Comprehensive assessment of deep-water vessel implosion mechanisms: OceanGate's Titan submersible failure sequence explained

IF 3 2区 工程技术 Q2 ENGINEERING, MECHANICAL International Journal of Pressure Vessels and Piping Pub Date : 2024-10-24 DOI:10.1016/j.ijpvp.2024.105340
Ruud Weijermars
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Abstract

This study outlines the physical mechanisms involved in a submersible implosion and analyzes the loss of the Titan submersible (‘sub’) that occurred on June 18, 2023 during a mission to visit the wreck of the Titanic. Titan's collapse mechanisms at the moment of implosion are described in detail and outer hull fracturing rate, subsequent implosion rate, accompanying heat release and other key processes are quantified. Plausible causes of the hull's leak leading up to critical loss of the sub's hermetic closure are reviewed using test results made publicly available by the U.S. Marine Board of Investigation. Their data indicated that the bond interfaces between the individual layers of the carbon fiber hull (Hull V2) were critically compromised due to manufacturing defects, voids, porosity, and inadequate adhesive integrity, resulting in significant delamination. Analysis of data from the real-time hull health monitoring system, revealed acoustic anomalies and strain shifts, pointing toward increasing structural fatigue, which went unaddressed prior to the fatal dive. The implosion process can be characterized by an instantaneous collapse of the air volume within the hull under extreme external pressure: even the tiniest leak would lead to destruction of the vessel's structural integrity. The destruction was the more devastating, because it was accompanied by a secondary explosion due to the heat exchange between the collapsing air volume and the ambient sea water. While the collapsing air was phase-changed into a supercritical state, the generated heat caused the adjacent seawater to evaporate and expand. Hull pieces fragmented by the initial implosion were strewn around during the secondary explosion phase, which ceased rapidly as the steam condensed back into seawater once again. The Titan incident underscores the urgent need for improved design standards, rigorous quality control in manufacturing, and enhanced real-time monitoring to prevent similar failures of future deep-sea exploration vehicles.
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全面评估深水船内爆机制:海洋之门公司泰坦号潜水器失效顺序说明
本研究概述了潜水器内爆所涉及的物理机制,并分析了 2023 年 6 月 18 日泰坦潜水器("潜水器")在执行探访泰坦尼克号残骸的任务时发生的损失。详细描述了泰坦在内爆瞬间的坍塌机制,并量化了船体外部断裂率、随后的内爆率、伴随的热量释放和其他关键过程。利用美国海事调查委员会公开的测试结果,对船体泄漏导致潜艇密封性临界丧失的可能原因进行了审查。他们的数据表明,由于制造缺陷、空隙、多孔性和粘合剂完整性不足,碳纤维船体(船体 V2)各层之间的粘合界面受到严重破坏,导致严重分层。对船体实时健康监测系统监控数据的分析表明,声学异常和应变偏移表明结构疲劳正在加剧,而在发生致命潜水事故之前,这些问题并未得到解决。内爆过程的特点是船体内部的空气体积在极高的外部压力下瞬间坍塌:即使是最微小的泄漏也会导致船体结构完整性的破坏。这种破坏更具毁灭性,因为在坍塌的空气体积与周围海水进行热交换的同时,还伴随着二次爆炸。当坍塌的空气相变为超临界状态时,产生的热量导致邻近的海水蒸发和膨胀。在二次爆炸阶段,最初内爆造成的船体碎片四处散落,随着蒸汽再次凝结成海水,爆炸迅速停止。泰坦号事件突出表明,迫切需要改进设计标准,严格控制制造质量,加强实时监测,以防止未来的深海勘探器发生类似故障。
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来源期刊
CiteScore
5.30
自引率
13.30%
发文量
208
审稿时长
17 months
期刊介绍: Pressure vessel engineering technology is of importance in many branches of industry. This journal publishes the latest research results and related information on all its associated aspects, with particular emphasis on the structural integrity assessment, maintenance and life extension of pressurised process engineering plants. The anticipated coverage of the International Journal of Pressure Vessels and Piping ranges from simple mass-produced pressure vessels to large custom-built vessels and tanks. Pressure vessels technology is a developing field, and contributions on the following topics will therefore be welcome: • Pressure vessel engineering • Structural integrity assessment • Design methods • Codes and standards • Fabrication and welding • Materials properties requirements • Inspection and quality management • Maintenance and life extension • Ageing and environmental effects • Life management Of particular importance are papers covering aspects of significant practical application which could lead to major improvements in economy, reliability and useful life. While most accepted papers represent the results of original applied research, critical reviews of topical interest by world-leading experts will also appear from time to time. International Journal of Pressure Vessels and Piping is indispensable reading for engineering professionals involved in the energy, petrochemicals, process plant, transport, aerospace and related industries; for manufacturers of pressure vessels and ancillary equipment; and for academics pursuing research in these areas.
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