Anti-Icing and De-Icing of Pipe Structures on Marine Vessels Using Waste Heat Recovery

Lene Æsøy
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引用次数: 1

Abstract

One of the major challenges for a ship sailing in Arctic waters is ice aggregation. Atmospheric water or sea spray that comes into contact with the cold railing, equipment and superstructure deposits ice on the exposed surfaces. This ice can build up over time to such an extend, that the weight of the ice can severely impair the ships stability, even lead to capsizing. To prevent such accidents, the IMO Polar Code for ships operating in Arctic areas requires countermeasures against icing. Ulmatec Pyro has developed a “double pipe system” that makes use of waste heat, recovered from the ships propulsion and energy system. The main objective of this research project has been to investigate the behavior of anti-icing and de-icing for pipe structures to provide design rules and operational guidelines for such systems. Pipe systems have been studied using both numerical and experimental methods. First a simple 1D pipe system, simulating the steady heat transfer with a finite difference method, was implemented. The purpose of this model is was to be able to quickly study design variations. Next, a more advanced 3D axis-symmetric heat flow model was simulated, using a commercial transient finite element solver. The results of the advanced model was used to evaluate the simple model. Subsequently these simulation tools were used to support the design decisions for the experimental setup. To get the IMO approval for the double pipe system, the experiments were conducted at the site of the classification society. The experimental setup was used to validate the simulation model, and furthermore as a design verification lab for Ulmatec Pyro. A comparison of the results between both numerical simulation models and experiments show a good correlation. In addition, the experiments provide a valuable insight into the icing- and anti-icing processes. Specifically, a better understanding of the complex ice melting process.
利用余热回收技术对船舶管道结构进行防冰除冰
在北极水域航行的船舶面临的主要挑战之一是冰的聚集。与冷栏杆、设备和上层建筑接触的大气水或浪花会在暴露的表面上沉积冰。随着时间的推移,这些冰会积聚到一定程度,冰的重量会严重损害船只的稳定性,甚至导致倾覆。为了防止此类事故,国际海事组织极地规则要求在北极地区作业的船舶采取防结冰措施。Ulmatec Pyro开发了一种“双管道系统”,利用从船舶推进和能源系统中回收的废热。本研究项目的主要目的是研究管道结构的防冰和除冰行为,为此类系统提供设计规则和操作指南。用数值和实验方法对管道系统进行了研究。首先,用有限差分法模拟了一个简单的一维管道系统的稳态传热。这个模型的目的是为了能够快速研究设计变化。接下来,使用商用瞬态有限元求解器对更先进的三维轴对称热流模型进行了模拟。利用先进模型的结果对简单模型进行评价。随后,这些仿真工具被用来支持实验装置的设计决策。为了获得国际海事组织对双管系统的批准,在船级社现场进行了试验。该实验装置用于验证仿真模型,并进一步作为Ulmatec Pyro的设计验证实验室。数值模拟模型与实验结果的比较表明,两者具有良好的相关性。此外,实验提供了一个有价值的洞察结冰和反结冰过程。具体来说,就是更好地了解复杂的冰融化过程。
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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