Title :
Realistic case studies of wireless structural control
Author :
Bo Li ; Zhuoxiong Sun ; Mechitov, Kirill ; Hackmann, Gregory ; Chenyang Lu ; Dyke, S.J. ; Agha, Gul ; Spencer, Billie F.
Author_Institution :
Dept. of Comput. Sci. & Eng., Washington Univ. in St. Louis, St. Louis, MO, USA
Abstract :
Wireless Structural Control (WSC) systems can play a crucial role in protecting civil infrastructure in the event of earthquakes and other natural disasters. Such systems represent an exemplary class of cyber-physical systems that perform close-loop control using wireless sensor networks. Existing WSC research usually employs wireless sensors installed on small lab structures, which cannot capture realistic delays and data loss in wireless sensor networks deployed on large civil structures. The lack of realistic tools that capture both the cyber (wireless) and physical (structural) aspects of WSC systems has been a hurdle for cyber-physical systems research for civil infrastructure. This advances the state of the art through the following contributions. First, we developed the Wireless Cyber-Physical Simulator (WCPS), an integrated environment that combines realistic simulations of both wireless sensor networks and structures. WCPS integrates Simulink and TOSSIM, a state-of-the-art sensor network simulator featuring a realistic wireless model seeded by signal traces. Second, we performed two realistic case studies each combining a structural model with wireless traces collected from real-world environments. The building study combines a benchmark building model and wireless traces collected from a multi-story building. The bridge study combines the structural model of the Cape Girardeau bridge over the Mississippi River and wireless traces collected from a similar bridge (the Jindo Bridge) in South Korea. These case studies shed light on the challenges of WSC and the limitations of a traditional structural control approach under realistic wireless conditions. Finally, we proposed a cyber-physical co-design approach to WSC that integrates a novel holistic scheduling scheme (for sensing, communication and control) and an Optimal Time Delay Controller (OTDC) that substantially improves structural control performance.
Keywords :
bridges (structures); buildings (structures); closed loop systems; delays; feedback; optimal control; scheduling; structural engineering; telecontrol; wireless sensor networks; Cape Girardeau bridge; Jindo Bridge; Mississippi River; Simulink; South Korea; TOSSIM; WCPS; WSC systems; benchmark building model; civil infrastructure; close-loop control; cyber-physical co-design approach; cyber-physical systems; feedback control loop; holistic scheduling scheme; multistory building; optimal time delay controller; realistic wireless model; sensor network simulator; signal traces; structural model; wireless cyber-physical simulator; wireless sensor networks; wireless structural control systems; Bridges; Buildings; Control systems; Sensors; Software packages; Wireless communication; Wireless sensor networks; Wireless cyber-physical simulator; Wireless sensor network; Wireless structural control, Cyber; physical system;
Conference_Titel :
Cyber-Physical Systems (ICCPS), 2013 ACM/IEEE International Conference on
Conference_Location :
Philadelphia, PA