Preparing your Path…
Preparing your Path…
Path Catalog
Data is pulled live from GET /api/v1/paths, and only Paths with a published version are listed.
7801 Paths · page 317 / 781
This learning path equips construction engineers with the knowledge to supervise formwork, reinforcement, and concrete placement while ensuring structural integrity and safety. It covers concrete and steel design fundamentals, quality control, and site safety management.
A professional learning path for engineers and inspectors to develop skills in structural inspections and quality assurance. It covers materials knowledge, inspection procedures, NDT, and documentation, with a focus on quality control.
This learning path equips practicing engineers with the knowledge to apply key building codes—IBC, ACI, AISC, and ASCE—in structural design. It covers code hierarchy, load determination, load combinations, and material-specific design criteria, culminating in integrated code-based design projects.
This learning path introduces the principles and practices of structural conservation for historic buildings. It covers the assessment of existing structures, traditional and modern materials, repair techniques, and the relevant standards and guidelines, providing a balanced understanding of engineering and heritage values.
This advanced learning path equips senior and graduate students in structural engineering with the knowledge to design resilient infrastructure that withstands disasters. It covers risk assessment, multi-hazard design, and recovery planning, with a focus on seismic and wind engineering. The path emphasizes understanding hazard interactions, performance-based design, and community resilience.
A comprehensive learning path for senior and graduate structural engineering students to design structures with minimal environmental impact. It covers sustainable design principles, green materials, lifecycle assessment, carbon footprint analysis, and adaptive reuse, culminating in an integrative capstone project.
This graduate-level path covers the fundamental theories and methods for analyzing and designing thin shell structures, including cylindrical shells and domes. It progresses from mathematical prerequisites through membrane and bending theories to practical design considerations.
This learning path equips senior and graduate students with the knowledge to design prestressed concrete structures. It covers fundamental principles, prestress losses, flexural and shear design, and anchorage zone detailing, building on reinforced concrete design concepts.
This advanced learning path equips senior and graduate students with the knowledge to assess, strengthen, and seismically retrofit existing concrete and steel structures. It covers condition assessment, material strengthening techniques (FRP, steel), and seismic retrofitting principles, integrating design and practical application.
This learning path equips senior or graduate students with the knowledge to design offshore structures, focusing on jacket platforms and floating systems. It covers essential structural analysis, fluid mechanics, wave load modeling, and corrosion protection, with practical applications in design.