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What is TOC, and how is it shown on schematics?

Top of cement is where the cement column in the annulus ends — and therefore where zonal isolation ends. Here's what sets it, how it's verified, and how to read it off a well schematic at a glance.

By WellSchema Engineering ·

When casing is cemented, slurry is pumped down the inside of the pipe, out the shoe, and up the annulus — the ring-shaped space between the casing and the hole. Pumping stops before the annulus is necessarily full, so the cement column ends somewhere: that depth is the top of cement (TOC). It is one of the most consequential numbers on the entire schematic, because everything below the TOC is hydraulically isolated and supported — and everything above it is not.

Three strings, three TOCs: surface casing cemented to surface (TOC 0 ft), intermediate TOC at 5,000 ft, production TOC at 8,000 ft. The unshaded annulus above each TOC is open.

Why TOC matters

  • Zonal isolation. Cement is the barrier that stops formation fluids migrating up the annulus between zones — the exact failure mode behind sustained casing pressure and, in the worst case, groundwater contamination.
  • Regulatory compliance. Most regulators mandate minimum cement coverage — surface casing cemented to surface is a near-universal rule, and many jurisdictions require cement a stated distance above the shallowest hydrocarbon or water zone.
  • Casing support and protection. Cement carries part of the load, restrains buckling, and shields the pipe from corrosive formation fluids across the covered interval.
  • Later operations. Where you can perforate, where you can safely cut casing, what a plug-and-abandonment program must add — all read directly off the TOCs.

Where the number comes from

The planned TOC comes from a volume calculation: slurry volume versus annular capacity from the caliper log, plus an excess factor for washouts. The actual TOC gets verified after the job:

  • Cement bond log (CBL/VDL) — the definitive measurement, run inside the casing after the cement sets.
  • Temperature survey — curing cement releases heat; a temperature anomaly a few hours after the job marks the top.
  • Job records — lift pressure and returns during the job give an immediate, rougher estimate.
A schematic should reflect the verified TOC where one exists, not the design number. The polite fiction of a planned TOC has ruined more than one workover program.

Reading TOC on the schematic

Conventionally, cement is drawn as a shaded or hatched column in the annulus, from the casing shoe up to the TOC, usually with the depth labeled ("TOC 5,000 ft"). Three patterns cover most wells:

  • Cement to surface — the column reaches the top of the drawing (surface casing, and any string where full coverage was required).
  • Partial column — the column stops mid-annulus at the TOC; the annulus above it is open (often intentional on intermediate and production strings).
  • Uncemented sections — some pipe is deliberately not cemented at all: a slotted production liner in an open-hole completion has no cement column, and drawing one on it is a genuine error. The same goes for driven conductor pipe.

Two quick integrity questions you can answer from TOCs alone: is every permeable zone behind cemented pipe or deliberately open? And does any casing shoe rely on a cement column that stops suspiciously close above it? If the drawing is accurate, those answers take seconds — which is precisely why the drawing has to be accurate.