首页> 外文期刊>Earthquake and structures: An International journal of earthquake engineering & earthquake effects on structures >Semi-active storey isolation system employing MRE isolator with parameter identification based on NSGA-II with DCD
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Semi-active storey isolation system employing MRE isolator with parameter identification based on NSGA-II with DCD

机译:基于带有DCD的NSGA-II的带有参数识别的MRE隔离器的半主动层隔离系统

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摘要

Base isolation, one of the popular seismic protection approaches proven to be effective in practical applications, has been widely applied worldwide during the past few decades. As the techniques mature, it has been recognised that, the biggest issue faced in base isolation technique is the challenge of great base displacement demand, which leads to the potential of overturning of the structure, instability and permanent damage of the isolators. Meanwhile, drain, ventilation and regular maintenance at the base isolation level are quite difficult and rather time-and fund-consuming, especially in the highly populated areas. To address these challenges, a number of efforts have been dedicated to propose new isolation systems, including segmental building, additional storey isolation (ASI) and mid-storey isolation system, etc. However, such techniques have their own flaws, among which whipping effect is the most obvious one. Moreover, due to their inherent passive nature, all these techniques, including traditional base isolation system, show incapability to cope with the unpredictable and diverse nature of earthquakes. The solution for the aforementioned challenge is to develop an innovative vibration isolation system to realise variable structural stiffness to maximise the adaptability and controllability of the system.
机译:基础隔离是一种被证明在实际应用中有效的流行的地震防护方法,在过去的几十年中已在全世界范围内得到广泛应用。随着技术的成熟,人们已经认识到,基础隔离技术面临的最大问题是对基础位移需求的挑战,这导致结构翻转,隔离器的不稳定性和永久性损坏的可能性。同时,在基础隔离级别的排水,通风和定期维护非常困难,并且相当耗时和费钱,尤其是在人口稠密地区。为了应对这些挑战,已经做出了许多努力来提出新的隔离系统,包括分段建筑,附加层隔离(ASI)和中层隔离系统等。但是,此类技术有其自身的缺陷,其中包括鞭打效应是最明显的一个。而且,由于其固有的被动性质,所有这些技术,包括传统的基础隔离系统,都显示出无力应对地震的不可预测性和多样性。针对上述挑战的解决方案是开发一种创新的隔振系统,以实现可变的结构刚度,以使系统的适应性和可控性最大化。

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