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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research >Shielding synchrotron light sources: Advantages of circular shield walls tunnels
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Shielding synchrotron light sources: Advantages of circular shield walls tunnels

机译:屏蔽同步加速器光源:圆形屏蔽墙隧道的优势

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Third generation high brightness light sources are designed to have low emittance and high current beams, which contribute to higher beam loss rates that will be compensated by Top-Off injection. Shielding for these higher loss rates will be critical to protect the projected higher occupancy factors for the users. Top-Off injection requires a full energy injector, which will demand greater consideration of the potential abnormal beam miss-steering and localized losses that could occur. The high energy electron injection beam produce significantly higher neutron component dose to the experimental floor than lower energy injection and ramped operations. High energy neutrons produced in the forward direction from thin target beam losses are a major component of the dose rate outside the shield walls of the tunnel. The convention has been to provide thicker 90° ratchet walls to reduce this dose to the beam line users. We present an alternate circular shield wall design, which naturally and cost effectively increases the path length for this forward radiation in the shield wall and thereby substantially decreasing the dose rate for these beam losses. This shield wall design will greatly reduce the dose rate to the users working near the front end optical components but will challenge the beam line designers to effectively utilize the longer length of beam line penetration in the shield wall. Additional advantages of the circular shield wall tunnel are that it's simpler to construct, allows greater access to the insertion devices and the upstream in tunnel beam line components, as well as reducing the volume of concrete and therefore the cost of the shield wall.
机译:第三代高亮度光源被设计为具有低发射率和高电流光束,这会导致较高的光束损耗率,这将由Top-Off注入进行补偿。屏蔽这些较高的丢失率对于保护用户预计的较高占用率至关重要。自上而下的注入需要一个完整的能量注入器,这将需要更多地考虑潜在的异常射束转向错误和可能发生的局部损耗。高能电子注入束比低能注入和倾斜操作产生的中子成分剂量要高得多。由薄的目标束流损耗产生的向前产生的高能中子是隧道屏蔽壁外部剂量率的主要组成部分。惯例是提供更厚的90°棘轮壁,以减少光束线使用者的剂量。我们提出了一种备选的圆形屏蔽壁设计,其自然地且成本有效地增加了屏蔽壁中该前向辐射的路径长度,从而大大降低了这些光束损耗的剂量率。这种屏蔽墙设计将大大降低在前端光学组件附近工作的用户的剂量率,但将挑战光束线设计人员,以有效利用较长长度的光束穿过屏蔽墙。圆形屏蔽墙隧道的其他优点在于,它的构造更简单,可以更方便地进入插入装置和隧道束线组件的上游,还可以减少混凝土的体积,从而降低屏蔽墙的成本。

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