The design, fabrication and characterization of fluidic membranes for micro-engines with the aim of frequency lowering

被引:1
作者
Chutani, R. [1 ]
Formosa, F. [2 ]
de Labachelerie, M. [1 ]
Badel, A. [2 ]
Lanzetta, F. [1 ]
机构
[1] Univ Bourgogne Franche Comte, CNRS, FEMTO ST, Besancon, France
[2] Univ Savoie Mt Blanc, Lab SYMME, Annecy, France
关键词
micro-engines; silicone membrane; MEMS; fluidic structure; piston-free; EXPLICIT ANALYTICAL SOLUTION; AXISYMMETRICAL MODE SHAPES; LARGE VIBRATION AMPLITUDES; ISOTROPIC CIRCULAR PLATES; NATURAL FREQUENCIES; MEMS APPLICATIONS; TRANSVERSE;
D O I
10.1088/0960-1317/26/12/124009
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper describes the design, microfabrication and linear dynamic characterization of low frequency thick membranes as a potential technological solution for resonant microengines, for which classical pistons cannot be used. The proposed structure is called a hybrid fluid-membrane and consists of two thin flexible membranes that encapsulate an incompressible fluid. Lower frequency structures, compared to geometrically equivalent single layer membranes, are thus obtained. Each flexible membrane is based on a composite structure which comprises a silicon planar logarithmic spiral spring embedded in a room temperature vulcanization silicone polymer. Thus, the stiffness and sealing features are dissociated for a better design control. The developed realization and assembly process is demonstrated at the wafer level. The process involves the anodic bonding of multiple stacks of silicon/glass structures, fluid filling and sealing. Various dimensions of hybrid fluid-membranes are successfully fabricated. Their dynamic characterization underlines the agreement between experimental and theoretical results. The results provide the opportunity for the design and fabrication of low frequency membranes to match the dynamics requirements of micro-engines.
引用
收藏
页数:8
相关论文
共 23 条
[1]  
[Anonymous], 1993, VIBRATION PLATES
[2]   Fabrication and characterization of folded SU-8 suspensions for MEMS applications [J].
Bachmann, Daniel ;
Schoeberle, Bernd ;
Kuehne, Stphane ;
Leiner, Yves ;
Hierold, Christofer .
SENSORS AND ACTUATORS A-PHYSICAL, 2006, 130 :379-386
[3]   MEMS-based resonant heat engine: scaling analysis [J].
Bardaweel, H. ;
Preetham, B. S. ;
Richards, R. ;
Richards, C. ;
Anderson, M. .
MICROSYSTEM TECHNOLOGIES-MICRO-AND NANOSYSTEMS-INFORMATION STORAGE AND PROCESSING SYSTEMS, 2011, 17 (08) :1251-1261
[4]   Cyclic operation of a MEMS-based resonant micro heat engine: Experiment and model [J].
Bardaweel, H. ;
Richards, R. ;
Richards, C. ;
Anderson, M. .
JOURNAL OF APPLIED PHYSICS, 2010, 107 (10)
[5]   Optimization of the dynamic and thermal performance of a resonant micro heat engine [J].
Bardaweel, H. K. ;
Anderson, M. J. ;
Richards, R. F. ;
Richards, C. D. .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2008, 18 (10)
[6]   Development of micro power generators - A review [J].
Chou, S. K. ;
Yang, W. M. ;
Chua, K. J. ;
Li, J. ;
Zhang, K. L. .
APPLIED ENERGY, 2011, 88 (01) :1-16
[7]   Single-step deep reactive ion etching of ultra-deep silicon cavities with smooth sidewalls [J].
Chutani, R. K. ;
Hasegawa, M. ;
Maurice, V. ;
Passilly, N. ;
Gorecki, C. .
SENSORS AND ACTUATORS A-PHYSICAL, 2014, 208 :66-72
[8]  
Entee J M, 1999, MSM 99 TECHN P INT C, P597
[9]  
FERNANDEZPELLO AC, 2002, 29 INT S COMB SAPP J
[10]  
Formosa F, 2015, J PHYS C SER, V660