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Evaluation of Aluminum-Boron Carbide Neutron Absorbing Materials for Interim Storage of Used Nuclear Fuel

机译:铝 - 硼碳化铝 - 硼中子吸收材料用于临时储存核燃料

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摘要

The objective of this work was to understand the long-term corrosion behavior of Boral® and Bortec® neutron absorbers during deployment in a used nuclear fuel dry cask storage environment for several hundred years. Corrosion effects were accelerated by flowing humidified argon through an autoclave at temperatures between 300 and 570°C. Humidity levels ranged from 0.028 to 0.58 mass fraction with flow rates ranging from approximately 0.2 scfh to 1.5 scfh. Results from corrosion testing at temperatures between 300 and 570°C with varying humidity have shown that both Boral® and Bortec® develop new aluminum-boron-carbon phases. The phases formed are consistent at 300 and 400°C. Different formations were observed at 570°C. The samples also showed boron depletion at all temperatures.It is predicted that two mechanisms control the changes in Boral® and Bortec®. The phase changes observed result from the interaction of boron carbide with aluminum. These interactions result in boron and carbon diffusing into the aluminum matrix. The other series of interactions occurring between the sample and the water in the humidified argon. Boron on the surface rapidly reacts with the water to form B2O3 which can be volatilized. The loss of boron at the surface creates a concentration profile that can result in the continued diffusion of boron to the surface. The water will also react with the aluminum to form Al2O3. Aluminum oxide formed in humid conditions has some porosity and can degrade away and allow for continued oxidation of aluminum. Additional research is required to determine the suitability of these materials for use in dry cask storage. The new phase formation may affect mechanical properties and adversely affect the fuel baskets structural integrity. Boron redistribution may cause localized areas of boron depletion, additional testing needs to be conducted to determine boron diffusion in these materials in the absence of humidity. In the presence of humidity the boron will leach from the samples. Cask humidity levels need to be determined to be able to predict how much boron may be lost.
机译:这项工作的目的是了解博尔尔®和Bortec®中子吸收剂在使用核燃料干燥桶储存环境中的长期腐蚀行为,达到数百年。通过在300至570℃的温度下通过高压釜流过潮湿的氩气来加速腐蚀效应。湿度水平范围为0.028至0.58质量级分,流量速率范围为约0.2 scfh至1.5 scfh。从在300和570℃具有不同湿度之间的温度下腐蚀试验结果表明,这两种Boral®和Bortec®开发新的铝 - 硼 - 碳相。形成的相在300和400℃下是一致的。在570℃下观察到不同的形成。样品还在所有温度下显示硼耗尽。预测,两个机制控制了Boral®和Bortec®的变化。相变从硼碳化物与铝的相互作用中观察到导致的结果。这些相互作用导致硼和碳扩散到铝基中。样品和潮湿氩气中的样品和水之间发生的其他系列相互作用。表面上的硼快速反应水以形成可以挥发的B2O3。在表面处的硼损失产生浓度曲线,这可能导致硼的持续扩散到表面。水也将与铝反应形成Al 2 O 3。在潮湿的条件下形成的氧化铝具有一些孔隙率并且可以降解并允许铝的继续氧化。需要额外的研究来确定这些材料用于干燥桶储存的适用性。新的相形成可能影响机械性能并对燃料筐结构完整性产生不利影响。硼再分配可能导致硼耗尽的局部区域,需要进行额外的测试以在没有湿度的情况下确定这些材料中的硼扩散。在湿度存在下,硼将从样品中浸出。 Cask湿度水平需要确定能够预测硼可能丢失了多少。

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