数字工具的开发,使远程超声检查核聚变反应堆的容器内组件

R. Sanderson, A. Sanderson, K. Akowua, H. Livesey
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引用次数: 1

摘要

探讨了利用数字孪生体增强导波检测的管道检测新方法的可行性。导波检测在石油和天然气行业中已经得到了很好的应用,可以远程筛选长段直管的腐蚀情况。然而,复杂管道几何形状的检测仍然是一个挑战。核聚变设施就是这样一个潜在的应用。核聚变反应堆有一个由许多公里的服务管道组成的网络,这些管道具有复杂的特征,包括多个管道弯道。其中一些管道可用于主动冷却组件,如第一壁和分流器。引导超声波检测具有显著的优势,可以从远程测试位置100%覆盖数十米管道的管壁。这是一个非常吸引人的特点,特别是在核工业中,由于高辐射剂量和高温度,禁止人类在高风险地区存在是很重要的。在这项工作中,将有限元波传播模型作为核聚变反应堆组件的数字孪生体进行了研究。这些模型已被用于计算定制的激励信号,从而可以从远程位置对这些复杂的管道进行全面的体积检查。首次开发了一种数字孪生技术,预计可以成功地纠正由多个管道弯曲引起的导波信号畸变。预计该技术在探测能力上比传统导波检测提高一个数量级。因此,本文提出的数字孪生技术对未来核聚变电厂管道的检测显示出重要的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of digital tools to enable remote ultrasonic inspection of fusion ractor in-vessel components
The feasibility of a new approach for pipe inspection has been explored using digital twins to enhance guided wave inspection. Guided wave inspection is well established in the oil & gas industry to remotely screen long lengths of predominately straight pipeline for corrosion. However, the inspection of complex pipe geometries remains a challenge. Nuclear fusion facilities are one such potential application. Fusion reactors have a network of many kilometres of service pipes with complex features, including multiple pipe bends. Some of these pipes could be used for actively cooling components such as the first wall and divertor. Guided ultrasonic wave inspection has the significant advantage of offering 100% coverage of the pipe wall over tens of metres of pipe from a remote test location. This is a highly attractive feature, particularly in the nuclear industry where it is important that human presence in high-risk areas is prohibited due to high radiation doses and temperatures. In this work, finite element wave propagation models have been investigated as digital twins of fusion reactor components. The models have been used to calculate bespoke excitation signals that will allow for full volumetric inspections of these complex pipes to be carried out from a remote location. For the first time, a digital twin technique has been developed that is predicted to successfully correct the distortion in guided wave signals caused by multiple pipe bends. The technique is predicted to yield an order of magnitude improvement in detection capability over conventional guided wave inspection. The digital twin technique presented here therefore shows significant promise for the future inspection of nuclear fusion power plant pipes.
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