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인공신경망 입력 변수에 따른 송풍기 풍량 예측모델 개발 및 평가Development and Evaluation of Predictive Model for Fan Air Flow Rate According to Artificial Neural Network Input Variables

Other Titles
Development and Evaluation of Predictive Model for Fan Air Flow Rate According to Artificial Neural Network Input Variables
Authors
성남철최기봉최원창
Issue Date
Jun-2019
Publisher
한국건축친환경설비학회
Keywords
예측모델; 데이터기반 모델; 인공신경망; 공기조화기; 송풍기; 풍량; Predict model; Data-driven-model; Artificial Neural Network (ANN); Air Handling Unit (AHU); Fan; Air flow rate
Citation
한국건축친환경설비학회 논문집, v.13, no.3, pp.191 - 202
Journal Title
한국건축친환경설비학회 논문집
Volume
13
Number
3
Start Page
191
End Page
202
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/2399
ISSN
1976-6483
Abstract
A model for predicting the supply air flow rate in the fan, which plays a important role in HVAC system, is to be developed using artificial neural network. A predictive model has been developed to study with the Levenbarg-Marquardt algorithm through 8760 sets of one-hour resolution. The model of three cases was constructed according to the combination of the input variables constituting the input data of the neural network, and the accuracy of each case model was evaluated through statistical approach using Coefficient of Variation of Root Mean Square Error and the best performance model was determined. The input parameters includes flow rate, pressure, fan power consumption, outdoor air temperature, outdoor air humidity, supply air temperature and zone air temperature. The suggested model including seven input data shows the best performance. The results show that the developed model can provide results sufficiently accurate.
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