Evaluating Precise Quantity of Decommissioning Waste by Cutting Virtual 3D Models of Large Equipment

H. Seki, M. Imamura, H. Nagase
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引用次数: 1

Abstract

Equipment and piping components contaminated by radioactive materials and/or containing low-level irradiated waste must be cut, segmented, and packed into waste containers. Workers need to avoid overexposure to radiation in dismantling environments, and the number of waste containers for the pieces of equipment and piping components needs to be minimized. Thus, we developed an automatic planning method for virtually cutting 3D equipment with limitations on container size, radioactivity, weight, and dose rate. Cutting sequence data was used to formulate different cutting-work procedures, generate cut objects, and calculate the exposure during disassembling work. By calculating the required cutting length and dose-rate distribution in working environments for various cutting sequences of large equipment, the developed system is expected to aid in the planning of decommissioning. To utilize systems engineering in conjunction with elemental technologies, the following problems need to be solved; both weight and volume of the waste need to be controlled so that radioactive waste for decommissioning nuclear power plants is traceable. Identifying segmented equipment from a 3D model is key to calculating the number of volumetric segmented fragments and required number of containers. To evaluate exposure and amount of waste, we developed an automatic planning method for virtually cutting 3D equipment objects given constraints. Cutting sequence data was used to formulate different cutting workflows, generate cut objects, and calculate the exposure dose from disassembling work.
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基于大型设备虚拟三维模型的退役废物精确数量评估
被放射性物质污染和/或含有低放射性废物的设备和管道部件必须切割、分段并装入废物容器。工作人员需要避免在拆卸环境中过度暴露于辐射,并且需要尽量减少用于设备和管道部件的废物容器的数量。因此,我们开发了一种自动规划方法,用于虚拟切割3D设备,限制容器尺寸,放射性,重量和剂量率。利用切割序列数据制定不同的切割工序,生成切割对象,并计算拆卸过程中的暴露量。通过计算大型设备的各种切割顺序在工作环境中所需的切割长度和剂量率分布,开发的系统有望帮助规划退役。为了将系统工程与基本技术相结合,需要解决以下问题:废物的重量和体积都需要加以控制,以便使退役核电站的放射性废物可追溯。从3D模型中识别分段设备是计算体积分段碎片数量和所需容器数量的关键。为了评估暴露和浪费量,我们开发了一种自动规划方法,用于虚拟切割3D设备对象。利用切割序列数据制定不同的切割工作流程,生成切割对象,并计算拆卸工作的暴露剂量。
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