TY - JOUR
T1 - An analytical electrothermal model of a 1-D electrothermal MEMS micromirror
AU - Todd, Shane T.
AU - Xie, Huikai
PY - 2005
Y1 - 2005
N2 - We have developed an analytical model that describes the steady-state thermal behavior of a 1-D electrothermal bimorph MEMS micromirror. The steady-state 1-D heat transport equation is used to solve for the temperature distribution of the device upon actuation. Three models are developed using different thermal conditions on the device. The models consider heat dissipation from conduction and convection and the temperature dependence of the actuator electrical resistor. The temperature distribution equation of each model is analyzed to find critical thermal parameters such as the position of maximum temperature, maximum temperature, average temperature, and equivalent thermal resistance. The simplest model, called the Case 1 model, is used to develop an electrothermal lumped element model that uses a single thermal power source. In the Case 1 model, it is shown that a parameter called the "balancing factor" predicts where the maximum temperature is located, the distribution of power flow, and the division of thermal resistances. The analytical models are compared to FEM simulations and agree within 20% for all of the actuation ranges and thermal conditions tested.
AB - We have developed an analytical model that describes the steady-state thermal behavior of a 1-D electrothermal bimorph MEMS micromirror. The steady-state 1-D heat transport equation is used to solve for the temperature distribution of the device upon actuation. Three models are developed using different thermal conditions on the device. The models consider heat dissipation from conduction and convection and the temperature dependence of the actuator electrical resistor. The temperature distribution equation of each model is analyzed to find critical thermal parameters such as the position of maximum temperature, maximum temperature, average temperature, and equivalent thermal resistance. The simplest model, called the Case 1 model, is used to develop an electrothermal lumped element model that uses a single thermal power source. In the Case 1 model, it is shown that a parameter called the "balancing factor" predicts where the maximum temperature is located, the distribution of power flow, and the division of thermal resistances. The analytical models are compared to FEM simulations and agree within 20% for all of the actuation ranges and thermal conditions tested.
KW - Electrothermal actuation
KW - Heat transport
KW - Lumped element modeling
KW - MEMS
KW - Micromirror
UR - http://www.scopus.com/inward/record.url?scp=20044373479&partnerID=8YFLogxK
U2 - 10.1117/12.582136
DO - 10.1117/12.582136
M3 - Conference article
AN - SCOPUS:20044373479
SN - 0277-786X
VL - 5649
SP - 344
EP - 353
JO - Proceedings of SPIE - The International Society for Optical Engineering
JF - Proceedings of SPIE - The International Society for Optical Engineering
IS - PART 1
M1 - 81
T2 - Smart Structures, Devices, and Systems II
Y2 - 13 December 2004 through 15 December 2004
ER -