By Hartmut Janocha
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Additional resources for Adaptronics and Smart Structures: Basics, Materials, Design, and Applications, Second Edition
5388 (2004), pp. 202–212 11. : Vertical Tail Buﬀeting Alleviation Using Piezoelectric Actuators – Some Results of the Actively Controlled Response Of Buﬀet-Aﬀected Tails (ACROBAT) Program. SPIE Symp. on Smart Structures and Materials, Industrial and Commercial Applications of Smart Structures Technologies, SPIE Vol. 3044, San Diego, California, March 4–6 (1997), pp. 87–98 12. : Evaluating the Impact of Morphing Technologies on Aircraft Performance. AIAA Paper 2002–1631, April (2002) 13. : Aerodynamic and Static Aeroelastic Characteristics of a Variable-Span Morphing Wing.
42, No. 2. (2005), pp. 528–534 14. : Embedded Nondestructive Evaluation for Structural Health Monitoring, Damage Detection, and Failure Prevention. , Vol. 37, No. 2, March (2005), pp. 83–105 15. : Embedded Ultrasonics NDE with Piezoelectric Wafer Active Sensors. , Paris, France, RS series 12M, Vol. 3, No. 3–4 (2003), pp. 149–180 16. : Fracture Testing of Self-Healing Polymer Composites. Experimental Mechanics, Vol. 42, No. 4 (2002), pp. 372–379 17. : Investigation on High Energy Density Materials Utilizing Biological Transport Mechanisms.
In a conventional design, a structure would be calculated to resist the worst-case scenario. This usually results in gross over design. A ladder designed for the worst-case scenario would be, 99% of the time, too strong and too heavy for what is being used for. However, an adaptronic ladder would be designed much lighter, and, through the energy transduction, would be able to modify its behavior to cover its utility envelope. For example, an adaptronic ladder that is overloaded could use electrical energy to stiﬀen or strengthen itself while alerting the user that the normal loading capacity is being exceeded.
Adaptronics and Smart Structures: Basics, Materials, Design, and Applications, Second Edition by Hartmut Janocha