<p>This study introduces a sleeve fuse system to improve the cyclic performance of steel end-plate connections. A specially designed steel sleeve, placed between the end plate and nut/washer, disrupts the load path and enhances ductility. Experimental models from the literature were used for model validation, ensuring high accuracy in the numerical analysis. Simulations of various sleeve geometries, using a validated finite element model, demonstrate the system's effectiveness. A comparative analysis with reduced beam sections (RBS) and standard connections highlights the superior performance of the sleeve system, a key novelty of this study. A hybrid design combining the sleeve system with RBS is also proposed. Results show that the sleeve system improves rotational capacity, acting as a structural fuse during seismic events by enhancing ductility and energy absorption. Increased bolt elongation further boosts rotational capacity, enhancing frame robustness. The proposed system offers a superior alternative to conventional methods with improved ductility and energy dissipation.</p>

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Comparative Numerical Study of Sleeve Fuse Systems and RBS for Enhancing Cyclic Performance in Steel End-Plate Connections

  • Muhammed Atar

摘要

This study introduces a sleeve fuse system to improve the cyclic performance of steel end-plate connections. A specially designed steel sleeve, placed between the end plate and nut/washer, disrupts the load path and enhances ductility. Experimental models from the literature were used for model validation, ensuring high accuracy in the numerical analysis. Simulations of various sleeve geometries, using a validated finite element model, demonstrate the system's effectiveness. A comparative analysis with reduced beam sections (RBS) and standard connections highlights the superior performance of the sleeve system, a key novelty of this study. A hybrid design combining the sleeve system with RBS is also proposed. Results show that the sleeve system improves rotational capacity, acting as a structural fuse during seismic events by enhancing ductility and energy absorption. Increased bolt elongation further boosts rotational capacity, enhancing frame robustness. The proposed system offers a superior alternative to conventional methods with improved ductility and energy dissipation.