Title of article
Maximum power output of multistage irreversible heat engines under a generalized heat transfer law by using dynamic programming
Author/Authors
Chen، L. نويسنده , , Xia، S. نويسنده , , Sun، F. نويسنده ,
Issue Information
دوماهنامه با شماره پیاپی 22 سال 2013
Pages
12
From page
301
To page
312
Abstract
A multistage irreversible Carnot heat engine system operating between a finite thermal capacity
high-temperature fluid reservoir and an infinite thermal capacity low-temperature environment with
a generalized heat transfer law [q / ..T n//m] is investigated in this paper. Optimal control theory is
applied to derive the continuous Hamilton-Jacobi-Bellman (HJB) equations, which determine the optimal
fluid temperature configurations for maximum power output under the conditions of fixed initial time and
fixed initial temperature of the driving fluid. Based on the universal optimization results, the analytical
solution for the case with Newtonian heat transfer law (m D 1; n D 1) is further obtained. Since there
are no analytical solutions for other heat transfer laws, the continuous HJB equations are discretized and
the dynamic programming (DP) algorithm is performed to obtain the complete numerical solutions of
the optimization problem. Then the effects of the internal irreversibility and heat transfer laws on the
optimization results are analyzed in detail. The results obtained can provide some theoretical guidelines
for the optimal design and operation of practical energy conversion and transfer processes and systems.
Journal title
Scientia Iranica(Transactions B:Mechanical Engineering)
Serial Year
2013
Journal title
Scientia Iranica(Transactions B:Mechanical Engineering)
Record number
944740
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