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Modeling of energy dissipation in structural devices and foundation soil during seismic loading

机译:地震荷载作用下结构装置和地基土的能量耗散建模

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Though rocking shallow foundations could be designed to possess many desirable characteristics such as energy dissipation, isolation, and self-centering, current seismic design codes often avoid nonlinear behavior of soil and energy dissipation beneath foundations. This paper compares the effectiveness of energy dissipation in foundation soil (during rocking) with the effectiveness of structural energy dissipation devices during seismic loading. Numerical simulations were carried out to systematically study the seismic energy dissipation in structural elements and passive controlled energy dissipation devices inserted into the structure. The numerical model was validated using shaking table experi mental results on model frame structures with and without energy dissipation devices. The energy dissipation in the structure, drift ratio, and the force and displacement demands on the structure are compared with energy dissipation characteristics of rocking shallow foundations as observed in centrifuge experiments, where shallow foundations were allowed to rock on dry sandy soil stratum during dynamic loading. For the structures with energy dissipating devices, about 70-90% of the seismic input energy is dissipated by energy dissipating devices, while foundation rocking dissipates about 30-90% of the total seismic input energy in foundation soil (depending on the static factor of safety). Results indicate that, if properly designed (with reliable capacity and tolerable settlements), adverse effects of foundation rocking can be minimized, while taking advantage of the favorable features of foundation rocking and hence they can be used as efficient and economical seismic energy dissipation mechanisms in buildings and bridges.
机译:尽管可以将摇摆的浅层基础设计为具有许多理想的特性,例如能量消散,隔离和自动居中,但是当前的地震设计规范通常会避免土壤的非线性行为和基础下的能量消散。本文比较了在地震荷载作用下基础土壤(摇摆期间)的能量消散效果与结构性能量消散装置的有效性。进行了数值模拟,系统地研究了结构构件中的地震能量消散以及插入结构中的被动控制能量消散装置。使用带有和不带有能量消散装置的模型框架结构上的振动台实验结果验证了数值模型。将结构的能量耗散,漂移比以及对结构的力和位移要求与离心实验中观察到的摇摆浅层地基的能量耗散特性进行了比较,在动态加载过程中,允许浅层基础在干燥的沙土地层上晃动。对于具有消能装置的结构,消能装置消散了约70-90%的地震输入能量,而地基摇摆消散了基础土壤中总地震输入能量的30-90%(取决于静力系数)。安全)。结果表明,如果设计合理(具有可靠的承载力和可容许的沉降量),则可以充分利用基础摇摆的有利特性,将基础摇摆的不利影响降到最低,因此可以将其用作高效,经济的地震耗能机制。建筑物和桥梁。

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