Manage Joints and Frame Elements with Ease
SAP2000 automatically create joints at structural object intersections or internal joints when meshing structural objects. Joint coordinates, assignments and displacements may be displayed on screen or in tabular format.
Beams/Columns
The frame element uses a general, three-dimensional, beam-column formulation which includes the effects of biaxial bending, torsion, axial deformation, and biaxial shear deformations. SAP2000 has a built-in library of standard concrete, steel and composite section properties of both US and International Standard sections.
Non-Prismatic Sections
Even non-prismatic and built-up steel sections can be defined easily. Use our Section Designer for more complex sections.
Section Designer
Section Designer is an integrated utility, built into SAP2000, CSiBridge, and ETABS, that enables the modeling and analysis of custom cross sections. Section Designer is useful for the evaluation of member properties and nonlinear response, including nonlinear hinge and PMM-hinge behavior.
Wide Variety of Structural Components for Analysis and Design
A wide variety of structural components for analysis and design are completely integrated in SAP2000 for practical use.
Shells
The shell element is a type of area object that is used to model membrane, plate and shell behavior in planar and three-dimensional structures. The shell material may be homogeneous or layered throughout. Material nonlinearity can also be considered when using the layered shell.
Cable Element
The cable element models slender tension members that carry axial load with a draped shape but do not support bending moment. Higher license levels capture true catenary behavior that adapts to the applied load. Tension stiffening and large-displacement behavior are inherently included in nonlinear static, staged, and direct-integration load cases. Lower license levels without catenary behavior are sufficient for the many structures where the cable shape is known and only tension-stiffening effects are required. See item "Cables - Nonlinear Catenary Behavior" below for the behavior supported by different license levels.
Tendon Elements
Tendons are easily drawn as independent objects, with geometry specified as straight lines, parabolas, circular curves or other arbitrary shapes. Tendon loads, including all losses, are easily defined in SAP2000.
Solids
The solid element is an eight-node element for modeling three-dimensional structures and solids. It is based upon an isoparametric formulation that includes nine optional incompatible bending modes and is useful for modeling objects in which loading, boundary conditions, section properties or reactions vary by thickness.
Link Element
A link element may exhibit up to three different types of behavior: linear, nonlinear, and frequency dependent, according to the types of properties assigned to that element and the type of analysis being performed. The following link elements are available in SAP2000: Linear, Multi-linear Elastic, Multi-linear Plastic, Gaps, Hooks, Dampers, Friction Isolators, Rubber Isolators, T/C Isolators, Frequency-dependent Springs, and Frequency-dependent Dampers.
Springs
Spring supports are link elements that are used to connect joints elastically to the ground and can be linear or nonlinear in nature. Nonlinear support conditions can be modeled to include gaps (compression only), multi-linear elastic or plastic springs, viscous dampers and base isolators.
Hinges
Users can create and apply hinge properties to perform pushover analyses in SAP2000. Nonlinear material behavior in frame elements (beam/column/brace) can be modeled using fiber hinges. This approach represents the material in the cross section as discrete points, each following the exact stress-strain curves of the material. Mixed materials, such as reinforced concrete and complex shapes can be represented.
Nonlinear Layered Shells
The nonlinear layered shell element enables users to consider plastic behavior of concrete shear walls, slabs, steel plates, and other area finite elements in the pushover analysis. Force-deformation relations are defined for steel and concrete hinges.