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BP Neural Network of Continuous Casting Technological Parameters and Secondary Dendrite Arm Spacing of Spring Steel

JIANG Li-hong , WANG Ai-guo , TIAN Nai-yuan , ZHANG Wei-cun4 , FAN Qiao-li4

钢铁研究学报(英文版)

The continuous casting technological parameters have a great influence on the secondary dendrite arm spacing of the slab, which determines the segregation behavior of materials. Therefore, the identification of technological parameters of continuous casting process directly impacts the property of slab. The relationships between continuous casting technological parameters and cooling rate of slab for spring steel were built using BP neural network model, based on which, the relevant secondary dendrite arm spacing was calculated. The simulation calculation was also carried out using the industrial data. The simulation results show that compared with that of the traditional method, the absolute error of calculation result obtained with BP neural network model reduced from 0.015 to 0.0005, and the relative error reduced from 6.76% to 0.22%. BP neural network model had a more precise accuracy in the optimization of continuous casting technological parameters.

关键词: continuous casting , technological parameter , secondary dendrite arm spacing , BP neural network

Optimization Study of Calcium Leaching From Steelmaking Slag

XU An-jun , ZHANG Hui-ning , YANG Yi , CUI Jian , HE Dong-feng , TIAN Nai-yuan

钢铁研究学报(英文版)

Abstract: In order to study calcium leaching behavior for the steelmaking slag, factors that influence the leaching yield have been optimized. The results show that granularity of the slag, liquid to solid ratio (in short for L/S), temperature and reaction time have a significant effect on the leaching yield. The optimal conditions for leaching are determined as follows: 1) the granularity at 75 μm, L/S at 100, temperature at 60 ℃; 2) the granularity at 75 μm, L/S at 50, temperature at 40 ℃. Finally, the optimal leaching yield under these conditions is about 15%.

关键词: Key words: steelmaking slag , leaching yield , calcium content

Prediction of Endpoint Phosphorus Content of Molten Steel in BOF Using Weighted K-Means and GMDH Neural Network

WANG Hong-bing , XU An-jun , AI Li-xiang , TIAN Nai-yuan

钢铁研究学报(英文版)

The hybrid method composed of clustering and predicting stages is proposed to predict the endpoint phosphorus content of molten steel in BOF (Basic Oxygen Furnace). At the clustering stage, the weighted K-means is performed to generate some clusters with homogeneous data. The weights of factors influencing the target are calculated using EWM (Entropy Weight Method). At the predicting stage, one GMDH (Group Method of Data Handling) polynomial neural network is built for each cluster. And the predictive results from all the GMDH polynomial neural networks are integrated into a whole to be the result for the hybrid method. The hybrid method, GMDH polynomial neural network and BP neural network are employed for a comparison. The results show that the proposed hybrid method is effective in predicting the endpoint phosphorus content of molten steel in BOF. Furthermore, the hybrid method outperforms BP neural network and GMDH polynomial neural network.

关键词: basic oxygen furnace , endpoint phosphorus content , K-means , neural network , GMDH

Establishment of Neural Network Prediction Model for Terminative Temperature Based on Grey Theory in Hot Metal Pretreatment

ZHANG Hui-ning , XU An-jun , CUI Jian , HE Dong-feng , TIAN Nai-yuan

钢铁研究学报(英文版)

In order to improve the accuracy of model for terminative temperature in steelmaking, it is necessary to predict and control before decarburization. Thus, an optimization neural network model of terminative temperature in the process of dephosphorization by laying correlative degree weights to all input factors related was used. Then simulation experiment of model newly established is conducted utilizing 210 data from a domestic steel plant. The results show that hit rate arrives at 5645% when error is within plus or minus 5%, and the value is 100% when within ±10%. Comparing to the traditional neural network prediction model, the accuracy almost increases by 6839%.Thus, the simulation prediction fits the real perfectly, which accounts for that neural network model for terminative temperature based on grey theory can reflect accurately the practice in dephosphorization. Naturally, this method is effective and practicable.

关键词: grey theory , correlation degree , dephosphorization , terminative temperature , neural network model

Steel Temperature Compensating Model With Multi-Factor Coupling Based on Ladle Thermal State

WU Peng-fei , XU An-jun , TIAN Nai-yuan , HE Dong-feng

钢铁研究学报(英文版)

Combined with the parameters of the production process of a steel factory, numerical simulations for a new ladle from preheating to turnover are conducted using the finite element analysis system software (ANSYS). The measured data proved that the simulated results are reliable. The effects of preheating time, thermal cycling times, and empty package time on steel temperature are calculated, an ideal preheating time is provided, besides, based on the analysis of a single factor and use the nonlinear analysis method, a steel temperature compensating model with diversified coupling factors is proposed, with the largest error of the present coupling model at 1462 ℃, and the errors between actual and target steel temperature in tundish after the model is applied to practical production are basically controlled within ±6 ℃, which can meet the accuracy of the manufacturer and has a practical guiding significance for the production in steelmaking workshops.

关键词: ladle , thermal state , multiple-factor coupling , numerical simulation , compensation model

大尺寸NaI(Tl)晶体的热锻及封装

王向阳 , 李薇 , 李瑞龙 , 池伟 , 郑祖斌

人工晶体学报 doi:10.3969/j.issn.1000-985X.2001.03.016

本文在讨论了NaI(Tl)晶体热锻及封装机理和工艺的基础上,对大尺寸NaI(Tl)晶体的热锻及封装的工艺作了详细地研究,并成功地制备了各项性能指标优良的大尺寸NaI(Tl)晶体闪烁探测器.

关键词: NaI(Tl)晶体 , 热锻 , 封装

NaI(Tl)探测器对23.8 MeVγ射线的效率刻度方法

苏晓斌 , 刘洋 , 侯龙 , 王朝辉 , 王琦

原子核物理评论 doi:10.11804/NuclPhysRev.32.04.440

低能D(d,γ)4 He辐射俘获反应截面的研究在聚变领域和天体物理等领域中起到非常重要的作用。由于受到标准γ源能量的制约,在研究D(d,γ)4 He反应产生的23.8 MeV高能γ射线产额实验过程中不能用标准源进行效率刻度。采用实验测量与计算相结合的方法实现NaI(Tl)探测器对23.8 MeV γ射线的效率刻度是比较成熟可靠的。针对高能γ射线的产额低、本底大的情况,实验采用一个大型NaI(Tl)反康谱仪进行测量,以提高探测效率。NaI(Tl)探测器的效率,独特地采用了包括全能峰、单逃逸峰和双逃逸峰在内的效率来计算,经MCNP-4C程序模拟计算,结合实验测量的19 F(p,αγ)16 O反应产生的6.13 MeV γ射线探测效率推算出该NaI(Tl)探测器在23.8 MeV的效率为(2.23±0.34)‰。该方法对研究高能γ射线效率刻度具有重要的参考价值。

关键词: NaI(Tl)探测器 , 能量 , γ射线 , 效率刻度 , MCNP-4C

Al-NaI放射性嬗变靶材的制备及其水化学稳定性

刘慧强 , 凤仪 , 张学斌 , 李斌 , 余东波 , 朱艳芳 , 刘晓燕

材料热处理学报

采用通孔泡沫铝作基体的"包壳密封法"制备高含量NaI的Al-NaI放射性嬗变靶材。分别在20、50和80℃的蒸馏水中对未烧结和烧结过的Al-NaI放射性嬗变靶材进行水化学稳定性试验。用AAS-800原子吸收光谱仪对浸出时间分别为24、48、72和96 h的浸出溶液进行浓度测量,从而计算出不同条件下各种嬗变靶材在蒸馏水中的浸出率。结果表明,烧结后的靶材浸出率不会超过10%,远远低于未烧结的靶材,满足NaI嬗变率测量的实验要求。

关键词: 泡沫铝 , Al-NaI靶材 , 水化学稳定性 , 浸出率

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