Control-Oriented Modeling of the Dynamics of Stirling Engine Regenerators
Author(s) -
Mitchel Craun,
Bassam Bamieh
Publication year - 2017
Publication title -
journal of dynamic systems measurement and control
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.528
H-Index - 89
eISSN - 1528-9028
pISSN - 0022-0434
DOI - 10.1115/1.4037838
Subject(s) - regenerative heat exchanger , stirling engine , control theory (sociology) , reduction (mathematics) , computer science , enclosure , representation (politics) , model order reduction , mathematics , mechanical engineering , engineering , algorithm , heat exchanger , control (management) , artificial intelligence , projection (relational algebra) , telecommunications , geometry , politics , law , political science
We develop a first-principles model of the regenerator component of a generic Stirling engine. The model is based on the Euler equations of one dimensional gas dynamics coupled with its convective/conductive heat transfer with the embedded mesh material. We investigate various methods for deriving simpler and low order control-oriented models from this first principles model. The basic criterion being high fidelity representation of the dynamics of the regenerator when coupled to other dynamic components of the engine. We identify several non-dimensional parameters that potentially categorize different modes of operation, and investigate the corresponding time-scale separation. A hierarchy of singularly perturbed models are derived in which acoustic dynamics are eliminated, periodic mesh dynamics are averaged, and the shape of the distributed regenerator gas state is approximated respectively. In addition, since the reduced model is to be operated cyclically when connected to other parts of the engine, we develop such a feedback-aware model reduction algorithm based on a chirp-POD technique. This technique yields reduced models that are accurate over a range of engine operating frequencies.
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