Design of adaptive structures through energy minimization: extension to tensegrity

被引:27
作者
Wang, Yafeng [1 ]
Senatore, Gennaro [1 ]
机构
[1] Swiss Fed Inst Technol EPFL, Sch Architecture Civil & Environm Engn ENAC, Appl Comp & Mech Lab IMAC, CH-1015 Lausanne, Switzerland
基金
瑞士国家科学基金会;
关键词
Adaptive structures; Tensegrity structures; Integrated structure-control; Active structural control; Structural optimization; Sustainable building design; OPTIMIZATION; FRAMEWORK;
D O I
10.1007/s00158-021-02899-y
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
This paper gives a new formulation to design adaptive structures through total energy optimization (TEO). This methodology enables the design of truss as well as tensegrity configurations that are equipped with linear actuators to counteract the effect of loading through active control. The design criterion is whole-life energy minimization which comprises an embodied part in the material and an operational part for structural adaptation during service. The embodied energy is minimized through simultaneous optimization of element sizing and actuator placement, which is formulated as a mixed-integer nonlinear programming problem. Optimization variables include element cross-sectional areas, actuator positions, element forces, and node displacements. For tensegrity configurations, the actuators are not only employed to counteract the effect of loading but also to apply appropriate prestress which is included in the optimization variables. Actuator commands during service are obtained through minimization of the operational energy that is required to control the state of the structure within required limits, which is formulated as a nonlinear programming problem. Embodied and operational energy minimization problems are nested within a univariate optimization process that minimizes the structure's whole-life energy (embodied + operational). TEO has been applied to design a roof and a high-rise adaptive tensegrity structure. The adaptive tensegrity solutions are benchmarked with equivalent passive tensegrity as well as adaptive truss solutions, which are also designed through TEO. Results have shown that since cables can be kept in tension through active control, adaptive tensegrity structures require low prestress, which in turn reduces mass, embodied energy, and construction costs compared to passive tensegrity structures. However, while adaptive truss solutions achieve significant mass and energy savings compared to passive solutions, adaptive tensegrity solutions are not efficient configurations in whole-life energy cost terms. Since cable elements must be kept in tension, significant operational energy is required to maintain stable equilibrium for adaptation to loading. Generally, adaptive tensegrity solutions are not as efficient as their equivalent adaptive truss configurations in mass and energy cost terms.
引用
收藏
页码:1079 / 1110
页数:32
相关论文
共 50 条
[41]   Coarse Trajectory Design for Energy Minimization in UAV-Enabled [J].
Dinh-Hieu Tran ;
Vu, Thang X. ;
Chatzinotas, Symeon ;
ShahbazPanahi, Shahram ;
Ottersten, Bjorn .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2020, 69 (09) :9483-9496
[42]   EXTENSION ADAPTIVE METHOD: AN APPROACH TO SUPPORT THE CONFIGURABLE LAYOUT DESIGN [J].
Tang, Hui-Jun .
PROCEEDINGS OF 2009 INTERNATIONAL CONFERENCE ON MACHINE LEARNING AND CYBERNETICS, VOLS 1-6, 2009, :2300-2305
[43]   Design of adaptive structures using compliant mechanisms [J].
Saggere, L ;
Kota, S .
SMART STRUCTURES AND MATERIALS 1998: SMART STRUCTURES AND INTEGRATED SYSTEMS, PTS 1 AND 2, 1998, 3329 :672-676
[44]   A multi-objective indirect neural adaptive processes control design for minimization of energy consumption: An experimental validation on a transesterification reactor [J].
Bentaher, Amel ;
Ali, Zribi ;
Hamza, Rabab .
JOURNAL OF VIBRATION AND CONTROL, 2024,
[45]   Motion Design with Efficient Actuator Placement for Adaptive Structures that Perform Large Deformations [J].
Sachse, Renate ;
Geiger, Florian ;
von Scheven, Malte ;
Bischoff, Manfred .
FRONTIERS IN BUILT ENVIRONMENT, 2021, 7
[46]   Dynamic site layout planning through minimization of total potential energy [J].
Andayesh, Mohsen ;
Sadeghpour, Farnaz .
AUTOMATION IN CONSTRUCTION, 2013, 31 :92-102
[47]   Energy efficient design of membrane processes by use of entropy production minimization [J].
Magnanelli, Elisa ;
Wilhelmsen, Oivind ;
Johannessen, Eivind ;
Kjelstrup, Signe .
COMPUTERS & CHEMICAL ENGINEERING, 2018, 117 :105-116
[48]   Stress energy minimization as a tool in the material layout design of shallow shells [J].
Dzierzanowski, Grzegorz .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2012, 49 (11-12) :1343-1354
[49]   On the reliability-based design of structures including passive energy dissipation systems [J].
Jensen, N. A. ;
Sepulveda, J. G. .
STRUCTURAL SAFETY, 2012, 34 (01) :390-400
[50]   Energy enhancement through noise minimization using acoustic metamaterials in a wind farm [J].
Mittal, Prateek ;
Christopoulos, Giorgos ;
Subramanian, Sriram .
RENEWABLE ENERGY, 2024, 224