Analysis, design, fabrication, and experimental assessment of a symmetric three-phase free-piston Stirling engine system is discussed in this paper. The system is designed to operate with moderate-temperature heat input that is consistent with solar-thermal collectors. Diaphragm pistons and nylon flexures are considered for this prototype to eliminate surface friction and to provide appropriate seals. In addition, low loss diaphragm pistons, etched and woven-wire screen heat exchangers, and plastic flexures, as the main components of the system, are outlined. The experimental results are presented and compared with design analysis. Experiments successfully confirm the design models for heat exchanger flow friction losses and gas spring hysteresis dissipation. Furthermore, it is revealed that gas spring hysteresis loss is an important dissipation phenomenon for low-power Stirling engines and should be carefully addressed in design. Analysis shows that the gas hysteresis dissipation is reduced drastically by increasing the number of phases in a multiphase Stirling engine system. It is further shown that for an even number of phases, half of the engine chambers could be eliminated by utilizing a reversing mechanism within the multiphase system. The mathematical formulation and modal analysis of multiphase Stirling engine system are then extended to a system that incorporates a reverser. By introducing a reverser to the fabricated prototype, the system successfully operates in engine mode. The system proves its self-starting capability and validates the computed start-up temperature.
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e-mail: artin.der.minassians@gmail.com
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Multiphase Stirling Engines
Artin Der Minassians,
Artin Der Minassians
Department of Electrical Engineering and Computer Sciences,
e-mail: artin.der.minassians@gmail.com
University of California, Berkeley
, 518 Cory Hall, Berkeley, CA 94720
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Seth R. Sanders
Seth R. Sanders
Professor
Department of Electrical Engineering and Computer Sciences,
e-mail: sanders@eecs.berkeley.edu
University of California, Berkeley
, 518 Cory Hall, Berkeley, CA 94720
Search for other works by this author on:
Artin Der Minassians
Department of Electrical Engineering and Computer Sciences,
University of California, Berkeley
, 518 Cory Hall, Berkeley, CA 94720e-mail: artin.der.minassians@gmail.com
Seth R. Sanders
Professor
Department of Electrical Engineering and Computer Sciences,
University of California, Berkeley
, 518 Cory Hall, Berkeley, CA 94720e-mail: sanders@eecs.berkeley.edu
J. Sol. Energy Eng. May 2009, 131(2): 021013 (11 pages)
Published Online: April 15, 2009
Article history
Received:
March 2, 2008
Revised:
January 8, 2009
Published:
April 15, 2009
Citation
Der Minassians, A., and Sanders, S. R. (April 15, 2009). "Multiphase Stirling Engines." ASME. J. Sol. Energy Eng. May 2009; 131(2): 021013. https://doi.org/10.1115/1.3097274
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