核电安全DCS铸铝柜结构拓扑优化设计及抗冲击研究

W. Dongwei, L. Mingxing, Wu Xiao, Y. Hao, Wu Zhiqiang
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摘要

海上浮动核电站(FNPP)具有体积小、机动性强的特点,不仅可以为偏远岛屿提供安全、高效的电能,也可以为油气平台提供电能。安全数字控制系统(DCS)柜作为电子设备的载体,对保证核电站的正常运行起着重要的作用。为了满足在海洋环境中使用的机柜的要求,如良好的刚性、耐冲击载荷、良好的密封性和耐腐蚀性等,铸铝机柜越来越受到人们的关注。然而,铸铝结构可能会造成较大的机柜重量,这必然会影响机柜的机动性,同时也会增加船舶的载重量。因此,寻求一种有效的方法来设计海上FNPP的轻质铸铝柜是非常必要的。本工作通过结构拓扑优化设计,成功获得了一种轻量化的铸铝柜体架,经过优化迭代,发现该箱体的自重可降低到50%。随后,利用ABAQUS软件对优化后的铸铝柜体进行了固有频率计算,结果表明,框架的第一模态频率均在30 Hz以上,满足基本刚度要求。据此,采用动态设计分析方法(DDAM)验证了优化后的铸铝机柜抵抗突发冲击载荷的能力,确定了机柜的冲击响应特性。数值结果表明,优化后的机架具有良好的抗高阶冲击性能。而对于装配式铸铝柜来说,竖向冲击环境是最关键的条件,在支架和立柱处出现了高应力和高变形区。在这种冲击荷载条件下,提出了增强支架刚度的建议。
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Structure Topology Optimization Design and Shock Resistance Study on Nuclear Power Safety DCS Cast Aluminum Cabinet
Offshore floating nuclear power plant (FNPP) is characterized by its small and mobility, which is not only able to provide safe and efficient electric energy to remote islands, but to the oil and gas platforms. The safety digital control system (DCS) cabinet, as a carrier for the electronic devices, plays a significant role in ensuring the normal operation of the nuclear power plant. To satisfy the requirements of cabinet used in the sea environment, such as well rigidity, shock load resistance, good seal and corrosion resistance, etc, more and more attention is focused on the cast aluminum cabinet. However, the cast aluminum structure may cause larger weight of cabinet, which inevitability affects the mobility of cabinet, and increases the carried load of ship as well. Therefore, seeking for an effective approach to design a light weight cast aluminum cabinet for the offshore FNPP is definitely necessary. In this work, a frame of cast aluminum cabinet with lightweight is obtained successfully via structure topology optimization design, it is found that the weight of the frame can be reduced to 50% after optimization iterations. Subsequently, the natural frequency of the optimized cast aluminum cabinet is calculated by using ABAQUS, it is seen that the first mode frequency of the frame is beyond 30 Hz, which can meet the basic stiffness requirement. Accordingly, dynamic design analysis method (DDAM) is performed to verify the ability of the optimized cast aluminum cabinet in resisting sudden shock load, and the shock response characteristics of the cabinet are determined. Numerical results support that the optimized frame of cabinet possesses good resistance to high level shock. However, for the assembled cast aluminum cabinet, the vertical shock circumstance turns out to be the most critical condition, high stress and deformation regions occurs at the bracket and column. Reinforcements are proposed to make the bracket stiffer in this shock loading condition.
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