Pulsed heating of the self-actuated cantilever: a one-dimensional exact solution investigation of non-axial temperature gradients

IF 1.4 4区 工程技术 Q2 ENGINEERING, MULTIDISCIPLINARY Journal of Engineering Mathematics Pub Date : 2024-04-30 DOI:10.1007/s10665-024-10359-x
Sid Becker, Stefanie Gutschmidt, Bradley Boyd, Dan Zhao
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Abstract

Self-actuated bimorph cantilevers are implemented in a variety of micro-electro-mechanical systems. Their tip deflection relies on the unmatched coefficients of thermal expansion between layers. The thermal bimorph phenomenon is dependent on the temperature rise within the cantilever and, while previous studies have investigated variations in the thermal profile along the cantilever length, these have usually neglected variations in the thermal profile along the cantilever thickness. The current study investigates the thermal distribution across the thickness of the cantilever. The exact closed form solution to the one-dimensional problem of heat conduction in the composite (layered) domain subjected to transient volumetric heating is developed using the appropriate Green’s function. This solution is applied to a one-dimensional case study of a 3-layer cantilever with an Aluminium heater, a silicon dioxide resistive layer, and a silicon base layer. The aluminium heater experiences volumetric heating at a rate of 0.2 mW/μm3 of 5 μs duration at 100 μs intervals (10 kHz with a 1/20 duty cycle). Benchmark solutions of the temperature at select times and positions are provided. It is shown that there are negligible temperature gradients across the cantilever thickness during the heating and the first ~ 5 μs afterward. These short-lived temperature differences are positively biased with the unmatched thermal expansion coefficients between the layers, though their relative influence on bending is not clear. A simple parametric analysis indicates that the relative magnitude of the temperature differences across the cantilever (compared to the overall temperature) decreases substantially with increasing duty cycle.

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自驱动悬臂的脉冲加热:非轴向温度梯度的一维精确解法研究
各种微型机电系统中都采用了自驱动双态悬臂。它们的顶端偏转依赖于层间不匹配的热膨胀系数。热双态现象取决于悬臂内的温升,虽然之前的研究已经调查了沿悬臂长度方向的热分布变化,但通常忽略了沿悬臂厚度方向的热分布变化。目前的研究调查了悬臂厚度上的热分布。利用适当的格林函数,开发出了受瞬态体积加热的复合(分层)域中热传导一维问题的精确闭合形式解决方案。该解决方案应用于一个三层悬臂的一维案例研究,该悬臂包含一个铝加热器、一个二氧化硅电阻层和一个硅底层。铝加热器的容积加热速率为 0.2 mW/μm3,持续时间为 5 μs,间隔时间为 100 μs(10 kHz,占空比为 1/20)。提供了选定时间和位置的温度基准解。结果表明,在加热期间和加热后的头 5 μs 内,悬臂厚度上的温度梯度可以忽略不计。这些短暂的温度差与各层之间不匹配的热膨胀系数呈正相关,但它们对弯曲的相对影响尚不清楚。简单的参数分析表明,随着占空比的增加,悬臂上温度差的相对幅度(与整体温度相比)会大幅减小。
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来源期刊
Journal of Engineering Mathematics
Journal of Engineering Mathematics 工程技术-工程:综合
CiteScore
2.10
自引率
7.70%
发文量
44
审稿时长
6 months
期刊介绍: The aim of this journal is to promote the application of mathematics to problems from engineering and the applied sciences. It also aims to emphasize the intrinsic unity, through mathematics, of the fundamental problems of applied and engineering science. The scope of the journal includes the following: • Mathematics: Ordinary and partial differential equations, Integral equations, Asymptotics, Variational and functional−analytic methods, Numerical analysis, Computational methods. • Applied Fields: Continuum mechanics, Stability theory, Wave propagation, Diffusion, Heat and mass transfer, Free−boundary problems; Fluid mechanics: Aero− and hydrodynamics, Boundary layers, Shock waves, Fluid machinery, Fluid−structure interactions, Convection, Combustion, Acoustics, Multi−phase flows, Transition and turbulence, Creeping flow, Rheology, Porous−media flows, Ocean engineering, Atmospheric engineering, Non-Newtonian flows, Ship hydrodynamics; Solid mechanics: Elasticity, Classical mechanics, Nonlinear mechanics, Vibrations, Plates and shells, Fracture mechanics; Biomedical engineering, Geophysical engineering, Reaction−diffusion problems; and related areas. The Journal also publishes occasional invited ''Perspectives'' articles by distinguished researchers reviewing and bringing their authoritative overview to recent developments in topics of current interest in their area of expertise. Authors wishing to suggest topics for such articles should contact the Editors-in-Chief directly. Prospective authors are encouraged to consult recent issues of the journal in order to judge whether or not their manuscript is consistent with the style and content of published papers.
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