4.7 Article

Thermodynamic optimization of a Stirling engine

期刊

ENERGY
卷 44, 期 1, 页码 902-910

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.energy.2012.04.060

关键词

Stirling engines; Thermodynamic optimization; Heat engines

资金

  1. Center for Advanced Power Systems at Florida State University, AFOSR [FA9550-06-1-0527]
  2. Brazilian National Council of Scientific and Technological Development, CNPq [554151/2010-3-CNPq]
  3. Engineering and Materials Science Graduate Program (PIPE) of the Federal University of Parana

向作者/读者索取更多资源

A Stirling engine configuration consisting of two cylinders, a regenerator and a sliding disc actuating mechanism (swashplate) is considered in this paper. A mathematical model, which combines fundamental and empirical correlations, and principles of classical thermodynamics, mass and heat transfer accounting for variable heat transfer coefficients, is developed. The proposed model is then utilized to simulate numerically the system transient and steady state response under different operating and design conditions. A system global optimization for maximum performance in the search for optimal parameters that lead to maximum cycle efficiency is performed with low computational time. Appropriate dimensionless groups are identified and the results presented in normalized charts for general application. The numerical results show that the two-way maximized system efficiency, occurs eta(max,max), when two system characteristic parameters, the ratio between the total swept volume during the expansion, and the total swept volume, phi, and the ratio between the heat transfer area of the hot side heat exchanger and the total heat exchange area, y, are optimally selected, i.e., (phi,y)(opt) congruent to(0.5, 0.4). The two-way maximized cycle efficiency found with respect to the optimized parameters is sharp, in the sense that a 225% variation of the calculated efficiency values was observed within the range of tested configurations in this study, and robust (i.e., relatively insensitive) to the variation of several parameters, thus stressing the importance to be considered in actual design. It is also found that the twice-maximized cycle efficiency and the total engine work output increase monotonically with the temperature of the hot source, T-h. As a result, the model is expected to be a useful tool for simulation, design, and optimization of Stirling engines. (C) 2012 Elsevier Ltd. All rights reserved.

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