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Fluid conveyance · Polypropylene piping
TECHNICAL DATA SHEET
FT-TC-TUB-PPR-001
Issue date: July 22, 2026 · Rev. 001

PP-R socket-fusion polypropylene pipe PN16 (SDR 7.4 · pipe series S 3.2)

TECTUL · WhatsApp +573161111666 · Mon–Fri 8:00–17:00 · Sat 8:00–12:00 (GMT-5) · Dispatch across Colombia · Exports to Central & South America

Allowable pressure · water 20 °C · 50 years (DIN 8077, C = 1.5)
20.4 bar
Allowable pressure · water 70 °C · 50 years (same table: PN16 ≠ 16 bar always)
6.7 bar
Socket-fusion temperature (DVS 2207-11)
260 ±10 °C
Linear thermal expansion (≈13× carbon steel)
0.15 mm/m·°C

Important: Before using these data in engineering, design or installation decisions on systems exposed to mechanical, pressure, rupture, fatigue, impact or water-hammer risk, it is essential to read the technical notice and limitation of liability at the end of this sheet.

VT-86950 · PN16 socket-fusion PP-R pipe, blue, 4 m lengths, 9 diameters 20–110 mm · price from COP $30,800 + VAT per length (Jul 2026, confirmed on quotation)

1. TECHNICAL SPECIFICATIONS

General specifications

ProductPolypropylene random copolymer (PP-R, type 3) pipe for socket-fusion joining, trade pressure class PN16
Dimensional classificationPipe series S 3.2 (ISO 4065) = SDR 7.4; relation SDR = 2·S + 1. The PN16 designation comes from the DIN 8077 system and remains the trade way to order the material
Applicable standardsNTC 4897-1/-2/-3:2017 (ICONTEC, based on ISO 15874) · ISO 15874-1:2013 and ISO 15874-2:2013 (with Amd 1:2018 and Amd 2:2022) · DIN 8077 (dimensions) · DIN 8078 (quality requirements and testing) · joining per DVS 2207-11
JoiningSocket fusion at 260 ±10 °C (500 ±18 °F): pipe and fitting melt into a monolithic joint of the same material, with no adhesives or seals. It is neither threaded nor cemented; connection to NPT threads is made only through metal-insert adapters
Supply form4 m (13.1 ft) lengths, blue, 9 diameters from 20 to 110 mm
Wall thickness tolerancePositive only (+x/−0 per ISO 15874-2:2013, Table 9): the nominal wall is the guaranteed minimum at any point — unlike steel pipe, where the mill tolerance allows down to −12.5%
Pipe markingAt least once per metre per ISO 15874-2:2013, Table 12: standard (ISO 15874), manufacturer, dn × en (e.g. 20 × 2.8), dimension class, material (PP-R), application class with operating pressure (e.g. class 1/8 bar) and production traceability. Batch marking is confirmed on quotation

Dimensions — series S 3.2 / SDR 7.4 (PN16)

Outside Ø dnTrade equivalentMinimum wall eWall tolerance¹Nominal inside Ø
mminmmin
20 mm1/2″2.80.110+0.4 / −0 mm14.40.567
25 mm3/4″3.50.138+0.5 / −0 mm18.00.709
32 mm1″4.40.173+0.6 / −0 mm23.20.913
40 mm1-1/4″5.50.217+0.7 / −0 mm29.01.142
50 mm1-1/2″6.90.272+0.8 / −0 mm36.21.425
63 mm2″8.60.339+1.0 / −0 mm45.81.803
75 mm2-1/2″10.30.406+1.2 / −0 mm54.42.142
90 mm3″12.30.484+1.4 / −0 mm65.42.575
110 mm4″15.10.594+1.7 / −0 mm79.83.142

¹ Minimum wall thicknesses from the S 3.2 column of ISO 15874-2:2013, Table 5 (dimension class A, ISO 4065 metric series); tolerances per Table 9 of the same standard. Nominal inside diameters per manufacturer dimension tables conforming to EN ISO 15874. The nominal size of PP-R is the actual outside diameter in millimetres: the inch label is trade shorthand only and does not allow interchanging fittings from other dimensional systems. The allowable pressure is the same for every diameter of the series (see engineering calculations): that is why this table carries no per-size pressure column.

PP-R material properties

PropertyValueSource
Density905 kg/m³ · 56.5 lb/ft³PP-R compound manufacturer datasheet (see sources)
Modulus of elasticity815 MPa · 118 ksiPP-R compound datasheet
Tensile strength at yield26 MPa · 3,770 psiPP-R compound datasheet
Thermal conductivity0.24 W/m·K · 0.139 BTU/(h·ft·°F)PP-R compound datasheet
Vicat softening temperature (9.8 N)70 °C · 158 °FPP-R compound datasheet
Melt flow rate MFR (230 °C / 2.16 kg)0.30 g/10 min (the standard requires ≤0.5)Compound datasheet · ISO 15874-2:2013, Table 11
Coefficient of linear thermal expansion0.15 mm/m·°C · ≈0.001 in/ft·°FPP-R compound datasheet (single-layer pipe)
Internal pressure test (hoop stress)16.0 MPa at 20 °C for 1 h and 3.5 MPa at 95 °C for 1,000 h, no failureISO 15874-2:2013, Table 10 (PP-R)
Thermal stability1.9 MPa at 110 °C for 8,760 h, no burstingISO 15874-2:2013, Table 11
Longitudinal reversion≤2% (135 °C, ISO 2505 method B)ISO 15874-2:2013, Table 11

⚠ Important: this technical data sheet is a reference guide to the product's properties; it is not a quality certificate for the product you are buying. Heats vary from one another and may differ from the values stated here, or even depart from the standards. If your application requires compliance with a standard, always check the quality certificate (mill certificate) of the lot you are buying. If in doubt, ask one of our technical advisors →

2. ENGINEERING CALCULATIONS (PRESSURE – TEMPERATURE – SERVICE LIFE)

In a thermoplastic the allowable pressure is not a single number: it depends on water temperature and on the projected service life, because PP-R strength decays continuously along its regression curves (ISO 9080; equations (3) and (7) of ISO 15874-2:2013). PN16 does not mean 16 bar at every temperature: it is the trade label of the S 3.2 series referenced to water at 20 °C and 50 years. Every value used is declared below — nothing is silently assumed:

P = 2 · σ · e / (dn − e) = σ / S

σ — allowable hoop stressStress from the PP-R regression curve at the considered temperature and service life, divided by the design coefficient. ISO 15874-2:2013 (Annex A, Tables A.1 and A.2) uses C = 1.4 at 20 °C and publishes σ = 6.93 MPa at 20 °C/50 years; service-pressure tables per DIN 8077 use a 1.5 coefficient. Both routes start from the same curve (regression stress ≈9.7–9.8 MPa at 20 °C/50 years) and differ only in the coefficient applied.
S — pipe seriesS 3.2 per ISO 4065: S = (dn − e) / (2·e). It is constant for the whole series: that is why the PN16 allowable pressure is the same from 20 to 110 mm.
SDR7.4 (SDR = 2·S + 1 = dn/e). In bar: P = 20·σ/(SDR − 1) with σ in MPa.
e, dnMinimum wall and outside diameter from the dimensional table (section 1). The wall tolerance is positive only, so calculating with the nominal e already uses the guaranteed minimum wall.

Worked example — cold water at 20 °C, 50 years (ISO 15874-2)

  1. Design stress at 20 °C/50 years: σ = 6.93 MPa (ISO 15874-2:2013, Table A.2, PP-R; includes C = 1.4 from Table A.1).
  2. PN16 pipe series: S = 3.2.
  3. P = σ / S = 6.93 / 3.2 = 2.17 MPa ≈ 21.7 bar ≈ 315 psi.
  4. Check with a real diameter (dn 25, e 3.5): S = (25 − 3.5)/(2 × 3.5) = 3.07 ≤ 3.2 → the trade series stays on the safe side.

The ISO result (21.7 bar) and the DIN 8077 table with a 1.5 coefficient (20.4 bar) bracket the same fact: at 20 °C the PN16 pipe withstands more than its nominal 16 bar; the PN label is conservative only in cold service. In hot service the opposite happens, as the next table shows.

Allowable pressure by temperature and service life — series S 3.2 / SDR 7.4 (manufacturer table per DIN 8077, safety coefficient 1.5, water)

Water temperature10 years25 years50 years
°C°Fbarpsibarpsibarpsi
20 °C68 °F21.731521.030520.4296
60 °C140 °F11.016010.515210.2148
70 °C158 °F9.21338.01166.797

Additional references from the same table: 5.1 bar (74 psi) at 80 °C/25 years and 4.1 bar (59 psi) at 95 °C/5 years. The accelerated drop at 70 °C/50 years happens because the projection crosses the knee of the regression curve (second branch, equation (7) of ISO 15874-2:2013). Engineering reading: between 20 °C and 70 °C, at 50 years, PN16 loses 67% of its capacity (from 20.4 to 6.7 bar).

Maximum design pressure by application class — ISO 15874-2:2013, Table 3 (S 3.2)

Application class (ISO 15874-1)Characteristic servicePP-R design stressMax. design pressure with S 3.2¹
barpsi
Cold water20 °C · 50 years6.93 MPa10145
Class 1Domestic hot water at 60 °C3.02 MPa8116
Class 2Domestic hot water at 70 °C2.12 MPa687
Class 4Low-temperature heating (underfloor)3.29 MPa10145
Class 5High-temperature heating (radiators)1.89 MPa687

¹ Highest standardized design pressure (options in the standard: 4, 6, 8 or 10 bar) whose maximum calculated S (Table 3 of ISO 15874-2:2013) admits the S 3.2 series; per-class design stress per Table A.2 (which includes each class temperature profile via Miner's rule, ISO 13760, and the coefficients of Table A.1). For cold water the standard caps its options at 10 bar even though the calculation with σ = 6.93 MPa yields 21.7 bar.

3. SOCKET FUSION — PARAMETERS BY DIAMETER (DVS 2207-11)

The standard PP-R joint up to 63–75 mm is socket fusion: the heating tool simultaneously melts the pipe outside and the fitting inside at 260 ±10 °C (500 ±18 °F) per DVS 2207-11. Heating time is counted from the moment pipe and fitting reach the insertion depth — not before —, the joint is made without twisting the parts, and alignment can only be corrected during the joining time. Parameters from the system manufacturer's fusion manual, conforming to DVS 2207-11:

dnInsertion depthHeating (ambient ≥ +5 °C)Heating (ambient < +5 °C)Joining and adjustmentCooling
20 mm14.0 mm5 s8 s4 s2 min
25 mm15.0 mm7 s11 s4 s2 min
32 mm16.5 mm8 s12 s6 s4 min
40 mm18.0 mm12 s18 s6 s4 min
50 mm20.0 mm18 s27 s6 s4 min
63 mm24.0 mm24 s36 s8 s6 min
75 mm26.0 mm30 s45 s8 s8 min
90 mm29.0 mm40 s60 s8 s8 min
110 mm32.5 mm50 s75 s10 s8 min

Execution rules: square, burr-free cut; mark the insertion depth before heating; insert without twisting; under-heating yields an incomplete bond and over-heating restricts the bore; from 75 mm a bench machine is required; larger system diameters (from 160 mm) are joined by butt fusion. Verify the actual plate temperature with a contact thermometer before the first joint. The exact times and depths of the tool in use override this table: confirm them in the fusion machine manual.

4. THERMAL EXPANSION AND SUPPORT SPACING

The coefficient of linear thermal expansion of single-layer PP-R is α = 0.15 mm/m·°C (compound datasheet), about 13 times that of carbon steel (≈11.7×10⁻⁶ K⁻¹, ASM Handbook). In hot-water runs the pipe grows visibly and the installation must absorb that movement with direction changes, flexible arms or expansion loops — never by rigidly anchoring both ends.

ΔL = α · L · ΔT

  1. Example: L = 10 m (33 ft) hot-water riser installed at 20 °C operating at 60 °C: ΔT = 40 °C (72 °F).
  2. ΔL = 0.15 × 10 × 40 = 60 mm (2.4 in) of run growth.
  3. Flexible arm absorbing that ΔL at a direction change: LB = C · √(dn · ΔL), with C the PP-R constant published by the system manufacturer (PPR system catalogues publish values between 15 and 30).
  4. With the most conservative constant (C = 30), dn 32 mm: LB = 30 × √(32 × 60) = 30 × 43.8 ≈ 1,315 mm (≈4.3 ft) of free arm before the first anchor.

The expansion loop (4 × 90° bends) works as a double sliding arm: its length is twice the calculated arm. Supports: fixed points at every direction change and intermediate sliding points that allow axial travel; metal clamps always rubber-lined so they do not score the pipe. Maximum horizontal support spacing per manufacturer catalogue for SDR 6-7.4 pipe (vertical runs allow 30% more): dn 20: 60 cm at 20 °C and 40 cm at 70 °C; dn 32: 80 → 55 cm; dn 63: 130 → 85 cm; dn 90: 165 → 110 cm. PP-R demands much closer supports than metal pipe, and the spacing shrinks as temperature rises. The TECTUL catalogue includes the socket-fusion polypropylene compensation pipe (prefabricated omega loop) to resolve expansion in long straight runs.

5. SANITARY AND FLUID COMPATIBILITY

The scope of ISO 15874 (and of its Colombian adoption NTC 4897) covers hot and cold water installations within buildings, whether or not the water is intended for human consumption. PP-R is a polyolefin: it undergoes no electrochemical corrosion, needs no coatings and adds no corrosion products to the water — manufacturer catalogues expressly state that it preserves the potability of the conveyed water. The sanitary fitness of each batch compound is certified by its manufacturer under the applicable national regulation (ISO 15874-1 defers to each country's rules; in Colombia, the drinking-water quality criteria of Resolución 2115 of 2007): that certificate is supplied on quotation.

6. TECHNICAL Q&A

Does PN16 mean the pipe withstands 16 bar?

Not at every temperature: 16 bar is the trade label of the S 3.2 series referenced to water at 20 °C and 50 years. The DIN 8077 table with a 1.5 coefficient gives 20.4 bar at 20 °C/50 years, but only 6.7 bar at 70 °C/50 years: temperature, not diameter, defines the allowable pressure.

Does PN16 PP-R work for hot water?

Only at low pressure: at 70 °C/50 years it retains 6.7 bar allowable, and by ISO 15874 application class the S 3.2 series admits at most 8 bar in class 1 (DHW 60 °C) and 6 bar in class 2 (DHW 70 °C). For domestic hot water the design practice is PN20 (SDR 6), available on request.

Does it work for compressed air?

It is used in compressed-air networks and system manufacturers list it as an application; the pressures in this datasheet are derived for water, so for air apply the system manufacturer's criterion and consult our technical team before setting the working pressure.

Why is PP-R ordered in millimetres and not inches?

Because its nominal size is the actual outside diameter: a 25 mm pipe measures 25.0 mm. The inch label (3/4″ for 25 mm) is trade equivalence only; connection to NPT threads uses metal-insert transition fittings, never a thread cut into the pipe.

7. Application notes

Feasibility

PN16 (S 3.2) is the middle class of the family: PN10 (SDR 11) leaves a larger bore and is enough for cold water at 20 °C; PN20 (SDR 6) is the starting class for domestic hot water. At dn 20, the bore goes from 16.2 mm (PN10) to 14.4 mm (PN16) and 13.2 mm (PN20): the higher the PN, the smaller the bore — on long hot-water runs it can pay to move up one diameter to keep the design velocity. TECTUL publishes in this reference the 9 PN16 diameters from 20 to 110 mm in 4 m lengths; PN10 and PN20 are quoted on request.

Installation

Use a fusion tool with verified temperature control (260 ±10 °C / 500 ±18 °F) and respect the per-diameter times of section 3: over-heating restricts the bore and under-heating leaves an incomplete bond. Pipe and fitting must belong to the same fusion system; NPT connections only through metal inserts. Pressure-test the system per the manufacturer's manual and the project code before embedding or covering the network. Do not expose the pipe to sunlight in storage or in service without protection, and support it with lined clamps at the spacings of section 4.

Design

Design with three coordinates: actual fluid temperature, project service life and network pressure — the pressure-temperature-life table of section 2 overrides the PN label. The values include the safety coefficient of the standard system used (1.4 in ISO 15874-2, 1.5 in the DIN 8077 tables) and apply to water; they do not cover sustained water hammer, external loads or other fluids. Thermal expansion (0.15 mm/m·°C) is part of the design, not a site detail: define fixed points, flexible arms or loops before fusing the first length.

8. Technical notice and limitation of liability

The allowable pressure, hydraulic performance and temperature values in this data sheet are obtained by theoretical calculation from the nominal properties of the compound per its product standard and the design factors established therein. They are technical reference approximations, not a certificate of conformity for the lot.

Actual values may vary due to extrusion process conditions —wall thickness variation, residual stresses, blend quality— and raw material factors —resin outside its cell classification, regrind content, additive package—. They may also be affected by in-service events not foreseeable at design: recurrent water hammer, prolonged UV exposure, contact with incompatible fluids, sustained temperature above design and pressure-cycle fatigue, which can cause failure before the estimated service life.

Certifying the performance of a specific lot requires testing representative samples per the product standard (sustained pressure, quick burst, dimensional and compound control); only with those results is a certificate of conformity issued. Absent such tests, the data provided here must not be used as the sole criterion in critical applications or where the integrity of the line may compromise life or property; in such cases consult our technical team beforehand.

Sources

TECTUL · FT-TC-TUB-PPR-001 · Rev. 001 · July 22, 2026WhatsApp +573161111666