Simultaneous energy harvesting and vibration attenuation in piezo-embedded negative stiffness metamaterial

被引:44
作者
Dwivedi, Ankur [1 ]
Banerjee, Arnab [2 ]
Bhattacharya, Bishakh [1 ]
机构
[1] Indian Inst Technol Kanpur, Dept Mech Engn, Kanpur 208016, Uttar Pradesh, India
[2] Indian Inst Technol Delhi, Dept Civil Engn, New Delhi, India
关键词
Piezo-embedded negative stiffness metamaterial; mechanical metamaterial; effective stiffness; generalized Bloch technique; backward substitution method; energy harvesting; vibration control; piezoelectric material; ACOUSTIC METAMATERIAL;
D O I
10.1177/1045389X20910261
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Mechanical metamaterials are uniquely engineered form of periodically arranged unit cells that exhibit interesting frequency-dependent physical properties like negative effective mass, Young's modulus and Poisson's ratio. These extreme engineering properties are beyond the natural properties of a material, which can modulate the propagation of wave. In this article, a mechanical realization of one of these uncommon properties called negative stiffness is emulated through analytical simulation. Wave propagation in metamaterials is contingent on frequency, which in turn results in transmission and attenuation bands. Simultaneous vibration control and energy harvesting can be executed by embedding energy harvesting smart material within the resonating units of the metamaterial. However, this needs careful design studies to outline the range of parameters. In this work, first, the band structure of a piezo-embedded negative stiffness metamaterial is studied using generalized Bloch's theorem. Subsequently, harvested power along with the transmissibility is computed for a chain of finite number of metamaterial units by using backward substitution method. The results of the parametric studies elucidate that piezo-embedded negative stiffness metamaterial can enhance the performance in terms of vibration attenuation and harvested energy.
引用
收藏
页码:1076 / 1090
页数:15
相关论文
共 26 条
[1]   Piezoelectric energy harvesting from broadband random vibrations [J].
Adhikari, S. ;
Friswell, M. I. ;
Inman, D. J. .
SMART MATERIALS AND STRUCTURES, 2009, 18 (11)
[2]  
[Anonymous], 1990, PRINCIPLES VIBRATION
[3]  
Banerjee Arnab, 2016, Applied Mechanics and Materials, V846, P264, DOI 10.4028/www.scientific.net/AMM.846.264
[4]  
Banerjee A, 2018, ARCH COMPUTATIONAL M, V26, P1029
[5]   Frequency graded 1D metamaterials: A study on the attenuation bands [J].
Banerjee, Arnab ;
Das, Raj ;
Calius, Emilio P. .
JOURNAL OF APPLIED PHYSICS, 2017, 122 (07)
[6]  
Banerjee B., 2011, An introduction to metamaterials and waves in composites, DOI [10.1201/b11814, DOI 10.1201/B11814]
[7]   A novel low-frequency broadband piezoelectric energy harvester combined with a negative stiffness vibration isolator [J].
Cao, Dongxing ;
Guo, Xiangying ;
Hu, Wenhua .
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2019, 30 (07) :1105-1114
[8]   A metamaterial structure capable of wave attenuation and concurrent energy harvesting [J].
Chen, Jung-San ;
Su, Wei-Jiun ;
Cheng, Yi ;
Li, Wei-Chang ;
Lin, Cheng-Yen .
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2019, 30 (20) :2973-2981
[9]   Lattice Metamaterials with Mechanically Tunable Poisson's Ratio for Vibration Control [J].
Chen, Yanyu ;
Li, Tiantian ;
Scarpa, Fabrizio ;
Wang, Lifeng .
PHYSICAL REVIEW APPLIED, 2017, 7 (02)
[10]   Study of piezo embedded negative mass metamaterial using generalized Bloch theorem for energy harvesting system [J].
Dwivedi, Ankur ;
Banerjee, Arnab ;
Bhattacharya, Bishakh .
ACTIVE AND PASSIVE SMART STRUCTURES AND INTEGRATED SYSTEMS XIII, 2019, 10967