, or twisted after service. Reusing it can cause leakage even when the thread has been correctly identified.

Before assembly:

  • Inspect the O-ring under good lighting
  • Confirm the correct size
  • Verify material compatibility with the hydraulic fluid
  • Lubricate it with an approved lubricant
  • Replace it if its condition is uncertain

The O-ring groove and mating surface must also be clean and free from scratches.

Forcing a Fitting During Assembly

A correctly matched fitting should engage smoothly by hand for several turns. Immediate resistance may indicate:

  • Incorrect pitch
  • Cross-threading
  • Damaged threads
  • Dirt or old sealant
  • Metric and inch thread mismatch
  • NPT and BSPT mismatch

Never use a wrench to force an unidentified fitting into a port. Stop, remove the fitting, and verify the thread again.

Ignoring Pressure and Material Compatibility

Correct thread identification does not automatically make the fitting suitable for the system.

The replacement component must also meet requirements for:

  • Maximum working pressure
  • Temperature range
  • Hydraulic fluid compatibility
  • Tube or hose size
  • Material compatibility
  • Corrosion resistance
  • Vibration and impulse service
  • Applicable industry standards

A fitting with the correct thread but an inadequate pressure rating remains unsafe.

Relying Only on Country of Origin

The machine’s origin may provide a useful clue, but it is not definitive. Modern equipment can include components sourced from several countries and thread systems.

For example, one machine may contain:

  • Metric DIN tube fittings
  • BSPP gauge ports
  • SAE ORB pump connections
  • JIC hose ends
  • NPT accessories

Use the country of origin only as supporting evidence. Physical measurement and inspection must determine the final identification.

Conclusion

Correct hydraulic thread identification requires more than simply measuring the outside diameter of a fitting. Many thread systems have similar dimensions but use different pitches, thread profiles, sealing angles, and sealing methods. A connection that appears to fit may still be mechanically incompatible and unsafe under hydraulic pressure.

A reliable identification process should include the following checks:

  1. Determine whether the connection is male or female.
  2. Identify whether the thread is straight or tapered.
  3. Measure the male outside diameter or female inside diameter.
  4. Measure the pitch in threads per inch or millimetres.
  5. Inspect the sealing surface and determine its angle.
  6. Check for an O-ring, bonded washer, cutting ring, or metal flare.
  7. Compare every measurement with an appropriate hydraulic thread identification chart.

NPT, NPTF, BSPP, and BSPT are common pipe-thread systems, but they differ in taper, thread angle, pitch, and sealing behavior. JIC, SAE 45-degree flare, SAE ORB, and ORFS connections use straight threads, yet each relies on a different sealing arrangement. Metric hydraulic fittings require additional attention because the same thread size may be associated with different fitting series, tube sizes, and sealing designs.

Never force an unidentified fitting into a hydraulic port. The first few threads may engage even when the components are incompatible. Forcing the connection can damage both parts, reduce thread engagement, and create a leakage or burst hazard.

The identification chart in this guide is suitable for preliminary comparison and maintenance planning. Final fitting selection should also be verified against the applicable SAE, ISO, DIN, ASME, or JIS standard and the component manufacturer’s technical catalog.

Correct identification helps ensure:

  • Leak-free hydraulic connections
  • Proper fitting engagement
  • Reliable pressure containment
  • Longer component service life
  • Easier maintenance and replacement
  • Reduced risk of equipment damage
  • Improved workplace safety

When any measurement or sealing feature remains uncertain, replace the connection only after it has been verified with a thread gauge, identification kit, manufacturer data, or a qualified hydraulic fitting supplier.

How Control Valves Work ?

Hydraulic Hose Temperature Rating Chart & Limits

Related posts
Hydraulic Hose Temperature Rating Chart & Limits
Hydraulic Hose Temperature Rating Chart & Limits

Contents1 1. What Is a Hydraulic Hose Temperature Rating?2 2. Why Hydraulic Hose Temperature Limits Matter2.1 Excessive Heat Accelerates Hose Degradation2.2 Low Temperatures Reduce Flexibility2.3 Heat Can Reduce Pressure Capability2.4 Fluid Degradation Can Damage the Hose2.5 External Heat Can Damage the Cover2.6 Temperature Compliance Improves Safety and Reliability3 3. Hydraulic Hose Temperature Rating Chart3.1 Typical […]

Read more
Pipe Weight Chart: Carbon Steel & Stainless Steel
Pipe Weight Chart: Carbon Steel & Stainless Steel

Contents1 2 1. What Is a Pipe Weight Chart?2.1 Why Pipe Weight Charts Are Important2.2 Theoretical Weight vs. Actual Weight3 2. Pipe Weight Terminology and Dimensions3.1 Nominal Pipe Size3.2 Nominal Diameter3.3 Outside Diameter3.4 Wall Thickness3.5 Inside Diameter3.6 Pipe Schedule3.7 Pipe Length3.8 Material Density4 3. How to Calculate Pipe Weight4.1 Step 1: Calculate the Inside Diameter4.2 […]

Read more
DIN 2353 Tube Size Chart – L, S & LL Series Dimensions
DIN 2353 Tube Size Chart – L, S & LL Series Dimensions

Contents1 1. What Is the DIN 2353 Standard?1.1 DIN 2353 Fitting Series1.2 DIN 2353 and ISO 8434-12 2. DIN 2353 Tube Size Terminology2.1 Tube Outside Diameter (OD)2.2 Tube Wall Thickness2.3 Tube Inside Diameter (ID)2.4 Metric Tube Size vs. Nominal Pipe Size3 3. DIN 2353 Tube Series: LL, L, and S3.1 LL – Extra Light Series3.2 […]

Read more
Hydraulic Oil Compatibility Chart
Hydraulic Oil Compatibility Chart

Contents1 1. What Is Hydraulic Oil Compatibility?2 2. Why Hydraulic Fluid Compatibility Matters2.1 Loss of Lubrication and Wear Protection2.2 Sludge, Varnish, and Deposit Formation2.3 Seal Swelling, Shrinkage, or Hardening2.4 Foaming and Air-Release Problems2.5 Reduced Water Separation and Corrosion Protection2.6 Changes in Viscosity and Temperature Performance2.7 Loss of OEM Approval and Fluid Performance3 3. Hydraulic Oil […]

Read more
ANSI Flange Bolt Size Chart: Class 150 to 2500
ANSI Flange Bolt Size Chart: Class 150 to 2500

Contents1 1. What Is an ANSI Flange Bolt Size Chart?1.1 Bolts Versus Stud Bolts2 2. ANSI Flange Standards and Pressure Classes2.1 ASME B16.52.2 ASME B16.472.3 ANSI/ASME Pressure Classes3 3. Flange Bolt Terminology and Dimensions3.1 Nominal Pipe Size3.2 Pressure Class3.3 Number of Bolts3.4 Stud-Bolt Diameter3.5 Bolt-Hole Diameter3.6 Bolt-Circle Diameter3.7 Stud-Bolt Length3.8 RF and RTJ Lengths4 4. […]

Read more
Hydraulic Filter Micron Size Chart
Hydraulic Filter Micron Size Chart

Contents1 1. What Is a Hydraulic Filter Micron Rating?1.1 Common Hydraulic Filter Micron Ratings1.2 Why Micron Size Matters2 2. Hydraulic Filter Micron Size Chart2.1 1–3 Micron Hydraulic Filters2.2 5 Micron Hydraulic Filters2.3 10 Micron Hydraulic Filters2.4 20–25 Micron Hydraulic Filters2.5 40 Micron Hydraulic Filters2.6 75–125 Micron Suction Strainers3 3. Nominal vs. Absolute Micron Rating3.1 What […]

Read more
Pipe Flange Size Chart: ASME, ANSI and EN Dimensions
Pipe Flange Size Chart: ASME, ANSI and EN Dimensions

Contents1 1. What Is a Pipe Flange?1.1 Common Pipe Flange Types1.2 How Pipe Flange Size Is Defined1.3 Main Functions of Pipe Flanges2 2. Pipe Flange Terminology and Key Dimensions2.1 Nominal Pipe Size2.2 Flange Outside Diameter2.3 Flange Thickness2.4 Bolt Circle Diameter2.5 Bolt-Hole Diameter and Quantity2.6 Flange Bore2.7 Hub Diameter and Length2.8 Raised-Face Diameter and Height2.9 Flange […]

Read more
ANSI Flange Dimensions Chart
ANSI Flange Dimensions Chart

Contents1 1. What Is an ANSI Flange?2 2. ANSI Flange Standards and ASME B16.52.1 ASME B16.5 flange size range2.2 ASME B16.47 for large-diameter flanges2.3 ANSI class and actual working pressure3 3. Key ANSI Flange Dimensions and Terminology3.1 Nominal Pipe Size3.2 Flange outside diameter3.3 Flange thickness3.4 Bolt-circle diameter3.5 Number of bolt holes3.6 Bolt-hole diameter3.7 Flange bore3.8 […]

Read more
Hydraulic Hose ID and OD Chart
Hydraulic Hose ID and OD Chart

Contents1 1. What Are Hydraulic Hose ID and OD?2 2. Hydraulic Hose ID and OD Chart2.1 Why Is OD Not Fixed in the Chart?2.2 ID vs. OD: Which Dimension Should You Use?3 3. Hydraulic Hose Dash Size vs. Inside Diameter3.1 Hydraulic Hose Dash Size Conversion Chart3.2 How to Convert Dash Size to Hose ID3.3 How […]

Read more
UNF Thread Size Chart: Dimensions, TPI & Tap Drill Sizes
UNF Thread Size Chart: Dimensions, TPI & Tap Drill Sizes

Contents1 1. What Is a UNF Thread?1.1 Main characteristics of UNF threads1.2 Common UNF thread examples1.3 Where are UNF threads used?2 2. UNF Thread Terminology and Dimensions2.1 Nominal diameter2.2 Threads per inch2.3 Thread pitch2.4 Major diameter2.5 Minor diameter2.6 Pitch diameter2.7 Crest, root and flank2.8 Thread engagement3 3. Complete UNF Thread Size Chart3.1 How to read […]

Read more