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栗山 靖敏*; 岩下 芳久*; 不破 康裕; 頓宮 拓*; 早野 仁司*; Geng, R. L.*
Journal of Instrumentation (Internet), 19(9), p.P09037_1 - P09037_15, 2024/09
被引用回数:0 パーセンタイル:0.00(Instruments & Instrumentation)Electrons emitted via field emission during superconducting (SC) radio-frequency (RF) cavity tests at vertical test stands often collide with the iris region inside the cavity, generating X-rays at these locations. In 1.3GHz 9-cell SC RF cavities designed for the International Linear Collider (ILC), stiffener rings located outside the iris region between cells can interfere with X-ray detection, complicating the precise identification of field emission sites. Hence, we developed a high-density strip X-ray mapping systems (sX-map) that can be inserted into the iris region of ILC-type 9-cell SC RF cavities. This sX-map facilitates efficient and accurate detection of X-rays generated near the irises, unaffected by the presence of stiffener rings. The sX-map consisted of 32 sensors per strip, with sensors spaced approximately 10 mm apart. It was deployed in every iris of the 9-cell cavity, using a total of 320 sensors. A multiplexer was employed to facilitate the readout of a large number of detectors using a minimal number of signal lines, connecting the strips inside within the vertical test cryostat. In a vertical test conducted at Jefferson Lab (JLab), we demonstrated the capability of sX-map to detect X-rays despite the presence of a stiffener ring. This paper presents the detailed design of the sX-map and the results from the vertical test at JLab.
不破 康裕; 岩下 芳久*; 栗山 靖敏*; 頓宮 拓*; 早野 仁司*; Geng, R. L.*
Proceedings of 20th International Conference on RF Superconductivity (SRF 2021) (Internet), p.323 - 325, 2022/05
超伝導空洞の性能評価のため、空洞温度、電解放出X線、捕獲磁束の分布を高い位置分解能で測定するマッピングシステムを開発している。高い位置分解能を有するシステムを構築するには数多くのセンサーが必要であるが、センサーの個数が増加するとそれに伴い配線の量も増加するため低温用器内の配線が複雑さが増すことや配線を通じた熱侵入も大きくなるなど効率的な実験を妨げる要因となる。そこで本研究では、空洞試験を行う低温用器内でセンサーと同一基板上に読み出し信号をスキャンするマルチプレクサーを設置した効率的なマッピングシステムを開発している。本発表では開発中のマッピングシステムの概要と試験結果を報告する。