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Chapter 7 of 7

Building Drawing & CAD Basics

In the MP Vyapam Sub Engineer Civil syllabus under Engineering Graphics · 2 parts

📑 Contents (20 sections)

Part 1 of 2

Building Drawing

Last reviewed 16 Sept 2026 · 8 min read

Purpose of building drawings

Building drawings communicate the design of a building to the owner, approving authorities, estimators and builders. They form the basis for approval, estimation, tendering, construction and maintenance.

Relevant standard: IS 962 — Code of practice for architectural and building drawings (with SP 46 for general drawing practice).

Types of building drawings

Drawing Content Typical scale
Key plan Location of the site relative to surrounding landmarks, roads and towns Small (e.g. 1 : 10 000 or not to scale)
Location plan Position of the plot with surrounding roads and features 1 : 1000 to 1 : 2500
Site plan Plot boundaries, building position, setbacks, access, north line, drainage, services, trees 1 : 200 to 1 : 500
Line diagram Single-line sketch showing arrangement and sizes of rooms (not to exact scale) —
Plan Horizontal section through the building at about window sill/lintel level (commonly about 1 m above floor) seen from above — walls, openings, rooms, stairs, fixtures 1 : 100 (or 1 : 50)
Elevation External view of a face of the building — front, rear, side elevations 1 : 100
Section Vertical cut through the building showing foundations, floor levels, heights, roof, stairs, openings 1 : 100 or 1 : 50
Working drawings Detailed drawings used for construction with full dimensions and specifications Various
Detail drawings Enlarged details — doors, windows, stairs, joinery, RCC reinforcement, connections 1 : 20, 1 : 10, 1 : 5
Submission drawings Drawings submitted to local authority for building permission — site plan, plans, elevation, section, area statement, as per bye-laws As required
Structural drawings Foundation plans, column layouts, beam and slab reinforcement details Various
Services drawings Water supply, drainage, electrical, HVAC layouts 1 : 100
As-built drawings Record of the building as actually constructed —

Conventions for building drawings

  • Orientation — plan drawn with north preferably towards the top of the sheet; north line shown.
  • Views arrangement — plan at the bottom, elevation above it (projected), section to the side (first-angle arrangement), or as convenient on separate sheets.
  • Section line — marked on plan (e.g. A–A) and chosen to pass through staircase, doors and windows, WC/bath, and other important features to show maximum information.
  • Wall thickness drawn to scale; cut walls in plan shown by thick lines or hatched; openings shown with door swings and window symbols.
  • Dimensions — overall and room dimensions; levels (plinth, floor, lintel, roof) in sections and elevations; units stated.
  • Material symbols and conventional signs (see Conventional Signs & Symbols).
  • Room names, schedule of doors and windows (e.g. D1, W1, V1 with sizes), specifications notes, title block.

Principles of planning

Principle Meaning
Aspect Arrangement of rooms to receive sunlight and breeze as desired (e.g. kitchen receiving morning sun, bedrooms suitably oriented)
Prospect External view from rooms — pleasant views, avoiding undesirable views
Privacy Privacy of rooms from outside and within the building (e.g. bedrooms and toilets not visible from entrance)
Grouping Placing related rooms close — kitchen near dining, toilet near bedrooms
Roominess Getting maximum benefit from minimum dimensions — proper proportions (length/width about 1.2–1.5)
Furniture requirements Room sizes and door/window positions suited to furniture layout
Sanitation Light, ventilation, cleanliness and sanitary provisions
Flexibility Rooms usable for different purposes
Circulation Movement within the building — horizontal (passages, corridors) and vertical (stairs, lifts); minimum and without disturbing privacy
Elegance Pleasing appearance — elevation, proportions
Economy Efficient use of space and materials
Orientation Positioning of the building with respect to sun, wind and rain for comfort (in hot climates, longer walls commonly facing north–south)

Typical dimensions (indicative)

Element Typical values
Plinth height About 450–600 mm above ground
Floor to ceiling height (habitable rooms) About 2.75–3.0 m (bye-laws specify minimums)
Door sizes Main door about 1000 × 2100 mm; internal doors 900 × 2100 mm; toilet doors 750 × 2100 mm
Window sill height About 750–900 mm above floor
Lintel level About 2.1 m above floor
Ventilator Near ceiling, e.g. 600 × 450 mm
Parapet height About 900–1000 mm
Staircase Rise about 150–190 mm; tread (going) about 250–300 mm; width about 900–1200 mm in residences; headroom at least about 2.1 m
Ventilation Openings commonly at least about 1/10 of floor area (bye-laws/NBC)

Minimum room sizes, heights, ventilation, setbacks, floor area ratio (FAR/FSI) and ground coverage are governed by the local building bye-laws (many states adopt the Model Building Bye-Laws framework). Always use the bye-laws applicable to the site.

Drawing plan, section and elevation from a line diagram

  1. Study the line diagram — room sizes (usually internal dimensions), wall thickness, openings, specifications.
  2. Plan: draw centre lines/wall lines to scale; mark wall thicknesses; locate doors, windows, ventilators; show stairs, verandah, steps, sunshades (dashed), kitchen platform, sanitary fittings; dimensions; room names; section line and north line.
  3. Section: project widths from the plan; draw ground line, foundation (trench, PCC bed, footings), plinth, DPC, floor, walls cut, openings (door/window in section), lintel, sunshade, roof slab, parapet; show levels and heights; hatch cut portions with material symbols.
  4. Elevation: project widths from the plan and heights from the section; show plinth, doors, windows, sunshades, roof, parapet, steps, rainwater pipes; no hidden lines; add textures as needed.
  5. Add title block, schedule of openings, specifications and scale.

Staircase planning

FormulaStaircase rules of thumb
  • 2R + T ≈ 550–700 mm (commonly about 600 mm)
  • R × T ≈ 40 000–45 000 mm² (commonly quoted)
  • Number of treads in a flight = number of risers − 1
  • Going of flight = number of treads × tread
  • Maximum risers per flight commonly limited (about 12–15); landings at least equal to stair width.
  • Handrails at about 850–1000 mm height.

Worked examples

Worked ExampleExample 1 — staircase design

A dog-legged stair connects floors 3.0 m apart in a staircase room with internal width 2.2 m. Take rise 150 mm and tread 250 mm. Plan the stair.

Solution. Number of risers 20 → two flights of 10 risers each. Treads per flight 9; going 2250 mm per flight. Width of each flight ; with a 100 mm gap → 1050 mm each. Check: mm (acceptable; lower bound). Room length ≈ landing (1050 mm) + going (2250 mm) = 3300 mm internal length (plus any floor landing space).

Worked ExampleExample 2 — ventilation check

A bedroom of 3.6 m × 3.0 m has one window of 1.2 m × 1.2 m and a ventilator of 0.6 m × 0.45 m. Does it meet 1/10 of floor area as opening?

Solution. Floor area m² → required m² Openings m² → adequate

Worked ExampleExample 3 — plan cutting level

At what level is a building plan assumed to be cut, and why?

Solution. At about window sill/lintel level (roughly 1 m above floor) so that walls, doors and windows are all cut and shown; features above (sunshades, beams) are shown dashed.

Frequently tested points

  • IS 962 — architectural and building drawings.
  • Key plan (surroundings) → location plan → site plan (plot, setbacks, north) → plan, elevation, section → details.
  • Plan = horizontal section at about sill/lintel level, 1 : 100; details 1 : 20/1 : 10.
  • Section line passes through staircase, doors, windows and toilets.
  • North line; schedule of doors and windows; levels in sections.
  • Principles of planning: aspect, prospect, privacy, grouping, roominess, furniture, sanitation, flexibility, circulation, elegance, economy, orientation.
  • Stair: 2R + T ≈ 550–700 mm; treads per flight = risers − 1; headroom ≥ about 2.1 m.
  • Submission drawings follow local building bye-laws (FAR, setbacks, coverage).
Common MistakeCommon mistakes
  • Drawing elevations with hidden lines or inconsistent heights from the section.
  • Selecting a section line that misses the staircase and openings.
  • Counting treads equal to risers in a flight.
Revision SummaryChapter summary
  1. Building drawings range from key, location and site plans to plans, elevations, sections, details, submission and as-built drawings.
  2. IS 962 conventions govern orientation, scales, section lines, dimensions, levels, symbols and schedules.
  3. Principles of planning — aspect, prospect, privacy, grouping, roominess, circulation and others — guide room arrangement.
  4. Plans, sections and elevations are developed from line diagrams by projection, using typical dimensions and bye-law requirements.
  5. Staircases are planned with rise–tread relations, flights, landings and headroom.

Part 2 of 2

CAD Principles

Last reviewed 16 Sept 2026 · 7 min read

What is CAD?

Computer-aided design (CAD) is the use of computers to create, modify, analyse and document designs. Computer-aided drafting focuses on producing 2D drawings; CADD (computer-aided design and drafting) covers both.

  • Early interactive graphics research in the 1960s (e.g. Ivan Sutherland's Sketchpad, 1963) laid the foundation.
  • AutoCAD by Autodesk, released in 1982, brought CAD to personal computers and became widely used in civil engineering and architecture.
  • Other tools: MicroStation, BricsCAD, DraftSight; 3D/BIM tools — Revit, SketchUp, Tekla, Civil 3D; mechanical — SolidWorks, CATIA, Inventor.

Advantages of CAD over manual drafting

Advantage Explanation
Speed and productivity Copy, mirror, array and blocks avoid redrawing repeated features
Accuracy Exact coordinates, object snaps and precise dimensions
Easy modification Changes without redrawing the whole sheet
Reusability Libraries of blocks, templates, standard details
Consistency and standards Layers, text and dimension styles, templates
Automatic dimensioning and quantities Associative dimensions; areas, lengths, schedules
Storage and retrieval Digital files, version control, less physical space
Communication and collaboration Electronic sharing, cloud, external references
3D visualisation and analysis Models, rendering, clash detection, integration with analysis/CAM
Reduced errors Checking tools, fewer transcription errors

Limitations: initial cost of hardware/software and training, dependence on software versions and file compatibility, risk of data loss without backups, possible over-reliance on software.

CAD system components

Hardware

Category Devices
Input devices Keyboard, mouse, digitiser/graphics tablet (with puck/stylus), scanner, light pen, touch screens, 3D mouse, laser scanners (point clouds)
Processing CPU, RAM, graphics processing unit (GPU) — important for 3D display and rendering
Output devices Monitors (display), printers, plotters (pen plotters historically; now inkjet large-format plotters), 3D printers
Storage Hard disks/SSDs, network servers, cloud storage, removable media

Software

  • Operating system and CAD application (graphics engine, geometric modelling kernel, user interface, database).
  • Add-ons: libraries, analysis/estimation modules, rendering engines, programming interfaces (e.g. AutoLISP, .NET, Python in some tools).

Raster vs vector graphics

Aspect Raster (bitmap) Vector
Representation Grid of pixels Mathematical objects — lines, arcs, curves defined by coordinates
Scaling Loses quality (pixelation) when enlarged Scales without loss of quality
File size Depends on resolution Depends on number of objects
Editing Pixel-level Object-level (move, stretch, modify)
Examples Scanned drawings, photographs (JPG, PNG, TIFF, BMP) CAD drawings (DWG, DXF), SVG, PDF (vector content)

CAD drawings are vector-based; scanned paper drawings are raster and may be vectorised.

2D drafting and 3D modelling

Model type Description Features / limits
2D drafting Lines, arcs, text, dimensions on a plane Standard construction drawings
Wireframe model Edges only (lines and curves in 3D) Light, but ambiguous; no surfaces or volume; cannot hide lines automatically
Surface model Edges + surfaces (faces, meshes, NURBS) Visual realism, hidden-line removal; no mass/volume properties
Solid model Complete volume description Mass properties (volume, CG, moment of inertia), Boolean operations, sections, interference checks

Solid modelling representations

  • Constructive solid geometry (CSG) — solids built from primitives (box, cylinder, sphere, cone, wedge, torus) combined by Boolean operations — union, subtraction (difference), intersection — stored as a tree.
  • Boundary representation (B-rep) — solid described by its boundary — faces, edges, vertices and their topology.
  • Sweep representation — extrusion or revolution of 2D profiles.

Parametric and feature-based modelling

  • Geometry controlled by parameters (dimensions) and constraints (geometric — parallel, perpendicular, tangent; dimensional — lengths, angles).
  • Changing a parameter updates the model automatically.
  • AutoCAD supports parametric constraints in 2D; dedicated parametric modellers (Inventor, SolidWorks, Revit families) use it extensively.

Building Information Modelling (BIM)

  • BIM is an object-based, information-rich digital representation of a facility — walls, doors, beams know their properties and relationships.
  • Drawings (plans, sections, schedules) are generated from the model, staying coordinated.
  • Supports clash detection, 4D (time), 5D (cost), facility management (sometimes called 6D/7D).
  • Exchange standard IFC (Industry Foundation Classes).

Geometric transformations

CAD operations such as MOVE, SCALE, ROTATE and MIRROR are implemented using transformation matrices.

Formula2D transformations (homogeneous coordinates)

A point is written as .

Translation by :

Scaling about the origin by :

Rotation about the origin by angle (anticlockwise positive):

Reflection about the x-axis: ; about the y-axis: .

  • Homogeneous coordinates allow translation to be expressed as a matrix multiplication, so a series of transformations can be concatenated into one matrix.
  • Order matters — matrix multiplication is not commutative (rotate-then-translate differs from translate-then-rotate).
  • Rotation/scaling about an arbitrary point : translate the point to the origin, transform, translate back: .

CAD file formats

Format Description
DWG Native AutoCAD drawing format (binary)
DXF (Drawing Exchange Format) Autodesk's exchange format for sharing with other CAD programs
DWT AutoCAD template file
DWF / DWFx Design Web Format — lightweight files for viewing/markup
PDF Portable document — plotting/sharing (vector)
BAK / SV$ AutoCAD backup and autosave files
IGES, STEP Neutral formats for 3D geometry exchange
STL Triangulated surface — 3D printing
IFC Open BIM exchange
RVT Revit project files

CAD standards and data management

  • Templates with predefined units, layers, text styles, dimension styles, title blocks and plot settings.
  • Layer naming conventions (e.g. discipline–element–status), colour and lineweight standards.
  • Standard blocks and details libraries.
  • File naming, version control and revision management.
  • External references (Xrefs) for coordinated multi-discipline drawings.
  • Backups and archiving; access control.

Worked examples

Worked ExampleExample 1 — rotation

Rotate the point (4, 0) by 90° anticlockwise about the origin.

Solution. ; → (0, 4)

Worked ExampleExample 2 — rotation about a point

Rotate the point (5, 2) by 90° anticlockwise about (3, 2).

Solution. Translate: ; rotate: ; translate back: (3, 4)

Worked ExampleExample 3 — scaling and translation

Scale the point (2, 3) by 2 about the origin and then translate by (5, −1).

Solution. Scale → (4, 6); translate → (9, 5) If translated first: (7, 2) → scaled → (14, 4) — different, showing that order matters.

Worked ExampleExample 4 — Boolean operation

A 100 mm cube has a 40 mm diameter through-hole along one axis. Which CSG operation creates it and what is the resulting volume?

Solution. Subtraction of a cylinder (Ø40, length 100) from the cube. 874 336 mm³

Frequently tested points

  • CAD — computer-aided design/drafting; Sketchpad (1963); AutoCAD by Autodesk (1982).
  • Advantages: speed, accuracy, easy modification, reuse, consistency, storage, collaboration, 3D.
  • Input: keyboard, mouse, digitiser, scanner; output: monitor, printer, plotter; GPU for 3D.
  • Raster = pixels (loses quality on scaling); vector = mathematical objects (CAD).
  • Wireframe (edges, ambiguous) → surface (faces, no mass) → solid (volume, mass properties).
  • CSG — primitives + Booleans (union, subtract, intersect); B-rep — faces, edges, vertices.
  • Parametric modelling — dimensions and constraints drive geometry.
  • BIM — object-based information model; IFC exchange.
  • Homogeneous coordinates allow translation as matrix multiplication; order of transformations matters.
  • DWG native, DXF exchange, DWT template, BAK backup, SV$ autosave, STL 3D printing, IGES/STEP neutral 3D.
Common MistakeCommon mistakes
  • Assuming transformations can be applied in any order.
  • Treating wireframe models as solids with volume.
  • Sharing DWG files with incompatible software instead of using DXF/PDF.
Revision SummaryChapter summary
  1. CAD uses computers to create, modify and document designs, offering speed, accuracy, reuse and collaboration over manual drafting.
  2. CAD systems comprise input, processing, output and storage hardware and modelling software.
  3. CAD drawings are vector-based; models progress from 2D drafting to wireframe, surface and solid models using CSG or B-rep, with parametric control and BIM.
  4. Translation, scaling, rotation and reflection are expressed with homogeneous transformation matrices whose order matters.
  5. File formats (DWG, DXF, DWT, PDF, STEP, STL, IFC), standards and data management support reliable exchange.

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