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How to connect PPR pipe: the four numbers that decide whether the joint holds

Socket fusion parameters for PP-R by diameter: heater at 260 ± 10 °C, heating 5–60 s, change-over max 4–10 s, insertion depth 14.5–40 mm.

Socket gauge check on a PP-R fitting — insertion depth follows diameter, not pressure class
Socket gauge check on a PP-R fitting — insertion depth follows diameter, not pressure class

A socket fusion joint in PP-R is not glued, threaded or clamped. The heating tool melts a thin layer on the outside of the pipe and the inside of the fitting socket, and when the two melted surfaces are pushed together they become one piece of polypropylene. Done correctly, the joint is stronger than the pipe wall either side of it. Done incorrectly, it looks identical from the outside and fails months later under pressure and temperature cycling.

That is the uncomfortable part of PP-R installation: no visual inspection reliably separates a good socket weld from a cold one, so the process parameters are the quality control. Four matter — heating element temperature, heating time, change-over time, cooling time — plus insertion depth, a dimension rather than a time, but getting it wrong wastes all four.

This article gives the tabulated values by diameter, names the source for each, and flags the two places where reputable manufacturers publish different numbers.

Which standard actually governs this

The parameter tables that circulate in the PP-R industry nearly all trace back to one document: DVS 2207-11, “Welding of thermoplastics — Heated tool welding of pipes, piping parts and panels made of PP”, published by the German Welding Society (DVS), February 2017 edition. It covers heated-plate and socket welding of pipes, fittings and saddle connections in PP-R among other PP grades.

An honest caveat about sourcing: DVS 2207-11 is paywalled and we did not open the primary document. Every DVS-attributed number here comes from manufacturer literature that explicitly reproduces the DVS table — principally SIMONA’s work.info Welding (October 2023), whose Table 29 is headed “Heated-tool socket welding to DVS 2207-11”. Read “per DVS 2207-11” as “per DVS 2207-11 as reproduced by SIMONA”, cross-checked against two further manuals published independently of each other.

A newer American standard practice also exists: ASTM F3722-24, “Standard Practice for Heat Fusion Joining of Polypropylene (PP) Pipe and Fittings”, published November 2024, covering butt fusion, socket fusion, sidewall outlet fusion and electrofusion for pressure-rated PP pipe, fittings and valves (per the ASPE Pipeline announcement). It is likewise paywalled and we did not open its parameter tables — so no number in this article is attributed to ASTM F3722. If your specification calls it out, buy it rather than assuming it matches the DVS figures.

On fitting geometry, ISO 15874-3:2013 (Polypropylene (PP) — Part 3: Fittings, ISO/TC 138/SC 2 with CEN/TC 155) dimensions the socket itself; its second edition technically revised Tables 3 and 4 — socket length and socket fusion fitting dimensions — and added PP-RCT. We confirmed that from the official ISO preview, but the preview is front-matter only and we could not open Tables 3 and 4. The insertion depths below therefore come from manufacturer manuals.

Parameter 1: heating element temperature — 260 °C, and it is not a suggestion

The heated tool temperature for PP-R socket welding is 260 ± 10 °C, per DVS 2207-11 as reproduced by SIMONA (Section 3.2.2 and Table 29), applying to heated-tool socket welding of PP-H and PP-R pipes and fittings.

This is one of the better-corroborated numbers in plastics piping, because two manufacturers on different continents publish it independently:

SourceStated temperatureStated toleranceAdditional condition
DVS 2207-11, via SIMONA work.info Welding 10/2023, Table 29260 °C± 10 °CVerify with a fast-indicating surface or infrared thermometer before welding
Aquatherm North America Installer Manual, Oct 2024, p. 2.12500 °F (260 °C)± 18 °F (± 10 °C)“The temperature for socket fusion should always be around 500 °F (+/- 18 °F)”
Bänninger PP-R / PP-RCT Technical Manual, “Welding Procedure”, Fig. 14260 °C± 10 °CWelding must not begin before the element reaches 260 °C; heating elements must comply with DVS 2208-1

Three independent sources, one number, one tolerance band — agreement that unusual indicates the figure is a property of the polymer, not vendor-specific tuning.

Two practical consequences, both routinely ignored on site:

  • The thermostat light is not a measurement. SIMONA is explicit that temperature must be verified with a fast-indicating surface or infrared thermometer before welding. A tool whose thermostat has drifted still lights up green at 230 °C. Offered as experience rather than sourced fact: a drifted thermostat is a common explanation for a run of joints that all fail the same way, because technique was never the variable.
  • Do not start before the element has actually reached 260 °C (Bänninger). The first joints of the morning are the classic casualties — the tool is plugged in, the light cycles, and someone starts while the faces are still climbing.

Parameter 2: heating time by diameter

Heating time is where the diameter-by-diameter table becomes unavoidable. The values below are the DVS 2207-11 figures for SDR 11 PP-H / PP-R at 20 °C outside temperature with moderate air movement and the heated tool at 260 ± 10 °C, as reproduced in SIMONA’s Table 29 (p. 42).

The Aquatherm column is their “above 40 °F (4.4 °C)” warm-weather figure from the Oct 2024 Installer Manual, Column E, p. 2.14 — included here to show it is identical across the overlapping range, not to add a second opinion:

Pipe ODHeating time, SDR 11 @ 20 °C (DVS 2207-11 via SIMONA)Aquatherm, above 4.4 °C (Column E)Heating time, SDR 17 (DVS 2207-11 via SIMONA)
d165 s— (not tabulated)Not recommended — wall thickness inadequate
d205 s5 sNot recommended — wall thickness inadequate
d257 s7 sNot recommended — wall thickness inadequate
d328 s8 sNot recommended — wall thickness inadequate
d4012 s12 sNot recommended — wall thickness inadequate
d5018 s18 sNot recommended — wall thickness inadequate
d6324 s24 s10 s
d7530 s30 s15 s
d9040 s40 s22 s
d11050 s50 s30 s
d12560 s60 s35 s

Two things in that table deserve more attention than they get.

The SDR 17 column is not a shortcut you may take at will. DVS 2207-11 only tabulates SDR 17 socket welding from d63 upward. For d16 through d50 in SDR 17, the standard marks socket welding “Not to be recommended because wall thickness is inadequate” (SIMONA Table 29, footnote 2). If a job specifies SDR 17 at 32 mm with socket fusion, that is a specification conflict to raise before the first joint, not a field decision.

Heating time scales with wall thickness, not diameter as such. That is why SDR 17 times run roughly 40–60% of SDR 11 times at the same OD. It also means that switching pipe series mid-project invalidates the timings on the wall chart.

Cold weather: the one place the manufacturers disagree

Ambient temperature changes how fast the melt forms and how fast it dissipates. Both manufacturers we checked tell you to lengthen the heating phase when it is cold — but they do not tell you to lengthen it by the same amount, and no source we found reconciles the two. Attribute your multiplier to a named manufacturer rather than treating either as universal.

SourceThresholdAdjustment
Aquatherm Installer Manual Oct 2024, Column F, p. 2.13–2.14Below 40 °F (4.4 °C)Use longer tabulated times — 20 mm: 8 s; 25 mm: 11 s; 32 mm: 12 s; 40 mm: 18 s; 50 mm: 27 s; 63 mm: 36 s; 75 mm: 45 s; 90 mm: 60 s; 110 mm: 75 s; 125 mm: 90 s (roughly +50% over warm-weather values)
Bänninger PP-R / PP-RCT Technical Manual, Fig. 14 noteBelow +5 °C“The heating phases should be increased by up to 100%”

The thresholds are near-identical (4.4 °C vs 5 °C). The multipliers are not: roughly +50% versus up to +100%. We found no citable basis for declaring either correct. Offered as our judgement rather than a sourced instruction: follow the manual for the system you are actually installing, since the fitting geometry and resin grade are that manufacturer’s — and note that Bänninger’s “up to 100%” is a ceiling, not a fixed factor.

At the other extreme, Aquatherm’s guidance above 100 °F (38 °C) is to reduce heating time slightly but never below 80% of the standard heat time (Oct 2024 manual, p. 2.13–2.14). For Gulf and West African projects this is the more relevant end of the range, and it is a floor worth writing into a method statement — the failure mode in extreme heat is over-melting and socket collapse, and “just count faster” has no defined limit unless you give it one.

Parameter 3: change-over time — the four seconds nobody times

Change-over time (also called transition time) is the interval between pulling the pipe and fitting off the heater faces and having them fully joined. DVS 2207-11 gives it as a maximum, not a target:

Pipe ODChange-over, max. (DVS 2207-11 via SIMONA, Table 29)Aquatherm Column G, p. 2.14
d16 – d254 s4 s (20 mm & 25 mm)
d32 – d506 s6 s
d63 – d908 s8 s
d110 – d12510 s10 s

Aquatherm’s Column G matches DVS 2207-11 exactly across every band. This is the least-disputed parameter in the procedure and the most frequently blown, because it is the only one that cannot be achieved by waiting — it has to be achieved by not waiting.

The reason it is a maximum is physical: the melt starts cooling the instant it leaves the heater. Exceed the change-over time and you push together two surfaces that have already skinned over, producing a joint that is mechanically located but not fused. It will hold a pressure test. It may not hold three years of thermal cycling.

Four seconds at 20 mm is short when you are on a ladder, the fitting is behind a stud, and you have to rotate the pipe to line up a branch. Offered as experience rather than sourced fact: the joints that fail this parameter are rarely the careless ones — they are the ones where geometry made a fast, straight, no-rotation insertion impossible. The fix is sequencing the assembly so awkward joints are made on the bench, not in the ceiling.

Parameter 4: cooling time — two different numbers, and the second one is the one that gets ignored

PP-R socket fusion has two cooling values per diameter, and conflating them causes real damage:

  • Fixed (hold) time — how long you must hold the joint immobile by hand. Measured in seconds.
  • Total cooling time — how long before the joint may be loaded by further laying operations. Measured in minutes.

SIMONA’s footnote 1 to Table 29 puts it plainly: in manual welding, parts must be held fixed for the “Fixed” time, and the joint may only be loaded by further laying operations after the “Total” time has elapsed. Letting go is not the same as it being finished.

Pipe ODFixed / hold time (DVS 2207-11 via SIMONA)Total cooling (DVS 2207-11 via SIMONA)Total cooling (Aquatherm Column H, p. 2.14)
d166 s2 min— (not tabulated)
d206 s2 min2 min
d2510 s2 min2 min
d3210 s4 min4 min
d4020 s4 min4 min
d5020 s4 min4 min
d6330 s6 min6 min
d7530 s6 min8 min
d9040 s6 min8 min
d11050 s8 min8 min
d12560 s8 min8 min

Note the two bold cells. At 75 mm and 90 mm, DVS 2207-11 (via SIMONA) gives 6 minutes total cooling; Aquatherm’s Column H gives 8 minutes. Both documents were opened directly and both are authoritative manufacturer or standards-derived literature. We found no source that explains the divergence. Where two credible sources disagree and neither can be shown wrong, the defensible engineering choice is the conservative one — take 8 minutes at d75 and d90 — but if you are writing a method statement for approval, cite whichever document your specification references and say which one you followed.

Aquatherm additionally directs the installer to immobilise the joint for up to a quarter of the cooling time, which is a different way of expressing the hold requirement than the DVS “Fixed” column; the two are not numerically identical and we have not attempted to reconcile them.

Parameter 5: insertion depth — the dimension that makes the times meaningful

If the pipe is not inserted to the correct depth, none of the timings above matter, because the heated length and the engaged length no longer correspond. Insertion depth is set by the socket geometry of the fitting, so it follows the outside diameter rather than the pressure class — the PPR pipe sizes in mm and inches are the reference to work from.

The values below are from Bänninger’s Fig. 15, “Bush depths for PP-R and PP-RCT fittings”, where the heading reads “Bush depth = Insertion depth”. The Aquatherm column is their “fusion depth”, Column D, p. 2.14 of the Oct 2024 Installer Manual:

Pipe ODInsertion depth (Bänninger, Fig. 15)Fusion depth (Aquatherm, Column D)Aquatherm imperial
d1613.0 mm— (not tabulated)
d2014.5 mm14.5 mm9/16 in
d2516.0 mm16 mm5/8 in
d3218.0 mm18 mm11/16 in
d4020.5 mm20.5 mm13/16 in
d5023.5 mm23.5 mm15/16 in
d6327.5 mm27.5 mm1-1/16 in
d7530.0 mm30 mm1-3/16 in
d9033.0 mm33 mm1-5/16 in
d11037.0 mm37 mm1-7/16 in
d12540.0 mm40 mm1-9/16 in

The agreement is exact across the overlapping range — two manufacturers on different continents, same millimetre values — which indicates the depths derive from the standardised ISO 15874-3 socket geometry rather than one vendor’s tooling. To be precise about that inference: we could not open ISO 15874-3’s Tables 3 and 4, so we are reasoning from the convergence of two manuals, not the standard text. Formulas for socket length and pipe penetration circulate in search results; we did not verify them and do not reproduce them here.

The operational point: mark the insertion depth on the pipe before you heat it, as SIMONA’s weld-seam preparation guidance requires. Once the pipe is in the heater you have no reference — you cannot see the socket bottom, and “it felt like it bottomed out” is not a depth gauge.

Pipe end preparation, and when hand welding stops being allowed

Two preparation requirements from SIMONA’s Section 3.2.2 that are easy to skip and expensive to skip:

  • External chamfer. The pipe end must be given an external chamfer of approximately 15°, 2 mm wide for diameters up to 50 mm and 3 mm wide for larger diameters. The chamfer is what allows the pipe to enter the socket without shearing the melt off the leading edge and pushing it ahead as a cold ring.
  • Insertion depth mark applied before welding, as above.

And one constraint that determines what equipment must be on site at all:

For PE-HD and PP pipe diameters ≥ 63 mm, an appropriate welding jig (fusion machine) must be used — hand welding is limited to smaller sizes (SIMONA, Section 3.2.2, “Basic conditions”; for PVDF the threshold is ≥ 50 mm). This is not a comfort recommendation. Above 63 mm the axial force needed to seat the joint within the change-over time exceeds what a person can apply squarely and repeatably, and off-axis insertion is exactly how you get a joint that is thick on one side and unfused on the other.

What this means for the PPR range we actually supply

Being direct about scope, because a parameter table covering d16–d125 can imply we sell all of it: we do not.

Our PPR PN20 pipe (Series 1103) is offered in three sizes only — 20 × 2.8, 25 × 3.5 and 32 × 4.4 mm, in 4 m lengths (per our catalogue). The matching fitting family is Series 1138, a 75-item series (per our catalogue). The pipe is non-toxic and suitable for potable water, joined by socket (heat) fusion, with recycled content ≤ 10% and quality unaffected (per our catalogue).

So only d20, d25 and d32 apply to IFANNova PPR. Extracted, that is the whole job:

Parameter20 × 2.8 mm25 × 3.5 mm32 × 4.4 mmSource
Heater temperature260 ± 10 °C, verified with a surface or IR thermometer before weldingDVS 2207-11 via SIMONA; corroborated by Aquatherm and Bänninger
Heating time @ 20 °C5 s7 s8 sDVS 2207-11 via SIMONA Table 29; identical in Aquatherm Column E
Heating time, cold ambient8 s11 s12 sAquatherm Column F, below 4.4 °C. Bänninger instead says up to +100% below 5 °C — sources differ
Change-over, max.4 s4 s6 sDVS 2207-11 via SIMONA; Aquatherm Column G identical
Insertion depth14.5 mm16.0 mm18.0 mmBänninger Fig. 15; Aquatherm Column D identical
External chamferapprox. 15°, 2 mm wide (all three sizes are under 50 mm)SIMONA Section 3.2.2
Fixed / hold time6 s10 s10 sDVS 2207-11 via SIMONA Table 29
Total cooling before loading2 min2 min4 minDVS 2207-11 via SIMONA; Aquatherm Column H identical at these sizes
Welding jig required?No — all three are below the 63 mm threshold, hand welding permittedSIMONA Section 3.2.2

Notice what falls away at these sizes: the 75/90 mm cooling-time dispute never arises, the SDR 17 “not recommended” problem does not apply because PN20 at these diameters is thick-walled, and the 63 mm jig threshold is never reached. The three sizes we supply sit entirely inside the range where the sources agree with each other — a consequence of our range being narrow rather than a virtue of the product.

Where we cannot help: if your project needs PP-R above 32 mm — risers, plant room headers, anything in the d63–d125 band where the jig requirement and the cooling-time divergence both bite — that is outside our PPR offering. Our pressure pipe range tops out at Φ110 — in UPVC/CPVC 806 (WP55 pipe, PN16, Φ20–Φ110 wall thicknesses 2.0 to 7.2 mm) and in HDPE with 603/604 compression fittings (PN16, Φ20–Φ110, 2.3 to 10.0 mm), both tabulated size by size in our catalogue. PPR stops at 32 mm. Better said at enquiry stage than discovered at takeoff — and where a wall thickness genuinely is not printed in our catalogue, as with our PEX ranges, we say so and quote rather than back-calculating from an SDR formula and presenting the result as product data.

A field checklist, in the order the operations actually happen

  1. Confirm heater temperature at the faces with a surface or infrared thermometer — not by the indicator lamp. Target 260 °C, tolerance ± 10 °C. Do not begin before the element has reached temperature.
  2. Cut square. An out-of-square cut converts uniformly into an unfused segment on one side of the joint.
  3. Chamfer the pipe end to approximately 15°, 2 mm wide up to d50, 3 mm above.
  4. Mark the insertion depth on the pipe — 14.5 / 16.0 / 18.0 mm for d20 / d25 / d32.
  5. Check the ambient temperature and decide which heating-time column you are working from. Write down which manufacturer’s cold-weather rule you are following.
  6. Heat pipe and fitting simultaneously on the tool for the tabulated time. Start counting when both are fully seated on the faces, not when you pick them up.
  7. Change over and join within the maximum — 4 s at d20/d25, 6 s at d32. Straight axial push to the depth mark, no rotation.
  8. Hold immobile for the fixed time — 6 s at d20, 10 s at d25 and d32.
  9. Leave the joint unloaded for the total cooling time — 2 min at d20/d25, 4 min at d32 — before any further laying, pulling or supporting.
  10. Do not pressure test until the whole run has cooled. The total cooling time is per joint; a run finished five minutes ago contains joints that are still stabilising.

Where the sources leave you without an answer

Three open items from our source review, so as not to overstate what is known:

  • The 75 mm / 90 mm cooling-time divergence (6 min DVS-via-SIMONA vs 8 min Aquatherm) has no published reconciliation we could find. Cite your source, or take the longer time.
  • The cold-weather multiplier has no single authoritative value — roughly +50% (Aquatherm) versus up to +100% (Bänninger). We checked Aquatherm’s weather-extremes bulletin specifically for socket-fusion percentage guidance; it contains none, though it does note that butt, fusion outlet or socket fusion is generally not recommended below −4 °F / −20 °C without special provisions.
  • ISO 15874-3’s socket dimension tables and ASTM F3722-24’s parameter tables are both behind paywalls we did not cross. Any figure attributed to either should be checked against the purchased standard before it enters a specification.

None of this makes PP-R socket fusion difficult. It makes it specific. The technique is simple; the tolerance for improvisation is what is narrow.

IFANNova is a French brand; our PPR, UPVC, HDPE, PVC drainage, PEX and brass ranges are manufactured by Zhuji Fengfan Piping in Zhejiang, China (per our catalogue) — 30+ years, 1000+ employees, shipping to 118+ countries from a 120,000 m² facility. We are not a French manufacturer and do not claim to be.

For pricing, MOQ, lead times and stock position: Coming soon — these are quoted per enquiry rather than published, because they move with size mix and destination. Talk to us about your PPR requirement and tell us the sizes and quantities; if the job needs diameters above our range, we will say so rather than quote around it.

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