Process piping: straight pipes, bends and branches – Module ANSI

The ASME B31.3 module calculates the required wall thickness of straight pipes, pipe bends, and branches for process piping.

Module ANSIStandard ASME B31.3 2022Reading time 8 minDE / EN

Engineering task and calculation objective

The ASME B31.3 module calculates the required wall thickness of straight pipes, pipe bends, and branches for process piping. The pressure design thickness is determined per ASME B31.3, paragraph 304.1.2; the pipe dimensions themselves come from the dimensional standards ASME B36.10 (steel pipe) and B36.19 (stainless steel pipe), so that a final nominal wall thickness — the nearest schedule — can be selected directly.

In addition to the pressure design portion, the calculation accounts for the sum of allowances (corrosion, abrasion, thread depth), the mill tolerance (typically 12.5% for seamless pipe), and, where specified, a minimum wall thickness per the purchase specification. For pipe bends, the wall thickness distribution is captured via the bend radius: at the intrados (inside of the bend) the required wall thickness increases, at the extrados it decreases — while at the same time the bending process thins the outside of the bend.

Anyone who needs to calculate pipe wall thickness to ASME B31.3 needs this module for every piping class definition and line sizing in chemical, petrochemical, and industrial plant engineering where the ASME piping code forms the contractual basis.

Standard and calculation basis: ASME B31.3 2022

Calculation workflow

  1. Define code, dimensions, and material: First, the code to apply, the nominal pipe size, and the pipe dimensions per ASME B36.10/B36.19 are selected, together with the material and its allowable stress S at design temperature from Table A-1. Added to this are the quality factor E (longitudinal weld joint factor) and the weld joint strength reduction factor W.
  2. Calculate the pressure design thickness: The minimum wall thickness t follows from equation (3a): t = P·D/(2·(S·E·W + P·Y)), with the Y coefficient per Table 304.1.1, which accounts for the stress distribution through the wall (0.4 for ductile steels below the creep range).
  3. Add allowances and tolerances: The sum of allowances c (corrosion, erosion, threading) is added to the pressure design thickness, and the mill tolerance is accounted for: the ordered nominal wall thickness must be large enough that even at minus 12.5% tolerance the required thickness t + c is not undercut. A minimum wall thickness from the purchase specification is checked in addition.
  4. Evaluate the pipe bend: For bends, per 304.2.1 the correction factor at the intrados and extrados is formed using the bend radius R. The intrados governs, where the required wall thickness exceeds that of the straight pipe; the thinning during bending must be covered by the starting wall thickness.
  5. Select the nominal wall thickness: Finally, the next larger schedule from B36.10/B36.19 is selected as the final nominal wall thickness and the utilization is documented. Comments and the pipe length feed into the documentation of the piping class.
Input quantities24 / 161 quantities
QuantitySymbolUnit
Required wall thicknessWandstärkemm
Outside diameterDamm
Design pressurepbar
Nominal design strengthKN/mm²
Safety factorSF
Weld joint strength reduction factorW
Wall thickness allowancec1mm
Corrosion / wear allowancec2mm
Wall thickness minimum in accordance with the purchase specificationThmm
Lengthlm
Partial weightGewichtkN
VolumeTeilvolumen
Safety factor (test)SF'
Test pressurep'bar
Nominal design strength (test)K'N/mm²
Required wall thickness of pipe (operation)Betriebmm
Required wall thickness of pipe (test)Probemm
Max. allowable unreinforced openingAusschnittmm
MaterialWerkstoff
CommentsBemerkung
Design temperatureT°C
22
ScheduleSchedule Sch
Nominal width in inchNW

Calculation options

Consider test pressure?

No test pressure · ANSI · ASME UG99 · Test pressure input

Select

acc. to schedule · acc. to wall thickness key · free input

1

acc. to schedule · acc. to wall thickness key · free input

2

acc. to schedule · acc. to wall thickness key · free input

3

acc. to schedule · acc. to wall thickness key · free input

Worked example

For a DN 100 (NPS 4) process line of seamless A106 Grade B pipe, the required wall thickness per ASME B31.3 is to be determined — a worked example of a pipe wall thickness calculation. Design pressure 25 bar, design temperature 200 °C, corrosion allowance 2 mm.

Given values

Pipe outside diameter D (NPS 4)114.3 mm
Design pressure P25 bar = 2.5 N/mm²
Allowable stress S (A106 B, 200 °C, Table A-1)137.9 N/mm² (20.0 ksi)
Quality factor E (seamless)1.0
Weld joint strength reduction factor W1.0
Y coefficient (Table 304.1.1)0.4
Corrosion allowance c2.0 mm
Mill tolerance (seamless)12.5%

Solution

1

Pressure design thickness t per Eq. (3a)

t = P·D / (2·(S·E·W + P·Y))

t = 2.5 · 114.3 / (2 · (137.9 · 1.0 · 1.0 + 2.5 · 0.4)) = 285.75 / (2 · 138.9) = 1.03 mm

2

Required minimum wall thickness t_m

tm = t + c = 1.03 mm + 2.0 mm = 3.03 mm

3

Required nominal wall thickness with mill tolerance

The ordered wall thickness may be undercut by 12.5%, therefore:

tnom ≥ tm / 0.875 = 3.03 / 0.875 = 3.46 mm

4

Schedule selection per ASME B36.10

Selected: Schedule 40 with t = 6.02 mm for NPS 4. The thinner Schedule 10 (3.05 mm) would fall short of the required 3.46 mm; Schedule 40 is also the usual standard execution and provides margin for bends and threaded connections.

Result

Pressure design thickness t1.03 mm
Minimum wall thickness t_m (with allowance)3.03 mm
Required nominal wall thickness≥ 3.46 mm
Selected (ASME B36.10)Schedule 40, t = 6.02 mm

All values are illustrative. The applicable standard and project-specific boundary conditions remain authoritative.

Frequently asked questions

What does the Y coefficient in the wall thickness formula stand for?

Y accounts for where across the wall thickness the hoop stress is evaluated. Y = 0.4 (ductile steels below 482 °C) corresponds approximately to an evaluation between the inner and outer fiber and makes the formula accurate for thin- and medium-wall pipe. In the creep range, Y rises to 0.7 because the stresses redistribute. For thick-walled pipe with t ≥ D/6, the code requires special consideration.

What is the difference between the quality factor E and the weld joint strength reduction factor W?

E (Table A-1A/A-1B) rates the manufacturing method of the longitudinal seam — seamless E = 1.0, ERW typically 0.85, depending on the extent of examination. W, by contrast, captures the creep-range weakening of welds: below about 510 °C, W = 1.0; above that it decreases. Both factors act multiplicatively on the allowable stress.

Why is the mill tolerance so often forgotten — and what does it do?

The pressure design thickness plus allowances is a minimum thickness that must not be undercut at any point. Seamless pipe, however, may per ASTM specifications be up to 12.5% below nominal wall thickness. The nominal wall thickness must therefore be at least (t + c)/0.875. Whoever omits the tolerance orders up to 14% too thin — a classic design error.

Does the wall thickness calculation cover the complete piping design?

No. It verifies internal pressure only. ASME B31.3 additionally requires the flexibility and stress analysis for thermal expansion, dead weight, and supplemental loads (sustained, displacement, and occasional load checks), the support design, and, where applicable, verifications for external pressure and branch reinforcement. The wall thickness is the first step, not the last.

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