F109 PREDICTION OF THE INNER WALL SHAPE OF AN ERODED FURNACE BY THE NONLINEAR INVERSE HEAT CONDUCTION TECHNIQUE(Numerical methods-1)
スポンサーリンク
概要
- 論文の詳細を見る
A new technique of estimating the unknown inner wall shape of eroded furnaces handling molten materials from the measured temperatures at the outside surface is developed. The inverse heat conduction problem using the conjugate gradient algorithm is extended to the case of nonlinear heat conduction, and is formulated in the general coordinate system. Instead of treating the unknown boundary directly, the heat flux distribution on a virtual boundary is estimated, and the real eroded surface is sought by a proper thermal condition for the surface. A set of boundary value problems - direct problem, sensitivity problem and adjoint problem - is solved by the finite element method. Smooth erosion with shallow depths can be estimated well by a single analysis with a flat virtual surface, but deep erosions or sharp changes as in triangular erosions cannot be well predicted by the single analysis with the flat virtual surface. When the virtual surface is modified iteratively, arbitrary shape with sharp changes and deep erosions could be predicted excellently even with temperature-dependent thermal conductivity.
- 一般社団法人日本機械学会の論文
- 2000-10-01
著者
-
Lee Jin-won
Department Of Integrated Biotechnology Sogang University
-
Lee Jin-won
Department Of Mechanical Engineering Pohang University Of Science And Technology
-
Shin Mansoo
Department Of Mechanical Engineering Pohang University Of Science And Technology
-
Lee Jin-Won
Department of Inorganic Materials Engineering, Hanyang University, 17 Haengdang-dong, Seongdong-gu, Seoul 133-791, Korea
関連論文
- Control of specific growth rate to enhance the production of a novel disintegrin, saxatilin, in recombinant Pichia pastoris(MICROBIAL PHYSIOLOGY AND BIOTECHNOLOGY)
- 羊顎関節の実験的骨関節症におけるヒアルロン酸の治療効果
- F109 PREDICTION OF THE INNER WALL SHAPE OF AN ERODED FURNACE BY THE NONLINEAR INVERSE HEAT CONDUCTION TECHNIQUE(Numerical methods-1)
- Cantilever Type Lead Zirconate Titanate Microactuator Utilizing Ruthenium Oxide