摘要: |
用前向神经网络,对纯物质的蒸气压和汽化热与温度的函数关系进行预测。通过适当变量变换,在相同网络单元数情况下,大大提高预测精度。对387种物质的预测结果表明:在熔点到临界点的温度范围内,蒸气压的平均预测误差为0.084%,汽化热的平均预测误差为0.018%。 |
关键词: 神经网络 预测 蒸气压 汽化热 |
DOI: |
投稿时间:2000-08-17修订日期:2000-09-20 |
基金项目: |
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Prediction of Steam Pressure and Heat of Vaporization with Neural Network |
Wei Tengyou, Huang Ruihua
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(Industrial Testing Experiment Centre, Guangxi University, Nanning, 530004) |
Abstract: |
A feedforward neural network was used to predict functional relationship of temperature with steam pressure and heat of vaporization of the pure material.By varying suitably variables,a high degree of accuracy was received at the network of the same units. Predicted results based on 387 cases showed that the average estimated error of stream pressure and heat of vaporization were respectively 0.084% and 0.018% in the temperature ranging from the melting point to critical point. |
Key words: neural network estimation steam pressure heat of vaporization |