倾斜的波反射遮阳板,以降低“玻璃中玻璃”坦克的保护墙的高度

Quang Thien Bui, S. Shvyrkov, V. Vorobyev, L. Panasevich
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In this regard, studies on an effective way to reduce the height by protecting the wall at the maximum level of filling the internal tank with a flammable liquid are relevant. In particular, it is proposed to consider the possibility of arranging on the protective wall an inclined wave-reflective visor facing the wall of the main tank. Goals and objectives. Experimentally prove the possibility of reducing the height of the protective wall of tanks with a protective wall of the \"glass in a glass\" type by arranging inclined wave-reflective visor on it. Obtain an empirical formula for finding the minimum height of the protective wall depending on the geometric parameters of the main tank, the interwall distance and the outbound length of the wave-reflecting visor. Methods. 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引用次数: 0

摘要

介绍。建造带有“玻璃中玻璃”型保护墙的储罐的前景是由于它们的使用可能会增加安全要求,特别是在住宅区或水域附近设计时。然而,先前对内部储罐破坏过程中保护壁保留流体流动的研究表明,为了完全保留流体流动,壁高必须至少比该储罐中的原始液位高10%。显然,建造如此高的防护墙在经济上是不切实际的,而在其墙内空间和防护墙后面可以创造条件形成爆炸性集中区。因此,研究在燃料箱内充可燃液体的最大高度处保护壁面以降低高度的有效方法是有意义的。特别建议考虑在防护壁上设置面向主罐壁的斜波反射护板的可能性。目标和目的。实验证明了通过在“玻璃中玻璃”式防护墙上布置斜波反射遮阳板来降低储罐防护墙高度的可能性。根据主罐的几何参数、壁间距离和反射板的出站长度,得到最小防护墙高度的经验公式。方法。在研究过程中,采用了相似理论和水力实验室建模、物理实验、观察、比较、寻找经验依赖等方法,对实验数据进行数学处理、描述、概括。结果和讨论。实验证明,在防护壁上布置斜波反射挡板是将防护壁面高度降低到或低于主罐内可燃液体最大液位的有效方法。对于具有“玻璃中玻璃”型保护墙的主储罐,标称容积从700到30000 m3,获得了经验依赖关系,以找到波反射遮阳板的出线长度与壁间距离之间的最佳比例。结论。所提出的降低防护墙高度的方法和经验依赖性可以作为制定监管文件相关条款的基础,以确保具有“玻璃中玻璃”类型防护墙的储罐的消防安全,并被设计组织用于寻找生产设施中所讨论的储罐类型的设计和放置的最佳解决方案。关键词:“玻璃中玻璃”罐,破坏,防护墙,斜波反射遮阳板,实验室建模
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Inclined wave-reflective visor to reduce the height of the protective wall of the "glass in а glass" tank
Introduction. The prospects for the construction of tanks with a protective wall of the "glass in a glass" type are due to the possibility of their use with increased safety requirements, in particular, when designing near residential areas or water areas. However, previous studies on the retention of fluid flow by a protective wall during the destruction of the internal reservoir have shown that in order to completely retain it, the wall height must be at least 10 % higher than the original liquid level in this tank. It is obvious that the construction of such high protective walls is economically impractical, while conditions can be created for the formation of zones of explosive concentrations both in its inter-wall space and behind the protective wall. In this regard, studies on an effective way to reduce the height by protecting the wall at the maximum level of filling the internal tank with a flammable liquid are relevant. In particular, it is proposed to consider the possibility of arranging on the protective wall an inclined wave-reflective visor facing the wall of the main tank. Goals and objectives. Experimentally prove the possibility of reducing the height of the protective wall of tanks with a protective wall of the "glass in a glass" type by arranging inclined wave-reflective visor on it. Obtain an empirical formula for finding the minimum height of the protective wall depending on the geometric parameters of the main tank, the interwall distance and the outbound length of the wave-reflecting visor. Methods. In the process of research, the methods of similarity theory and hydraulic laboratory modeling, physical experiment, observation, comparison, finding an empirical dependence based on mathematical processing of experimental data, description, generalization were used. Results and their discussion. It has been experimentally proven that the arrangement on the protective wall of inclined wave-reflective visor is an effective method aimed at reducing the height of the protective wall to or below the maximum level of flammable liquid in the main tank. An empirical dependence is obtained to find the optimal ratio between the outbound length of the wave-reflective visor and the inter-wall distance for the main tanks with a protective wall of the "glass in a glass" type, the nominal volume from 700 to 30000 m3. Conclusion. The proposed method of reducing the height of the protective wall and empirical dependence can be the basis for the development of the relevant provisions of the regulatory document on ensuring fire safety of tanks with a protective wall of the "glass in a glass" type, as well as used by design organizations to find optimal solutions for the design and placement of the types of tanks in question at production facilities. Keywords: "glass in a glass" tank, destruction, protective wall, inclined wave-reflective visor, laboratory modeling.
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