scholarly journals Energy-Based Design Criterion of Dissipative Bracing Systems for the Seismic Retrofit of Frame Structures

2018 ◽  
Vol 8 (2) ◽  
pp. 268 ◽  
Author(s):  
Gloria Terenzi
Author(s):  
Gloria Terenzi

Direct sizing criteria represent useful tools in the design of dissipative bracing systems for the advanced seismic protection of existing frame structures, especially when incorporated dampers feature a markedly non-linear behaviour. An energy-based procedure is proposed herein to this aim, focusing attention on systems including fluid viscous devices. The procedure starts by assuming prefixed reduction factors of the most critical response parameters in current conditions, which are evaluated by means of a conventional elastic finite element analysis. Simple formulas relating the reduction factors to the equivalent viscous damping ratio of the dissipaters, ξeq, are proposed. These formulas allow calculating the ξeq values that guarantee the achievement of target factors. Finally, the energy dissipation capacity of the devices is deduced from ξeq, finalizing their sizing process. A detailed description of the procedure is presented in the article, by distinguishing the cases where the prevailing structural deficiencies are represented by poor strength of the constituting members, from the cases having excessive horizontal displacements. A demonstrative application to the retrofit design of a reinforced concrete gym building is then offered to explicate the steps of the sizing criterion in practice, as well as to evaluate the enhancement of seismic response capacities generated by the installation of the dissipative system.


2017 ◽  
Vol 25 (1) ◽  
pp. e2038 ◽  
Author(s):  
Assaf Shmerling ◽  
Robert Levy ◽  
Andrei M. Reinhorn

2018 ◽  
Vol 11 ◽  
pp. 161-168
Author(s):  
Gloria Terenzi ◽  
Iacopo Costoli ◽  
Stefano Sorace ◽  
Paolo Spinelli

2014 ◽  
Vol 6 (3) ◽  
Author(s):  
Jian Zhao ◽  
Yongcun Zhang ◽  
Yu Huang ◽  
Shutian Liu ◽  
Guoxi Chen ◽  
...  

Considering the nonlinear mechanical-magnetic coupling effects, an accurate mathematical model was established for analyzing large stroke penta-stable mechanism possessing multistability transforming capability, with which the mechanism can be switched from pentastability to quadristability. The multistability with any number of stable states can be achieved by integrating spatially arranged magnets and large deformation beams as the fundamental energy storage elements to maintain stable states. By theoretically analyzing the influence of the large mechanical deformation on the magnetic field distribution and system energy, the nonlinear force–displacement characteristics of the multistable mechanism were obtained numerically, which were in good agreement with those obtained by experiments and finite element simulation. Then, an energy-based design criterion for magnetic-mechanical multistable mechanisms was proposed according to the stability theory and energy variation principle. In addition, the multistable transformability was theoretically analyzed, which can transform the proposed mechanism from penta-stability to quadristability by only changing the magnetization direction of moving magnets without varying the structure parameters.


2020 ◽  
Vol 15 (2) ◽  
pp. 106-117
Author(s):  
Magdy Ismail

Abstract:Moment resisting frames are considered as an effective seismic force resisting system that is used for steel structures. Some of these structures that were built in high seismic hazard zones were designed according to old strength-based design codes. Currently, these structures do not meet the requirements of the new seismic codes. Therefore, the seismic retrofit of these structures is mandatory and cannot be overlooked. Steel braces and concrete-steel composite elements are common solutions for enhancing the seismic behavior of existing steel frame structures. This paper presents a numerical study that evaluates different possible techniques for the seismic retrofit of existing steel moment-resisting frame structures. The study investigates the performance of three multi-story buildings with different heights that are located in a high seismic hazard zone. Three retrofit techniques were introduced including; 1) X-Steel braces, 2) buckling restrained composite braces, and 3) composite concrete-steel plate shear walls. The seismic performance enhancement of the studied structures was evaluated in terms of the structure’s fundamental period, maximum inter-story drift and maximum base shear-to-weight ratios. Moreover, the cost of retrofitting material was estimated for each technique and they were compared to select the retrofit technique with the least constitutive material cost.


1977 ◽  
Vol 99 (4) ◽  
pp. 835-840 ◽  
Author(s):  
D. Margolis ◽  
M. Hubbard

A bond graph model of wave convection of rolling bodies is developed. The governing non-linear state space equations are derived directly from the bond graph and solved numerically for various system parameters and driving frequencies. Results include the motion-time history of the uniform spherical bodies treated herein as they traverse the “singulation wave.” Critical speeds and frequencies are identified. These results typify the singulation process for various fruits and vegetables. It is shown that the moving belt can be closely approximated by a rigid sine wave translating at wave speed. This leads to the derivation of a simple energy based design criterion for critical frequencies. The inclusion of damping in the model lowers the critical frequencies and allows for accurate prediction of experimentally measured critical frequencies.


2021 ◽  
Vol 16 (1) ◽  
pp. 176
Author(s):  
Magdy Ismail ◽  
Hossam El-Sokkary

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