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Predicting the co-melting temperatures of municipal solid waste incinerator fly ash and sewage sludge ash using grey model and neural network

机译:用灰色模型和神经网络预测城市垃圾焚烧炉粉煤灰和污水污泥灰的共融温度

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摘要

A grey model (GM) and an artificial neural network (ANN) were employed to predict co-melting temperature of municipal solid waste incinerator (MSWI) fly ash and sewage sludge ash (SSA) during formation of modified slag. The results indicated that in the aspect of model prediction, the mean absolute percentage error (MAPEs) were between 1.69 and 13.20% when adopting seven different GM (1, N) models. The MAPE were 1.59 and 1.31% when GM (1, 1) and rolling grey model (RGM (1, 1)) were adopted. The MAPEs fell within the range of 0.04 and 0.50% using different types of ANN. In GMs, the MAPE of 1.31% was found to be the lowest when using RGM (1, 1) to predict co-melting temperature. This value was higher than those of ANN2-1 to ANN8-1 by 1.27, 1.25, 1.24, 1.18, 1.16, 1.14 and 0.81%, respectively. GM only required a small amount of data (at least four data). Therefore, GM could be applied successfully in predicting the co-melting temperature of MSWI fly ash and SSA when no sufficient information is available. It also indicates that both the composition of MSWI fly ash and SSA could be applied on the prediction of co-melting temperature.
机译:采用灰色模型(GM)和人工神经网络(ANN)预测改性渣形成过程中城市生活垃圾焚烧炉(MSWI)飞灰和污水污泥灰(SSA)的共融温度。结果表明,在模型预测方面,采用七个不同的GM(1,N)模型时,平均绝对百分比误差(MAPE)在1.69至13.20%之间。当采用GM(1、1)和滚动灰色模型(RGM(1、1))时,MAPE分别为1.59和1.31%。使用不同类型的人工神经网络,MAPE落在0.04%至0.50%的范围内。在转基因食品中,当使用RGM(1,1)预测共熔温度时,MAPE为1.31%最低。该值分别比ANN2-1至ANN8-1高1.27%,1.25%,1.24%,1.18%,1.16%,1.14%和0.81%。 GM仅需要少量数据(至少四个数据)。因此,如果没有足够的信息,通用汽车可以成功地用于预测MSWI粉煤灰和SSA的熔融温度。这也表明,MSWI粉煤灰和SSA的组成均可用于预测共熔温度。

著录项

  • 来源
    《Waste management & research》 |2011年第3期|p.284-293|共10页
  • 作者单位

    Department of Environmental Engineering and Management, Chaoyang University of Technology, Wufeng, Taichung, Taiwan, R.O.C.;

    Department of Environmental Engineering, National llan University, llan, llan, 26047, Taiwan, R.O.C;

    Department of Environmental Engineering, National Han University, Han, llan, Taiwan, R.O.C.;

    Institute of Environmental Engineering and Management, National Taipei University of Technology, Taipei, Taiwan, R.O.C.;

    Department of Chemical and Materials Engineering, National llan University, llan, llan, Taiwan, R.O.C.;

  • 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

    municipal solid waste incinerator; sewage sludge ash; co-melting temperatures; grey model; artificial neural network;

    机译:城市固体废物焚化炉;污水污泥灰;共熔温度灰色模型人工神经网络;
  • 入库时间 2022-08-17 13:43:31

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