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Design tables and charts for uniform and non-uniform tuned liquid column dampers in harmonic pitching motion

机译:谐波俯仰运动中均匀和不均匀调谐液柱阻尼器的设计表和图表

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In the first part of the paper, the optimal design parameters for tuned liquid column dampers (TLCD) in harmonic pitching motion were investigated.The configurations in design tables include uniform and non-uniform TLCDs with cross-sectional ratios of 0.3, 0.6, 1, 2 and 3 for the design in different situations.A closed-form solution of the structural response was used for performing numerical optimization.The results from optimization indicate that the optimal structural response always occurs when the two resonant peaks along the frequency axis are equal.The optimal frequency tuning ratio, optimal head loss coefficient, the corresponding response and other useful quantities are constructed in design tables as a guideline for practitioners.As the value of the head loss coefficient is only available through experiments, in the second part of the paper, the prediction of head loss coefficients in the form of a design chart are proposed based on a series of large scale tests in pitching base motions, aiming to ease the predicament of lacking the information of head loss for those who wishes to make designs without going through experimentation.A large extent of TLCDs with cross-sectional ratios of 0.3, 0.6, 1, 2 and 3 and orifice blocking ratios ranging from 0%, 20%, 40%, 60% to 80% were inspected by means of a closed-form solution under harmonic base motion for identification.For the convenience of practical use, the corresponding empirical formulas for predicting head loss coefficients of TLCDs in relation to the cross-sectional ratio and the orifice blocking ratio were also proposed.For supplemental information to horizontal base motion, the relation of head loss values versus blocking ratios and the corresponding empirical formulas were also presented in the end.
机译:在本文的第一部分中,研究了谐调俯仰运动中的调谐液柱阻尼器(TLCD)的最佳设计参数。设计表中的配置包括横截面比为0.3、0.6、1的均匀和不均匀TLCD ,2和3用于不同情况下的设计。使用结构响应的闭式解进行数值优化。优化的结果表明,当沿频率轴的两个共振峰相等时,总是会出现最佳结构响应在设计表中构建了最佳频率调谐比,最佳头部损失系数,相应的响应和其他有用量,作为从业人员的指南。由于头部损失系数的值只能通过实验获得,因此第二部分在论文中,基于一系列的俯仰测试,提出了设计图表形式的水头损失系数的预测方法。缓动运动,旨在缓解那些不愿通过实验就进行设计的人缺乏头部损失信息的困境。大比例截面比为0.3、0.6、1、2和3的TLCD以及孔口堵塞在谐波基础运动下,通过闭式解对0%,20%,40%,60%到80%的比率进行识别,为便于识别,为便于实际使用,使用了相应的经验公式来预测压头损失系数最后,针对水平基本运动的补充信息,还提出了头部损失值与阻塞率的关系,以及相应的经验公式。

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