Ballistic deficit correction
Description
The EUROGAM data-acquisition has to handle a large number of events/s. Typical in-beam experiments using heavy-ion fusion reactions assume the production of about 50 000 compound nuclei per second deexciting via particle and γ-ray emissions. The very powerful γ-ray detection of EUROGAM is expected to produce high-fold event rates as large as 104 events/s. Such high count rates introduce, in a common dead time mode, large dead times for the whole system associated with the processing of the pulse, its digitization and its readout (from the preamplifier pulse up to the readout of the information). In order to minimize the dead time the shaping time constant τ, usually about 3 μs for large volume Ge detectors has to be reduced. Smaller shaping times, however, will adversely affect the energy resolution due to ballistic deficit. One possible solution is to operate the linear amplifier, with a somewhat smaller shaping time constant (in the present case we choose τ = 1.5 μs), in combination with a ballistic deficit compensator. The ballistic deficit can be corrected in different ways using a Gated Integrator, a hardware correction or even a software correction. In this paper we present a comparative study of the software and hardware corrections as well as gated integration
Availability note (English)
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23054470.pdf
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Additional details
Publishing Information
- Imprint Pagination
- 19 p.
- Report number
- CRN-EUR--1
INIS
- Country of Publication
- France
- Country of Input or Organization
- France
- INIS RN
- 23054470
- Subject category
- S46: INSTRUMENTATION RELATED TO NUCLEAR SCIENCE AND TECHNOLOGY;
- Descriptors DEI
- DEAD TIME; GATING CIRCUITS; GE SEMICONDUCTOR DETECTORS; HEAVY ION FUSION REACTIONS; MINIMIZATION
- Descriptors DEC
- ELECTRONIC CIRCUITS; HEAVY ION REACTIONS; MEASURING INSTRUMENTS; NUCLEAR REACTIONS; NUCLEOSYNTHESIS; OPTIMIZATION; RADIATION DETECTORS; SEMICONDUCTOR DETECTORS; SYNTHESIS; TIMING PROPERTIES