Stanislav A. Shulman
Stanislav A. Shulman

Stanislav A. Shulman
LLC «SK Strojkompleks-5», engineer. Saint Petersburg, Russian Federation


Publications

Engineering methods for assessing the seismic resistance of systems with disconnectable connections
Issue: #3-2025
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Introduction. The paper considers engineering methods of calculating adaptive seismic isolation systems. Yet, such methods are absent and this hinders the use of such systems in earthquake engineering. Materials and methods. A seismically isolated system with double support types is considered, including relatively rigid supports with limited bearing capacity and flexible seismic isolating supports. It is believed, that at the moment of the rigid connections switch-off their potential energy is converted into kinetic energy of the superstructure. The displacement of seismic isolation supports is estimated under the assumption that their maximum deformation energy is equal to the obtained kinetic energy. A more accurate calculation is considered, taking into account additional kinematic excitation from an earthquake. Results. Calculation formulas for selecting the parameters of double support of adaptive seismic isolation and formulas for estimating the forces and displacements in the elements of seismic isolating supports have been obtained. An example of calculating a road bridge in a highly seismic region of Dagestan is given. Discussion. Although the seismic isolation system under consideration is essentially nonlinear, its calculation can be performed quite simply, without using complex software packages. The authors of the paper used the main laws of classical mechanics and MathCad or MatLab tools. The work was carried out at the St. Petersburg University of Railway Transport and the Limited Liability Company Sroykompleks-5

Selecting elastic-damping parameters of seismic isolating bearings of a highway bridge
Issue: #3-2024
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Seismic isolation of a road bridge in the seismic region of Uzbekistan with a design seismicity of 9 degrees on the MSK-scale is considered. A special feature of the bridge is the large mass of the spans, which is almost 50 times greater than the reduced pier mass. At a first glance, this rules out tuning the isolation to mass dynamic regime. The rigidity of seismic isolation is determined basing on the condition of limiting the mutual displacement of spans. Even at this limitation, seismic loads were reduced by approximately two times, i.e. by one intensity number. A more effective isolation method has been proposed, that is, when one span is rigidly fixed to the pier and the other is seismically isolated, and then the isolation can be tuned, ensuring the operation of the isolated span as the mass damper. In this case, the load on one of the piers is reduced by more than two times and that on the adjacent pier by more than four times.