
Explore how the 14 GD&T symbols are organized into five categories—form, orientation, location, profile, and runout—and how each callout communicates a feature's tolerance on a drawing.
Master how true position uses a cylindrical tolerance zone instead of x and y plus/minus, learn the 1.414 conversion, and decode position calls with diameter, basic dimensions, and datums.
Form tolerances describe a feature's shape on its own, with no datum, and define the zones for flatness, straightness, circularity, and cylindricity.
Master profile tolerances in GD&T by using profile of line for 2D cross sections and profile of surface for 3D control; a callout can replace flatness, perpendicularity, and parallelism.
Learn how runout works as a dynamic GD&T tolerance, with circular and total runout relative to a datum axis, measured by a dial indicator across rings or the full surface.
Decode a real gd&t drawing of a precision mounting bracket with eight callouts, mastering datum a, b, c, the datum reference frame, and tolerances such as flatness, perpendicularity, and angularity.
Learn how virtual condition and resultant condition define the worst-case envelopes for holes and pins, using MMC and LMC with geometric tolerances to analyze gauges and stack-ups.
Learn how the projected tolerance zone moves the envelope to the mating region. Size the projection to match the mating reach, especially for threaded holes and pins.
Learn how tangent plane and free state GD&T modifiers control high-point contact and flexible parts, with guidance on the FCF usage for surface contact, sealing faces, and gravity-influenced shapes.
Establish a datum reference frame on rough surfaces using point, line, and area targets, applied with the 3-2-1 rule for castings, forgings, sheet metal, and injection molded plastic.
Explore composite position with feature control frames stacked vertically: the upper segment locates the four-hole pattern to datums, the lower segment tightens hole-to-hole relation, yielding inner and outer tolerance zones.
Explore how geometric dimensioning and tolerancing defines simultaneous requirements: patterns sharing datum references are inspected as one event moving together; override with separate requirements (SEP RACUTE) when needed.
Learn how RMB, MMB, and LMB datum modifiers govern datum shift and the datum simulator, adding slack as tolerance for size features, pins, holes, and bosses.
Explore statistical stack-up techniques, comparing RSS and Monte Carlo to worst-case tolerances; understand normal and non-normal distributions, high-volume production, and four applicable approaches.
Apply the ASME Y14.5-2018 changes to GD&T practice, including the continuous feature symbol CF, dynamic profile, tighter imperial conventions, clarified uniform tolerance rules, and explicit sim rect callouts.
GD&T isn't just another set of symbols. It's the language every designer, manufacturer, inspector, and supplier on a drawing must share. When two companies hand the same part to two different quality teams and both read it the same way, that's GD&T working. When they read it differently and the part ships wrong, that's GD&T missing and it costs money every single day. This course takes you from zero to fluent in 24 focused lessons. Every lesson is short, self-contained, and built around a real engineering situation not symbol memorization for its own sake.
What makes this course different
Every concept is shown, not just told. You'll see the tolerance zone, the datum frame, the virtual condition envelope, the functional gauge. If you've struggled to "picture" GD&T before, this is what was missing.
Built around real drawings. Lesson 12 decodes a full mounting bracket with 8 GD&T callouts. By the end of that lesson alone you'll read drawings your colleagues still argue about.
Covers the math. Lessons 20-22 walk through worst-case stack-up, 2D vector stack-up, and statistical (RSS) stack-up step by step, with full numbers. No hand-waving.
Up to date with ASME Y14.5-2018. Lesson 24 breaks down exactly what changed from the 2009 standard, so you're not reading a 15-year-old interpretation.
Principles before shortcuts. I teach the reasoning behind each modifier (MMC, LMC, RMB, MMB, CF) so you pick the right one on a real design not just memories what each symbol looks like.
Who I am
Principal Engineer with 15+ years designing and releasing precision mechanical assemblies. I've owned the drawing set for parts that went into production, sat across from suppliers arguing about whether a callout meant what we thought it meant, and trained junior engineers and CAD designers into GD&T fluency on the job.
I've taught over 38,000 students across Udemy in mechanical engineering, drafting, and quality topics, and I'm a certified SolidWorks Professional (CSWP).
What's inside the full 24-lesson outline
Foundations (Lessons 1-5)
1. Why GD&T Exists the assembly-line problem ± tolerancing cannot solve
2. All 14 GD&T Symbols organized into 5 categories that make sense
3. Datums the 3-2-1 rule and why order matters
4. Reading Feature Control Frames every compartment, left to right
5. True Position why ± gives a smaller zone than GD&T
The five families of control (Lessons 6-10)
6. Form Tolerances flatness, straightness, circularity, cylindricity
7. Orientation Tolerances perpendicularity, parallelism, angularity
8. MMC and Bonus Tolerance why MMC gives free tolerance
9. Profile Tolerances one symbol, any shape
10. Runout what the dial indicator actually sees
Applied GD&T (Lessons 11-15)
11. Tolerance Stack-Up worst-case, RSS, and why it matters
12. Real Drawing Decoded a complete bracket with 8 callouts
13. Virtual and Resultant Condition in one formula
14. Projected Tolerance Zone when the zone lives above the surface
15. Tangent Plane and Free State Ⓣ and Ⓕ modifiers explained
Advanced topics (Lessons 16-19)
16. Datum Targets points, lines, areas on real castings
17. Composite Position two lines in one FCF, two controls
18. Simultaneous Requirements when same FCF means same zone
19. Datum Reference Modifiers RMB, MMB, LMB and datum shift
Calculations and practice (Lessons 20-24)
20. 1D Stack-Up four steps, with full numbers
21. 2D Vector Stack-Up when the stack isn't one axis
22. Statistical Stack-Up RSS, Cpk, and when the math is safe
23. Functional Gauge Design sizing pins from MMC + tolerance
24. ASME Y14.5-2018 Update what changed from 2009
How you'll learn
Short lessons, dense visuals, one idea per lesson. You'll see the part, the tolerance zone, the datum frame, and the verdict side by side. Every lesson ends with a recap so you can come back any time and refresh one concept without replaying the whole course. By the end you will read any engineering drawing confidently, run a stack-up that holds up in a design review, and know exactly which modifier to reach for on a new design.