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RECONSTRUCTING THE AXIAL VOID VELOCITY PROFILE IN BWRs FROM MEASUREMENTS OF THE IN-CORE NEUTRON NOISE

机译:从核心中子噪声的测量中重建BWR中的轴向空隙速度曲线

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The problem of determining the axial velocity profile from the in-core neutron noise measurements is revisited, with the purpose of developing an objective method for the determination of the void fraction. Until now it was assumed that in order to determine a realistic velocity profile which shows an inflection point and hence has to be at least a third order polynomial, one needs four transit times and hence five in-core detectors at various axial elevations. However, attempts to determine a fourth transit time by adding a TIP detector to the existing four LPRMs and cross-correlate it with any of the LPRMs were unsuccessful so far. In this paper we thus propose another approach, where the TIP detector is only used for the determination of the axial position of the onset of boiling.By this approach it is sufficient to use only three transit times. Moreover, with another parametrisation of the velocity profile, it is possible to reconstruct the velocity profile even without knowing the onset point of boiling, in which case the TIP is not needed. In the paper the principles are explained and the strategy is demonstrated by concrete examples.
机译:确定从所述堆芯的中子噪声测量的轴向速度分布的问题是重新与开发空隙率的确定了客观的方法的目的。到目前为止,假设为了确定显示拐点的现实速度分布,并且因此必须至少是三阶多项式,需要四个传输时间,并且在各种轴向仰角处需要五个核心检测器。然而,到目前为止,尝试通过将尖端检测器添加到现有的四个LPRM并与任何LPRM交联并与所有LPRS交联来确定第四途时间。在本文中,我们提出了另一种方法,其中尖端检测器仅用于确定沸腾的开始的轴向位置。该方法仅使用三个累积时间足以使用。而且,随着速度分布的另一个参数化,所以能够重建的速度分布即使不知道沸腾的开始点,在这种情况下,不需要在TIP。在论文中,解释了原则,具体实施例证明了战略。

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