Using LSTM and PSO techniques for predicting moisture content of poplar fibers by Impulse-cyclone Drying
Impulse-cyclone drying (ICD) is a new type of pretreatment method to remove the excess moisture of wood fibers (WFs) with high speed and low energy consumption. However, the process parameters are often determined by the experience of the process operators, thus the quality of WF drying lacks an obj...
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| Published in | PloS one Vol. 17; no. 4; p. e0266186 |
|---|---|
| Main Authors | , , , |
| Format | Journal Article |
| Language | English |
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United States
Public Library of Science
11.04.2022
Public Library of Science (PLoS) |
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| Online Access | Get full text |
| ISSN | 1932-6203 1932-6203 |
| DOI | 10.1371/journal.pone.0266186 |
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| Abstract | Impulse-cyclone drying (ICD) is a new type of pretreatment method to remove the excess moisture of wood fibers (WFs) with high speed and low energy consumption. However, the process parameters are often determined by the experience of the process operators, thus the quality of WF drying lacks an objective basis and cannot be ensured. To address this issue, this study adopted the long short-term memory (LSTM) neural network, backpropagation neural network, and Central-Composite response surface method to establish a moisture content (MC) prediction model and a process parameter optimization model based on single-factor experiments. The initial MC, inlet air temperature, feed rate, and inlet air velocity were taken as the experimental factors, and the final MC was taken as the inspection index. The parameters of LSTM were optimized by particle swarm optimization (PSO) algorithm, and the predicted value of MC was fitted to the model. The PSO-optimized LSTM had higher prediction accuracy than did the typical prediction models. The optimal process for the targeted MC, which was obtained by PSO, was featured with an initial MC of 10.3%, inlet air temperature of 242°C, feed rate of 90 kg/h, and inlet air velocity of 8 m/s. PSO-LSTM could be a new approach for predicting the MC of WFs, which, in turn, could provide a theoretical basis for the application of ICD technology in the biomass composite industry. |
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| AbstractList | Impulse-cyclone drying (ICD) is a new type of pretreatment method to remove the excess moisture of wood fibers (WFs) with high speed and low energy consumption. However, the process parameters are often determined by the experience of the process operators, thus the quality of WF drying lacks an objective basis and cannot be ensured. To address this issue, this study adopted the long short-term memory (LSTM) neural network, backpropagation neural network, and Central-Composite response surface method to establish a moisture content (MC) prediction model and a process parameter optimization model based on single-factor experiments. The initial MC, inlet air temperature, feed rate, and inlet air velocity were taken as the experimental factors, and the final MC was taken as the inspection index. The parameters of LSTM were optimized by particle swarm optimization (PSO) algorithm, and the predicted value of MC was fitted to the model. The PSO-optimized LSTM had higher prediction accuracy than did the typical prediction models. The optimal process for the targeted MC, which was obtained by PSO, was featured with an initial MC of 10.3%, inlet air temperature of 242°C, feed rate of 90 kg/h, and inlet air velocity of 8 m/s. PSO-LSTM could be a new approach for predicting the MC of WFs, which, in turn, could provide a theoretical basis for the application of ICD technology in the biomass composite industry.Impulse-cyclone drying (ICD) is a new type of pretreatment method to remove the excess moisture of wood fibers (WFs) with high speed and low energy consumption. However, the process parameters are often determined by the experience of the process operators, thus the quality of WF drying lacks an objective basis and cannot be ensured. To address this issue, this study adopted the long short-term memory (LSTM) neural network, backpropagation neural network, and Central-Composite response surface method to establish a moisture content (MC) prediction model and a process parameter optimization model based on single-factor experiments. The initial MC, inlet air temperature, feed rate, and inlet air velocity were taken as the experimental factors, and the final MC was taken as the inspection index. The parameters of LSTM were optimized by particle swarm optimization (PSO) algorithm, and the predicted value of MC was fitted to the model. The PSO-optimized LSTM had higher prediction accuracy than did the typical prediction models. The optimal process for the targeted MC, which was obtained by PSO, was featured with an initial MC of 10.3%, inlet air temperature of 242°C, feed rate of 90 kg/h, and inlet air velocity of 8 m/s. PSO-LSTM could be a new approach for predicting the MC of WFs, which, in turn, could provide a theoretical basis for the application of ICD technology in the biomass composite industry. Impulse-cyclone drying (ICD) is a new type of pretreatment method to remove the excess moisture of wood fibers (WFs) with high speed and low energy consumption. However, the process parameters are often determined by the experience of the process operators, thus the quality of WF drying lacks an objective basis and cannot be ensured. To address this issue, this study adopted the long short-term memory (LSTM) neural network, backpropagation neural network, and Central-Composite response surface method to establish a moisture content (MC) prediction model and a process parameter optimization model based on single-factor experiments. The initial MC, inlet air temperature, feed rate, and inlet air velocity were taken as the experimental factors, and the final MC was taken as the inspection index. The parameters of LSTM were optimized by particle swarm optimization (PSO) algorithm, and the predicted value of MC was fitted to the model. The PSO-optimized LSTM had higher prediction accuracy than did the typical prediction models. The optimal process for the targeted MC, which was obtained by PSO, was featured with an initial MC of 10.3%, inlet air temperature of 242°C, feed rate of 90 kg/h, and inlet air velocity of 8 m/s. PSO-LSTM could be a new approach for predicting the MC of WFs, which, in turn, could provide a theoretical basis for the application of ICD technology in the biomass composite industry. |
| Audience | Academic |
| Author | Chen, Feng Xu, Jing Xia, Xinghua Gao, Xun |
| AuthorAffiliation | 1 School of Art and Design, Taizhou University, Taizhou, Zhejiang, China 3 College of Material Science and Engineering, Northeast Forestry University, Harbin, Heilongjiang, China Vellore Institute of Technology: VIT University, INDIA 2 College of Civil Engineering, Hunan University, Changsha, Hunan, China |
| AuthorAffiliation_xml | – name: 2 College of Civil Engineering, Hunan University, Changsha, Hunan, China – name: Vellore Institute of Technology: VIT University, INDIA – name: 1 School of Art and Design, Taizhou University, Taizhou, Zhejiang, China – name: 3 College of Material Science and Engineering, Northeast Forestry University, Harbin, Heilongjiang, China |
| Author_xml | – sequence: 1 givenname: Feng orcidid: 0000-0002-9288-5015 surname: Chen fullname: Chen, Feng – sequence: 2 givenname: Xun surname: Gao fullname: Gao, Xun – sequence: 3 givenname: Xinghua surname: Xia fullname: Xia, Xinghua – sequence: 4 givenname: Jing surname: Xu fullname: Xu, Jing |
| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/35404968$$D View this record in MEDLINE/PubMed |
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| Copyright | COPYRIGHT 2022 Public Library of Science 2022 Chen et al. This is an open access article distributed under the terms of the Creative Commons Attribution License: http://creativecommons.org/licenses/by/4.0/ (the “License”), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. 2022 Chen et al 2022 Chen et al |
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| SubjectTerms | Accuracy Air temperature Algorithms Back propagation Back propagation networks Biology and Life Sciences Computer and Information Sciences Cyclones Cyclonic Storms Desiccation Drying Energy consumption Engineering and Technology Feed rate Fibers Hardwoods Inlets Inspection Long short-term memory Modelling Moisture content Moisture effects Morphology Neural networks Neural Networks, Computer Optimization Optimization models Particle swarm optimization Physical Sciences Poplar Prediction models Process parameters Regression analysis Research and Analysis Methods Response surface methodology Support vector machines Swarm intelligence Temperature Velocity Water content Wood fibers |
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| Title | Using LSTM and PSO techniques for predicting moisture content of poplar fibers by Impulse-cyclone Drying |
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