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Design of Connections in Steel Structures Course
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Design of Connections in Steel Structures Course

Master every critical aspect of steel connection design, from bolted shear tabs to seismic moment frames. This course delivers rigorous, code-based methods for sizing, detailing, and verifying connections that keep steel structures standing. Whether you're advancing your structural engineering career or sharpening your design practice, this is the definitive training for connection competency.

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What you will learn:

  • Apply limit-state design methods to bolted and welded steel connections under real load conditions.

  • Design simple shear, moment, and base plate connections using current AISC code provisions.

  • Analyze bolt groups and weld groups subjected to eccentric shear and combined loading.

  • Detail column stiffeners, continuity plates, and doubler plates for moment frame connections.

  • Size gusset plates and brace connections for both gravity and seismic force-resisting systems.

  • Integrate fabrication tolerances, corrosion protection, and constructability into connection details.

How you study in a practical way Design of Connections in Steel Structures Course

How you practice Design of Connections in Steel Structures Course

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Course content

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

Chapter 1See details

Fundamentals of Steel Structural Connections

  • Lesson 1 • Limit States and Failure Modes

    Strength and serviceability limit states define acceptable connection performance. Identifying governing failure modes is the foundation of safe design.

  • Lesson 2 • Classification of Steel Connections

    Connections are classified by rigidity, load type, and geometry. This taxonomy guides selection of appropriate design models throughout the course.

  • Lesson 3 • Force Transfer Mechanisms

    Bearing, friction, and fusion are the primary force transfer mechanisms. Recognizing each mechanism enables accurate limit-state identification.

  • Lesson 4 • Role of Connections in Steel Structures

    Connections transfer forces between members and define structural behavior. Understanding their role frames every design decision in subsequent chapters.

  • Lesson 5 • Materials Used in Connections

    Fastener and base-metal material properties govern strength and ductility. Correct material selection prevents premature failure under service loads.

Chapter 2See details

Bolted Connection Design Principles

  • Lesson 1 • Bolt Group Analysis Methods

    Eccentric shear on bolt groups requires elastic or instantaneous center methods. Selecting the correct method balances accuracy with design efficiency.

  • Lesson 2 • Tension Connections with Bolts

    Prying action amplifies bolt tension beyond applied loads. Accounting for prying is essential for safe hanger and flange connection design.

  • Lesson 3 • Combined Shear and Tension in Bolts

    Eccentric loads and moment connections subject bolts to simultaneous shear and tension. Interaction equations ensure no single bolt is overstressed.

  • Lesson 4 • Shear Connections with Bolts

    Bolt shear capacity depends on shear plane location and bearing conditions. Calculating nominal and design strengths anchors the limit-state design process.

  • Lesson 5 • Bolt Types and Installation Methods

    High-strength and common bolts differ in pretension requirements and behavior. Proper installation method directly affects slip resistance and fatigue performance.

Chapter 3See details

Welded Connection Design Principles

  • Lesson 1 • Fillet Weld Strength and Sizing

    Fillet weld capacity depends on effective throat, length, and electrode strength. Minimum and maximum size limits prevent cracking and lamellar tearing.

  • Lesson 2 • Weld Quality and Inspection Standards

    Weld defects reduce capacity and initiate fatigue cracks. Specifying inspection methods and acceptance criteria ensures fabricated welds meet design assumptions.

  • Lesson 3 • Weld Types and Joint Geometry

    Fillet, groove, plug, and slot welds serve distinct structural roles. Matching weld type to joint geometry optimizes strength and fabrication economy.

  • Lesson 4 • Weld Group Analysis Under Eccentric Loads

    Eccentric shear and moment loads create non-uniform stress in weld groups. Elastic and instantaneous center methods quantify peak weld demand accurately.

  • Lesson 5 • Groove Weld Design and Prequalification

    Groove welds achieve full or partial joint penetration depending on preparation. Prequalified joint details reduce the need for procedure qualification testing.

Chapter 4See details

Simple Shear Connections

  • Lesson 1 • Clip Angle and Double Angle Connections

    Clip angles provide flexible end connections with high rotational capacity. Leg flexibility and bolt layout control the distribution of shear and secondary moment.

  • Lesson 2 • Coped Beam End Conditions

    Coping removes beam flanges to clear supporting members, reducing local strength. Block shear, flexural yielding, and buckling checks are all required at coped ends.

  • Lesson 3 • Single-Plate Framing Connections

    Single-plate connections simplify erection but require careful eccentricity checks. Plate thickness limits and weld sizing prevent premature yielding or fracture.

  • Lesson 4 • Seated Beam Connections

    Seated connections support beam reactions through a bearing seat angle or plate. Stiffened and unstiffened seats suit different load magnitudes and geometries.

  • Lesson 5 • Shear Tab Connections

    Shear tabs transfer beam end reactions through a single plate welded to the support. Ductility requirements govern plate thickness and weld configuration.

Chapter 5See details

Moment Connection Design

  • Lesson 1 • End Plate Moment Connections

    End plate connections use a plate welded to the beam end and bolted to the column. Flush and extended end plate configurations suit different moment magnitudes.

  • Lesson 2 • Directly Welded Flange Connections

    Direct weld of beam flanges to column flanges achieves full moment transfer without plates. Weld access holes and backing bars require careful detailing for quality and fatigue.

  • Lesson 3 • Behavior of Moment Connections

    Moment connections must transfer both shear and moment while maintaining rotation compatibility. Classifying connections by stiffness determines their effect on frame analysis.

  • Lesson 4 • Column Web and Flange Stiffening

    Concentrated flange forces from moment connections can buckle or yield the column panel zone. Continuity plates and doubler plates restore column capacity where needed.

  • Lesson 5 • Flange Plate Moment Connections

    Flange plates carry tension and compression forces from beam flanges to columns. Plate sizing, weld design, and bolt layout must satisfy all applicable limit states.

Chapter 6See details

Column Base Plate and Anchor Rod Design

  • Lesson 1 • Moment Base Plate Design

    Moment at the column base creates non-uniform bearing and anchor rod tension. Iterative pressure distribution analysis determines plate thickness and rod demands.

  • Lesson 2 • Axially Loaded Base Plate Design

    Concentric compression spreads column load over the concrete bearing area. Plate dimensions and thickness are governed by bearing pressure and cantilever bending.

  • Lesson 3 • Anchor Rod Design for Tension

    Uplift and moment loads place anchor rods in tension, requiring embedment and ductility checks. Concrete breakout and pullout must be verified alongside rod tensile capacity.

  • Lesson 4 • Detailing and Constructability of Base Plates

    Anchor rod templates, leveling nuts, and grout pockets affect erection accuracy. Proper detailing prevents field problems and ensures load transfer as designed.

  • Lesson 5 • Shear Transfer at Column Bases

    Horizontal forces at column bases are resisted by friction, anchor rods, or shear lugs. Selecting the appropriate mechanism depends on load magnitude and foundation geometry.

Chapter 7See details

Truss and Bracing Connections

  • Lesson 1 • Brace-to-Gusset Connections

    Braces connect to gussets via bolts or welds, transferring large axial forces. Clearance zones and hinge lines allow brace rotation without inducing plate fracture.

  • Lesson 2 • Gusset-to-Frame Connections

    Gusset plates attach to beams and columns through welds or bolts along their edges. Interface forces include shear, normal force, and moment that must be distributed uniformly.

  • Lesson 3 • Gusset Plate Design and Sizing

    Gusset plates distribute forces from braces and diagonals to chords and columns. Plate geometry, thickness, and edge conditions govern yielding and buckling resistance.

  • Lesson 4 • Force Analysis at Panel Points

    Truss connections must equilibrate axial forces from multiple converging members. Accurate force resolution prevents unintended eccentricity and secondary bending.

  • Lesson 5 • Special Considerations for Seismic Bracing

    Seismic bracing connections must accommodate brace buckling and yielding cycles. Capacity design principles ensure connections remain elastic while braces dissipate energy.

Chapter 8See details

Advanced Topics and Connection Optimization

  • Lesson 1 • Connection Design Review and Quality Control

    Systematic review catches errors before fabrication and erection. Checklists, peer review, and constructability assessments are essential professional practice tools.

  • Lesson 2 • Finite Element Analysis of Connections

    FEA reveals stress concentrations and load redistribution beyond simplified models. Validating FEA models against test data ensures reliable predictions for complex details.

  • Lesson 3 • Fatigue Design of Connections

    Cyclic loading degrades connection capacity through crack initiation and propagation. Fatigue categories and stress range limits govern detail selection in dynamic structures.

  • Lesson 4 • Semi-Rigid Connection Modeling

    Semi-rigid connections redistribute moments between beams and columns, affecting frame drift. Moment-rotation curves quantify stiffness for use in advanced frame analysis.

  • Lesson 5 • Connection Economy and Standardization

    Standardized connection details reduce fabrication cost and erection time. Balancing repetition with structural efficiency is a key engineering judgment skill.

Certification

Your valid completion certificate

This course is for you:

  • Structural engineers ready to move beyond member design into connections.

  • Junior engineers who struggle to interpret connection details on drawings.

  • Civil engineering graduates entering their first steel-focused design role.

  • Project engineers coordinating with fabricators but lacking connection depth.

  • Experienced designers transitioning from concrete to structural steel projects.

  • Construction managers who need to evaluate steel connection submittals confidently.

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