DocumentCode :
1886873
Title :
Design and electro-thermo-mechanical analysis of high temperature molybdenum microheaters for exhaust gas sensing applications
Author :
Rajeswara Rao, L.L. ; Singha, M.K. ; Kiruba, M.S. ; Nagaraju, J.
Author_Institution :
Dept. of Instrum. & Appl. Phys., Indian Inst. of Sci., Bangalore, India
fYear :
2015
fDate :
6-8 May 2015
Firstpage :
624
Lastpage :
628
Abstract :
Microheaters play a vital role in gas sensor applications. Exhaust gas sensors need high temperature microheaters to heat sensing films uniformly at low powers. In this paper, we present design and electro-thermo-mechanical analysis of molybdenum microheaters suitable for high temperature exhaust gas sensors. Double-spiral (DS), double-meander (DM), cross-meander (CS), modified-S (MS) and modified double spiral (MDS) shape structures were considered for simulation. The geometry of the resistive structure was optimized to improve temperature uniformity over a heating area of 500 × 500 μm2. Simulations show that the microheater consumed 83.65 mW power to reach a maximum temperature of 800 °C with a temperature gradient of 8.2°C. Structural deformation of the microheater membrane was studied to determine its stability and reliability under high thermal stresses. The maximum membrane deformation was found to be 15.25 μm at 800°C. Platinum, tungsten and molybdenum microheaters were compared in terms of their power consumption, temperature gradient and membrane deformations.
Keywords :
electric heating; gas sensors; microsensors; molybdenum; Mo; cross meander structure; double meander structure; electrothermomechanical analysis; exhaust gas sensing applications; high temperature exhaust gas sensor; high temperature molybdenum microheater; membrane deformation; modified double spiral structure; modified-S structure; power 83.65 mW; structural deformation; temperature 800 C; Gas detectors; Heating; Power demand; Spirals; Temperature distribution; Temperature sensors; electro-thermo-mechanical analysis; exhaust gas sensor; membrane deformation; microheater; molybdenum; temperature gradient;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Smart Technologies and Management for Computing, Communication, Controls, Energy and Materials (ICSTM), 2015 International Conference on
Conference_Location :
Chennai
Print_ISBN :
978-1-4799-9854-8
Type :
conf
DOI :
10.1109/ICSTM.2015.7225489
Filename :
7225489
Link To Document :
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