logo

EbookBell.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://ebookbell.com/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.

EbookBell Team

Smart Structures Theory Chopra I Sirohi J

  • SKU: BELL-4678858
Smart Structures Theory Chopra I Sirohi J
$ 31.00 $ 45.00 (-31%)

5.0

40 reviews

Smart Structures Theory Chopra I Sirohi J instant download after payment.

Publisher: CUP
File Extension: PDF
File size: 10.76 MB
Pages: 926
Author: Chopra I., Sirohi J.
ISBN: 9780521866576, 052186657X
Language: English
Year: 2013

Product desciption

Smart Structures Theory Chopra I Sirohi J by Chopra I., Sirohi J. 9780521866576, 052186657X instant download after payment.

The twenty-first century might be called the “Multifunctional Materials Age.” The inspiration for multifunctional materials comes from nature, and therefore these are often referred to as bio-inspired materials. Bio-inspired materials encompass smart materials and structures, multifunctional materials, and nano-structured materials. This is a dawn of revolutionary materials that may provide a “quantum jump" in performance and multi-capability. This book focuses on smart materials, structures, and systems, which are also referred to as intelligent, adaptive, active, sensory, and metamorphic. The purpose of these materials from the perspective of smart systems is their ability to minimize life-cycle cost and/or expand the performance envelope. The ultimate goal is to develop biologically inspired multifunctional materials with the capability to adapt their structural characteristics (stiffness, damping, viscosity, etc.) as required, monitor their health condition, perform self-diagnosis and self-repair, morph their shape, and undergo significant controlled motion over a wide range of operating conditions.

Related Products