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首页> 外文期刊>Journal of Applied Research and Technology >A new methodology to optimize operation cycles in a BWR using heuristic techniques
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A new methodology to optimize operation cycles in a BWR using heuristic techniques

机译:一种使用启发式技术优化BWR中的操作周期的新方法

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摘要

A new system to optimize fuel assembly design, fuel reload design and control rod patterns design is shown. Fuel assembly optimization is made in two steps. In the first one, a recurrent neural network for the fuel lattice design of the bottom of the fuel assembly is used. In the second one, the top of the fuel assembly is built adding gadolinia to bottom fuel lattice. Fuel reload is optimized by another recurrent neural network whereas the control rod patterns are optimized by an ant colony method. This new system starts building a fresh fuel batch. Later, a seed fuel reload is optimized according to a Haling calculation. Afterwards an iterative process is started: firstly, control rod patterns through the cycle are optimized, once that a new fuel reload with previously optimized control rod patterns is found. If thermal limits cannot be satisfied in this iterative process after several iterations, a new seed fuel reload is designed. If cold shutdown margin cannot be fulfilled, then gadolonia concentration is increased into the fuel assembly. Finally, if energy requirements cannot be fulfilled, then the uranium enrichment of the fuel lattice of the bottom fuel assembly is increased. Results of this new system are successful: thermal limits and cold shutdown margin are fulfilled, and energy requirements are reached.
机译:显示了用于优化燃料组件设计,燃料重载设计和控制杆模式设计的新系统。燃料组件的优化分两个步骤进行。在第一个中,使用循环神经网络进行燃料组件底部的燃料晶格设计。在第二个中,构建了燃料组件的顶部,在其底部的燃料格中添加了氧化ado。通过另一个递归神经网络对燃料的重载进行优化,而通过蚁群方法对控制杆的模式进行优化。这个新系统开始制造新的燃料批次。之后,根据Haling计算优化种子燃料的重载。之后,开始一个迭代过程:首先,一旦发现具有先前优化的控制杆图样的新燃油重载,就优化整个循环的控制杆图样。如果在几次迭代后此迭代过程中不能满足热极限,则设计新的种子燃料重新加载。如果无法满足冷停机裕度,则将加多罗尼亚浓度增加到燃料组件中。最后,如果无法满足能源需求,那么底部燃料组件的燃料晶格中的铀浓缩会增加。这个新系统的结果是成功的:满足了热限制和冷关断裕度,并且达到了能源需求。

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