Radiation Resistant Camera System for Monitoring Deuterium Plasma Discharges in the Large Helical Device

Радиационно-стойкая камерная система для мониторинга разрядов дейтериевой плазмы в Большом спиральном устройстве
M. Shoji, LHD Experiment Group
2020-06-08

CCD image sensorLarge Helical DeviceMCNP-6 radiation transportdeuterium plasma dischargesradiation-resistant camera system
Radiation resistant camera system was constructed for monitoring deuterium plasma discharges in the Large Helical Device (LHD). This system has contributed to safe operation during two experimental campaigns without serious problems due to radiation (neutrons and gamma-rays). The cameras steadily functioned even in the plasma discharge with the maximum neutron emission rate in FY 2017, though some bright specks temporarily appeared on the images. The cameras have been installed in shield boxes which consist of lead boxes covered with 10% borated polyethylene blocks in all directions. For optimizing the design of the shield box, the radiation flux distribution was calculated by MCNP-6 code, which reveals the reduction of the radiation flux and the change of the energy spectra in the shield box. Thanks to the optimization, significant extension of the lifetime of the cameras has been realized. Investigation of the influence of the radiation on the CCD image sensor shows that the number of bright specks generally increases with the radiation flux to the camera, which also indicates that some bright specks disappear by the self-annealing process on the image sensor. This phenomenon also highly contributes to the further extension of the lifetime of the radiation resistant cameras.
1
A radiation-resistant camera system enabled safe monitoring of deuterium plasma discharges in the Large Helical Device across two experimental campaigns.
2
Radiation-induced bright specks increased with camera radiation flux, while self-annealing of the CCD sensor caused some specks to disappear and further extended operational lifetime.
3
Shield boxes combining lead and 10% borated polyethylene were optimized using MCNP-6 calculations of radiation flux and energy spectra.
4
Shield-box optimization significantly extended camera lifetime by reducing radiation exposure and modifying the incident radiation spectrum.
5
The cameras operated reliably during the FY 2017 discharge with the maximum neutron emission rate, although temporary bright specks appeared in images.

Radiation-resistant camera system installed in shield boxes for monitoring deuterium plasma discharges in the Large Helical Device

Camera radiation tolerance, radiation-induced bright specks and self-annealing behavior of CCD image sensors, and shielding-based lifetime extension

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2020-06-08
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M. Shoji
LHD Experiment Group
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