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将光纤布拉格光栅温度传感器集成到WEST托卡马克的面向等离子体部件中。

Integration of fiber Bragg grating temperature sensors in plasma facing components of the WEST tokamak.

作者信息

Corre Y, Laffont G, Pocheau C, Cotillard R, Gaspar J, Roussel N, Firdaouss M, Gardarein J-L, Guilhem D, Missirlian M

机构信息

CEA, IRFM, F-13108 Saint-Paul-lez-Durance, France.

CEA, LIST, Gif-sur-Yvette Cedex 91191, France.

出版信息

Rev Sci Instrum. 2018 Jun;89(6):063508. doi: 10.1063/1.5024514.

DOI:10.1063/1.5024514
PMID:29960581
Abstract

Plasma Facing Components (PFC) temperature measurement is mandatory to ensure safe high power and long pulse tokamak operation. IR thermography systems which are widely used in magnetic fusions devices become challenged with the choice of tungsten as a PFC material in the ITER tokamak, mainly due to emissivity uncertainties and reflection issues in a hot environment. Embedded temperature measurements are foreseen to cross-check the IR thermography measurements. Fiber Bragg grating sensors are potentially of great interest for this application because they are immune to electromagnetic interference and allow the measurement of a large number of temperature spots on a single fiber. Four optical fiber temperature sensing probes, each of them including 11 regenerated fiber Bragg gratings equally spaced by 12.5 mm (equivalent to one ITER-like tungsten monoblock), have been specifically designed and manufactured for the WEST project (W-tungsten Environment and Steady State Tokamak). The four probes are embedded in W-coated graphite components at two different distances from the surface, 3.5 mm and 7 mm, to cover a wide range of temperatures up to 900 °C. This paper addresses the design and integration issues and the qualification and performance assessment performed in the laboratory. It also shows the first measurements of this new diagnostic achieved in a tokamak environment during baking of the machine and during early diverted plasma exposure.

摘要

面对等离子体部件(PFC)的温度测量对于确保托卡马克高功率和长脉冲安全运行至关重要。广泛应用于磁聚变装置的红外热成像系统,在国际热核聚变实验堆(ITER)托卡马克中选择钨作为面对等离子体部件材料时面临挑战,主要是由于在高温环境下发射率的不确定性和反射问题。预计采用嵌入式温度测量来交叉检验红外热成像测量结果。光纤布拉格光栅传感器因其不受电磁干扰且能在单根光纤上测量大量温度点,在该应用中具有潜在的重大意义。为WEST项目(钨环境与稳态托卡马克)专门设计并制造了四个光纤温度传感探头,每个探头包含11个再生光纤布拉格光栅,它们等间距分布,间距为12.5毫米(相当于一个类似ITER的钨单块)。这四个探头被嵌入涂有钨的石墨部件中,距表面的距离分别为3.5毫米和7毫米,以覆盖高达900℃的广泛温度范围。本文讨论了设计与集成问题以及在实验室中进行的鉴定和性能评估。它还展示了在该机器烘烤期间和早期偏滤器等离子体暴露期间,在托卡马克环境中首次实现的这种新诊断测量结果。

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