logo
Product categories

EbookNice.com

Most ebook files are in PDF format, so you can easily read them using various software such as Foxit Reader or directly on the Google Chrome browser.
Some ebook files are released by publishers in other formats such as .awz, .mobi, .epub, .fb2, etc. You may need to install specific software to read these formats on mobile/PC, such as Calibre.

Please read the tutorial at this link.  https://ebooknice.com/page/post?id=faq


We offer FREE conversion to the popular formats you request; however, this may take some time. Therefore, right after payment, please email us, and we will try to provide the service as quickly as possible.


For some exceptional file formats or broken links (if any), please refrain from opening any disputes. Instead, email us first, and we will try to assist within a maximum of 6 hours.

EbookNice Team

(Ebook) Design, Optimization, and Control of Tensegrity Structures by Milenko Masic ISBN 9780496748952, 0496748955

  • SKU: EBN-7018048
Zoomable Image
$ 32 $ 40 (-20%)

Status:

Available

4.7

18 reviews
Instant download (eBook) Design, Optimization, and Control of Tensegrity Structures after payment.
Authors:Milenko Masic
Pages:158 pages.
Year:2004
Editon:1
Publisher:ProQuest Dissertations And Theses
Language:english
File Size:46.62 MB
Format:pdf
ISBNS:9780496748952, 0496748955
Categories: Ebooks

Product desciption

(Ebook) Design, Optimization, and Control of Tensegrity Structures by Milenko Masic ISBN 9780496748952, 0496748955

ABSTRACT OF THE DISSERTATIONDesign, Optimization and Control of Tensegrity Structures by Milenko MasicDoctor of Philosophy in Engineering Sciences (Aerospace Engineering)University of California , San Diego, 2004Professor Robert E. Skelton , ChairThe contributions of this dissertation may be divided int o four categories.The first category involves developing a systematic form-finding method for general and symmetric tensegrity structures. As an extension of the available results, different shape constraints are incorporated in the problem. Methods for treatment of these constraints are considered and proposed. A systematic formulation of the form-finding problem for symmetric tensegrity structures is introduced , and it uses the symmetry to reduce both the numb er of equations and the number of variables in the problem. The equilibrium analysis of modular tensegrities exploits their peculiar symmetry. The tensegrity similarity transformation completes the contributions in the area of enabling tools for tensegrity form-finding.The second group of contributions develops the methods for optima l mass-to-stiffness-ratio design of tensegrity structures. This technique represents the state-of-the-art for the static design of tensegrity structures. It is an extension of the results available for the topology optimization of truss structures. Besides guaranteeing that the final design satisfies the tensegrity paradigm , the problem constrains the structure from different modes of failure, which makes it very general.The open-loop control of the shape of modular tensegrities is the third contribution of the dissertation. This analytical result offers a closed form solution for the control of the reconfiguration of modular structures. Applications range from the deployment and stowing of large-scale space structures to the locomotion-inducing control for biologically inspired structures. The control algorithm is applicable regardless of the size of the structures, and it represents a very general result for a large class of tensegrities. Controlled deployments of large-scale tensegrity plates and tensegrity towers are shown as examples that demonstrate the full potential of this reconfiguration strategy.The last contribution of the dissertation represents the method for integrated structure and control design of modular tensegrity structures. A gradient optimization method is used for this particular class of problems, and it proves to be very efficient. The examples that are given demonstrate the impact of the distribution of the prestress on the optimal dynamic performance of the structure.
*Free conversion of into popular formats such as PDF, DOCX, DOC, AZW, EPUB, and MOBI after payment.

Related Products