用相似分析法对超临界CO2压缩机非设计工况预测的比较研究

Y. Jeong, Seongmin Son, Seong Kuk Cho, Seungjoon Baik, Jeong-Ik Lee
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引用次数: 1

摘要

目前运行的大多数发电厂主要采用蒸汽朗肯循环或气体布雷顿循环。为了设计一个更好的功率转换循环,研究人员采取了各种方法,其中一个例子是S-CO2(超临界CO2)功率循环。在过去的几十年里,S-CO2动力循环被发明和研究。最终,该循环成功地吸引了广泛应用的关注。基本上,S-CO2动力循环是气体布雷顿循环的一种变体。与普通的Brayton循环在气相流体中运行不同,S-CO2动力循环在超临界流体中运行,其中工作流体的温度和压力高于临界点。S-CO2动力循环的诸多优点源于其新颖的特性。特别是,在S-CO2动力循环中,压缩机在临界点附近运行,此时可压缩性大大降低。由于S-CO2功率循环大大受益于压缩工作量的减少,因此非设计工况下S-CO2压缩机的预测对整体循环性能具有巨大影响。当考虑一个功率周期的非设计运行时,需要指定压缩机的性能。采用基于相似分析的修正方法对压缩机进行非设计性能评价是一种有效的方法。然而,有几种方法可用于推导等效条件,但没有一种方法已根据数据对S-CO2条件进行了彻底检查。本文的目的是比较这些修正模型,以确定最佳拟合方法,以便从有限的信息中更准确地预测压缩机的非设计运行性能。将每种校正方法分别应用于SCEIL实验数据和1D涡轮机械码偏离设计预测码生成数据两组数据,并在本文中进行了评价。
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A Comparison Study for Off-Design Performance Prediction of a Supercritical CO2 Compressor With Similitude Analysis
Most of the power plants operating nowadays mainly have adopted a steam Rankine cycle or a gas Brayton cycle. To devise a better power conversion cycle, various approaches were taken by researchers and one of the examples is an S-CO2 (supercritical CO2) power cycle. Over the past decades, the S-CO2 power cycle was invented and studied. Eventually the cycle was successful for attracting attentions from a wide range of applications. Basically, an S-CO2 power cycle is a variation of a gas Brayton cycle. In contrast to the fact that an ordinary Brayton cycle operates with a gas phase fluid, the S-CO2 power cycle operates with a supercritical phase fluid, where temperatures and pressures of working fluid are above the critical point. Many advantages of S-CO2 power cycle are rooted from its novel characteristics. Particularly, a compressor in an S-CO2 power cycle operates near the critical point, where the compressibility is greatly reduced. Since the S-CO2 power cycle greatly benefits from the reduced compression work, an S-CO2 compressor prediction under off-design condition has a huge impact on overall cycle performance. When off-design operations of a power cycle are considered, the compressor performance needs to be specified. One of the approaches for a compressor off-design performance evaluation is to use the correction methods based on similitude analysis. However, there are several approaches for deriving the equivalent conditions but none of the approaches has been thoroughly examined for S-CO2 conditions based on data. The purpose of this paper is comparing these correction models to identify the best fitted approach, in order to predict a compressor off-design operation performance more accurately from limited amount of information. Each correction method was applied to two sets of data, SCEIL experiment data and 1D turbomachinery code off-design prediction code generated data, and evaluated in this paper.
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