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空压机排气量测量结果的不确定度分析 被引量:3
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作者 温彩霞 《压缩机技术》 2012年第3期46-48,共3页
通过对影响空气压缩机排气量测量结果的各个要素及误差组成的综合分析,提出了提高测量结果准确度的方法,总结出采用电测传感器和计算机数据采集技术的排气量测量装置的不确定度及测试设备的精度。
关键词 空压机 排气量测量 误差 不确定度
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采用涡街流量计法测量压缩机排气量 被引量:1
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作者 陈向东 喻志强 郑家强 《液压气动与密封》 2014年第12期47-49,共3页
分析了国内外常用的测量气体压缩机流量测试方法的优缺点,介绍了涡街流量计的工作原理。并与最常用的ASME喷嘴测试方法进行了实际测量比较。最后得出结论,涡街流量计可以作为测量压缩机排气量有效手段。
关键词 压缩机 排气量测量 涡街流量计
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Dynamic prediction of gas emission based on wavelet neural network toolbox 被引量:4
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作者 Yu-Min PAN Yong-Hong DENG Quan-Zhu ZHANG Peng-Qian XUE 《Journal of Coal Science & Engineering(China)》 2013年第2期174-181,共8页
This paper presents a method for dynamically predicting gas emission quantity based on the wavelet neural network (WNN) toolbox. Such a method is able to predict the gas emission quantity in adjacent subsequent time... This paper presents a method for dynamically predicting gas emission quantity based on the wavelet neural network (WNN) toolbox. Such a method is able to predict the gas emission quantity in adjacent subsequent time intervals through training the WNN with even time-interval samples. The method builds successive new model with the width of sliding window remaining invariable so as to obtain a dynamic prediction method for gas emission quantity. Furthermore, the method performs prediction by a self-developed WNN toolbox. Experiments indicate that such a model can overcome the deficiencies of the traditional static prediction model and can fully make use of the feature extraction capability of wavelet base function to reflect the geological feature of gas emission quantity dynamically. The method is characterized by simplicity, flexibility, small data scale, fast convergence rate and high prediction precision. In addition, the method is also characterized by certainty and repeatability of the predicted results. The effectiveness of this method is confirmed by simulation results. Therefore, this method will exert practical significance on promoting the application of WNN. 展开更多
关键词 dynamic prediction gas emission wavelet neural network TOOLBOX prediction model
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