杜武青,刘颖慧,赵晴,王莹,马达兵.聚酯玻璃钢大气老化力学性能BP人工神经网络预报模型的建立[J].装备环境工程,2017,14(5):97-101. DU Wu-qing,LIU Ying-hui,ZHAO Qing,WANG Ying,MA Da-bing.Establishment of Prediction Model for GFRP?s Mechanical Property in Atmosphere Aging Based on BP Neural Network[J].Equipment Environmental Engineering,2017,14(5):97-101.
聚酯玻璃钢大气老化力学性能BP人工神经网络预报模型的建立
Establishment of Prediction Model for GFRP?s Mechanical Property in Atmosphere Aging Based on BP Neural Network
投稿时间:2016-12-01  修订日期:2017-05-15
DOI:10.7643/ issn.1672-9242.2017.04.021
中文关键词:  不饱和聚酯玻璃钢  大气老化  人工神经网络
英文关键词:unsaturated fiberglass reinforced plastic  atmospheric aging  artificial neural network
基金项目:国家自然科学基金重点项目(50533060)
作者单位
杜武青 北京理工大学珠海学院 材料与环境学院,广东 珠海 519085 
刘颖慧 北京理工大学珠海学院 材料与环境学院,广东 珠海 519085 
赵晴 南昌航空大学 材料科学与工程学院,南昌 330063 
王莹 北京理工大学珠海学院 材料与环境学院,广东 珠海 519085 
马达兵 中国人民解放军91515部队,海南 三亚 572016 
AuthorInstitution
DU Wu-qing Department of Materials and Environment, ZHBIT, Zhuhai 519085, China 
LIU Ying-hui Department of Materials and Environment, ZHBIT, Zhuhai 519085, China 
ZHAO Qing Department of Material Science and Engineering, Nanchang HangKong University, Nanchang 330063, China 
WANG Ying Department of Materials and Environment, ZHBIT, Zhuhai 519085, China 
MA Da-bing Troops 91515 of PLA, Sanya 572016, China 
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中文摘要:
      目的 准确地分析并建立起一个老化模型,探究不饱和聚酯玻璃钢在大气环境中的条件与老化性能的变化联系。方法 在气象数据的基础上分别分析不饱和聚酯玻璃钢在不同季节不同大气环境下各种力学性能的变化,利用数学建模的人工智能方法-BP神经网络进行建模。结果 实际值与预测值有很好的一致性,模型精确度也较高。结论 此预报模型可比较精确地评价不饱和聚酯玻璃钢在大气中的老化行为。
英文摘要:
      Objective To analyze accurately and establish an aging model to explore conditions of fiberglass reinforced plastic in atmospheric environment and relations in change of its aging properties. Methods Changes of fiberglass reinforced plastic’s mechanical properties in different atmospheric environments of different seasons were analyzed based on the meteorological data and a model was established with artificial intelligence method-BP neural network of mathematical modeling. Results The actual value and predicted values were in good agreement and the model accuracy was high. Conclusion The prediction model can evaluate aging behaviors of unsaturated fiberglass reinforced plastic in the atmosphere accurately.
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