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Exploring dissipative processes at high angular momentum in ~(58)Ni+~(60)Ni reactions

机译:在〜(58)Ni +〜(60)Ni反应的高角动量下探索耗散过程

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Current coupled channels (CC) models treat fusion as a coherent quantum-mechanical process, in which coupling between the collective states of the colliding nuclei influences the probability of fusion in near-barrier reactions. While CC models have been used to successfully describe many experimental fusion barrier distribution (BD) measurements, the CC approach has failed in the notable case of ~(16)O+~(208)Pb. The reason for this is poorly understood; however, it has been postulated that dissipative processes may play a role. Traditional BD experiments can only probe the physics of fusion for collisions at the top of the Coulomb barrier (L= Oh). In this work, we will present results using a novel method of probing dissipative processes inside the Coulomb barrier. The method exploits the predicted sharp onset of fission at L~ 60h for reactions forming compound nuclei with A < 160. Using the ANU's 14UD tandem accelerator and CUBE spectrometer, reaction outcomes have been measured for the ~(58)Ni+~(60)Ni reaction at a range of energies, in order to explore dissipative processes at high angular momentum. In this reaction, deep inelastic processes have been found to set in before the onset fission at high angular momentum following fusion. The results will be discussed in relation to the need for a dynamical model of fusion.
机译:电流耦合通道(CC)模型将融合作为相干量子机械过程,其中碰撞核的集体状态之间的耦合影响了近屏障反应中融合的概率。虽然CC型号已被用于成功描述许多实验融合阻隔分布(BD)测量,但CC方法在〜(16)o +〜(208)Pb的显着情况下失效。这是理解差不多的原因;但是,已经假定了耗散过程可能发挥作用。传统的BD实验只能探讨融合物理物理,用于库仑屏障顶部的碰撞(L = OH)。在这项工作中,我们将使用探测库仑屏障内部的耗散过程的新方法提供结果。该方法利用L〜60h的预测急剧发作,用于用<160形成化合物核的反应。使用ANU的14UD串联加速器和立方体光谱仪,对〜(58)Ni +〜(60)Ni测量了反应结果在一系列能量的反应,以探讨高角动量的耗散过程。在该反应中,已发现深部无弹性方法在融合后的高角度动量下开始裂变。结果将关于融合动态模型的需要讨论。

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