Modular design of the barge platform

Stanislav N. Girin Girin
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Abstract

The paper presents the solution of the problem of creating the design of the barge-platform of the "M-SP 3.5" class of the Russian Classification Society (RCS), intended for manufacturing outside the shipbuilding and ship-repair enterprise on the prepared site near the water body. Hull assembly should be made of separate parts (modules), which are manufactured in the conditions of shipbuilding production and delivered to the place of assembly by automobile or railway transport. Welding should not be used in the assembly process. It is suggested to assemble the barge hull from flat sections of 12,00×2,40 m and fractional sizes; bolted joints should be used during assembly. An example of barge construction of op-determined dimensions is considered. Calculation of the overall strength of the hull assembled from individual sections by means of bolted joints is performed using the ANSYS program complex. It is shown that the strength of the hull and bolts is ensured for the load regulated by the Rules of RCO. The use of bolted joints in forming the hull makes it difficult to ensure its impermeability, in this connection the buoyancy and non-floodability of the barge is proposed to be ensured by means of flexible tanks filled with air. Design and production of such tanks is currently carried out by a number of companies in the Russian Federation.
驳船平台的模块化设计
本文介绍了俄罗斯船级社(RCS)"M-SP 3.5 "级驳船船台设计的解决方案,该船台用于在造船和修船企业外的水体附近准备好的场地制造。船体组装应由独立的部件(模块)组成,这些部件(模块)在造船生产条件下制造,并通过汽车或铁路运输运送到组装地点。组装过程中不得使用焊接。建议用 12.00×2.40 米或更小尺寸的平板组装驳船船体;组装过程中应使用螺栓连接。本研究考虑了一个按预定尺寸建造驳船的实例。使用 ANSYS 复杂程序对通过螺栓连接组装的船体的整体强度进行了计算。结果表明,船体和螺栓的强度可以确保达到 RCO 规则规定的载荷。由于船体采用螺栓连接,很难确保其防渗性,因此建议采用充满空气的柔性水箱来确保驳船的浮力和不淹性。目前,俄罗斯联邦的一些公司正在设计和生产这种储气罐。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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