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ROLE OF EFFECTIVE DISTANCE IN THE FISSION MECHANISM STUDY BY THE DOUBLE-ENERGY MEASUREMENT FOR URANIUM ISOTOPES

机译:有效距离在铀同位素双能测量裂变机理研究中的作用

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Fission product kinetic energies were measured by the double-energy method for thermal-neutron fission of U-235,U-233 and proton-induced fission of U-238 at the 15.8-MeV excitation. From the obtained energy-mass correlation data, the kinetic-energy distribution was constructed from each mass bin to evaluate the first moment of the kinetic energy for a given fragment mass. The resulting kinetic energy was then converted to the effective distance between the charge centers at the moment of scission. The effective distances deduced for the proton-induced fission was concluded to be classified into two constant values, one for asymmetric and the other for symmetric mode, irrespective of the mass though an additional component was further extracted in the asymmetric mass region. This indicates that the fission takes place via tyro well-defined saddles, followed by the random neck rupture. On the contrary, the effective distances obtained for thermal-neutron induced fission turned out to lie along the contour line at the same level as the equilibrium deformation in the two-dimensional potential map. This strongly suggests that it is essentially a barrier-penetrating type of fission rather than the over-barrier fission. [References: 73]
机译:裂变产物动能通过双能法测量U-235,U-233的热中子裂变和在15.8-MeV激发下质子诱导的U-238的裂变。根据获得的能量质量相关数据,从每个质量仓构建动能分布,以评估给定碎片质量的动能的第一矩。然后将产生的动能转换为断裂时电荷中心之间的有效距离。推断得出的质子诱发裂变的有效距离可以分为两个常数,一个是不对称的,另一个是对称模式的,与质量无关,尽管在不对称质量区域中进一步提取了一个附加分量。这表明裂变是通过明确界定的蒂罗鞍发生的,随后是随机的颈部破裂。相反,热中子诱发裂变获得的有效距离沿等高线分布,与二维电势图中的平衡变形处于同一水平。这有力地表明,它本质上是一种穿透屏障的裂变,而不是过屏障的裂变。 [参考:73]

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