
Autodesk Civil 3D Training
Master Autodesk Civil 3D from the ground up and deliver production-ready civil engineering designs with confidence. This comprehensive training covers surfaces, alignments, corridors, pipe networks, and plan production using industry-standard workflows. Whether you're advancing your career or sharpening existing skills, this course gives you the technical depth employers demand.
What you will learn:
This course takes you through every major Civil 3D workflow used in real transportation and site design projects. You will build TIN surfaces from survey data, design horizontal alignments and vertical profiles, and assemble full 3D corridor models. You will also lay out storm and sanitary pipe networks, run interference checks, and generate earthwork quantity reports. Grading, parcel subdivision, superelevation, and BIM data exchange are covered in the supplementary chapters. By the end, you will produce a complete, coordinated set of construction documents using Civil 3D plan production tools.
How you study in practice Autodesk Civil 3D Training
How you practice Autodesk Civil 3D Training
For companies that want to train their team
With Dedika for Business, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 36 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsCivil 3D Interface and Workspace Fundamentals
Civil 3D Interface and Workspace Fundamentals
Lesson 1 • Navigating the Civil 3D Interface
Covers ribbons, toolspace panels, and viewport controls specific to Civil 3D. Establishes spatial awareness of the UI as the entry point for all subsequent workflows.
Lesson 2 • Drawing Settings and Unit Configuration
Defines coordinate systems, units, and ambient settings that govern all Civil 3D objects. Correct setup here prevents downstream errors in design and annotation.
Lesson 3 • Civil 3D Object Model Overview
Introduces the parent-child relationship between Civil 3D objects such as surfaces, alignments, and profiles. Understanding object dependency is essential for managing design changes.
Lesson 4 • Styles and Label Basics
Explains how styles control the visual display of Civil 3D objects and labels. Students apply predefined styles to understand the separation of design data from presentation.
Chapter 2HideHide detailsSee detailsPoints, Point Groups, and Survey Data
Points, Point Groups, and Survey Data
Lesson 1 • Point Group Organization and Filtering
Teaches grouping points by description, elevation, or raw criteria for selective display and export. Organized point groups streamline surface building and data handoff.
Lesson 2 • Creating and Importing COGO Points
Covers manual point entry, coordinate import from text files, and point creation commands. Accurate point data is the raw material for surfaces and alignments.
Lesson 3 • Point Styles and Label Styles
Configures marker symbols and annotation for points to meet project standards. Consistent point labeling improves plan readability and client deliverable quality.
Lesson 4 • Survey Database and Field Data
Introduces the Civil 3D survey database for importing field book and total station data. Connecting raw survey observations to the drawing ensures traceable, accurate geometry.
Chapter 3HideHide detailsSee detailsSurface Creation and Analysis
Surface Creation and Analysis
Lesson 1 • Breaklines and Boundaries
Teaches standard, proximity, and wall breaklines to enforce surface shape along features. Boundaries clip or hide triangles to produce clean, accurate surface extents.
Lesson 2 • Surface Analysis and Visualization
Generates elevation, slope, slope arrow, and watershed analyses for engineering review. Visual analysis communicates site conditions to stakeholders and informs design decisions.
Lesson 3 • Building TIN Surfaces from Data
Covers adding point groups, DEM files, and drawing objects as surface data sources. A properly built TIN surface is the foundation for earthwork and drainage design.
Lesson 4 • Surface Volume and Comparison
Computes cut-fill volumes between existing and proposed surfaces using bounded volume tools. Accurate volume reporting supports cost estimation and earthwork planning.
Lesson 5 • Surface Editing and Refinement
Applies point deletion, swap edge, and add line edits to correct surface artifacts. Refined surfaces reduce earthwork calculation errors and improve contour accuracy.
Chapter 4HideHide detailsSee detailsAlignments and Horizontal Geometry
Alignments and Horizontal Geometry
Lesson 1 • Alignment Labels and Tables
Applies major, minor, and geometry point labels and generates curve data tables. Labeled alignments meet plan production standards for construction documents.
Lesson 2 • Horizontal Geometry Design
Applies tangent-tangent, fixed, and floating curve entities to meet design speed criteria. Proper curve geometry satisfies horizontal sight distance and safety requirements.
Lesson 3 • Alignment Creation Methods
Covers layout tools, polyline conversion, and best-fit alignment creation workflows. Choosing the right creation method ensures geometric accuracy from the start.
Lesson 4 • Stationing and Alignment Properties
Configures station equations, reference points, and alignment design criteria files. Correct stationing is required for profile, cross-section, and quantity calculations.
Chapter 5HideHide detailsSee detailsProfiles and Vertical Geometry
Profiles and Vertical Geometry
Lesson 1 • Designing the Finished Grade Profile
Creates layout profiles using fixed, floating, and free vertical curve entities. Vertical geometry must satisfy grade limits and stopping sight distance requirements.
Lesson 2 • Profile Labels and Annotation
Configures grade break, tangent, and curve labels within the profile view. Properly annotated profiles communicate vertical design intent on construction drawings.
Lesson 3 • Profile Design Criteria and Checks
Applies design criteria files to flag crest and sag curves that violate sight distance standards. Automated checks reduce manual review time and improve design reliability.
Lesson 4 • Sampling and Displaying Profiles
Samples surface elevations along an alignment to create existing ground profile data. The profile view provides the vertical canvas for all subsequent design work.
Chapter 6HideHide detailsSee detailsCorridors and Cross-Section Design
Corridors and Cross-Section Design
Lesson 1 • Earthwork Quantities from Corridors
Computes cut-fill volumes using end-area and prismoidal methods from sample line data. Quantity reports feed cost estimates and mass haul planning for construction.
Lesson 2 • Corridor Creation and Configuration
Combines alignment, profile, and assembly into a corridor model with region-based control. The corridor is the central 3D object from which all road design outputs are derived.
Lesson 3 • Corridor Surfaces and Feature Lines
Extracts top, datum, and subgrade surfaces from corridor links and adds them to the drawing. Corridor surfaces enable earthwork volumes and drainage design on the proposed road.
Lesson 4 • Sample Lines and Cross-Section Sheets
Creates sample line groups and generates cross-section views for plan production. Cross-sections display cut-fill conditions and subassembly geometry at each station.
Lesson 5 • Assembly and Subassembly Fundamentals
Builds road cross-section assemblies from lane, shoulder, and daylight subassemblies. Assemblies define the parametric template applied at every corridor station.
Chapter 7HideHide detailsSee detailsPipe Networks and Drainage Design
Pipe Networks and Drainage Design
Lesson 1 • Pipe and Structure Rules
Configures minimum cover, maximum slope, and drop rules to automate design compliance. Rule-based design reduces manual checking and enforces engineering standards consistently.
Lesson 2 • Interference Checking and Analysis
Runs 3D interference checks between pipe networks and other Civil 3D objects. Identifying clashes in design prevents costly field conflicts during construction.
Lesson 3 • Pipe Network Creation and Layout
Builds storm and sanitary networks by placing pipes and structures in plan view. Network layout tools enforce slope, cover, and size rules during interactive design.
Lesson 4 • Pipe Network in Profile View
Displays pipe networks in profile views to verify cover, slope, and invert elevations. Profile review is essential for confirming gravity flow and avoiding conflicts with utilities.
Lesson 5 • Pipe Network Labels and Plan Production
Applies pipe length, slope, size, and structure rim labels for construction document output. Annotated pipe networks meet standard plan and profile sheet requirements.
Chapter 8HideHide detailsSee detailsPlan Production and Sheet Management
Plan Production and Sheet Management
Lesson 1 • Quantity Takeoff and Reporting
Generates earthwork, pipe, and material quantity reports directly from Civil 3D objects. Accurate quantity takeoffs support bid documents and construction cost control.
Lesson 2 • Data Shortcuts and Project References
Creates data shortcuts to share surfaces, alignments, and profiles across multiple drawings. Shared references keep project data synchronized without duplicating geometry.
Lesson 3 • View Frames and Match Lines
Generates view frame groups along alignments to define plan and profile sheet extents. Match lines ensure continuous coverage and correct sheet-to-sheet alignment.
Lesson 4 • Publishing and Plotting Deliverables
Configures plot styles, page setups, and batch publishing for final deliverable output. Consistent plotting settings ensure professional, reproducible construction documents.
Lesson 5 • Sheet Set Creation and Layout
Produces plan, profile, and cross-section sheets from view frames using sheet templates. Automated sheet creation eliminates manual viewport setup and reduces production time.
Your valid completion certificate
This course is for you:
Civil engineering students ready to apply classroom theory professionally.
CAD technicians transitioning from AutoCAD into infrastructure design roles.
Survey professionals wanting to extend their skills into full design workflows.
Junior engineers tasked with road or drainage projects for the first time.
Land development designers moving from manual drafting to parametric modeling.
Career changers with a construction background entering civil design technology.
What our students say
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