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Advanced steel brace with multistable hysteretic damping enhanced by a multilayered structure

机译:具有多层结构的高级钢支撑,具有多层滞后阻尼

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摘要

Water wave impacts on jacket structures would result in heavy impulse loads, which induce strong vibrations because of the low damping characteristics of metallic members. In order to resist the wave-impact and suppress the vibration of structures, a novel steel brace that contains a multilayered multistable (MLMS) column is designed for an adjustable product of sufficient stiffness and high damping. According to finite element simulating, the initial stiffness of the MLMS column was almost same as that of the multistable steel column [1], but the energy dissipation was several times larger than that of this column. To understand the hysteresis mechanism of the MLMS column, we performed a hybrid analysis of multilayer lamination and mixed boundary buckling and noted: the soft layer of the MLMS column conducts the neutral axis and bending stiffness, which controls critical buckling load that decides the highness of the hysteresis loop; the eccentric end caps mediates the loading axis of the MLMS column, which induces in the increment of the postbuckling displacement that broadens the width of the hysteresis loop. So, the displacement-force hysteretic relation of the MLMS column can be effectually adjusted by the appropriate physical parameters of the soft layer and the end caps, which is validated by parameter analysis using FEM. Through FEM simulations, we studied a jacket structure assembled with dissipative braces containing MLMS column, which exhibited a several times increment in the decay rate of impact-induced vibration compared to that of the same jacket platform with existing dissipative columns Di . This study demonstrated the MLMS column is an effective alternative for obtaining high structural stiffness and high damping in marine engineering.
机译:对夹套结构的水波影响会导致重载载荷,这导致强烈的振动,因为金属构件的低阻尼特性。为了抵抗波浪冲击并抑制结构的振动,含有多层多级(MLMS)塔的新型钢支撑设计用于可调节刚度和高阻尼的可调节产品。根据有限元模拟,MLMS柱的初始刚度与多钢柱的初始刚度几乎相同[1],但能量耗散量大于该柱的耗电量大。要了解MLMS柱的滞后机制,我们对多层叠层和混合边界屈曲的混合分析,并注意到了MLMS柱的软层传导中性轴和弯曲刚度,这控制了决定较高的关键屈曲负荷滞后环;偏心端盖介导MLMS柱的装载轴,其诱导推出滞后环的宽度的逐渐增加。因此,MLMS柱的位移力滞后关系可以通过使用FEM的参数分析验证的软层和端盖的适当物理参数来有效地调整MLMS柱的滞后关系。通过有限元模拟,我们研究了一个夹克结构,该夹套结构与含有MLMS柱的耗散支架组装,与具有现有耗散柱DI的相同夹套平台相比,衰减速度的衰减速率呈现出几次增量。本研究证明了MLMS柱是在海洋工程中获得高结构刚度和高阻尼的有效替代方案。

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  • 来源
    《Marine Structures》 |2020年第9期|102800.1-102800.16|共16页
  • 作者单位

    Ocean Univ China Sch Engn Qingdao 266100 Peoples R China|Kyoto Univ Dept Mech Engn & Sci Nishikyo Ku Kyoto 6158246 Japan;

    Ocean Univ China Sch Engn Qingdao 266100 Peoples R China;

    Qilu Univ Technol Inst Oceanog Instrumentat Shandong Acad Sci Qingdao 266100 Peoples R China;

    Ocean Univ China Sch Engn Qingdao 266100 Peoples R China;

    Ocean Univ China Sch Engn Qingdao 266100 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Multilayered structure; Hysteretic damping; Vibration attenuation;

    机译:多层结构;滞后阻尼;振动衰减;

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