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Numerical simulations of a highway bridge structure employing passive negative stiffness device for seismic protection

机译:被动负刚度装置抗震公路桥梁结构的数值模拟。

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A new passive seismic response control device has been developed, fabricated, and tested by the authors and shown to be capable of producing negative stiffness via a purely mechanical mechanism, thus representing a new generation of seismic protection devices. Although the concept of negative stiffness may appear to be a reversal on the desired relationship between the force and displacement in structures (the desired relationship being that the product of restoring force and displacement is nonnegative), when implemented in parallel with a structure having positive stiffness, the combined system appears to have substantially reduced stiffness while remaining stable. Thus, there is an apparent weakening and softening' of the structure that results in reduced forces and increased displacements (where the weakening and softening is of a non-damaging nature in that it occurs in a seismic protection device rather than within the structural framing system). Any excessive displacement response can then be limited by incorporating a damping device in parallel with the negative stiffness device. The combination of negative stiffness and passive damping provides a large degree of control over the expected performance of the structure. In this paper, a numerical study is presented on the performance of a seismically isolated highway bridge model that is subjected to various strong earthquake ground motions. The Negative Stiffness Devices (NSDs) are described along with their hysteretic behavior as obtained from a series of cyclic tests wherein the tests were conducted using a modified design of the NSDs (modified for testing within the bridge model). Using the results from the cyclic tests, numerical simulations of the seismic response of the isolated bridge model were conducted for various configurations (with/without negative stiffness devices and/or viscous dampers). The results demonstrate that the addition of negative stiffness devices reduces the base shear substantially, while the deck displacement is limited to acceptable values. This assessment was conducted as part of a NEES (Network for Earthquake Engineering Simulation) project which included shaking table tests of a quarter-scale highway bridge model. Copyright (c) 2014 John Wiley & Sons, Ltd.
机译:作者已经开发,制造和测试了一种新的无源地震响应控制装置,并证明能够通过纯机械机制产生负刚度,因此代表了新一代的地震保护装置。尽管负刚度的概念可能与结构中力和位移之间的期望关系相反(期望关系是恢复力和位移的乘积为非负值),但与具有正刚度的结构并行实施时, ,该组合系统似乎具有显着降低的刚度,同时保持稳定。因此,结构的明显弱化和软化导致力减小和位移增加(弱化和软化是非破坏性的,因为它发生在地震保护装置中而不是结构框架系统中) )。通过与负刚度装置并联安装阻尼装置,可以限制任何过大的位移响应。负刚度和被动阻尼的组合提供了对结构预期性能的高度控制。在本文中,对地震隔离的公路桥梁模型的性能进行了数值研究,该模型经受了各种强烈的地震地面运动。将从一系列循环测试中获得的负刚度器件(NSD)以及其滞后行为进行描述,其中使用NSD的改进设计(针对桥梁模型内的测试进行了修改)进行了测试。使用循环测试的结果,对各种配置(有/没有负刚度装置和/或粘性阻尼器)进行了隔离桥梁模型地震响应的数值模拟。结果表明,增加负刚度装置可显着降低基础剪力,同时将甲板位移限制在可接受的值内。该评估是NEES(地震工程仿真网络)项目的一部分,该项目包括四分之一规模公路桥梁模型的振动台测试。版权所有(c)2014 John Wiley&Sons,Ltd.

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