Comparative study of ion, x-ray and neutron emission in a low energy plasma focus
M Zakaullah, I Akhtar, A Waheed… - Plasma Sources …, 1998 - iopscience.iop.org
M Zakaullah, I Akhtar, A Waheed, K Alamgir, AZ Shah, G Murtaza
Plasma Sources Science and Technology, 1998•iopscience.iop.orgAbstract In a low energy (2.3 kJ) Mather-type deuterium plasma focus, neutron and x-ray
emission is investigated by time integrated and time resolved detectors. CR-39 nuclear track
ion detectors are employed for measuring charged particle angular distribution. Correlation
of charged particles with neutron and x-ray emission is also investigated. The neutron
emission profile is found to be composed of two pulses, the intensity and anisotropy of which
vary with the filling pressure. The charged particle flux is maximum with high fluence …
emission is investigated by time integrated and time resolved detectors. CR-39 nuclear track
ion detectors are employed for measuring charged particle angular distribution. Correlation
of charged particles with neutron and x-ray emission is also investigated. The neutron
emission profile is found to be composed of two pulses, the intensity and anisotropy of which
vary with the filling pressure. The charged particle flux is maximum with high fluence …
Abstract
In a low energy (2.3 kJ) Mather-type deuterium plasma focus, neutron and x-ray emission is investigated by time integrated and time resolved detectors. CR-39 nuclear track ion detectors are employed for measuring charged particle angular distribution. Correlation of charged particles with neutron and x-ray emission is also investigated. The neutron emission profile is found to be composed of two pulses, the intensity and anisotropy of which vary with the filling pressure. The charged particle flux is maximum with high fluence anisotropy for the pressure range 2.5-3.0 mbar which is also the optimum pressure for high neutron emission with low fluence anisotropy. The high neutron emission with low fluence anisotropy is attributed to the presence of trapped deuterons in an anomalous magnetic field. The relevant pressure range generates favourable conditions for plasma density and pinch filament diameter. X-ray emission is generally high at low pressure. For the pressure range of 2.5-4.0 mbar, the axial neutron detector registers a hard x-ray pulse, which may escape through a half inch thick Cu flange. These results suggest that at low pressures, the collapsing current sheath interacts with the anode end and causes intense low energy x-ray emission, but the neutron emission remains low. X-rays are dominantly Cu. In the narrow pressure regime 2.5-3.0 mbar, the current sheath forms a pinch filament leading to high neutron yield with low fluence anisotropy.
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