FU Zhiying, LI Cui, LI Li, et al. Transient Temperature Characteristics of Cryogenic Target and Analysis on Influence of Fixed Thermal Shields[J]. 2023, 57(8): 66-75.
DOI:
FU Zhiying, LI Cui, LI Li, et al. Transient Temperature Characteristics of Cryogenic Target and Analysis on Influence of Fixed Thermal Shields[J]. 2023, 57(8): 66-75.DOI: 10.7652/xjtuxb202308007.
Transient Temperature Characteristics of Cryogenic Target and Analysis on Influence of Fixed Thermal Shields
the fuel ice uniformity of cryogenic target deteriorates significantly due to the introduction of a large amount of radiant heat from the ambient environment. For this problem
a three-dimensional model was established for a six-entrance cylinder-hohlraum cryogenic target with removable and fixed thermal shields based on the Boussinesq hypothesis and the discrete coordinate(DO)radiation model in the present study. The FLUENT software is used for numerical simulation to investigate transient temperature characteristics of the capsule surface during the thermal shield removal process
and analyze the influence of the structure and position of the fixed thermal shield on these transient temperature characteristics. The results show that during the removal of the cryogenic thermal shield
the temperature of the capsule surface increases rapidly under the combined effect of the external radiation
the convection in the hohlraum and the conduction through the fill tube
while the maximum temperature difference on the capsule surface first increases rapidly to the peak
then decreases
and finally tends to be stable. The fixed thermal shield structure can effectively prevent the external high-temperature radiation
reducing the temperature rise in the maximum temperature on the capsule surface by 39.5% and improving the uniformity of capsule surface temperature by 39%. Reducing the size of windows in the upper and lower side walls or increasing the distances from the walls to the capsule center can further reduce the temperature rise of the maximum temperature on the capsule surface and suppress the deterioration of temperature uniformity. The sensitivity of capsule surface temperature to the change in positions of the front upper and lower side walls of the fixed thermal shield is higher than that of other side walls. The results are instructive for the capsule surface temperature control during cryogenic thermal shield removal.
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