Person: Shian, Samuel
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Publication Dielectric elastomer generator with equi-biaxial mechanical loading for energy harvesting
(Society of Photo-Optical Instrumentation Engineers (SPIE), 2013) Huang, Jiangshui; Shian, Samuel; Suo, Zhigang; Clarke, DavidDielectric elastomer generators (DEGs) are attractive candidates for harvesting electrical energy from mechanical work since they comprise relatively few moving parts and large elastomer sheets can be mass produced. Successfully demonstrations of the DEG prototypes have been reported from a diverse of energy sources, including ocean waves, wind, flowing water and human movement. The energy densities achieved, however, are still small compared with theoretical predictions. We show that significant improvements in energy density (550 J/kg with an efficiency of 22.1%), can be achieved using an equi-biaxial mechanical loading configuration, one that produces uniform deformation and maximizes the capacitance changes. Analysis of the energy dissipations indicates that mechanical losses, which are caused by the viscous losses both within the acrylic elastomer and within the thread materials used for the load transfer assembly, limits the energy conversion efficiency of the DEG. Addressing these losses is suggested to increase the energy conversion efficiency of the DEG. © (2013) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Publication Optimizing the Electrical Energy Conversion Cycle of Dielectric Elastomer Generators
(Wiley-VCH Verlag Berlin, 2014) Shian, Samuel; Huang, Jiangshui; Zhu, Shijie; Clarke, DavidPublication Maximizing the Energy Density of Dielectric Elastomer Generators Using Equi-Biaxial Loading
(Wiley-VCH Verlag Berlin, 2013-03-29) Huang, Jiangshui; Shian, Samuel; Suo, Zhigang; Clarke, DavidDielectric elastomer generators (DEGs) for harvesting electrical energy from mechanical work have been demonstrated but the energy densities achieved are still small compared with theoretical predictions. We show that significant improvements in energy density (560 J/kg with a power density of 280 W/kg and an efficiency of 27%) can be achieved using equi-biaxial stretching, a mechanical loading configuration that maximizes the capacitance changes. We demonstrate the capacitance of dielectric elastomers subjected to equi-biaxial stretches is proportional to the fourth power of the stretch. Quantification of the individual energy contributions indicates that attaining higher conversion efficiencies is limited by viscous losses within the acrylic elastomer, suggesting that still higher conversion efficiencies with other elastomers should be attainable with our novel mechanical loading design.
Publication The Thickness and Stretch Dependence of the Electrical Breakdown Strength of an Acrylic Dielectric Elastomer
(American Institute of Physics, 2012) Huang, Jiangshui; Shian, Samuel; Diebold, Roger Mitchell; Suo, Zhigang; Clarke, DavidThe performance of dielectric elastomer actuators is limited by electrical breakdown. Attempts to measure this are confounded by the voltage-induced thinning of the elastomer. A test configuration is introduced that avoids this problem: A thin sheet of elastomer is stretched, crossed-wire electrodes are attached, and then embedded in a stiff polymer. The applied electric field at breakdown, (E_{B}), is found to depend on both the deformed thickness, h, and the stretch applied, (\lambda). For the acrylic elastomer investigated, the breakdown field scales as (E_{B}) = 51 h(^{ − 0.25 }) (\lambda)(^{0.63}). The test configuration allows multiple individual tests to be made on the same sheet of elastomer.