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Titlebook: Optimization of Large Structural Systems; G. I. N. Rozvany (Professor of Structural Design) Book 1993 Springer Science+Business Media Dord

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書目名稱Optimization of Large Structural Systems
編輯G. I. N. Rozvany (Professor of Structural Design)
視頻videohttp://file.papertrans.cn/704/703279/703279.mp4
叢書名稱NATO Science Series E:
圖書封面Titlebook: Optimization of Large Structural Systems;  G. I. N. Rozvany (Professor of Structural Design) Book 1993 Springer Science+Business Media Dord
描述G.I.N. Rozvany ASI Director, Professor of Structural Design, FB 10, Essen University, Essen, Germany Structural optimization deals with the optimal design of all systems that consist, at least partially, of solids and are subject to stresses and deformations. This inte- grated discipline plays an increasingly important role in all branches of technology, including aerospace, structural, mechanical, civil and chemical engineering as well as energy generation and building technology. In fact, the design of most man- made objects, ranging from space-ships and long-span bridges to tennis rackets and artificial organs, can be improved considerably if human intuition is enhanced by means of computer-aided, systematic decisions. In analysing highly complex structural systems in practice, discretization is un- avoidable because closed-form analytical solutions are only available for relatively simple, idealized problems. To keep discretization errors to a minimum, it is de- sirable to use a relatively large number of elements. Modern computer technology enables us to analyse systems with many thousand degrees of freedom. In the optimization of structural systems, however, most currently av
出版日期Book 1993
關(guān)鍵詞building technology; calculus; chemical engineering; control; deformation; degrees of freedom; design; mate
版次1
doihttps://doi.org/10.1007/978-94-010-9577-8
isbn_softcover978-94-010-9579-2
isbn_ebook978-94-010-9577-8Series ISSN 0168-132X
issn_series 0168-132X
copyrightSpringer Science+Business Media Dordrecht 1993
The information of publication is updating

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0168-132X optimal design of all systems that consist, at least partially, of solids and are subject to stresses and deformations. This inte- grated discipline plays an increasingly important role in all branches of technology, including aerospace, structural, mechanical, civil and chemical engineering as well
板凳
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Optimization by Decomposition in Structural and Multidisciplinary Applications by a method that bypasses finite differencing on the system analysis. When a multidisciplinary system includes a structure as its part, a hybrid, hierarchic/non-hierarchic decomposition applies. Numerical examples and references to computational experience accumulated to date illustrate the discussion.
地板
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Approximate Models for the Optimization of Large Structural Systemsvarious types of design variables and can be used with a general finite element model. Numerical examples illustrate the effectiveness of the solution process. It is shown that high quality approximations can be obtained with a small computational effort for very large changes in the design variables
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Layout Optimization using the Homogenization Methodn of the previous work by Bends?e and Kikuchi. A formulation of a three-dimensional homogenized shell, a solution algorithm, and several examples of computing the optimum layout are presented in this first part of the two articles.
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Recent Advances in Approximation Concepts for Optimum Structural Designction approximations and use of intermediate variable and response quantities. It appears also that some new methodologies emerge which could greatly benefit from the introduction of new computer architectures.
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