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THERMAL STRESSES RELAXATION DESIGN OF Ni/NiFe_(2)O_(4) SYSTEM FUNCTIONALLY GRADED CERMET INERT ANODE 被引量:5

THERMAL STRESSES RELAXATION DESIGN OF Ni/NiFe_2O_4 SYSTEM FUNCTIONALLY GRADED CERMET INERT ANODE
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摘要 The thermal stresses relaxation of Ni/NiFe2O4 system functionally graded cermet inert anode for aluminum electrolysis was optimally designed. The transient thermal stresses of the inert anode under complex boundary condition during high-temp (955℃) electrolysis were calculated using the finite-element software ANSYS, the influence of different parameters on the distribution of the thermal stresses were analyzed. The results showed that, during the process of thermal shock, the thermal hoop tensile stress on the surface of the anode is very large, which is possibly the major cause of anode crack; when the radius of the anode is between 0.05-0.15m, a range that can be realized by recent manufacturing technology, the optimum composition distribution exponent p is 0.25; The hoop tensile stresses reduce with the decrease of anode scale and also decrease with the decrease of the convection coefficient between the electrolyte and the anode. The thermal stresses relaxation of Ni/NiFe2O4 system functionally graded cermet inert anode for aluminum electrolysis was optimally designed. The transient thermal stresses of the inert anode under complex boundary condition during high-temp (955℃) electrolysis were calculated using the finite-element software ANSYS, the influence of different parameters on the distribution of the thermal stresses were analyzed. The results showed that, during the process of thermal shock, the thermal hoop tensile stress on the surface of the anode is very large, which is possibly the major cause of anode crack; when the radius of the anode is between 0.05-0.15m, a range that can be realized by recent manufacturing technology, the optimum composition distribution exponent p is 0.25; The hoop tensile stresses reduce with the decrease of anode scale and also decrease with the decrease of the convection coefficient between the electrolyte and the anode.
出处 《Acta Metallurgica Sinica(English Letters)》 SCIE EI CAS CSCD 2005年第5期635-641,共7页 金属学报(英文版)
基金 This work was supported by the National Basic Research Program of China(No.2005CB623703) National Natural Science Foundation(No.5047405I) Hunan Provincial Natural Science Foundation of China(No.03JJY3080) Trans-Century Excellent Persons Cultivation Project of Ministry of Education of China(in 2002).
关键词 functionally graded material (FGM) transient thermal stresses ANSYS inert anode aluminum electrolysis functionally graded material (FGM), transient thermal stresses, ANSYS, inert anode, aluminum electrolysis
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