Development and test of a real-size MRPC for CBM-TOF

23 Feb 2016, 14:00
20m
pand

pand

Onderbergen 1, 9000 Gent

Speaker

Prof. Yi WANG (Tsinghua University)

Description

In the CBM (Compressed Baryonic Matter) experiment constructed at the Facility for Anti-proton and Ion Research (Fair) at GSI, Darmstadt, Germany, MRPC(Multi-gap Resistive Plate Chamber) is adopted to construct the large TOF (Time-of-Flight) system to achieve an unprecedented precision of hadron identification, benefiting from its good time resolution, relatively high efficiency and low building price. According to the particle flux rate distribution, the whole CBM-TOF wall is divided into four rate regions named Region D, C, B and A (from inner to outer). Aiming at the Region C and B where the rate ranges from 3.5 to 8.0 kHz/cm2, we’ve developed a kind of double-ended readout strip MRPC. It uses low resistive glass to keep good performance of time resolution under high-rate condition. The differential double stack structure of 2x4 gas gaps help to reduce the required high voltage to half. There are 24 strips on one counter, and each is 270mm long, 7mm wide and the interval is 3mm. Ground is placed onto the MRPC’s electrode and feed through is carefully designed to match the 100Ω impedance of PADI electronics. The prototype of this strip MRPC has been tested with cosmic ray, a 98% efficiency and 60ps time resolution is gotten. In order to further examine the performance of the detector working under higher particle flux rate, the prototype has been tested in the 2014 October GSI beam time and 2015 February CERN beam time. In both beam times a relatively high rate of 1 kHz/cm2 was obtained. The calibration is done with CBM ROOT. A couple of corrections has been considered in the calibration and analysis process (including time-walk correction, gain correction, strip alignment correction and velocity correction) to access actual counter performances such as efficiency and time resolution. An efficiency of 97% and time resolution of 48ps are obtained. All these results show that the real-size prototype is fully capable of the requirement of the CBM-TOF, and new designs such as self-sealing are modified into the strip counter prototype to obtain even better performance. Presentation type: oral

Primary author

Prof. Yi WANG (Tsinghua University)

Co-authors

Bo XIE (Tsinghua University) Mr Christian SIMON (University Heidelberg) Dong HAN (Tsinghua University) Dr Frühau JOCHEN (GSI) Dr Ingo DEPPNER (University heidelberg) Dr M.Laden KIŠ (GSI) Norbert HERRMANN (University Heidelberg) Mr Pengfei LYU (Tsinghua University) Dr Philipp WEIDENKAFF (University Heidelberg) Dr Pierre-Alain LOIZEAU (University Heidelberg) Xinjie HUANG (Tsinghua University) Prof. Yuanjing LI (Tsinghua University)

Presentation materials