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Economic optimization of Organic Rankine cycle with pure fluids and mixtures for waste heat and solar applications using particle swarm optimization method

机译:使用粒子群优化方法对纯净朗肯循环进行纯废液和太阳能应用的有机朗肯循环经济优化

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The optimization criterion for designing the thermodynamic layout of an organic Rankine cycle is often based on either achieving maximum thermodynamic efficiency or incurring minimum initial specific investment costs. Such designs, however, need not lead to the maximum utilization of waste heat potential or an optimal investment. For full potential utilization of a waste heat source, its temperature should be brought down to near ambient temperatures via transfer of enthalpy to the organic Rankine cycle working fluid. In the limit, however, pursuit of complete source utilization may lead to capital intensive organic Rankine cycle layouts that demand infinitesimal temperature gradients in heat exchangers leading to massive heat transfer areas. This paper defines a new objective function that reveals the tradeoffs between specific investment cost and the extent to which waste heat is utilized. A particle swarm optimization algorithm is used to optimize 7 and 8 dimensional search space for pure and mixture based working fluids, respectively, for case studies involving power capacities of 5, 50 and 500 kWe, waste heat source temperatures ranging from 75 to 275 degrees C and a number of working fluids. As a practical aid to designers, a methodology for generating high isentropic efficiency scroll geometries corresponding to optimized cycles is presented, and the optimization analysis is further extended to solar thermal applications.
机译:用于设计有机朗肯循环的热力学布局的优化标准通常基于获得最大的热力学效率或产生最小的初始特定投资成本。然而,这样的设计不需要导致废热潜力的最大利用或最优投资。为了充分利用废热,应通过将焓转移到有机朗肯循环工作流体中,将其温度降至接近环境温度。然而,在极限情况下,追求完全利用能源可能会导致资本密集的有机朗肯循环布局,从而需要换热器中的温度梯度无限小,从而导致大量的传热面积。本文定义了一个新的目标函数,揭示了特定投资成本与废热利用程度之间的折衷。粒子群优化算法分别用于优化基于纯流体和基于混合物的工作流体的7维和8维搜索空间,用于涉及功率容量为5、50和500 kWe,废热源温度为75至275摄氏度的案例研究和许多工作液。作为对设计人员的实际帮助,提出了一种用于生成与优化循环相对应的高等熵效率涡旋几何形状的方法,并且优化分析进一步扩展到了太阳能应用。

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