GOSSWEILER G R, BROWN C L, HEWAGE G B, et al. Mechanochemically active soft robots[J].ACS Applied Materials & Interfaces,2015,7(40): 22431-22435.
|
[2]PREUMONT A.Vibration Control of Active Structures: an Introduction[M]. Array Cham: Springer, 2018.
|
[3]REKSOWARDOJO A P, SENATORE G. Design of ultra-lightweight and energy-efficient civil structures through shape morphing[J].Computers & Structures,2023,289: 107149.
|
[4]SOFLA A Y N, MEGUID S A, TAN K T, et al. Shape morphing of aircraft wing: status and challenges[J].Materials & Design,2010,31(3): 1284-1292.
|
[5]SIGMUND O. Design of multiphysics actuators using topology optimization, part Ⅰ: one-material structures[J].Computer Methods in Applied Mechanics and Engineering,2001,190(49/50): 6577-6604.
|
[6]SIGMUND O. Design of multiphysics actuators using topology optimization, part Ⅱ: two-material structures[J].Computer Methods in Applied Mechanics and Engineering,2001,190(49/50): 6605-6627.
|
[7]JENSEN P D L, WANG F, DIMINO I, et al. Topology optimization of large-scale 3D morphing wing structures[J].Actuators,2021,10(9): 217.
|
[8]WANG Y, SIGMUND O. Topology optimization of multi-material active structures to reduce energy consumption and carbon footprint[J].Structural and Multidisciplinary Optimization,2024,67(1): 5.
|
[9]WANG Y, SIGMUND O. Multi-material topology optimization for maximizing structural stability under thermo-mechanical loading[J].Computer Methods in Applied Mechanics and Engineering,2023,407: 115938.
|
[10]LIND C. Two decades of negative thermal expansion research: where do we stand?[J].Materials,2012,5(6): 1125-1154.
|
[11]黄志丹, 向楠, 苏程. 主动约束阻尼开口柱壳的NLMS反馈减振控制[J]. 应用数学和力学, 2021,42(7): 686-695.(HUANG Zhidan, XIANG Nan, SU Cheng. NLMS feedback vibration control of open cylindrical shells with active constrained layer damping[J].Applied Mathematics and Mechanics,2021,42(7): 686-695.(in Chinese))
|
[12]WANG Y, LUO Z, ZHANG X, et al. Topological design of compliant smart structures with embedded movable actuators[J].Smart Materials and Structures,2014,23(4): 045024.
|
[13]ZHANG X, KANG Z. Dynamic topology optimization of piezoelectric structures with active control for reducing transient response[J].Computer Methods in Applied Mechanics and Engineering,2014,281: 200-219.
|
[14]MOLTER A, FONSECA J S O,FERNANDEZ L D S. Simultaneous topology optimization of structure and piezoelectric actuators distribution[J].Applied Mathematical Modelling,2016,40(9/10): 5576-5588.
|
[15]GUO X, ZHANG W, ZHONG W. Doing topology optimization explicitly and geometrically: a new moving morphable components based framework[J].Journal of Applied Mechanics,2014,81(8): 081009.
|
[16]ZHANG W, LAI Q, GUO X, et al. Topology optimization for the design of manufacturable piezoelectric energy harvesters using dual-moving morphable component method[J].Journal of Mechanical Design,2024,146(12): 121701.
|
[17]HU X, LI Z, BAO R, et al. Stabilized time-series moving morphable components method for topology optimization[J].International Journal for Numerical Methods in Engineering,2024,125(20): e7562.
|
[18]LI Z, HU X, CHEN W. Moving morphable curved components framework of topology optimization based on the concept of time series[J].Structural and Multidisciplinary Optimization,2023,66(1): 19.
|
[19]ZHANG W, SONG J, ZHOU J, et al. Topology optimization with multiple materials via moving morphable component (MMC) method[J].International Journal for Numerical Methods in Engineering,2018,113(11): 1653-1675.
|
[20]HOMAYOUNI-AMLASHI A, SCHLINQUER T, MOHAND-OUSAID A, et al. 2D topology optimization MATLAB codes for piezoelectric actuators and energy harvesters[J].Structural and Multidisciplinary Optimization,2021,63(2): 983-1014.
|
[21]DU Z, CUI T, LIU C, et al. An efficient and easy-to-extend MATLAB code of the moving morphable component (MMC) method for three-dimensional topology optimization[J].Structural and Multidisciplinary Optimization,2022,65(5): 158.
|