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Architectural Materials Course
More than 2 million students worldwide

Architectural Materials Course

Master every major building material system used in professional architectural practice — from structural concrete and steel to glazing, roofing, and interior finishes. This course gives architects, designers, and construction professionals the technical depth to specify materials with confidence, detail assemblies correctly, and defend every decision on the job.

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What you will learn:

You will build a comprehensive understanding of masonry, concrete, steel, wood, glass, roofing, and interior finish systems, covering how each material is manufactured, tested, and specified. You will learn to read technical data sheets, interpret fire and durability ratings, and write construction specifications that hold up in the field. The course also covers building envelope design, hygrothermal performance, sustainable material criteria, and life-cycle cost analysis. You will gain practical skills in material compatibility, substitution evaluation, and procurement documentation. By the end, you will be equipped to make informed, defensible material decisions on real projects.

How you study in practice Architectural Materials Course

How you practice Architectural Materials Course

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Course Content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Architectural Materials

  • Lesson 1 • Physical and Mechanical Properties

    Covers strength, elasticity, hardness, and density as measurable material attributes. These properties directly determine suitability for structural and finish applications.

  • Lesson 2 • Thermal and Acoustic Properties

    Examines how materials conduct, store, and resist heat and sound. Understanding these properties links material selection to occupant comfort and energy performance.

  • Lesson 3 • Material Categories and Classification

    Introduces the primary families of building materials and their defining characteristics. Classification provides the framework for all subsequent material analysis in the course.

  • Lesson 4 • Reading Material Data Sheets

    Teaches interpretation of manufacturer technical data sheets and standardized test reports. Accurate data reading is essential for comparing materials and verifying specification compliance.

  • Lesson 5 • Durability and Degradation Mechanisms

    Analyzes how materials deteriorate through chemical, biological, and mechanical processes. Recognizing degradation modes informs maintenance planning and material lifespan estimates.

Chapter 2See details

Masonry and Concrete Systems

  • Lesson 1 • Precast and Tilt-Up Concrete

    Introduces factory-produced and site-cast panel systems for walls and structural elements. These methods offer speed and quality control advantages over cast-in-place concrete.

  • Lesson 2 • Masonry Wall Assembly and Detailing

    Addresses cavity walls, veneer systems, and reinforced masonry construction details. Proper assembly prevents moisture infiltration and ensures structural continuity.

  • Lesson 3 • Concrete Mix Design Principles

    Explains the role of cement, aggregates, water, and admixtures in determining concrete performance. Mix design choices directly affect strength, workability, and durability.

  • Lesson 4 • Reinforced and Prestressed Concrete

    Covers rebar placement, prestressing techniques, and their effect on structural behavior. These systems extend concrete's capacity to span and resist tension.

  • Lesson 5 • Brick and Block Masonry Units

    Examines clay brick, concrete masonry units, and natural stone blocks as walling materials. Unit selection affects structural capacity, thermal performance, and aesthetic character.

Chapter 3See details

Structural Steel and Metal Systems

  • Lesson 1 • Architectural Metal Cladding

    Covers aluminum, zinc, copper, and steel panel systems used as exterior and interior cladding. Finish, jointing, and substrate compatibility determine longevity and visual quality.

  • Lesson 2 • Structural Steel Shapes and Sections

    Covers wide-flange, hollow structural, and built-up sections and their load-carrying behavior. Section geometry determines moment of inertia, weight efficiency, and connection options.

  • Lesson 3 • Light-Gauge Steel Framing

    Addresses cold-formed steel studs, joists, and track systems used in non-structural and load-bearing partitions. Gauge selection and bracing details determine wall performance and fire rating.

  • Lesson 4 • Steel Fabrication and Connections

    Examines welding, bolting, and shop fabrication processes that translate design into physical assemblies. Connection type affects load transfer, ductility, and field erection sequence.

  • Lesson 5 • Steel Alloys and Grades

    Distinguishes carbon steel, high-strength low-alloy, and stainless steel grades by composition and performance. Grade selection governs weldability, corrosion resistance, and structural efficiency.

Chapter 4See details

Wood and Timber Construction

  • Lesson 1 • Wood Preservation and Finishing

    Covers pressure treatment, natural durability ratings, and surface finishes that extend wood service life. Treatment selection depends on exposure conditions and occupant health considerations.

  • Lesson 2 • Light Wood Frame Construction

    Examines platform and balloon framing systems, stud layouts, and sheathing integration. Framing geometry and sheathing type determine lateral resistance and thermal performance.

  • Lesson 3 • Wood Species and Grading

    Introduces softwood and hardwood species, their growth characteristics, and visual and mechanical grading systems. Species and grade together determine allowable design values for structural use.

  • Lesson 4 • Heavy Timber and Mass Timber

    Addresses post-and-beam, timber frame, and mass timber systems including CLT and NLT assemblies. These systems offer exposed structural aesthetics and favorable fire char behavior.

  • Lesson 5 • Engineered Wood Products

    Covers laminated veneer lumber, glulam, cross-laminated timber, and I-joists as alternatives to sawn lumber. Engineered products offer dimensional stability and higher allowable spans.

Chapter 5See details

Glass, Glazing, and Transparent Systems

  • Lesson 1 • Insulating Glass Units

    Covers double- and triple-pane IGU construction, spacer types, and gas fills for thermal performance. IGU design directly affects U-value, condensation resistance, and acoustic performance.

  • Lesson 2 • Solar Control and Coatings

    Examines low-emissivity coatings, solar control films, and fritted glass for managing solar heat gain. Coating position and type determine visible light transmittance and shading coefficient.

  • Lesson 3 • Curtain Wall and Window Systems

    Addresses stick-built, unitized, and window wall systems as primary glazed envelope assemblies. System selection affects water management, thermal bridging, and installation sequence.

  • Lesson 4 • Structural Glazing and Point-Fixed Systems

    Covers silicone structural glazing, spider fittings, and cable-net facades as frameless glazing solutions. These systems maximize transparency but require precise structural and sealant design.

  • Lesson 5 • Glass Manufacturing and Types

    Explains float, tempered, laminated, and heat-strengthened glass production and resulting properties. Manufacturing process determines strength, breakage pattern, and post-breakage safety.

Chapter 6See details

Roofing and Waterproofing Systems

  • Lesson 1 • Steep-Slope Roofing Materials

    Examines asphalt shingles, clay and concrete tile, slate, and metal roofing for pitched applications. Slope, weight, and underlayment requirements vary significantly across steep-slope materials.

  • Lesson 2 • Below-Grade Waterproofing

    Examines sheet-applied, fluid-applied, and crystalline waterproofing systems for foundations and below-grade walls. Hydrostatic pressure and soil conditions govern system selection and drainage design.

  • Lesson 3 • Roof Insulation and Thermal Control

    Addresses polyisocyanurate, EPS, XPS, and mineral wool insulation boards used in roofing assemblies. Insulation placement relative to the deck determines vapor drive and condensation risk.

  • Lesson 4 • Low-Slope Roofing Membranes

    Covers built-up roofing, modified bitumen, and single-ply membranes for flat and low-slope applications. Membrane type determines installation method, maintenance needs, and service life.

  • Lesson 5 • Flashing and Edge Detailing

    Covers base flashing, counter flashing, edge metal, and penetration seals as critical waterproofing transitions. Flashing failures account for the majority of roofing system leaks.

Chapter 7See details

Interior Finish Materials

  • Lesson 1 • Paints, Coatings, and Adhesives

    Examines latex, alkyd, and specialty coatings alongside flooring and tile adhesives for interior use. VOC content, sheen level, and substrate compatibility govern product selection.

  • Lesson 2 • Ceiling Systems and Acoustics

    Addresses suspended acoustic tile, gypsum board, and specialty ceiling systems and their acoustic roles. Ceiling material and plenum depth together determine noise reduction and reverberation control.

  • Lesson 3 • Flooring Systems and Selection

    Covers resilient, ceramic, stone, wood, and carpet flooring systems and their substrate requirements. Slip resistance, wear rating, and moisture tolerance determine fitness for each occupancy.

  • Lesson 4 • Millwork and Casework Materials

    Covers solid wood, MDF, particleboard, and high-pressure laminate as substrates and surfaces for millwork. Material choice affects dimensional stability, machinability, and finish adhesion.

  • Lesson 5 • Wall Finish Materials

    Examines gypsum board, plaster, tile, stone veneer, and wall panel systems as interior wall finishes. Fire rating, impact resistance, and moisture performance vary across wall finish types.

Chapter 8See details

Material Integration and Specification

  • Lesson 1 • Material Compatibility and Interfaces

    Addresses chemical, galvanic, and dimensional compatibility issues at material transitions and connections. Incompatible material pairings cause premature failure that specification must prevent.

  • Lesson 2 • Building Envelope Assembly Design

    Integrates cladding, insulation, air barrier, and vapor control layers into a coordinated wall assembly. Each layer's position and continuity determines overall hygrothermal and energy performance.

  • Lesson 3 • Writing Construction Specifications

    Teaches the three-part specification format covering products, execution, and quality control requirements. Precise specification language reduces substitution risk and field interpretation errors.

  • Lesson 4 • Life-Cycle Cost and Maintenance Planning

    Applies life-cycle cost analysis to compare initial cost, maintenance, and replacement cycles across material options. Long-term cost modeling shifts material decisions beyond first-cost comparisons.

  • Lesson 5 • Material Substitution Evaluation

    Provides a framework for reviewing contractor-proposed substitutions against specified performance criteria. Systematic evaluation protects design intent while allowing legitimate cost or supply alternatives.

Certification

Your valid completion certificate

This course is for you:

  • Architectural graduates: ready to move beyond studio into real project work.

  • Licensed architects: seeking stronger technical footing in material specification.

  • Interior designers: expanding their scope to include performance-driven material choices.

  • Construction project managers: wanting to understand what architects actually specify and why.

  • Building envelope consultants: deepening expertise across all major material systems.

  • Career changers: entering the AEC field from engineering or product design backgrounds.

What our students say

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Giulio CarloDigital Marketing Student
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