首页> 美国政府科技报告 >Optimization of the Testing Volumes with Respect to Neutron Flux Levels in the Two-Target High Flux D-Li Neutron Source for the International Fusion Materials Irradiation Facility.
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Optimization of the Testing Volumes with Respect to Neutron Flux Levels in the Two-Target High Flux D-Li Neutron Source for the International Fusion Materials Irradiation Facility.

机译:针对国际聚变材料辐照设施的双目标高通量D-Li中子源中的中子通量水平的测试体积的优化。

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An economic and fusion-relevant source of high-energy neutrons is an essential element in the fusion nuclear technology and development program. This source can be generated by directing a high energy deuteron beam onto a flowing liquid lithium target, producing neutrons via the D-Lithium stripping reaction. Previous work on this type of source concentrated on a design employing one deuteron beam of modest amperage. This design was shown to have a relatively small testing volume with high flux gradients and was therefor considered somewhat unattractive from a materials testing standpoint. A design using two lithium targets and two high-amperage beams has recently been proposed. This two beam design has been examined in an effort to maximize the test volume while minimizing the flux gradients and minimizing the effect of radiation damage on one target due to the other. A spatial, energy and angle dependent neutron source modeling the D-Lithium source was developed. Using this source, a 3-dimensional map of uncollided flux within the test volume was calculated. The results showed that the target separation has little effect on the available experimental volume and that a testing volume of (approximately)35 liters is available with a volume averaged flux above 10(sup 14) n/cm(sup 2)/s. The collided flux within the test volume was then determined by coupling the source model with a Monte Carlo code. The spectral effects of the high-energy tail in the flux were examined and evaluated as to possible effects on materials response. Calculations comparing the radiation damage to materials from the D-Lithium source to that cause by a standard DT fusion first-wall neutron flux spectrum showed that the number of appm and dpa, as well as the ratio appm/dpa and dpa/MW/m(sup 2) are within 30% for the two sources. 8 refs., 8 figs.

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