A size tolerance says how big a feature may be. It says nothing about whether a face is flat, an axis straight, or two bores in line. A shaft can be exactly Ø20 all the way along and still be banana-shaped. Geometrical tolerancing — ISO 1101 (TS 1304) — is what controls form, orientation, location and run-out.
The tolerance frame
Every geometrical tolerance is written in a rectangular frame divided into two or three compartments:
- First compartment — the symbol (what kind of tolerance).
- Second compartment — the tolerance value in millimetres, preceded by Ø if the zone is cylindrical.
- Third compartment — the datum letter or letters, where a datum is needed.
The frame is connected by a leader with an arrow to the feature it controls. If the arrow touches the outline, the tolerance applies to that surface. If it is in line with a dimension line, it applies to the axis or median plane of that feature.
A datum is marked with a filled or open triangle on the reference surface and identified by a capital letter in a box. Datums are the frame of reference the tolerance is measured against — they are chosen from the functional surfaces of the part.
The fourteen symbols
| Group | Tolerance | Datum | Controls |
|---|---|---|---|
| Form | Straightness | no | an edge or axis being straight |
| Flatness | no | a surface being flat | |
| Roundness | no | a cross-section being circular | |
| Cylindricity | no | roundness + straightness along the whole length | |
| Profile | Profile of a line | optional | a curved profile in one section |
| Profile of a surface | optional | a whole curved surface | |
| Orientation | Parallelism | yes | a feature parallel to a datum |
| Perpendicularity | yes | a feature square to a datum | |
| Angularity | yes | a feature at a stated angle to a datum | |
| Location | Position | yes | where a feature actually sits |
| Concentricity / coaxiality | yes | axes sharing a common centre | |
| Symmetry | yes | a median plane centred on a datum | |
| Run-out | Circular run-out | yes | wobble measured in one plane while rotating |
| Total run-out | yes | wobble over the whole surface while rotating |
What a tolerance zone actually is
This is the point most beginners miss. A geometrical tolerance is not a dimension. It is the width of a zone that the real feature has to stay inside.
- Perpendicularity 0,05 to datum A means the real surface must lie between two parallel planes 0,05 mm apart, both exactly perpendicular to A.
- Position Ø0,1 means the real axis must lie inside a cylinder 0,1 mm in diameter centred on the theoretically exact position.
- Flatness 0,02 means the whole surface must fit between two parallel planes 0,02 mm apart, in any orientation.
The Ø in front of the value changes everything. Without Ø the zone is the space between two parallel planes — the feature is controlled in one direction only. With Ø the zone is a cylinder — the feature is controlled equally in every direction. For hole positions the cylindrical zone is almost always the correct one.
Theoretically exact dimensions
When a position tolerance is used, the location itself is given as a boxed dimension — a theoretically exact dimension, with no tolerance of its own. All the permitted variation is contained in the tolerance frame instead. A boxed 40 with a position tolerance of Ø0,1 is far clearer than 40 ±0,05 in two directions, and it defines a round zone rather than a square one.
Test yourself
- Why is a size tolerance not enough?
Because a feature can be the right size and still be out of shape, out of square or out of position. - Which tolerances need no datum?
The four form tolerances: straightness, flatness, roundness, cylindricity. - What does ⊥ 0,05 A mean?
The toleranced surface must lie between two parallel planes 0,05 mm apart, both perpendicular to datum A. - What does the Ø before a tolerance value mean?
The tolerance zone is a cylinder, not a pair of parallel planes. - What is a boxed dimension?
A theoretically exact dimension with no tolerance of its own; the variation is controlled by the geometrical tolerance instead. - Where does the arrow of the tolerance frame point for an axis?
It is placed in line with the dimension line of the feature, not on the outline. - What is the difference between circular and total run-out?
Circular run-out is measured in one plane at a time; total run-out covers the whole surface as the part rotates.
Next lesson. Lesson 10 leaves orthographic projection for a moment and covers pictorial drawing — isometric, dimetric, oblique projections and freehand sketching.
Technical Drawing Training — all lessons
- Lesson 1: Introduction, Paper Sizes, Title Block and Scale
- Lesson 2: Line Types, Line Widths and Lettering
- Lesson 3: Geometric Constructions, Tangency, Polygons and the Ellipse
- Lesson 4: Orthographic Projection, Views and First vs Third Angle
- Lesson 5: Section Views, Hatching Rules and Parts Never Hatched
- Lesson 6: Dimensioning Rules, Systems and Tolerance Accumulation
- Lesson 7: Surface Texture, Ra and Surface Symbols
- Lesson 8: Dimensional Tolerances and the ISO System of Fits
- Lesson 9: Geometrical Tolerances — The 14 Symbols, Frame and Datums ← you are here
- Lesson 10: Pictorial Projection, Isometric Drawing and Sketching
- Lesson 11: Assembly Drawings, Detail Drawings and the Parts List
- Lesson 12: Reading a Drawing for the CNC Operator
- Technical Drawing Symbols and Abbreviations Glossary