12.2 Composite Profile and Coplanarity
Key Takeaways
- A composite profile FCF has an upper segment that locates the pattern or surface to datums and a lower segment that refines feature-to-feature or form without re-locating.
- The lower segment of a composite profile FCF never re-establishes location to the datums; it only refines within the upper zone.
- Coplanarity by profile treats several nominally coplanar surfaces as a single interrupted profile with one continuous zone — all surfaces must lie within the same two parallel planes.
- A single coplanarity zone is fundamentally different from separate per-surface profile zones, which can drift relative to each other by the full tolerance.
- A composite FCF is not equivalent to two independent single-segment FCFs; two independent FCFs each fully apply and can both re-locate.
12.2 Composite Profile and Coplanarity
Composite profile tolerancing allows a designer to specify different tolerances for different functions on the same surface or pattern: a larger tolerance that locates the feature(s) to a datum reference frame, and a smaller tolerance that refines the feature-to-feature or form relationship within the located zone. Coplanarity treats several nominally coplanar surfaces as one profile so a single zone covers them all simultaneously. Both are Senior-level topics because the FCF reading is non-obvious and the verification logic is two-tier.
Composite Profile of a Pattern
A composite profile feature control frame has the profile symbol in the first compartment, followed by two or more segments stacked vertically. The upper segment carries a tolerance and (usually) a complete datum reference frame. It locates the pattern as a whole to the datums — every feature in the pattern must lie within a single, larger profile zone located by the datums. The lower segment carries a tighter tolerance and may repeat the datums or drop some; it refines the relationship of the features within the pattern (feature-to-feature), but does NOT re-locate the pattern to the datums. The lower segment's datum references, when present, control orientation of the pattern within itself; they do not establish a new location.
The critical Senior-level rule: the lower segment never re-locates. If the upper segment locates a four-feature pattern within 0.8 to A|B|C, and the lower segment refines to 0.2 with A|B as datums, the 0.2 zone is a feature-relating zone — each feature's relationship to the others (and its orientation to A primary, B secondary) is held tighter, but the pattern's location to C is still governed only by the 0.8 upper zone. The lower segment can also have NO datums, in which case it controls only feature-to-feature (the pattern's self-relationship).
Composite Profile of a Single Surface
When composite profile is applied to a single surface (not a pattern), the upper segment locates the surface to the datums; the lower segment refines the surface's form (and possibly orientation) within the located zone. The lower segment's tighter zone must float within the larger upper zone. This is a way to hold overall location loosely while tightening the surface's shape — useful on cast faces that must mate at a datum but whose local waviness matters for sealing.
Coplanarity by Profile
Coplanarity is the condition in which two or more surfaces lie in the same plane. Y14.5-2009 controls coplanarity with profile of a surface by treating the multiple surfaces as a single interrupted profile with one continuous tolerance zone. The zone is two parallel planes (equally or unequally disposed about the true plane) that spans all the coplanar surfaces at once. The leader points to one of the surfaces (or to a chain line connecting them), and the FCF's profile tolerance applies to all the surfaces in the set.
The key distinction from per-surface profile: if each of three coplanar pads has its own profile of a surface callout, each pad gets its own independent zone — the three zones can be offset from each other by the full tolerance in any direction. With coplanarity profile (single callout, single zone), all three pads must lie within the same two parallel planes. There is no allowance for the three zones to drift relative to each other. This is what "single zone" means and is the heart of coplanarity control.
Reading a Composite Profile FCF
| FCF (read top-down) | Upper segment meaning | Lower segment meaning |
|---|---|---|
| Profile 0.8 to A|B|C / Profile 0.2 to A|B | Pattern located to A, B, C within 0.8; features within pattern held to each other and oriented to A, B within 0.2 | No re-location to C |
| Profile 0.5 to A|B|C / Profile 0.1 | Pattern located to A, B, C within 0.5; feature-to-feature only within 0.1, no datums | Pure feature-relating refinement |
| Profile 0.4 to A / Profile 0.1 to A | Single surface located to A within 0.4; form/orientation within 0.1 to A | Floats inside upper zone |
| Profile 0.2 (no datums, three coplanar pads) | Coplanarity: all pads within a single 0.2 zone, two parallel planes | — |
Worked Composite Example
Consider a cover plate with three raised sealing pads. The designer wants the three pads to be tightly coplanar (so the gasket seats evenly) but the entire pad group can be looser in its height from the base. Callout: profile of a surface 0.5 to A (A = bottom face) on the upper segment; profile of a surface 0.1 (no datum) on the lower segment, leader to all three pads with a chain line. The 0.5 upper zone locates the pad group's height from A. Within that 0.5 zone, the 0.1 lower zone forces all three pads to lie in two parallel planes 0.1 apart — strong coplanarity — without tightening the 0.5 location. An inspector who reads the callout as "0.1 location to A" will reject parts that are perfectly good, because the 0.1 is not a location to A, it is a coplanarity refinement.
Composite vs Two Single Segments
A Senior trap: a composite FCF is NOT the same as two independent single-segment FCFs on the same feature. Two independent FCFs each have full meaning on their own — both must be met independently and both can re-locate. A composite FCF, by contrast, has a hierarchy: the lower segment is a refinement that operates inside the upper zone, and the lower segment cannot re-establish location. Composite also reduces inspection burden because the upper zone is the acceptance zone for location and the lower zone only checks refinement; two independent FCFs require two separate verifications both of which can reject the part. Composite profile is therefore preferred for "locate loosely, refine tightly" intent.
In a composite profile FCF, what does the lower segment do?
Three nominally coplanar pads are controlled by one profile of a surface 0.2 callout applied to all three (single zone). What does the single zone require?
A composite profile FCF has upper segment 0.5 to A|B|C and lower segment 0.2 to A|B. What is the lower segment's role?
Which statement best distinguishes a composite profile FCF from two independent single-segment FCFs?
A single surface has composite profile 0.4 to A (upper) / 0.1 to A (lower). What is the design intent?
A composite profile FCF on a single surface reads 0.4 to A (upper) / 0.1 to A (lower). Which statement is true?