[1] ARUMUGAM P, KUMAR A. Design methods for compliant mechanisms used in new age industries-a review[J]. Journal of Applied Engineering Science, 2016, 2(374):223-232.
[2] 于靖军,郝广波,陈贵敏,等. 柔性机构及其应用研究进展[J]. 机械工程学报, 2015, 51(13):53-68. YU Jingjun, HAO Guangbo, CHEN Guimin, et al. State-of-art of compliant mechanisms and their applications[J]. Journal of Mechanical Engineering,2015, 51(13):53-68.
[3] HOWELL L L. Compliant mechanisms[M]. New York:John Wiley & Sons, 2001.
[4] GAYNOR A T, MEISEL N A, WILLIAMS C B, et al. Multiple-material topology optimization of compliant mechanisms created via polyjet three-dimensional printing[J]. Journal of Manufacturing Science & Engineering, 2014, 136(6):061015-1-061015-15.
[5] WANG M Y, CHEN S K, WANG X M, et al. Design of multi-material compliant mechanisms using level set methods[J]. Journal of Mechanical Design, 2005, 127(5):941-956.
[6] XIA Q, SHI T L. Topology optimization of compliant mechanism and its support through a level set method[J]. Computer Methods in Applied Mechanics & Engineering, 2016, 305:359-375.
[7] LUO J Z, LUO Z, CHEN S K, et al. A new level set method for systematic design of hinge-free compliant mechanisms[J]. Computer Methods in Applied Mechanics & Engineering, 2008, 198(2):318-331.
[8] 张宪民. 柔顺机构拓扑优化设计[J]. 机械工程学报, 2003, 39(11):47-51. ZHANG Xianmin. Topology optimization of compliant mechanisms[J]. Journal of Mechanical Engineering, 2003, 39(11):47-51.
[9] TIAN Y, SHIRINZADEH B, ZHANG D, et al. Three flexure hinges for compliant mechanism designs based on dimensionless graph analysis[J]. Precision Engineering, 2010, 34(1):92-100.
[10] BENDOSE M P, SIGMUND O. Topology optimization:theory, methods and applications[M]. New York:Springer, 2003.
[11] 罗震,蒙永力,郭文德,等. 分布式柔性机构拓扑优化设计的理论和算法[J]. 机械工程学报, 2006, 42(10):27-36. LUO Zhen, MENG Yongli, GUO Wende, et al. Theoretical and algorithmic on topology optimization design of distributed compliant mechanisms[J]. Journal of Mechanical Engineering, 2006, 42(10):27-36.
[12] BRUGGI M, ZEGA V, CORIGLIANO A. Synthesis of auxetic structures using optimization of compliant mechanisms and a micropolar material model[J]. Structural & Multidisciplinary Optimization, 2017, 55:1-12.
[13] LI H, GAO L, LI P G. Topology optimization of structures under multiple loading cases with a new compliance-volume product[J]. Engineering Optimization, 2014, 46(6):725-744.
[14] WANG M Y, WANG X M, GUO D M. A level set method for structural topology optimization[J]. Computer Methods in Applied Mechanics & Engineering, 2003, 192(1):227-246.
[15] WANG N F, ZHANG X M. Compliant mechanisms design based on pairs of curves[J]. Science China Technological Sciences, 2012, 55(8):2099-2106.
[16] HUANG X D, LI Y, ZHOU SW, et al. Topology optimization of compliant mechanisms with desired structural stiffness[J]. Composite Structures, 2014, 79:13-21.
[17] DU Y X, CHEN L P, TIAN Q H, et al. Topology synthesis of thermomechanical compliant mechanisms with geometrical nonlinearities using meshless method[J]. Advances in Engineering Software, 2009, 40(5):315-322.
[18] 杜义贤,陈立平,罗震. 基于无网格Galerkin方法的整体式柔性机构的多准则拓扑优化设计[J]. 固体力学学报, 2007, 28(1):102-108. DU Yixian, CHEN Liping, LUO Zhen. A meshless Galerkin approach for topology optimization of monolithic compliant mechanisms using optimality criteria method[J]. Acta Mechanica Solida Sinica, 2007,28(1):102-108.
[19] SIGMUND O. Design of multiphysics actuators using topology optimization-Part Ⅱ. Two-material structures[J]. Computer Methods in Applied Mechanics & Engineering, 2001, 190(49-50):6605-6627.
[20] SAXENA A. Topology design of large displacement compliant mechanisms with multiple materials and multiple output ports[J]. Structural & Multidisciplinary Optimization, 2005, 30(6):477-490.
[21] YOON G H. Topology optimization for nonlinear dynamic problem with multiple materials and material-dependent boundary condition[J]. Finite Elements in Analysis & Design, 2011, 47(7):753-763.
[22] LUO Z, TONG L Y, LUO J Z, et al. Design of piezoelectric actuators using a multiphase level set of piecewise constants[J]. Journal of Computational Physics, 2009, 228(7):2643-2659.
[23] WANG M Y, CHEN S K, WANG X M, et al. Design of multimaterial compliant mechanisms using level set methods[J]. Journal of Mechanical Design, 2005, 127(5):941-956.
[24] 张宪民,胡凯,王念峰,等. 基于并行策略的多材料柔顺机构多目标拓扑优化[J]. 机械工程学报, 2016, 52(19):1-8. ZHANG Xianmin, HU Kai, WANG Nianfeng, et al. Multi-objective topology optimization of multiple materials compliant mechanisms based on parallel strategy[J]. Journal of Mechanical Engineering, 2016, 52(19):1-8.
[25] 张宪民,胡凯,王念峰,等. 基于并行策略的热固耦合多材料柔顺机构设计[J]. 华南理工大学学报, 2016, 44(10):22-29. ZHANG Xianmin, HU Kai, WANG Nianfeng, et al. Design of thermal-mechanical coupling multiple-material compliant mechanisms based on parallel strategy[J]. Journal of South China University of Technology, 2016, 44(10):22-29.
[26] TAVAKOLI R, MOHSENI S M. Alternating active-phase algorithm for multimaterial topology optimization problems:A 115-line MATLAB implementation[J]. Structural & Multidisciplinary Optimization, 2014, 49(4):621-642.
[27] TAVAKOLI R. Multimaterial topology optimization by volume constrained Allen-Cahn system and regularized projected steepest descent method[J]. Computer Methods in Applied Mechanics & Engineering, 2014, 276(7):534-565.
[28] ALONSO C, ANSOLA R, QUERIN O M. Topology synthesis of multi-material compliant mechanisms with a sequential element rejection and admission method[J]. Finite Elements in Analysis & Design, 2014, 85(8):11-19.
[29] ALONSO C, ANSOLA R, QUERIN O M. Topology synthesis of multi-input-multi-output compliant mechanisms[J]. Advances in Engineering Software, 2014, 76(3):125-132.
[30] YIN L,ANANTHASURESH G K. Topology optimization of compliant mechanisms with multiple materials using a peak function material interpolation scheme[J]. Structural & Multidisciplinary Optimization, 2001, 23(1):49-62.
[31] ZUO W, SAITOU K. Multi-material topology optimization using ordered SIMP interpolation[J]. Structural & Multidisciplinary Optimization, 2016:1-15.
[32] AMIR O, AAGE N, LAZAROV B S. On multigrid-CG for efficient topology optimization[J]. Structural & Multidisciplinary Optimization, 2014, 49(5):815-829.
[33] AMIR O, SIGMUND O, LAZAROV B S, et al. Efficient reanalysis techniques for robust topology optimization[J]. Computer Methods in Applied Mechanics & Engineering, 2012, s245-246(12):217-231.
[34] AMIR O. Revisiting approximate reanalysis in topology optimization. On the advantages of recycled preconditioning in a minimum weight procedure[J]. Structural & Multidisciplinary Optimization, 2015, 51(1):41-57.