INDRA, A 4-PI CHARGED PRODUCT DETECTION ARRAY AT GANIL

被引:260
作者
POUTHAS, J
BORDERIE, B
DAYRAS, R
PLAGNOL, E
RIVET, MF
SAINTLAURENT, F
STECKMEYER, JC
AUGER, G
BACRI, CO
BARBEY, S
BARBIER, A
BENKIRANE, A
BENLLIURE, J
BERTHIER, B
BOUGAMONT, E
BOURGAULT, P
BOX, P
BZYL, R
CAHAN, B
CASSAGNOU, Y
CHARLET, D
CHARVET, JL
CHBIHI, A
CLERC, T
COPINET, N
CUSSOL, D
ENGRAND, M
GAUTIER, JM
HUGUET, Y
JOUNIAUX, O
LAVILLE, JL
LEBOTLAN, P
LECONTE, A
LEGRAIN, R
LELONG, P
LEGUAY, M
MARTINA, L
MAZUR, C
MOSRIN, P
OLIVIER, L
PASSERIEUX, JP
PIERRE, S
PIQUET, B
PLAIGE, E
POLLACCO, EC
RAINE, B
RICHARD, A
ROPERT, J
SPITAELS, C
STAB, L
机构
[1] INST PHYS NUCL LYON,IN2P3,CNRS,F-91406 ORSAY,FRANCE
[2] CE SACLAY,CEA,DAPNIA,F-91191 GIF SUR YVETTE,FRANCE
[3] ISMRA UNIV,PHYS CORPUSCULAIRE LAB,F-14050 CAEN,FRANCE
[4] LAB ACCELERATEUR LINEAIRE,IN2P3,CNRS,F-91405 ORSAY,FRANCE
关键词
D O I
10.1016/0168-9002(94)01543-0
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
INDRA, a new and innovative highly segmented detector for light charged particles and fragments is described. It covers geometrically 90% of the 4 pi solid angle and has very low detection thresholds. The detector, operated under vacuum, is axially symmetric and segmented in 336 independent cells allowing efficient detection of high multiplicity events. Nucleus identification down to very low energy threshold (approximate to 1 A MeV) is achieved by using ionization chambers operated with low pressure C3F8 gas. Residual energies are measured by a combination of silicon (300 mu m thick) and cesium iodide (5 to 14 cm in length) detectors. Very forward angles are covered by fast counting phoswich scintillators (NE102/NE115). Charge resolution up to Z = 50 is achieved on a large energy dynamic range (5000 to 1 for silicon detectors). Isotopic separation is obtained up to Z = 3. The treatment of the signals is performed through specifically designed and highly integrated modules, most of which are in the new VXIbus standard. Full remote control of parameter settings, including visualization of signals, is thus allowed. The detector is continuously monitored with a laser source and electronic pulsers and is found stable over several days. Energy calibration procedures, making use of specific detectors and the ability of the GANIL accelerator to deliver secondary beams, have been developed. First experiments were performed in the spring of 1993.
引用
收藏
页码:418 / 442
页数:25
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