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Utilizing ANFIS for prediction water absorption of lightweight geopolymers produced from waste materials

机译:利用ANFIS预测由废料生产的轻质地质聚合物的吸水率

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In the present work, water absorption of lightweight geopolymers produced by fine fly ash and rice husk–bark ash together with palm oil clinker (POC) aggregates has been investigated experimentally and modeled by adaptive network-based fuzzy inference systems (ANFIS). Different specimens made from a mixture of fine fly ash and rice husk–bark ash with and without POC were subjected to water absorption tests at 2, 7, and 28 days of curing. The specimens were oven cured for 36 h at 80 °C and then cured at room temperature until 2, 7, and 28 days. The results showed that high amount of POC particles improve the percentage of water absorption at the early age of curing. In addition, the ratio of “the percentage of water absorption” to “weight” of the POC-contained specimens at all ages of curing was much higher than that of POC-free specimens, which make them suitable for lightweight applications. To build the model, training, validating, and testing using experimental results from 144 specimens were conducted. The used data in the ANFIS models are arranged in a format of six input parameters that cover the quantity of fine POC particles, the quantity of coarse POC particles, the quantity of FA + RHBA mixture, the ratio of alkali activator to ashes mixture, the age of curing, and the test trial number. According to these input parameters, the water absorption of each specimen was predicted. The training, validating, and testing results in the ANFIS models showed a strong potential for predicting the water absorption of the geopolymer specimens.
机译:在目前的工作中,已经对由粉煤灰和稻壳-树皮灰以及棕榈油熟料(POC)聚集体生产的轻质地质聚合物的吸水率进行了实验研究,并通过基于自适应网络的模糊推理系统(ANFIS)进行了建模。由粉煤灰和稻壳-树皮灰的混合物制成的不同标本,有或没有POC,分别在固化的第2、7和28天进行吸水率测试。将标本在80°C下烘箱固化36小时,然后在室温下固化直至2、7和28天。结果表明,大量的POC颗粒可提高固化初期的吸水率。此外,在所有固化年龄下,含POC的样品的“吸水率”与“重量”之比远高于不含POC的样品,这使其适用于轻量化应用。为了建立模型,使用144个样本的实验结果进行了训练,验证和测试。 ANFIS模型中使用的数据以六个输入参数的格式排列,涵盖了细POC颗粒的数量,粗POC颗粒的数量,FA + RHBA混合物的数量,碱活化剂与灰烬混合物的比例,固化年龄,以及测试的试验编号。根据这些输入参数,可以预测每个样品的吸水率。 ANFIS模型中的训练,验证和测试结果显示了预测地质聚合物标本吸水率的强大潜力。

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