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Maruhn-Greiner Maximum of Uranium Fission for Confirmation of Low Energy Nuclear Reactions LENR via a Compound Nucleus with Double Magic Numbers

机译:Maruhn-Greiner铀裂变最大值,用于通过具有双幻数的复合核来确认低能核反应LENR

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One of the most convincing facts about LENR due to deuterons of very high concentration in host metals as palladium is the measurement of the large scale minimum of the reaction probability depending on the nucleon number A of generated elements at A = 153 where a local maximum was measured. This is similar to the fission of uranium at A = 119 where the local maximum follows from the Maruhn-Greiner theory if the splitting nuclei are excited to about MeV energy. The LENR generated elements can be documented any time after the reaction by SIMS or K-shell X-ray excitation to show the very unique distribution with the local maximum. An explanation is based on the strong Debye screening of the Maxwellian deuterons within the degenerate rigid electron background especially within the swimming electron layer at the metal surface or at interfaces. The deuterons behave like neutrals at distances of about 2 picometers. They may form clusters due to soft attraction in the range above thermal energy. Clusters of 10 pm diameter may react over long time probabilities (megaseconds) with Pd nuclei leading to a double magic number compound nucleus which splits like in fission to the A - 153 element distribution.
机译:关于LENR的最令人信服的事实之一是,氘在主体金属中的浓度很高,例如钯,这是对反应概率的大规模最小值的测量,取决于在A = 153时产生的元素的核子数A,其中局部最大值为测量。这类似于铀在A = 119的裂变,如果分裂核被激发到大约MeV能量,则局部最大值遵循Maruhn-Greiner理论。反应后,随时可以通过SIMS或K壳X射线激发记录LENR生成的元素,以显示出非常独特的局部最大值分布。一种解释是基于退化的刚性电子本底内,特别是金属表面或界面处的游泳电子层内,麦克斯韦氘核的强德拜屏蔽。氘核的行为像中性分子,距离约为2皮克。由于在热能以上范围内的软吸引,它们可能会形成团簇。直径为10 pm的簇可能会在很长时间内(兆秒)与Pd核发生反应,从而导致双幻数复合核分裂,像裂变一样分裂成A-153元素分布。

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