Related Experiment Video
Updated: Apr 18, 2026

Modeling and Experimental Analysis of the Single-Shaft Coaxial Motor-Pump Assembly in Electrohydrostatic Actuators
Published on: June 13, 2022
Mechanical performance simulation and application of assembled self-centring shear lead damper
Hong Liu1, Quanjie Chen1, Yihua Gao1
1Economic Research Institute of State Grid Shaanxi Electric Power Co., Xi'an City, China.
None:
This study proposes a novel Assembled Self-Centring Shear Lead Damper (ASSLD) for seismic mitigation, integrating superelastic SMA bars with energy-dissipation rings to achieve simultaneous recentering and energy dissipation. A comprehensive experimental and numerical investigation was conducted, including SMA material characterization, cyclic component tests, parametric studies, and system-level analysis under realistic seismic excitations. Experimental results indicate that the ASSLD achieves up to 45% improvement in energy dissipation capacity and 30% enhancement in recentering reliability compared with conventional shear lead dampers. A hybrid numerical model incorporating embedded filaments and connector elements accurately predicts damper response across displacement ranges and accounts for the R-phase transformation plateau observed in SMA behaviour. Time-history analyses demonstrate effective reduction of inter-story drift, while highlighting conditions (specific frequency contents and intensity ranges) under which top displacement may be amplified. These findings validate the ASSLD's potential for practical seismic applications and provide quantitative guidance for engineering design.
Related Concept Videos
Shear and Bending Moment Diagram: Problem Solving
Draw a Free-Body Diagram: Start by drawing a free-body diagram of the entire beam, including the concentrated loads, distributed load, and reaction...
Design Example: Creating a Hydraulic Model of a Dam Spillway
Unsymmetric Loading of Thin-Walled Members
The concept of the shear center is crucial in countering the...
Thin-Walled Hollow Shafts
Relation Between the Distributed Load and Shear
Stability of structures

