Optimal Skyhook and Groundhook Control for Semiactive Suspension: A Comprehensive Methodology
Author(s) -
C. Steven Díaz-Choque,
Luis C. FélixHerrán,
Ricardo A. Ramírez-Mendoza
Publication year - 2021
Publication title -
shock and vibration
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.418
H-Index - 45
eISSN - 1875-9203
pISSN - 1070-9622
DOI - 10.1155/2021/8084343
Subject(s) - skyhook , suspension (topology) , control engineering , control (management) , design methods , engineering , process (computing) , simple (philosophy) , controller (irrigation) , computer science , control theory (sociology) , damper , mathematics , artificial intelligence , mechanical engineering , pure mathematics , biology , operating system , sprung mass , agronomy , philosophy , epistemology , homotopy
This manuscript establishes a methodology that guides the designers to develop an optimal controller for a semiactive suspension system. The methodology’s processes are generally explained and straightforwardly, so a designer can extrapolate the methodology to a specific problem. Furthermore, this research presents an optimal control strategy for a semiactive control applied to a quarter vehicle model as an example of using the methodology. A particular interest is made in the advantages of such a simple synthesis and in the compromises that must be done in skyhook and groundhook control law applications. This manuscript exposes a logical and straightforward approach for choosing the controllers’ design parameters; also, efforts must be made to express precise performance specifications and constraints in the control design. The herein methodology could be relevant in the process design for intelligent suspensions, from one-quarter toward the entire vehicle.
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