Demand-Based Optimal Design of Storage Tank with Inerter System

A parameter optimal design method for a tank with an inerter system is proposed in this study based on the requirements of tank vibration control to improve the effectiveness and efficiency of vibration control. Moreover, a response indicator and a cost control indicator are selected based on the co...

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Main Authors: Shiming Zhang, Ruifu Zhang, Zhipeng Zhao
Format: Article
Language:English
Published: Hindawi Limited 2017-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2017/2956153
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spelling doaj-24684036583c422cb36d38940ebd1dc72020-11-24T23:50:08ZengHindawi LimitedShock and Vibration1070-96221875-92032017-01-01201710.1155/2017/29561532956153Demand-Based Optimal Design of Storage Tank with Inerter SystemShiming Zhang0Ruifu Zhang1Zhipeng Zhao2Research Institute of Structural Engineering and Disaster Reduction, Tongji University, Shanghai 200092, ChinaResearch Institute of Structural Engineering and Disaster Reduction, Tongji University, Shanghai 200092, ChinaResearch Institute of Structural Engineering and Disaster Reduction, Tongji University, Shanghai 200092, ChinaA parameter optimal design method for a tank with an inerter system is proposed in this study based on the requirements of tank vibration control to improve the effectiveness and efficiency of vibration control. Moreover, a response indicator and a cost control indicator are selected based on the control targets for liquid storage tanks for simultaneously minimizing the dynamic response and controlling costs. These indicators are reformulated through a random vibration analysis under virtual excitation. The problem is then transformed from a multiobjective optimization problem to a single-objective nonlinear problem using the ε-constraint method, which is consistent with the demand-based method. White noise excitation can be used to design the tank with the inerter system under seismic excitation to simplify the calculation. Subsequently, a MATLAB-based calculation program is compiled, and several optimization cases are examined under different excitation conditions. The effectiveness of the demand-based method is proven through a time history analysis. The results show that specific vibration control requirements can be met at the lowest cost with a simultaneous reduction in base shears and overturning base moments.http://dx.doi.org/10.1155/2017/2956153
collection DOAJ
language English
format Article
sources DOAJ
author Shiming Zhang
Ruifu Zhang
Zhipeng Zhao
spellingShingle Shiming Zhang
Ruifu Zhang
Zhipeng Zhao
Demand-Based Optimal Design of Storage Tank with Inerter System
Shock and Vibration
author_facet Shiming Zhang
Ruifu Zhang
Zhipeng Zhao
author_sort Shiming Zhang
title Demand-Based Optimal Design of Storage Tank with Inerter System
title_short Demand-Based Optimal Design of Storage Tank with Inerter System
title_full Demand-Based Optimal Design of Storage Tank with Inerter System
title_fullStr Demand-Based Optimal Design of Storage Tank with Inerter System
title_full_unstemmed Demand-Based Optimal Design of Storage Tank with Inerter System
title_sort demand-based optimal design of storage tank with inerter system
publisher Hindawi Limited
series Shock and Vibration
issn 1070-9622
1875-9203
publishDate 2017-01-01
description A parameter optimal design method for a tank with an inerter system is proposed in this study based on the requirements of tank vibration control to improve the effectiveness and efficiency of vibration control. Moreover, a response indicator and a cost control indicator are selected based on the control targets for liquid storage tanks for simultaneously minimizing the dynamic response and controlling costs. These indicators are reformulated through a random vibration analysis under virtual excitation. The problem is then transformed from a multiobjective optimization problem to a single-objective nonlinear problem using the ε-constraint method, which is consistent with the demand-based method. White noise excitation can be used to design the tank with the inerter system under seismic excitation to simplify the calculation. Subsequently, a MATLAB-based calculation program is compiled, and several optimization cases are examined under different excitation conditions. The effectiveness of the demand-based method is proven through a time history analysis. The results show that specific vibration control requirements can be met at the lowest cost with a simultaneous reduction in base shears and overturning base moments.
url http://dx.doi.org/10.1155/2017/2956153
work_keys_str_mv AT shimingzhang demandbasedoptimaldesignofstoragetankwithinertersystem
AT ruifuzhang demandbasedoptimaldesignofstoragetankwithinertersystem
AT zhipengzhao demandbasedoptimaldesignofstoragetankwithinertersystem
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