Design of systems using artificial intelligence.
Authors
Parshukov Vladimir Ivanovich

Share
Annotation
The article examines the design and classification of modern automated technical systems using artificial intelligence, digital technologies, and TRIZ principles. Particular attention is paid to the hierarchical structure of complex technical systems comprising interconnected supersystems and subsystems at different levels, as well as to their functional interaction through programmable processors, controllers, and computerized control systems. Using automatic production lines, robotic assembly complexes, and flexible technological modules for the production of thin-film microassemblies as examples, the article considers the principles of integrating local technical solutions into unified production complexes. The possibilities of flexible process control, automation of transportation, loading-unloading, and monitoring operations, as well as the adaptation of individual modules to higher-level technical systems, are analyzed. The importance of unification and standardization of technical solutions for enhancing their integrative capabilities and supporting the further development of intelligent manufacturing is emphasized. Particular attention is given to the classification and systematization of technical systems based on the modified definitions proposed by Ksenia Kaplieva, as well as to their application in software development, machine-aided design, and the formulation of patent and licensing protection strategies. The article demonstrates that the combination of TRIZ and ARIZ principles, modern computer technologies, automated design, and intelligent control systems provides a foundation for the further development of flexible, adaptive, and intelligent manufacturing systems.
Keywords
Authors
Parshukov Vladimir Ivanovich

Share
References:
Cella, C. H., et al. (2018). Methods and systems for monitoring equipment in an Internet of Things environment for the mining industry. U.S. Patent Application No. 20180321666 A1, November 8, 2018.
Cella, C. H., et al. (2018). Methods and systems for data storage and communication in a chemical manufacturing process in an Internet of Things environment. U.S. Patent Application No. 20180284753 A1, October 4, 2018.
Chen, W.-L., et al. (2006). Universal and integrated real-time wafer testing software system and its open architecture. U.S. Patent Application No. 20060036394 A1, February 16, 2006.
Winstead, C. H. (2007). Integrated configuration, flow, and execution system for experimental and production semiconductor device flows. U.S. Patent Application No. 20070156272 A1, July 5, 2007.
Ushiku, Y., et al. (2006). Process state management system, management server and controller for the system, process state management method, product manufacturing method, and software product for the management server. U.S. Patent Application No. 20060064188 A1, March 23, 2006.
Nishi, S., et al. (2017). Manufacturing system for printing electronic devices. U.S. Patent Application No. 20170004985 A1, January 5, 2017.
Kim, J. H. (2018). Apparatus for mass production of monomeric biodegradable polymer microspheres and multichannel forming apparatus therefor. U.S. Patent Application No. 20180133677 A1, May 17, 2018.
Ehm, H., et al. (2015). Semiconductor manufacturing methods and supply chain management systems. U.S. Patent Application No. 20150066592 A1, March 5, 2015.
Shiba, Y., et al. (2008). Substrate processing apparatus and method for heat treatment. U.S. Patent Application No. 20080008837 A1, January 10, 2008.
Gardner, S. D., et al. (2005). High-speed lithographic machine and method. U.S. Patent Application No. 20050264777 A1, December 1, 2005.
