QUANTITATIVE ASSESSMENT OF THE STABILITY OF PORTABLE RADIOGRAPHIC MONITORING TOOLS TO THE FACTORS OF A TRANSPORT ACCIDENT BY THE METHOD OF FINITE ELEMENT CALCULATIONS

A. S. Dekopov, A. A. Lukyanov, S. V. Mikhailov, S. P. Maslennikov
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Abstract

A method of quantitative finite-element verification of stability of design and technological solutions of new generation portable radiographic equipment to the factors of transport accident at the stage of automated design of mathematical solid model of the shutter-type radiation head using software packages: "ZENIT-95" and "LS-DYNA" is proposed for consideration. The need for virtual quantitative assessment of stability of developed gamma detector components to emergency transport conditions at the design stage is largely due to the need to reduce costs for full-scale prototyping of technical solutions and test emergency tests. At the same time, production of prototypes equipped with radionuclide emitters without substantiating confirmation of the consistency of design solutions to extreme transportation conditions is certainly risky. Minimization of risk of making incorrect technical decisions at the stage of designing of radiographic control facilities of new generation with confirmation of consistency of design solutions to conditions of emergency transportation can be provided with the use of systems of automated design in 3D format and program-calculating modules "LS-DYNA" and "ZENIT-95" by finite-element calculations method. The object of the quantitative analysis of stability of the main functional unit of portable gamma detector to the transport accident factors by the finite element calculations method is a mathematical solid model of the radiation head conditionally containing radionuclide radiator and virtually exposed to transport accident factors: fall from height onto a target; thermal effects of fire. The 3D model of the WG as the main functional part of the gamma detector represents a logically connected system of elements, the state of which can be described by a set of differential equations, the solution of which using digital technology determines the stresses, strains and zones of thermal effect, allowing a quantitative assessment of mechanical strength and thermal stability of the structural solutions of the product. The results of finite element analysis in the software package "LS-DYNA" with a quantitative assessment of structural and strength stability of the radiation head of a gamma detector when falling from height, as well as the results of stability to thermal influence by the example of a finite element model of the radiation head in the software package "ZENIT-95" are presented.
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用有限元计算方法定量评估便携式射线监测工具对运输事故因素的稳定性
在使用软件包自动设计快门式辐射头的数学实体模型阶段,对新一代便携式射线照相设备的设计和技术解决方案的稳定性进行定量有限元验证的方法:建议考虑使用 "ZENIT-95 "和 "LS-DYNA "软件包。之所以需要在设计阶段对已开发的伽马探测器部件在紧急运输条件下的稳定性进行虚拟定量评估,主要是因为需要降低全尺寸技术方案原型和紧急试验测试的成本。同时,在没有证实设计方案在极端运输条件下的一致性的情况下,生产装有放射性核素发射器的原型肯定是有风险的。在设计新一代放射性控制设施的阶段,为了最大限度地降低做出错误技术决定的风险,同时确认设计方案与紧急运输条件的一致性,可以使用三维格式的自动设计系统以及采用有限元计算方法的程序计算模块 "LS-DYNA "和 "ZENIT-95"。用有限元计算方法对便携式伽马探测器的主要功能单元在运输事故因素下的稳定性进行定量分析的对象是辐射头的数学实体模型,该模型有条件地包含放射性核素辐射器,并实际暴露在运输事故因素下:从高空坠落到目标上;火灾的热效应。作为伽马探测器主要功能部分的 WG 的三维模型代表了一个逻辑连接的元素系统,其状态可以用一组微分方程来描述,利用数字技术求解可以确定应力、应变和热效应区域,从而对产品结构解决方案的机械强度和热稳定性进行定量评估。本报告介绍了使用 "LS-DYNA "软件包进行有限元分析的结果,对伽马探测器辐射头从高处坠落时的结构和强度稳定性进行了定量评估,并以 "ZENIT-95 "软件包中的辐射头有限元模型为例,介绍了热影响稳定性的结果。
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