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Evaluation of the suitability of empirically-based models for predicting energy performance of centrifugal water chillers with variable chilled water flow

机译:基于经验的模型对可变冷水流量的离心式冷水机组能源性能预测的适用性评估

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摘要

This study evaluates the performance prediction ability and model suitability of eleven empirically-based performance models for centrifugal water chillers. Specifically, this study uses over 2000 datasets with a constant or variable chilled water flow rate for fixed or variable speed drive centrifugal liquid chillers. The best regression coefficients for each empirical-based model were obtained using the ordinary least squares (OLSs) method. The model prediction accuracy of each empirical-based model is based on the coefficient of variation of root-mean-square error (CV). The evaluation for model suitability is based on the considerations of prediction ability, the complexity in training datasets, the effort needed to calibrate, the generality of the model, and its ability to physically interpret the model regression coefficients in this study. Results show that among the eleven empirical-based models, the BQ(CV - 0.54%), MP (CV - 0.61%), SMP (CV - 0.70%), and MDOE-2 (CV - 0.63%) models have overall prediction CV values under 1% for all kinds of datasets and achieve extremely good prediction accuracy. Because the MDOE-2 model has a more complicated datasets training process than the BQ, MP, and SMP models, and it has no ability to physically interpret the model regression coefficients, the BQ, MP, and SMP models have the best suitability. The results of this study provide important reference values for selecting empirically-based performance models for energy analysis, optimal operating control, energy efficiency measurement and verification (M&V), and the development of fault detection and diagnosis (FDD) systems in centrifugal water chillers.
机译:本研究评估了11种基于经验的离心式冷水机组的性能预测能力和模型适用性。具体来说,这项研究使用了2000多个固定或变速驱动离心式液体冷却器的恒定或可变冷却水流量数据集。使用普通最小二乘法(OLSs)获得每个基于经验的模型的最佳回归系数。每个基于经验的模型的模型预测精度均基于均方根误差(CV)的变化系数。对模型适用性的评估是基于以下方面的考虑:预测能力,训练数据集的复杂性,校准所需的工作量,模型的一般性及其在物理上解释模型回归系数的能力。结果表明,在11个基于经验的模型中,BQ(CV-0.54%),MP(CV-0.61%),SMP(CV-0.70%)和MDOE-2(CV-0.63%)模型具有总体预测各种数据集的CV值均低于1%,并实现了极好的预测精度。由于MDOE-2模型比BQ,MP和SMP模型具有更复杂的数据集训练过程,并且没有物理上解释模型回归系数的能力,因此BQ,MP和SMP模型具有最佳的适用性。这项研究的结果为选择基于经验的性能模型进行能源分析,最佳运行控制,能效测量和验证(M&V)以及离心式冷水机组故障检测和诊断(FDD)系统的开发提供了重要的参考价值。

著录项

  • 来源
    《Applied Energy》 |2012年第2012期|p.583-595|共13页
  • 作者单位

    Department of Energy and Refrigerating Air-Conditioning Engineering, National Taipei University of Technology, No. 1, Sec. 3, Chung-Hsiao E. Rd., Taipei 10608. Taiwan;

    Department of Energy and Refrigerating Air-Conditioning Engineering, National Taipei University of Technology, No. 1, Sec. 3, Chung-Hsiao E. Rd., Taipei 10608. Taiwan;

    Department of Energy and Refrigerating Air-Conditioning Engineering, National Taipei University of Technology, No. 1, Sec. 3, Chung-Hsiao E. Rd., Taipei 10608. Taiwan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    centrifugal water chiller; variable speed driver; variable chilled water how; performance model; energy performance;

    机译:离心式冷水机;变速驱动器;变冷水如何;绩效模型;能源表现;

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