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- W4383752677 abstract "In IoT, energy dissipation reduction is an essential requirement for achieving high-performance sensors and communication devices. Among the various energy dissipations that limit the performance of IoT devices, thermoelastic energy dissipation is a crucial one which seems to be laborious to control. In thermoelastic damping (TED), due to the coupling between temperature and strain fields in the vibrating structures, irreversible energy dissipation occurs. In this paper, the energy dissipation of a cantilever-type micro/nanobeam resonator at high temperature is analysed and found to be increased as the temperature elevates. Consequently, to reduce thermoelastic energy dissipation $$left( {Q^{ - 1} } right)$$ at high temperatures, nonzero values for dimensionless length scale parameter are chosen and verified to be effective at all temperatures. The analysis is conducted by MATLAB 2015 and five diverse structural materials (Si, polySi, GaAs, diamond and SiC) are selected. The thermoelastic energy losses of micro/nanobeams are plotted by varying the temperature from 0 to 500 K. The increase in energy losses at elevated temperatures is minimised by the inclusion of the nonzero dimensionless length scale parameters." @default.
- W4383752677 created "2023-07-11" @default.
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- W4383752677 date "2023-01-01" @default.
- W4383752677 modified "2023-09-27" @default.
- W4383752677 title "Thermoelastic Energy Dissipation Trimming at High Temperatures in Cantilever Microbeam Sensors for IoT Applications" @default.
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- W4383752677 doi "https://doi.org/10.1007/978-981-99-2322-9_19" @default.
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