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IC-004 · H₂S (Sour) Corrosion: Mechanisms and Effects July 11, 2026
IC TRACK · INTRODUCTION TO INTERNAL CORROSION

H₂S (Sour) Corrosion: Mechanisms and Effects

H₂S sour corrosion — the two-part threat, the sour-service threshold, the three damage modes, and the field signatures that flag it.

Basics & Theory ~10 minutes PDH/CEC eligible

Apply — three field-grounded problems

Classify the line, name the damage, plan the handoff

Three short problems, all built from the sour-corrosion read you just finished — and all kept at the level you’d use on the job. There’s exactly one calculation, the H2S partial-pressure math, and you’ll run it twice; the rest is reading. In the first you classify a line and decide what changes. In the second you look at a piece of damaged pipe and name which sour mode did it. In the third you take a line that started life sweet, prove it’s turned, and hand it up the chain. Read each setup, think it through, then click each step to compare with our working.

How to use this lesson. Read the setup. Think before you click. Each step reveals what we’d say.


Problem 1 · Is this line sour service?

Classify a line and decide what changes

Setup. A wet gathering line lands on your list. The gas carries CO2 — the sweet side — but this time the analysis also shows a little H2S. Here’s the paperwork and the last water sample:

SEGMENT · WET GATHERING
Pressure1,200 psig
H₂S60 ppm
CO₂1.4%
Water cut3%
Bulk pH5.6
Sulfide in waterpresent
Scale on couponblack, sooty

(1) Calculate the H2S partial pressure and classify the line. (2) CO2 is also present — which gas sets the stakes here, and why? (3) What damage becomes possible now that a sweet line wouldn’t have? (4) What do you flag and collect?

Step 1 — run the number, classify

Gauge to absolute, then apply the parts-per-million fraction:

PH₂S = (60 ÷ 1,000,000) × (1,200 + 14.7)
PH₂S = 0.000060 × 1,214.7 ≈ 0.073 psia

Against the 0.05 psia sour-service threshold, 0.073 is over the line — about one and a half times over. This is sour service. Sixty ppm sounded like nothing; the 1,200 psig is what carries it across. Same lesson as the sweet module — it’s the partial pressure that classifies a line, never the raw content alone.

Step 2 — which gas sets the stakes

Both gases are working this line, and both matter — but H2S sets the safety stakes. The CO2 is doing the sweet-side job: making acid, thinning wall, a loss problem you can track. The H2S does that and charges hydrogen into the steel — the cracking and blistering threat the CO2 can’t create on its own. When both are present, the sour side is the one that changes what the line is allowed to be made of and how it has to be inspected. The sweet part you can already read; the line gets classified on the sour part.

Step 3 — what damage is now possible

Crossing into sour service puts two new failure modes on the table that a pure sweet line never had:

  • Hydrogen-induced cracking (HIC) — blistering and stepwise cracking from hydrogen collecting inside the steel. No stress required.
  • Sulfide stress cracking (SSC) — brittle cracking of hard, stressed steel, welds first in line.

Uniform metal loss is still happening too — but it’s those two hydrogen-driven modes, invisible to a plain thickness gauge, that make sour classification a different conversation than “watch the wall thin.”

Step 4 — flag and collect

The classification itself is the headline — flag it up the chain so the materials and inspection questions get asked by the people who own them. Then round out the indirect picture:

  • Confirm the H2S with a fresh read — the whole classification rides on it.
  • Water chemistry — pH, dissolved iron trend, and the sulfide that’s already showing.
  • Note the black scale for what it is — iron sulfide, a warning, not a sign the line is coping.
  • Bacteria check — is anything souring this line further from the inside?

You’re not choosing materials or inspection methods — that’s designed above your tier. You’re the one who caught that the line crossed the threshold.

Sixty ppm at 1,200 psig is 0.073 psia — sour service. CO2 thins the wall; H2S adds cracking the gauge can’t see, so it sets the stakes. The win is catching the classification and flagging it up.


Problem 2 · Name the damage

Read a piece of pipe and call the mode

Setup. A sour line is dug up for a tie-in and you get to look at a cut-out. On the body of the pipe — away from any weld — there’s a smooth, rounded bulge in the wall, like a blister under paint. A thickness check across the bulge reads near nominal; almost no metal is missing. The steel is ordinary lower-strength line pipe, and the line has run at steady pressure with no unusual outside load.

CUT-OUT · SOUR LINE
Findingrounded wall bulge
Locationpipe body, not a weld
Wall thicknessnear nominal
Steelordinary lower-strength pipe
Stresssteady pressure, no ext. load

(1) Which of the three sour modes best fits this? (2) Why did the thickness gauge read fine? (3) How would the picture change if it were a hairline crack at a hard weld instead? (4) What do you do with the finding?

Step 1 — call the mode

This is hydrogen-induced cracking — the blistering form. Walk it back through the chemistry: the acid attack charged single hydrogen atoms into the steel; they wandered to an internal flaw; there they paired back into hydrogen gas and built pressure in the pocket; the pressure lifted the wall into that bulge. The clinching details are that it’s on the pipe body, not a weld, and it needed no outside stress — steady pressure, soft steel. That’s HIC’s signature: hydrogen doing the damage from the inside, on its own.

Step 2 — why the gauge read fine

Because HIC barely removes metal. The wall didn’t thin — it got pushed apart from the inside by trapped gas. A thickness gauge measures how much steel is there, and there’s still nearly a full wall’s worth; it just has a gas-filled void and a bulge in it. This is the module’s hardest lesson in one object: a near-nominal thickness reading is not a clean bill of health on a sour line. Catching this takes methods built to map cracking through the wall, not just clock its thickness.

Step 3 — change it to a cracked weld

Different ingredients, different mode. A hairline crack at a weld, in hard, higher-strength steel (a hard heat-affected zone), carrying the residual stress welding locks in — that’s sulfide stress cracking. Same charged-in hydrogen underneath, but now it’s embrittling hard steel that’s being pulled on, and the failure is a brittle crack rather than a blister. The two tells that flip HIC to SSC are hardness and stress: HIC needs neither, SSC needs both. And a third read — general thinning under black scale, no bulge, no crack — would just be the uniform-loss mode.

Step 4 — what to do with it

Document it as suspected hydrogen damage and move it up the chain — this is an integrity finding, not a housekeeping note:

  • Record it precisely — location, appearance, the near-nominal thickness, photos of the bulge.
  • Flag that routine thickness monitoring is blind to it, so the assessment gets the right method.
  • Preserve the cut-out if you can — it’s evidence for the people who’ll assess how far the cracking has gone.

How the line gets assessed and what happens to it is the integrity engineer’s call. Your job was to see a bulge that a gauge called fine and know it for what it is.

A rounded bulge on the pipe body at near-full thickness, in soft steel with no outside load, is HIC blistering — hydrogen from inside, no stress needed. Add hardness and stress at a weld and it becomes SSC. The gauge missed it; you didn’t.


Problem 3 · From signal to handoff

A line that started sweet and turned

Setup. A gathering line was commissioned years ago as sweet — no measurable H2S on the original analysis. You’ve sampled it three consecutive months and the story holds across all three rounds: H2S now reads about 220 ppm, the water sulfide is up, and the bacteria count in the water is high. The line runs at 450 psig.

SEGMENT · 3-MONTH TREND
At commissioningsweet (no H₂S)
H₂S now~220 ppm (3 rounds)
Pressure450 psig
Water sulfiderising
Bacteria (water)high count
Flowslow; dead legs present

(1) Does this clear the repeatability gate? (2) Classify current service — run the check. (3) What’s the most likely reason a sweet line went sour? (4) What do you hand up, and why does the “sweet” label on file not settle it?

Step 1 — the repeatability gate

Yes — it clears, and clears well. One month of surprise H2S is a note in the file. Three consecutive rounds telling the same story — H2S present, sulfide rising, bacteria high — is a repeatable, coherent signal. Sampling has too many ways to mislead for one read to move a program; three that agree is reason to act.

Step 2 — classify current service

Run the same check as always, on today’s numbers:

PH₂S = (220 ÷ 1,000,000) × (450 + 14.7)
PH₂S = 0.000220 × 464.7 ≈ 0.10 psia

That’s about twice the 0.05 psia threshold. By current service, this line is sour — regardless of what the commissioning paperwork says.

Step 3 — why a sweet line went sour

The fingerprints point to microbial souring. H2S that wasn’t there at commissioning, a high bacteria count, rising sulfide, and slow flow with dead legs where microbes shelter — that’s the picture of bugs in the system generating H2S from the inside. The gas coming out of the ground didn’t necessarily change; the line grew its own sour side. How those microbes live and how they’re controlled is a whole module of its own later in this set — here, naming souring as the cause is the job.

Step 4 — the handoff, and why “sweet” on file doesn’t settle it

Hand up a clean, repeatable package: three rounds of agreeing data, the current partial pressure crossing the sour threshold, and the souring evidence. The recommendation isn’t yours to design — but the flag is yours to raise: this line needs reclassifying as sour service, which reopens the materials and inspection questions that were settled when it was called sweet.

And that’s exactly why the label on file doesn’t settle it: sour service is a current condition, not a birthmark. A line’s original “sweet” classification is only as good as its last sample. You proved the line moved; the people upstream decide what the move requires.

Three rounds that agree is a signal. The current-service check — 0.10 psia, twice the threshold — says sour, and the bacteria and dead legs say souring did it. The commissioning label is stale; your fresh data is what reclassifies the line.


What this Apply lesson was after. Three uses of the sour read. You classified a line on its H2S partial pressure and knew what crossing the threshold puts on the table. You looked at a bulge a thickness gauge called fine and named it hydrogen damage — and knew what would flip it to sulfide stress cracking. And you carried a souring line from a three-month signal to a clean handoff, knowing a “sweet” label on file is only as good as the last sample.

The Quiz at the end of this module checks the core ideas with a mix of recall and recognition questions. After that, this set turns to oxygen — a gas that doesn’t belong in the pipe at all, and does its worst where it sneaks in.