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DN Pipe Size Chart: DN to NPS Conversion and Dimensions

Contents

DN pipe size is a standardized system used to identify the nominal size of pipes, valves, flanges, fittings, and other piping components. The abbreviation DN comes from the French term diamètre nominal, meaning nominal diameter. It is widely used in metric-based piping systems and international standards.

Although DN values are expressed as whole numbers, such as DN 15, DN 50, or DN 100, they do not normally represent an exact pipe measurement in millimetres. A DN 50 pipe, for example, does not necessarily have an inside or outside diameter of exactly 50 mm. DN is a convenient size designation that allows compatible piping components to be selected and connected.

DN sizes generally correspond to the North American Nominal Pipe Size (NPS) system. For example, DN 15 corresponds to NPS 1/2, DN 50 corresponds to NPS 2, and DN 100 corresponds to NPS 4. However, these relationships are nominal conversions rather than direct mathematical conversions.

A DN pipe size chart helps engineers, technicians, fabricators, and purchasing teams compare nominal sizes, outside diameters, wall thicknesses, pipe schedules, and equivalent NPS designations. Understanding these values is essential when selecting pipes and components for water, oil and gas, chemical processing, hydraulic, pneumatic, and industrial utility systems.

1. What Is DN Pipe Size?

What Is DN Pipe Size?

DN is a standardized designation used to indicate the nominal size of pipes and piping components. The letters DN come from the French term diamètre nominal, which means nominal diameter.

A DN designation consists of the letters DN followed by a dimensionless whole number, such as:

  • DN 15
  • DN 25
  • DN 50
  • DN 100
  • DN 300

The correct designation is DN 50, not DN 50 mm, because the number after DN is a nominal size rather than an exact measurement in millimetres.

DN is commonly used to identify the nominal connection size of:

  • Pipes
  • Pipe fittings
  • Valves
  • Flanges
  • Strainers
  • Expansion joints
  • Pumps
  • Equipment nozzles
  • Process and instrument connections

The DN system provides a common sizing language for selecting compatible piping components. However, matching the DN designation alone does not always guarantee that two components can be connected. Their dimensional standard, pressure rating, material, end connection, and other specifications must also be compatible.

DN Is a Nominal Designation

The DN number does not normally equal the exact inside diameter or outside diameter of the pipe.

For example, a DN 50 steel pipe normally has:

  • Equivalent nominal size: NPS 2
  • Actual outside diameter: 60.3 mm
  • Inside diameter: varies with wall thickness

Therefore:

DN 50 does not mean that the pipe has an actual diameter of 50 mm.

DN should be treated as a standardized size name rather than a physical dimension.

DN Is Not the Exact Inside Diameter

DN is sometimes described as the nominal bore or approximate inside diameter. Although this description reflects the historical origin of pipe sizing, it is not accurate enough for dimensional or flow calculations.

Pipes with the same DN can have different inside diameters because their wall thicknesses may be different. A thicker pipe wall reduces the available internal flow passage.

For example, DN 50 Schedule 40 and DN 50 Schedule 80 pipes have the same outside diameter of 60.3 mm. However, the Schedule 80 pipe has a thicker wall and a smaller inside diameter.

DN Is Not the Exact Outside Diameter

The DN designation also does not normally equal the actual outside diameter. Common examples include:

DN designation Equivalent NPS Steel pipe OD
DN 15 1/2 21.3 mm
DN 20 3/4 26.7 mm
DN 25 1 33.4 mm
DN 40 1 1/2 48.3 mm
DN 50 2 60.3 mm
DN 80 3 88.9 mm
DN 100 4 114.3 mm
DN 150 6 168.3 mm
DN 200 8 219.1 mm

The actual outside diameter must therefore be obtained from the relevant pipe dimension chart or product standard.

DN and NPS

DN is commonly associated with the metric-based nominal sizing system, while NPS, or Nominal Pipe Size, is the corresponding inch-based designation.

Typical equivalents include:

DN NPS
DN 15 1/2
DN 25 1
DN 50 2
DN 80 3
DN 100 4
DN 150 6
DN 200 8

These are standardized nominal equivalents, not direct unit conversions. For example, NPS 2 corresponds to DN 50, even though two inches equal 50.8 mm.

DN and Component Compatibility

Components with the same DN are intended for the same nominal pipe size, but DN alone does not establish complete interchangeability.

Before connecting two components, verify:

  • Applicable dimensional standard
  • Pipe outside diameter
  • Pipe schedule or wall thickness
  • Connection type
  • Flange standard
  • Flange facing
  • Bolt-hole arrangement
  • PN rating or ASME pressure class
  • Material specification
  • Design temperature

For example, a DN 100 PN 16 flange and an NPS 4 Class 150 flange have corresponding nominal sizes, but their bolt patterns and pressure-temperature ratings may differ. They must not be considered interchangeable without checking their standards and dimensions.

2. DN Pipe Size Terminology and Dimensions

A DN pipe size chart may include DN, NPS, outside diameter, inside diameter, wall thickness, schedule, nominal bore, and pressure-rating information. Understanding these terms helps prevent errors when selecting or measuring pipes, fittings, valves, and flanges.

Nominal Diameter

Nominal diameter is the standardized size designation assigned to a pipe or piping component. It is written as DN followed by a whole number.

Examples include:

  • DN 10
  • DN 20
  • DN 50
  • DN 100
  • DN 250

The DN number is dimensionless and should not be used as the actual pipe diameter in engineering calculations.

Nominal Pipe Size

Nominal Pipe Size, abbreviated NPS, is the inch-based nominal sizing system widely used with ASME piping standards.

DN and NPS provide corresponding nominal designations:

DN NPS
DN 6 1/8
DN 8 1/4
DN 10 3/8
DN 15 1/2
DN 20 3/4
DN 25 1
DN 32 1 1/4
DN 40 1 1/2
DN 50 2
DN 65 2 1/2
DN 80 3
DN 90 3 1/2
DN 100 4

NPS should not be converted to DN solely by multiplying it by 25.4. That calculation converts inches into millimetres, whereas DN values are standardized nominal designations.

Outside Diameter

Outside diameter, abbreviated OD, is the actual distance across the exterior of the pipe. It is a measurable physical dimension, normally expressed in millimetres or inches.

For most standardized steel pipes, the outside diameter remains constant for a given DN and NPS size regardless of the pipe schedule.

For example, DN 100 steel pipes normally have an outside diameter of 114.3 mm for Schedule 10, Schedule 40, and Schedule 80. The wall thickness changes inward, while the outside diameter remains the same.

A fixed OD allows pipes of the same nominal size to fit standardized:

  • Flanges
  • Welding fittings
  • Pipe supports
  • Clamps
  • Mechanical couplings
  • Equipment connections

Inside Diameter

Inside diameter, abbreviated ID, is the actual diameter of the pipe’s internal flow passage. It depends on the outside diameter and wall thickness.

Use the following WordPress-safe formula:

Inside diameter = Outside diameter − (2 × Wall thickness)

Abbreviated form:

ID = OD − (2 × t)

Where:

  • ID = inside diameter
  • OD = outside diameter
  • t = pipe wall thickness

For example, a DN 100 Schedule 40 pipe has:

  • Outside diameter = 114.3 mm
  • Wall thickness = 6.02 mm

Calculation:

ID = 114.3 − (2 × 6.02)

ID = 114.3 − 12.04

ID = 102.26 mm

Therefore, its approximate inside diameter is 102.26 mm.

The calculated value is nominal. The actual ID may vary because of wall-thickness and outside-diameter tolerances.

Wall Thickness

Wall thickness is the radial distance between the outside and inside surfaces of a pipe. It is commonly represented by the letter t and expressed in millimetres or inches.

Wall thickness affects:

  • Internal pressure resistance
  • Mechanical strength
  • Inside diameter
  • Flow area
  • Pipe weight
  • Corrosion allowance
  • Welding requirements
  • Material cost

For the same DN size, increasing the wall thickness reduces the inside diameter but normally leaves the outside diameter unchanged.

Pipe Schedule

Pipe schedule is a dimensionless designation used to identify standardized wall thicknesses. Common pipe schedules include:

  • Schedule 5
  • Schedule 10
  • Schedule 20
  • Schedule 40
  • Schedule 80
  • Schedule 120
  • Schedule 160

Stainless steel pipes may use schedule designations with an “S,” including:

  • Schedule 5S
  • Schedule 10S
  • Schedule 40S
  • Schedule 80S

A schedule number is not an actual wall-thickness measurement. For example, Schedule 40 does not mean that the pipe wall is 40 mm or 0.40 inches thick.

The same schedule number also represents different wall thicknesses at different nominal pipe sizes. Therefore, the actual thickness must be taken from the appropriate pipe dimension chart.

Nominal Bore

Nominal bore, abbreviated NB, is another term used to describe nominal pipe size. It appears frequently in British and international piping documents.

For example, the following designations generally refer to the same nominal pipe size:

  • 2-inch NB
  • NPS 2
  • DN 50

However, the preferred terminology depends on the applicable project specification and piping standard.

Pressure Rating

DN identifies pipe size, not allowable working pressure. The pressure capability of a pipe depends on:

  • Outside diameter
  • Wall thickness
  • Material grade
  • Material allowable stress
  • Design temperature
  • Manufacturing method
  • Corrosion allowance
  • Joint efficiency
  • Applicable design code

A DN 50 Schedule 80 pipe will generally withstand more internal pressure than a DN 50 Schedule 40 pipe made from the same material and operating at the same temperature. However, schedule alone must not be treated as a complete pressure rating.

PN and ASME Pressure Class

DN is often used with a PN designation for valves, flanges, and other piping components.

Examples include:

  • DN 50 PN 16
  • DN 100 PN 40
  • DN 200 PN 10

DN identifies the nominal size, while PN identifies a standardized pressure-rating category.

ASME components commonly use pressure-class designations such as:

  • Class 150
  • Class 300
  • Class 600
  • Class 900
  • Class 1500
  • Class 2500

PN and ASME pressure class are different rating systems. Components should not be considered interchangeable based only on approximate pressure conversion.

Key Dimensional Relationship

The main distinction can be written in a WordPress-safe format as:

DN ≠ OD ≠ ID

This means:

  • DN is the nominal size designation.
  • OD is the actual outside diameter.
  • ID is the actual or calculated inside diameter.
  • ID varies according to wall thickness.

Keeping these terms separate is essential when performing flow calculations, selecting fittings, preparing fabrication drawings, or identifying an existing pipe.

3. Complete DN Pipe Size Chart

Complete DN Pipe Size Chart

The following chart provides the standardized relationship between common DN sizes, corresponding NPS designations, and steel pipe outside diameters.

The table is primarily applicable to standardized metallic pipes based on the NPS outside-diameter series. Plastic, copper, ductile iron, and other piping products may use different dimensional systems.

DN NPS (inch) Outside diameter (mm) Outside diameter (inch)
DN 6 1/8 10.3 0.405
DN 8 1/4 13.7 0.540
DN 10 3/8 17.1 0.675
DN 15 1/2 21.3 0.840
DN 20 3/4 26.7 1.050
DN 25 1 33.4 1.315
DN 32 1 1/4 42.2 1.660
DN 40 1 1/2 48.3 1.900
DN 50 2 60.3 2.375
DN 65 2 1/2 73.0 2.875
DN 80 3 88.9 3.500
DN 90 3 1/2 101.6 4.000
DN 100 4 114.3 4.500
DN 125 5 141.3 5.563
DN 150 6 168.3 6.625
DN 200 8 219.1 8.625
DN 250 10 273.0 10.750
DN 300 12 323.9 12.750
DN 350 14 355.6 14.000
DN 400 16 406.4 16.000
DN 450 18 457.2 18.000
DN 500 20 508.0 20.000
DN 550 22 558.8 22.000
DN 600 24 609.6 24.000
DN 650 26 660.4 26.000
DN 700 28 711.2 28.000
DN 750 30 762.0 30.000
DN 800 32 812.8 32.000
DN 850 34 863.6 34.000
DN 900 36 914.4 36.000
DN 950 38 965.2 38.000
DN 1000 40 1016.0 40.000
DN 1050 42 1066.8 42.000
DN 1100 44 1117.6 44.000
DN 1150 46 1168.4 46.000
DN 1200 48 1219.2 48.000

Understanding the Chart

For pipe sizes from NPS 1/8 through NPS 12, the NPS number does not equal the actual outside diameter in inches.

Examples include:

  • DN 15 corresponds to NPS 1/2 but has an OD of 21.3 mm or 0.840 inch.
  • DN 50 corresponds to NPS 2 but has an OD of 60.3 mm or 2.375 inches.
  • DN 100 corresponds to NPS 4 but has an OD of 114.3 mm or 4.500 inches.
  • DN 300 corresponds to NPS 12 but has an OD of 323.9 mm or 12.750 inches.

From NPS 14 upward, the NPS designation generally matches the actual outside diameter in inches.

Examples include:

  • NPS 14 has an OD of 14 inches.
  • NPS 20 has an OD of 20 inches.
  • NPS 24 has an OD of 24 inches.
  • NPS 48 has an OD of 48 inches.

The corresponding DN values remain nominal designations. For example, DN 600 corresponds to NPS 24 even though the actual outside diameter is 609.6 mm.

The Chart Does Not Show Inside Diameter

Inside diameter cannot be determined from DN and OD alone because it depends on the wall thickness.

To determine the approximate ID, first identify the pipe schedule and its wall thickness. Then use:

ID = OD − (2 × t)

For example, DN 50 Schedule 40 has:

  • OD = 60.3 mm
  • Wall thickness = 3.91 mm

Calculation:

ID = 60.3 − (2 × 3.91)

ID = 60.3 − 7.82

ID = 52.48 mm

Therefore, the approximate inside diameter is 52.48 mm.

Important Application Notes

Before using this chart for design or purchasing, confirm:

  • Pipe material
  • Product standard
  • Dimensional standard
  • Pipe schedule
  • Wall thickness
  • Manufacturing tolerance
  • Pressure and temperature requirements
  • Connection standard

DN values used for steel pipes do not automatically represent the same outside dimensions for PVC, HDPE, copper, ductile iron, or other pipe systems. The applicable manufacturer’s data and product standard should always be checked.

4. DN to NPS Pipe Size Conversion Chart

DN and NPS are standardized systems used to identify corresponding nominal pipe sizes.

  • DN means nominal diameter and is used mainly in metric and international standards.
  • NPS means Nominal Pipe Size and is commonly used in North American and ASME-based piping systems.

DN and NPS values are nominal designations. They do not represent the exact inside or outside diameter of a pipe.

For example:

  • DN 15 corresponds to NPS 1/2.
  • DN 25 corresponds to NPS 1.
  • DN 50 corresponds to NPS 2.
  • DN 100 corresponds to NPS 4.
  • DN 200 corresponds to NPS 8.

Complete DN to NPS Conversion Chart

DN NPS (inch) Pipe outside diameter
DN 6 1/8 10.3 mm
DN 8 1/4 13.7 mm
DN 10 3/8 17.1 mm
DN 15 1/2 21.3 mm
DN 20 3/4 26.7 mm
DN 25 1 33.4 mm
DN 32 1 1/4 42.2 mm
DN 40 1 1/2 48.3 mm
DN 50 2 60.3 mm
DN 65 2 1/2 73.0 mm
DN 80 3 88.9 mm
DN 90 3 1/2 101.6 mm
DN 100 4 114.3 mm
DN 125 5 141.3 mm
DN 150 6 168.3 mm
DN 200 8 219.1 mm
DN 250 10 273.0 mm
DN 300 12 323.9 mm
DN 350 14 355.6 mm
DN 400 16 406.4 mm
DN 450 18 457.2 mm
DN 500 20 508.0 mm
DN 550 22 558.8 mm
DN 600 24 609.6 mm
DN 650 26 660.4 mm
DN 700 28 711.2 mm
DN 750 30 762.0 mm
DN 800 32 812.8 mm
DN 850 34 863.6 mm
DN 900 36 914.4 mm
DN 950 38 965.2 mm
DN 1000 40 1016.0 mm
DN 1050 42 1066.8 mm
DN 1100 44 1117.6 mm
DN 1150 46 1168.4 mm
DN 1200 48 1219.2 mm

How to Convert NPS to DN

For common pipe sizes, the preferred method is to use a standardized conversion chart. DN values are selected nominal designations rather than exact inch-to-millimetre conversions.

A rough estimate may be obtained using:

Approximate DN = NPS × 25

For example:

Approximate DN = 4 × 25

Approximate DN = 100

Therefore:

NPS 4 = DN 100

However, this approximation does not produce the standardized DN value for every pipe size.

NPS Result using NPS × 25 Standard DN
1/2 12.5 DN 15
3/4 18.75 DN 20
1 25 DN 25
1 1/4 31.25 DN 32
1 1/2 37.5 DN 40
2 50 DN 50
2 1/2 62.5 DN 65
3 75 DN 80
4 100 DN 100
6 150 DN 150
8 200 DN 200
10 250 DN 250
12 300 DN 300

The formula should only be used as a quick estimate. A DN-to-NPS chart should be used for final component selection.

Why NPS Should Not Be Multiplied by 25.4

One inch is equal to 25.4 mm, but converting NPS to millimetres does not necessarily produce the correct DN designation.

For example:

2 inches × 25.4 = 50.8 mm

However, the standardized nominal designation is:

NPS 2 = DN 50

Similarly:

3 inches × 25.4 = 76.2 mm

But the standardized designation is:

NPS 3 = DN 80

This difference occurs because DN values are standardized nominal size labels rather than precise metric conversions.

Conversion Does Not Confirm Interchangeability

Converting DN to NPS only identifies the corresponding nominal pipe size. It does not prove that two components are physically or mechanically interchangeable.

The following specifications must also be checked:

  • Applicable dimensional standard
  • Pipe outside diameter
  • Pipe schedule
  • Component bore
  • End connection
  • Flange standard
  • Flange facing
  • Bolt-hole pattern
  • Pressure class or PN rating
  • Material specification
  • Design temperature

For example, DN 100 and NPS 4 identify the same nominal pipe size. However, a DN 100 PN 16 flange may not connect directly to an NPS 4 Class 150 flange because their dimensions and bolt patterns may differ.

5. DN Pipe Outside Diameter and Wall Thickness

DN is a nominal size designation. The actual physical dimensions of a pipe are defined primarily by its outside diameter and wall thickness.

For standardized steel pipes:

  • The outside diameter normally remains constant for a given DN size.
  • The wall thickness changes according to the pipe schedule.
  • The inside diameter decreases as wall thickness increases.

For example, DN 50 Schedule 10, Schedule 40, and Schedule 80 steel pipes all have the same outside diameter of approximately 60.3 mm. Their wall thicknesses and inside diameters are different.

Outside Diameter

Outside diameter, abbreviated OD, is the actual distance measured across the exterior of a pipe.

OD is used when selecting or designing:

  • Pipe supports
  • Clamps
  • Welding fittings
  • Mechanical couplings
  • Flanges
  • Insulation
  • Equipment connections
  • Penetration openings
  • Fabrication clearances

The following examples show why DN must not be used as the actual outside diameter:

DN NPS Actual steel pipe OD
DN 15 1/2 21.3 mm
DN 25 1 33.4 mm
DN 50 2 60.3 mm
DN 80 3 88.9 mm
DN 100 4 114.3 mm
DN 150 6 168.3 mm
DN 200 8 219.1 mm

For example, a support for DN 100 steel pipe must be designed for an OD of approximately 114.3 mm, not 100 mm.

Wall Thickness

Wall thickness is the radial thickness of the pipe material. It is usually represented by the letter t.

A thicker pipe wall generally:

  • Increases mechanical strength
  • Increases potential pressure resistance
  • Increases pipe weight
  • Reduces inside diameter
  • Reduces internal flow area
  • Increases material and welding requirements

Wall thickness can be specified by:

  • Pipe schedule
  • Direct thickness in millimetres
  • Direct thickness in inches
  • Traditional wall designation such as STD, XS, or XXS

Inside Diameter Formula

The approximate inside diameter is calculated from the outside diameter and wall thickness.

Use this WordPress-safe formula:

Inside diameter = Outside diameter − (2 × Wall thickness)

Abbreviated form:

ID = OD − (2 × t)

Where:

  • ID = inside diameter
  • OD = outside diameter
  • t = wall thickness

Inside Diameter Calculation Example

Consider a DN 100 Schedule 40 pipe with:

  • Outside diameter = 114.3 mm
  • Wall thickness = 6.02 mm

Calculation:

ID = 114.3 − (2 × 6.02)

ID = 114.3 − 12.04

ID = 102.26 mm

The approximate inside diameter is therefore 102.26 mm.

Actual measurements may vary because of manufacturing tolerances.

Typical Wall Thickness Chart

The following table provides typical wall thicknesses for selected steel pipe sizes.

DN NPS OD (mm) Schedule 10 (mm) Schedule 40 (mm) Schedule 80 (mm)
DN 15 1/2 21.3 2.11 2.77 3.73
DN 20 3/4 26.7 2.11 2.87 3.91
DN 25 1 33.4 2.77 3.38 4.55
DN 32 1 1/4 42.2 2.77 3.56 4.85
DN 40 1 1/2 48.3 2.77 3.68 5.08
DN 50 2 60.3 2.77 3.91 5.54
DN 65 2 1/2 73.0 3.05 5.16 7.01
DN 80 3 88.9 3.05 5.49 7.62
DN 100 4 114.3 3.05 6.02 8.56
DN 125 5 141.3 3.40 6.55 9.53
DN 150 6 168.3 3.40 7.11 10.97
DN 200 8 219.1 3.76 8.18 12.70
DN 250 10 273.0 4.19 9.27 15.09
DN 300 12 323.9 4.57 10.31 17.48

These values are representative dimensions. The applicable pipe standard and material specification should be checked before use.

Example: DN 50 at Different Schedules

DN 50 steel pipe has an outside diameter of 60.3 mm. Its approximate inside diameter changes with the wall thickness.

DN 50 Schedule 10

  • OD = 60.3 mm
  • Wall thickness = 2.77 mm

ID = 60.3 − (2 × 2.77)

ID = 54.76 mm

DN 50 Schedule 40

  • OD = 60.3 mm
  • Wall thickness = 3.91 mm

ID = 60.3 − (2 × 3.91)

ID = 52.48 mm

DN 50 Schedule 80

  • OD = 60.3 mm
  • Wall thickness = 5.54 mm

ID = 60.3 − (2 × 5.54)

ID = 49.22 mm

The results can be summarized as follows:

DN 50 pipe OD Wall thickness Approximate ID
Schedule 10 60.3 mm 2.77 mm 54.76 mm
Schedule 40 60.3 mm 3.91 mm 52.48 mm
Schedule 80 60.3 mm 5.54 mm 49.22 mm

The outside diameter remains constant, while the inside diameter becomes smaller as the wall thickness increases.

Manufacturing Tolerances

Published OD and wall-thickness values are nominal dimensions. Actual pipes may have permitted variations in:

  • Outside diameter
  • Wall thickness
  • Ovality
  • Straightness
  • Length
  • Weight

Manufacturing tolerances should be considered when:

  • Designing close-clearance parts
  • Machining pipe ends
  • Calculating minimum remaining wall
  • Preparing weld joints
  • Selecting precision couplings
  • Inspecting pipes affected by corrosion or erosion

The measured wall thickness of an existing pipe should not automatically be used to identify its original schedule because material may have been lost during service.

6. DN Pipe Schedules and Pressure Ratings

DN identifies the nominal pipe size, but it does not define wall thickness or allowable working pressure.

A complete pipe description may include:

  • DN or NPS
  • Pipe schedule
  • Material specification
  • Material grade
  • Manufacturing method
  • Applicable dimensional standard

For example:

DN 50, Schedule 40, ASTM A106 Grade B, seamless pipe

DN 50 Schedule 10, Schedule 40, and Schedule 80 pipes have the same nominal size and normally the same outside diameter. However, their wall thicknesses, inside diameters, weights, and potential pressure capacities are different.

What Is a Pipe Schedule?

Pipe schedule is a dimensionless designation used to identify standardized pipe wall thickness.

Common schedule designations include:

  • Schedule 5
  • Schedule 10
  • Schedule 20
  • Schedule 30
  • Schedule 40
  • Schedule 60
  • Schedule 80
  • Schedule 100
  • Schedule 120
  • Schedule 140
  • Schedule 160

Stainless steel pipes commonly use:

  • Schedule 5S
  • Schedule 10S
  • Schedule 40S
  • Schedule 80S

The schedule number does not directly represent the wall thickness. Schedule 40 does not mean that the wall thickness is 40 mm, 0.40 inch, or any other fixed dimension.

Schedule and Wall Thickness

The same schedule number produces different wall thicknesses for different nominal pipe sizes.

DN NPS Schedule 40 wall Schedule 80 wall
DN 15 1/2 2.77 mm 3.73 mm
DN 25 1 3.38 mm 4.55 mm
DN 50 2 3.91 mm 5.54 mm
DN 80 3 5.49 mm 7.62 mm
DN 100 4 6.02 mm 8.56 mm
DN 150 6 7.11 mm 10.97 mm
DN 200 8 8.18 mm 12.70 mm
DN 300 12 10.31 mm 17.48 mm

For example, Schedule 40 wall thickness is 3.91 mm for DN 50 but 6.02 mm for DN 100.

A schedule chart must therefore be used to find the actual wall thickness for each DN size.

STD, XS, and XXS Pipe Walls

Traditional wall-thickness designations include:

  • STD: Standard Weight
  • XS: Extra Strong
  • XXS: Double Extra Strong

Their general relationships with pipe schedules are:

Traditional designation General relationship
STD Same as Schedule 40 through NPS 10
XS Same as Schedule 80 through NPS 8
XXS Separate heavy-wall series

These relationships do not apply universally to every pipe size. The actual wall thickness should always be checked in the relevant dimension table.

Does a Higher Schedule Mean a Higher Pressure Rating?

For pipes with the same DN, material, manufacturing quality, and operating temperature, a thicker wall generally provides greater internal-pressure resistance.

However, pipe schedule alone is not a complete pressure rating.

The allowable working pressure also depends on:

  • Pipe outside diameter
  • Actual and minimum wall thickness
  • Material allowable stress
  • Design temperature
  • Manufacturing tolerance
  • Corrosion allowance
  • Erosion allowance
  • Weld-joint quality factor
  • Thread or groove depth
  • Applicable design code
  • Cyclic and external loads

Therefore, a Schedule 80 pipe does not have one universal pressure rating. Its allowable pressure varies with pipe size, material, temperature, and design conditions.

Simplified Pressure Relationship

The following relationship may be used to understand the general effect of material strength, wall thickness, and pipe diameter:

Pressure capacity is proportional to (Allowable stress × Wall thickness) ÷ Pipe diameter

Abbreviated form:

P is proportional to (S × t) ÷ D

Where:

  • P = pressure capacity
  • S = allowable material stress
  • t = effective wall thickness
  • D = pipe diameter

This is only a conceptual relationship. It must not be used as the final pressure-design equation.

Simplified Barlow’s Formula

For basic thin-wall comparison, Barlow’s formula may be written as:

P = (2 × S × t) ÷ OD

Where:

  • P = internal pressure
  • S = allowable or specified stress used for the calculation
  • t = effective pipe wall thickness
  • OD = pipe outside diameter

The equation can also be rearranged to estimate the required wall thickness:

t = (P × OD) ÷ (2 × S)

These simplified formulas do not account for all requirements found in piping design codes. Final pipe-wall calculations may require factors for:

  • Material and temperature
  • Weld-joint quality
  • Manufacturing tolerance
  • Corrosion allowance
  • Threading or grooving
  • Code-specific coefficients

The applicable ASME, ISO, EN, or other governing design code must be used for final engineering calculations.

Example of the General Schedule Effect

Consider two DN 50 pipes made from the same material and operating at the same temperature:

Pipe OD Wall thickness
DN 50 Schedule 40 60.3 mm 3.91 mm
DN 50 Schedule 80 60.3 mm 5.54 mm

Because Schedule 80 has a thicker wall, it generally provides greater internal-pressure resistance. However, the exact allowable pressure cannot be determined without the material properties, design temperature, corrosion allowance, manufacturing tolerance, and applicable piping code.

DN and PN Ratings

DN is often paired with a PN designation, particularly for valves, flanges, and fittings.

Examples include:

  • DN 50 PN 10
  • DN 50 PN 16
  • DN 50 PN 40

DN identifies nominal size, while PN identifies a standardized pressure-rating designation.

PN is not simply the maximum allowable pressure under all operating conditions. The actual permitted pressure depends on:

  • Component material
  • Operating temperature
  • Product standard
  • Pressure-temperature rating table

A DN 50 PN 16 component and a DN 50 PN 40 component have the same nominal size but different pressure-rating systems and potentially different dimensions.

DN and ASME Pressure Classes

ASME flanges, valves, and fittings commonly use pressure classes such as:

  • Class 150
  • Class 300
  • Class 600
  • Class 900
  • Class 1500
  • Class 2500

An ASME class number is not a direct pressure value in psi. For example, Class 150 does not mean that the component is limited to exactly 150 psi in all materials and at all temperatures.

Actual pressure capability must be obtained from the applicable pressure-temperature rating table.

PN and ASME Class Are Not Directly Interchangeable

PN and ASME class are based on different standards. Approximate comparisons are sometimes used during initial equipment selection, but the components should not be treated as automatically interchangeable.

Before connecting a PN-rated component to an ASME-class component, verify:

  • Nominal size
  • Flange outside diameter
  • Bolt-circle diameter
  • Number and diameter of bolt holes
  • Flange thickness
  • Flange facing
  • Gasket dimensions
  • Component bore
  • Material
  • Pressure-temperature rating

Matching DN, NPS, PN, or pressure class alone is not sufficient to confirm dimensional and pressure compatibility.

7. How to Read and Use a DN Pipe Size Chart

A DN pipe size chart connects the nominal pipe designation with the physical dimensions needed for design, purchasing, fabrication, installation, and inspection.

To use the chart correctly, identify the DN size and then determine:

  • Equivalent NPS
  • Actual outside diameter
  • Pipe schedule
  • Wall thickness
  • Approximate inside diameter
  • Applicable dimensional standard

Step 1: Identify the DN Size

Start with the DN designation shown in the piping document or marked on the component.

The DN size may be found on:

  • Piping and instrumentation diagrams
  • Piping specifications
  • Equipment datasheets
  • Isometric drawings
  • General arrangement drawings
  • Bills of materials
  • Valve and flange markings
  • Equipment nozzles

Assume that a piping specification requires a DN 80 steel pipe.

Step 2: Find the Equivalent NPS

Use the DN-to-NPS conversion chart to find the corresponding inch-based nominal size.

For this example:

DN 80 = NPS 3

This conversion is helpful when purchasing pipes or components manufactured according to NPS-based standards.

Step 3: Find the Actual Outside Diameter

Locate the actual outside diameter in the chart.

For standard DN 80 steel pipe:

OD = 88.9 mm

The actual OD is used to select or design:

  • Pipe supports
  • Clamps
  • Welding fittings
  • Mechanical couplings
  • Flanges
  • Insulation
  • Equipment openings
  • Installation clearances

Do not use 80 mm as the actual OD of DN 80 steel pipe.

Step 4: Identify the Pipe Schedule

The DN size and outside diameter do not reveal the pipe wall thickness. The schedule must be obtained from the piping specification, pipe marking, bill of materials, or design documentation.

Assume the pipe is specified as:

DN 80 Schedule 40

The corresponding nominal wall thickness is:

Wall thickness = 5.49 mm

Step 5: Calculate the Approximate Inside Diameter

Use the following WordPress-safe formula:

ID = OD − (2 × t)

Where:

  • ID = inside diameter
  • OD = outside diameter
  • t = wall thickness

For DN 80 Schedule 40:

ID = 88.9 − (2 × 5.49)

ID = 88.9 − 10.98

ID = 77.92 mm

Therefore, the approximate inside diameter is 77.92 mm.

DN 80 Schedule 40 Example

Parameter Value
Nominal diameter DN 80
Equivalent NPS NPS 3
Outside diameter 88.9 mm
Pipe schedule Schedule 40
Wall thickness 5.49 mm
Approximate inside diameter 77.92 mm

Step 6: Confirm the Pipe Material

A DN chart may provide standard steel pipe dimensions, but similarly named pipe sizes made from other materials may follow different outside-diameter systems.

Confirm whether the pipe is made from:

  • Carbon steel
  • Stainless steel
  • Alloy steel
  • PVC
  • CPVC
  • HDPE
  • Copper
  • Ductile iron
  • Fibreglass-reinforced plastic

Do not assume that every DN 100 pipe has an OD of 114.3 mm. That value is associated with the standard NPS steel pipe series, while other pipe systems may use different dimensions.

Step 7: Check the Applicable Standard

The dimensional standard determines the recognized outside diameters, wall-thickness series, schedules, and tolerances.

Before using the chart, confirm:

  • Product type
  • Pipe material
  • Governing dimensional standard
  • Available schedule
  • Wall-thickness tolerance
  • Outside-diameter tolerance
  • Unit system

This is especially important when combining pipes, fittings, flanges, and valves from different standards.

Step 8: Verify the Complete Pipe Specification

A complete pipe selection requires more than DN and schedule. Depending on the application, the specification may need to include:

  • DN or NPS
  • Pipe schedule or wall thickness
  • Material specification
  • Material grade
  • Seamless or welded construction
  • End preparation
  • Corrosion allowance
  • Design pressure
  • Design temperature
  • Inspection and testing requirements
  • Applicable design code

An example of a more complete description is:

DN 100, Schedule 40, ASTM A106 Grade B, seamless, bevelled ends

Avoid Confusing DN, OD, and ID

A frequent mistake is treating the DN value as a measured pipe diameter.

For example, DN 100 steel pipe normally has:

  • DN designation = DN 100
  • Equivalent nominal size = NPS 4
  • Actual OD = 114.3 mm
  • ID = dependent on wall thickness

Use each value for its intended purpose:

Value Primary use
DN Nominal component identification
NPS Inch-based nominal identification
OD External dimensions and fit-up
Wall thickness Strength and schedule identification
ID Flow area and hydraulic calculations

8. How to Measure and Identify DN Pipe Size

The most reliable way to identify the DN size of a standard pipe is to measure its outside diameter and compare the result with a DN pipe size chart.

Inside diameter alone should not normally be used because it changes with pipe schedule, corrosion, lining thickness, and manufacturing tolerances.

Tools for Measuring Pipe Size

Common measuring tools include:

  • Vernier caliper
  • Digital caliper
  • Outside micrometer
  • Diameter tape
  • Flexible measuring tape
  • Ultrasonic thickness gauge
  • Pipe wall-thickness gauge

A caliper is suitable for small and accessible pipes. A diameter tape is useful for larger installed pipes. An ultrasonic thickness gauge may be required when the pipe end is unavailable.

Method 1: Measure the Outside Diameter Directly

If the full pipe diameter is accessible, use a caliper or outside micrometer.

Follow these steps:

  1. Remove loose rust, dirt, insulation residue, and thick paint.
  2. Position the measuring tool perpendicular to the pipe axis.
  3. Measure across the centre of the pipe.
  4. Repeat the measurement at several angular positions.
  5. Compare the measured OD with a DN chart.

Example:

If the measured outside diameter is approximately 60.3 mm:

OD 60.3 mm = DN 50 = NPS 2

Other common examples include:

Measured OD Likely DN Equivalent NPS
21.3 mm DN 15 1/2
33.4 mm DN 25 1
48.3 mm DN 40 1 1/2
60.3 mm DN 50 2
88.9 mm DN 80 3
114.3 mm DN 100 4
168.3 mm DN 150 6
219.1 mm DN 200 8

Method 2: Measure the Pipe Circumference

For an installed pipe where direct OD measurement is difficult, wrap a flexible tape around the pipe and measure its outside circumference.

Use this WordPress-safe formula:

OD = Circumference ÷ 3.1416

Abbreviated form:

OD = C ÷ 3.1416

Where:

  • OD = outside diameter
  • C = measured outside circumference
  • 3.1416 = approximate value of pi

For example, suppose the measured circumference is 359.1 mm.

OD = 359.1 ÷ 3.1416

OD = 114.3 mm

An OD of approximately 114.3 mm corresponds to:

DN 100 = NPS 4

Method 3: Calculate Circumference From a Known OD

If the outside diameter is known, its approximate circumference can be calculated using:

Circumference = Outside diameter × 3.1416

Abbreviated form:

C = OD × 3.1416

For DN 50 steel pipe:

C = 60.3 × 3.1416

C = 189.44 mm

Therefore, a DN 50 steel pipe has an outside circumference of approximately 189.4 mm, excluding coatings and measurement tolerances.

Method 4: Use a Diameter Tape

A diameter tape converts circumference directly into diameter. When wrapped around the pipe, it displays the approximate OD without requiring a manual calculation.

For an accurate result:

  • Keep the tape flat against the pipe.
  • Position it perpendicular to the pipe axis.
  • Avoid measuring over weld reinforcement.
  • Remove loose scale and thick coatings.
  • Pull the tape firmly without stretching it.
  • Repeat the measurement at different positions.

Identify the Pipe Schedule

Measuring the outside diameter identifies the likely DN or NPS size, but it does not identify the pipe schedule.

Pipes with the same nominal size normally share the same OD. Their schedules are differentiated by wall thickness.

For example, DN 50 pipes may have:

DN 50 pipe OD Nominal wall thickness
Schedule 10 60.3 mm 2.77 mm
Schedule 40 60.3 mm 3.91 mm
Schedule 80 60.3 mm 5.54 mm

If the pipe end is accessible, measure the wall thickness directly with a caliper. If the pipe is installed, an ultrasonic thickness gauge may be required.

Calculate Wall Thickness From OD and ID

When both the outside and inside diameters are known, wall thickness can be estimated using:

Wall thickness = (Outside diameter − Inside diameter) ÷ 2

Abbreviated form:

t = (OD − ID) ÷ 2

For example, suppose a pipe has:

  • OD = 60.3 mm
  • ID = 52.48 mm

Calculation:

t = (60.3 − 52.48) ÷ 2

t = 7.82 ÷ 2

t = 3.91 mm

A DN 50 pipe with a nominal wall thickness of 3.91 mm is normally Schedule 40.

Check the Pipe Marking

New pipes are usually marked with identifying information. Depending on the product standard and manufacturer, the marking may include:

  • Manufacturer’s name or symbol
  • NPS or nominal size
  • Schedule or wall thickness
  • Material specification
  • Material grade
  • Seamless or welded construction
  • Heat number
  • Manufacturing method
  • Inspection mark

For example:

4 SCH 40 ASTM A106 GR B SMLS

This marking generally means:

  • NPS 4
  • DN 100 equivalent
  • Schedule 40
  • ASTM A106 Grade B
  • Seamless construction

Consider Coating Thickness

Paint, galvanizing, wrapping, fireproofing, insulation residue, and other coatings can increase the measured outside diameter.

For accurate identification:

  • Measure a clean, representative section.
  • Remove loose scale and corrosion products.
  • Avoid measuring over weld seams.
  • Deduct known coating thickness when necessary.
  • Take measurements at several locations.

If a coating of thickness c covers the entire pipe, the approximate bare pipe OD may be calculated as:

Bare pipe OD = Measured coated OD − (2 × Coating thickness)

Abbreviated form:

Bare OD = Coated OD − (2 × c)

This calculation is only useful when the coating thickness is known and reasonably uniform.

Account for Corrosion and Ovality

An in-service pipe may no longer match its original nominal dimensions exactly because of:

  • External corrosion
  • Internal corrosion
  • Erosion
  • Mechanical deformation
  • Manufacturing ovality
  • Scale or deposit buildup

Measure at several locations and directions. Do not determine the original schedule solely from one remaining-wall measurement on a used pipe.

Do Not Identify DN From ID Alone

Inside diameter is an unreliable standalone indicator of nominal pipe size because it varies with:

  • Pipe schedule
  • Wall-thickness tolerance
  • Internal lining
  • Corrosion
  • Erosion
  • Deposits
  • Product material and standard

The recommended identification sequence is:

  1. Measure the outside diameter.
  2. Match the OD to a DN or NPS chart.
  3. Measure the wall thickness.
  4. Compare the wall thickness with a schedule chart.
  5. Check pipe markings and documentation.
  6. Verify the applicable material and product standard.

9. How to Select the Correct DN Pipe Size

Selecting the correct DN pipe size requires more than matching the connection size of a valve, pump, or piece of equipment. The pipe must provide adequate flow while meeting pressure, temperature, velocity, mechanical, material, and installation requirements.

The selection process should consider:

  • Required flow rate
  • Allowable fluid velocity
  • Acceptable pressure drop
  • Fluid properties
  • Pipe schedule
  • Design pressure
  • Design temperature
  • Material compatibility
  • Corrosion allowance
  • Connection standard
  • Future operating requirements

Step 1: Determine the Required Flow Rate

The required flow rate is one of the main inputs for pipe sizing.

Depending on the system, flow may be expressed in:

  • Cubic metres per hour
  • Litres per minute
  • Litres per second
  • Cubic feet per minute
  • Gallons per minute
  • Kilograms per hour

The design flow should include credible maximum operating conditions rather than only normal flow.

Step 2: Select an Acceptable Fluid Velocity

Once the flow rate is known, choose an appropriate design velocity.

Excessive velocity may cause:

  • High pressure drop
  • Noise
  • Vibration
  • Erosion
  • Water hammer
  • Increased energy consumption

Very low velocity may cause:

  • Solids deposition
  • Poor transport of suspended material
  • Oversized piping
  • Higher installation cost
  • Longer system response time

Acceptable velocity depends on the fluid, service, pipe material, pressure, and applicable design practice.

Step 3: Estimate the Required Inside Diameter

The relationship between flow rate, velocity, and flow area is:

Flow rate = Flow area × Fluid velocity

Abbreviated form:

Q = A × v

Where:

  • Q = volumetric flow rate
  • A = internal flow area
  • v = average fluid velocity

Rearranging the formula:

Flow area = Flow rate ÷ Fluid velocity

Abbreviated form:

A = Q ÷ v

For a circular pipe:

Flow area = 3.1416 × Inside diameter × Inside diameter ÷ 4

Abbreviated form:

A = 3.1416 × ID × ID ÷ 4

The required inside diameter can therefore be calculated using:

ID = Square root of [(4 × Q) ÷ (3.1416 × v)]

All units must be consistent. If flow rate is expressed in cubic metres per second and velocity in metres per second, the calculated ID will be in metres.

Pipe Sizing Example

Assume that a water line requires:

  • Flow rate = 0.01 cubic metre per second
  • Selected velocity = 2 metres per second

First, calculate the required flow area:

A = Q ÷ v

A = 0.01 ÷ 2

A = 0.005 square metre

Next, calculate the required inside diameter:

ID = Square root of [(4 × 0.01) ÷ (3.1416 × 2)]

ID = Square root of (0.006366)

ID = 0.0798 metre

Convert the result to millimetres:

0.0798 metre = 79.8 mm

The pipe therefore requires an inside diameter of approximately 79.8 mm at the selected velocity.

A standard DN size and schedule must then be selected with an actual ID suitable for the calculated requirement. The next larger standard size may be necessary after considering pressure drop and wall thickness.

Step 4: Check the Actual Inside Diameter

DN is only a nominal designation. Flow calculations must use the actual inside diameter associated with the selected pipe size and schedule.

For example, two DN 100 pipes may have different IDs:

  • DN 100 Schedule 40: approximate ID of 102.26 mm
  • DN 100 Schedule 80: approximate ID of 97.18 mm

The thicker Schedule 80 wall reduces the flow area and increases pressure drop compared with Schedule 40.

Step 5: Calculate the Pressure Drop

After selecting a preliminary DN size, calculate the pressure drop through:

  • Straight pipe
  • Elbows
  • Tees
  • Reducers
  • Valves
  • Strainers
  • Flowmeters
  • Flexible hoses
  • Equipment connections

Pressure drop depends on:

  • Pipe length
  • Inside diameter
  • Flow rate
  • Fluid density
  • Fluid viscosity
  • Surface roughness
  • Fitting quantity
  • Valve type and position
  • Flow regime

If the pressure drop is too high, a larger DN size may be required.

Step 6: Determine the Required Wall Thickness

Pipe size and pipe schedule are related but separate selections.

The required wall thickness depends on:

  • Design pressure
  • Design temperature
  • Material allowable stress
  • Pipe outside diameter
  • Manufacturing tolerance
  • Corrosion allowance
  • Erosion allowance
  • Joint quality factor
  • Applicable piping code

The selected schedule must provide at least the minimum required wall thickness after all applicable allowances are considered.

A preliminary selection based only on flow may provide sufficient internal diameter but insufficient pressure resistance.

Step 7: Confirm Material Compatibility

The pipe material must be suitable for the process fluid and operating environment.

Check compatibility with:

  • Process fluid
  • Cleaning chemicals
  • Atmospheric exposure
  • Chlorides
  • Acids and alkalis
  • Temperature
  • External corrosion
  • Galvanic effects
  • Required cleanliness level

Common pipe materials include:

  • Carbon steel
  • Stainless steel
  • Alloy steel
  • Copper
  • PVC
  • CPVC
  • HDPE
  • Ductile iron
  • Fibreglass-reinforced plastic

Different materials may use different dimensional systems even when they have the same DN designation.

Step 8: Verify Connections and Components

Every component in the piping system must match the selected nominal size and applicable connection standard.

Verify:

  • Valve DN or NPS
  • Flange standard
  • PN rating or ASME class
  • Flange facing
  • Bolt pattern
  • Fitting schedule or bore
  • Equipment nozzle size
  • Gasket dimensions
  • Thread standard
  • Welding end dimensions

A DN 100 valve cannot be selected based on size alone. Its pressure rating, face-to-face dimensions, connection standard, material, and bore must also meet the piping specification.

Step 9: Consider Installation Requirements

The selected pipe size must fit within the available installation space.

Consider:

  • Routing clearances
  • Pipe support spacing
  • Insulation thickness
  • Valve accessibility
  • Welding clearance
  • Thermal expansion
  • Drainability
  • Venting requirements
  • Maintenance access
  • Equipment removal space

A larger DN size may reduce pressure drop but increase cost, weight, support requirements, and installation space.

Step 10: Consider Future Capacity

Where justified, the pipe may include reasonable capacity for:

  • Future equipment
  • Process expansion
  • Increased production
  • Temporary peak demand
  • Normal fouling
  • Gradual internal roughness increase

However, unnecessary oversizing may increase:

  • Material cost
  • Installation cost
  • Fluid inventory
  • Heat loss
  • Residence time
  • Drainage difficulty

Future allowance should be based on realistic project requirements rather than an arbitrary increase in pipe size.

Final DN Pipe Selection Checklist

Before finalizing the DN pipe size, confirm:

  • Required design flow
  • Acceptable velocity
  • Calculated inside diameter
  • Selected DN and NPS
  • Actual ID for the selected schedule
  • Total system pressure drop
  • Required wall thickness
  • Design pressure and temperature
  • Material compatibility
  • Corrosion allowance
  • Dimensional standard
  • Connection compatibility
  • Installation space
  • Applicable piping code

The correct DN size is the smallest practical standard pipe size that safely provides the required flow, acceptable pressure drop, suitable velocity, adequate mechanical strength, and compatibility with the complete piping system.

Conclusion

A DN pipe size chart provides a standardized reference for matching nominal pipe sizes with their corresponding NPS designations and actual outside diameters. However, DN is only a nominal size label—it does not represent the exact inside or outside diameter of a pipe.

To specify a pipe correctly, always consider DN together with the pipe schedule, wall thickness, material, dimensional standard, design pressure, and design temperature. Pipes with the same DN normally have the same outside diameter but may have different inside diameters because of differences in wall thickness.

When identifying an existing pipe, measure its outside diameter first and compare it with a standardized DN chart. The wall thickness must then be measured or obtained from the pipe marking to determine the likely schedule. When selecting a new pipe, use the actual inside diameter for flow and pressure-drop calculations rather than relying on the DN number.

Finally, matching DN or NPS alone does not guarantee component compatibility. Flange standards, pressure ratings, connection types, materials, bolt patterns, and applicable piping codes must also be verified. Using the complete pipe specification helps ensure safe operation, correct installation, and reliable performance throughout the piping system’s service life.

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