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首页> 外文期刊>Sensors Journal, IEEE >Thermofluid Analysis of Ultra Low Power Hotplates for a MOX Gas Sensing Device
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Thermofluid Analysis of Ultra Low Power Hotplates for a MOX Gas Sensing Device

机译:MOX气体传感设备的超低功率加热板的热流分析

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This work presents a full three-dimensional finite-element multiphysics simulation of the conjugate heat transfer for a gas sensing device composed by a two-element array of ultra low power (ULP) metal oxide semiconductor (MOX) sensors operated in a miniaturized sampling chamber. The heat equation in a solid, the Poisson equation for the electric potential and the incompressible Navier-Stokes and energy equations for a fluid have been solved in a coupled manner. Validation of the simulation results has been performed comparing the simulated power dissipated by the array with a set of experimental data under different operating conditions. A maximum relative error of less than 7% between the simulations and the experiments has been obtained without application of any fitting strategy on the physical properties. A negligible effect on the power dissipated by the sensor, in presence of volumetric fluxes in the sampling chamber, has been observed both numerically and experimentally. Finally, a real operational condition has been simulated and examined.
机译:这项工作为气体传感装置的共轭传热提供了完整的三维有限元多物理场模拟,该装置由在微型化采样室中运行的超低功耗(ULP)金属氧化物半导体(MOX)传感器的两元素阵列组成。固体中的热方程,电势的泊松方程和不可压缩的Navier-Stokes以及流体的能量方程已通过耦合方式求解。对仿真结果进行了验证,将阵列耗散的仿真功率与一组在不同工作条件下的实验数据进行了比较。在不对物理特性应用任何拟合策略的情况下,获得的模拟与实验之间的最大相对误差小于7%。无论是数值上还是实验上,在采样室中存在体积通量的情况下,对传感器耗散功率的影响都可以忽略不计。最后,模拟并检验了实际的运行条件。

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