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基于改進(jìn)BP神經(jīng)網(wǎng)絡(luò)的復(fù)合葉輪離心泵性能預(yù)測(cè)
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of Centrifugal Pumps with Compound Impeller Based on Improved BP Neural Network
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    摘要:

    應(yīng)用Matlab建立了復(fù)合葉輪離心泵效率和揚(yáng)程的BP神經(jīng)網(wǎng)絡(luò)預(yù)測(cè)模型,。選取73組試驗(yàn)結(jié)果作為樣本,采用Levenberg-Marquardt法則對(duì)構(gòu)建的網(wǎng)絡(luò)進(jìn)行訓(xùn)練,,并隨機(jī)選取12組訓(xùn)練樣本外的數(shù)據(jù)對(duì)訓(xùn)練好的網(wǎng)絡(luò)進(jìn)行測(cè)試,。試驗(yàn)的主要參數(shù)為流量Q, 葉片數(shù)z,,葉片出口安放角β2,,短葉片進(jìn)口直徑Di,葉片出口寬度b2,,效率η以及揚(yáng)程H,。其中選取Q,z,,β2,,Di,b2作為網(wǎng)絡(luò)的輸入層,,η和H作為輸出層,。預(yù)測(cè)結(jié)果的分析表明,預(yù)測(cè)值與試驗(yàn)值具有較好的一致性,,利用BP神經(jīng)網(wǎng)絡(luò)對(duì)復(fù)合葉輪離心泵性能進(jìn)行預(yù)測(cè)是可行的,,可用來(lái)作復(fù)合葉輪的輔助設(shè)計(jì),從而縮短試驗(yàn)時(shí)間,,降低成本,。

    Abstract:

    Based on Matlab, BP neural network model for efficiency and head of centrifugal pumps with compound impeller predicting was established. Seventy-three groups of experimental data were selected as samples for BP neural network training with Levenberg-Marquardt law. Then twelve experimental data extra was random selecting to test the trained BP neural network. The main parameters for experimentation are flow rate Q, the number of blade z, outlet angle of blade β2, inlet diameter of splitter blade Di, outlet width of impeller b2, efficiency η and head H. Select Q, z, β2, Di , b2 as input layer, η and H as output layer. The results show the predicted value favourably accorded with experiment. So it is possible to use BP neural network for predicting performance of centrifugal pumps with compound impeller. BP neural network can be applied to compound impeller designing, which can shorten experimental time and reduce cost.

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袁壽其,沈艷寧,張金鳳,袁建平.基于改進(jìn)BP神經(jīng)網(wǎng)絡(luò)的復(fù)合葉輪離心泵性能預(yù)測(cè)[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2009,40(9):77-80. of Centrifugal Pumps with Compound Impeller Based on Improved BP Neural Network[J]. Transactions of the Chinese Society for Agricultural Machinery,2009,40(9):77-80.

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