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INTRODUCTION OF THE TECHNICAL DOCUMENT IN JAPAN FOR SAFETY USE OF TYPE2 PRESSURE VESSELS IN HYDROGEN REFUELING STATIONS

机译:在日本的技术文件引入安全使用Type2压力箱中的氢气加油站

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We considered the Type2 pressure vessel (hereinafter, Type2) used in hydrogen refueling stations (hereinafter, HRS), a stational Composite Reinforced Pressure Vessel (hereinafter, CRPV) in which a metal layer made of high-strength low-alloy steel is wrapped with a carbon fiber reinforced plastic (hereinafter, CFRP) layer in the circumferential direction. Because Type2 is lightweight and has a long life, installation in HRS is expected. However, since no technical standards concerning design for safe use of Type2 for HRS currently exist, few Type2 have been installed in HRS in Japan. Based on these circumstances, we are developing a Technical Document on the safe use of Type2 (hereinafter, TD) to promote the installation of Type2 at HRS. In this paper, we introduce the current discussion on issuance of the TD as an industrial standard, focusing especially on the following: Type2 shall be considered a two-layer pressure vessel in which the CFRP layer shares the circumferential stress of the metal layer. The wall thicknesses of the metal layer and CFRP layer of Type2 are calculated by Design by Rule approach, but when necessary, Design by Analysis (stress analysis and fatigue analysis) can be applied. Design specification tests such as the burst test and hydraulic pressure cycle test using an actual Type2 should not be required. The hydrogen compatibility and fatigue life of the low-alloy steel used in the metal layer are evaluated in accordance with our previously-proposed methods [1]. In the fatigue analysis, the effect of autofrettage can be considered.
机译:我们考虑了在氢气加油站(下文中,HRS)中使用的Type2压力容器(下文中,Type2),一种基层复合增强压力容器(下文中,CRPV),其中由高强度低合金钢制成的金属层被包裹着圆周方向的碳纤维增强塑料(下文中,CFRP)层。因为Type2是重量轻,并且寿命长,所以预期在HRS中安装。但是,由于目前存在的HRS类型2的安全使用有关设计的技术标准,因此在日本的HRS中安装了很少的类型2。根据这些情况,我们正在开发关于安全使用Type2(下文中,TD)的技术文件,以促进HRS Type2的安装。在本文中,我们介绍了关于TD作为工业标准的发布的当前讨论,特别是在以下内容:Type2应被认为是一种双层压力容器,其中CFRP层共享金属层的圆周应力。通过统治方法设计,通过设计来计算金属层和CFRP层的壁厚,但必要时,可以应用通过分析(应力分析和疲劳分析)的设计。不需要设计规范测试,例如使用实际类型2的突发测试和液压循环测试。根据我们先前提出的方法评价金属层中使用的低合金钢的氢相兼容性和疲劳寿命[1]。在疲劳分析中,可以考虑自动调节的效果。

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