Numerical study on the damage of floating ice by high-pressure bubble loads

IF 4.2 2区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY Engineering Analysis with Boundary Elements Pub Date : 2024-11-19 DOI:10.1016/j.enganabound.2024.106041
Qigang Wu , Chenxi Zhang , Bao-Yu Ni , Zerui Yu , Di Yang , Yanzhuo Xue
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Abstract

Floating ice can be damaged by the bubble loads generated by releasing high-pressure gas underwater using an air-gun, so ice-breaking by underwater high-pressure bubble loads is becoming one of the effective ice-breaking technologies. A numerical model was established to study the motion and damage of floating ice subjected to high-pressure bubble loads. Empirical formulas were used to calculate the initial shock wave load. The boundary element method (BEM) was used to simulate the bubble motion and second shock wave load/jet impact load of the underwater bubble under the ice plate, during which the Green's formula was used. The potential flow theory was used to solve kinematic and dynamic problems during the bubble motion process. A breakable floating ice plate was established based on peridynamics (PD). A coupling scheme was proposed to solve the load transfer problem between BEM and PD. The numerical results of the bubble motion stage and the ice-breaking stage were in good agreement with the literature results. The motion response of floating ice was obtained and analyzed. Focusing on studying the damage process of the floating ice, the influence of bubble initial internal pressure and ice mechanical parameters (Young's modulus) were studied. Results showed that the dimensionless distance parameter H, dimensionless ice thickness parameter T, and ice mechanical parameters cause significant effect on ice damage. This study provided a numerical model for ice-breaking by high-pressure bubble loads, which may provide reference for parameter optimization design and help to guide the engineering application.
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高压气泡载荷对浮冰破坏的数值研究
利用气枪在水下释放高压气体产生的气泡载荷可以破坏浮冰,因此利用水下高压气泡载荷破冰正在成为有效的破冰技术之一。为研究浮冰在高压气泡载荷作用下的运动和破坏情况,建立了一个数值模型。利用经验公式计算了初始冲击波载荷。采用边界元法(BEM)模拟冰板下的气泡运动和水下气泡的第二次冲击波载荷/喷射冲击载荷,期间使用了格林公式。利用势流理论解决气泡运动过程中的运动学和动力学问题。基于周动力学(PD)建立了可破碎浮动冰板。提出了一种耦合方案来解决 BEM 和 PD 之间的载荷传递问题。气泡运动阶段和破冰阶段的数值结果与文献结果吻合良好。获得并分析了浮冰的运动响应。重点研究了浮冰的破坏过程,研究了气泡初始内压和冰力学参数(杨氏模量)的影响。结果表明,无量纲距离参数 H、无量纲冰厚参数 T 和冰力学参数对冰损伤有显著影响。该研究提供了高压气泡载荷破冰的数值模型,可为参数优化设计提供参考,有助于指导工程应用。
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来源期刊
Engineering Analysis with Boundary Elements
Engineering Analysis with Boundary Elements 工程技术-工程:综合
CiteScore
5.50
自引率
18.20%
发文量
368
审稿时长
56 days
期刊介绍: This journal is specifically dedicated to the dissemination of the latest developments of new engineering analysis techniques using boundary elements and other mesh reduction methods. Boundary element (BEM) and mesh reduction methods (MRM) are very active areas of research with the techniques being applied to solve increasingly complex problems. The journal stresses the importance of these applications as well as their computational aspects, reliability and robustness. The main criteria for publication will be the originality of the work being reported, its potential usefulness and applications of the methods to new fields. In addition to regular issues, the journal publishes a series of special issues dealing with specific areas of current research. The journal has, for many years, provided a channel of communication between academics and industrial researchers working in mesh reduction methods Fields Covered: • Boundary Element Methods (BEM) • Mesh Reduction Methods (MRM) • Meshless Methods • Integral Equations • Applications of BEM/MRM in Engineering • Numerical Methods related to BEM/MRM • Computational Techniques • Combination of Different Methods • Advanced Formulations.
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