首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >First beam test of a liquid Cherenkov detector prototype for a future TOF measurements at the Super-FRS
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First beam test of a liquid Cherenkov detector prototype for a future TOF measurements at the Super-FRS

机译:液体Cherenkov检测器原型的首次光束测试,用于将来在Super-FRS进行TOF测量

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In order to separate and identify fragmentation products with the Super-Fragment Separator (SuperFRS) at FAIR a high resolving power detector system is required for position and Time-Of-Flight (TOF) measurements. The TOF detector is used to measure the velocity of the particles and hence, in conjunction with their momentum or energy, to determine their mass and hence their identity. Aiming to develop a system with a precision down to about 50 ps in time and resistant to a high radiation rate of relativistic heavy ions of up to 10~7 per spill (at the second focal plane), we have shown a conceptual design for a Cherenkov detector envisioned for the future TOF measurements employing Iodine Naphthalene (C_(10)H_7I) as a fluid radiator. The application of a liquid radiator allows the circulation of the active material and therefore to greatly reduce the effects of the degradation of the optical performance expected after exposure to the high ion rates at the Super-FRS. The prototype of a TOF-Cherenkov detector was designed, constructed and its key-properties have been investigated in measurements with heavy ions at CaveC at GSI. These measurements were performed with nickel ions at 300-1500 MeV/u and ion-beam intensities of up to 4 x 10~6 ions/spill of 8 s. As a first result a maximum detection efficiency of 70% and a timing resolution of 267 ps (σ) was achieved. We report the first attempt of time measurements with a Cherenkov detector based on a liquid radiator. Further optimization is required.
机译:为了在FAIR上使用超级碎片分离器(SuperFRS)分离和识别碎片产物,位置和飞行时间(TOF)测量需要高分辨率的检测器系统。 TOF检测器用于测量颗粒的速度,并因此与它们的动量或能量一起确定其质量,从而确定其身份。为了开发一种精度可低至约50 ps的系统,并能抵抗相对高的重离子高辐射速率(每次泄漏,在第二个聚焦平面上每次泄漏高达10〜7)(在第二焦平面上),我们展示了一种Cherenkov检测器设想用于将来使用碘萘(C_(10)H_7I)作为流体辐射器的TOF测量。液体散热器的应用使活性物质得以循环,因此大大降低了在Super-FRS暴露于高离子速率后预期的光学性能下降的影响。设计,构造了TOF-Cherenkov检测器的原型,并在GSI的CaveC的重离子测量中研究了其关键特性。这些测量是在镍离子为300-1500 MeV / u且离子束强度高达4 x 10〜6离子/溢出8 s的条件下进行的。作为第一个结果,实现了70%的最大检测效率和267 ps(σ)的定时分辨率。我们报告使用基于液体散热器的Cherenkov检测器进行时间测量的首次尝试。需要进一步优化。

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