努力提高船舶主机效率并确保其安全

1 Pub Date : 2024-03-11 DOI:10.46632/jame/3/1/3
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引用次数: 0

摘要

在经济竞争力和环境可持续性的双重驱动下,海运业一直在努力提高船舶主机的效率并确保其安全性。船舶主机是船舶的心脏,推动船舶在广阔无垠的世界海洋中航行,同时消耗大量燃料。因此,提高主机效率会直接影响运营成本,并减少与海运相关的环境足迹。提高主机效率的一个主要重点在于发动机设计和技术的进步。多年来,人们一直在共同努力开发既能提供更高功率输出,又能消耗更少燃料的发动机。因此出现了更高效的发动机设计,如慢速二冲程发动机和高压共轨燃油喷射系统。这些创新优化了燃料燃烧,最大限度地减少了能量损失,并提高了整体推进效率。此外,正在进行的研发工作旨在利用替代燃料和推进技术,进一步提高效率,减少对环境的影响。液化天然气(LNG)作为一种燃烧更清洁的燃料替代品,与传统的船用燃料相比,可显著减少硫氧化物(SOx)和氮氧化物(NOx)的排放,因而备受青睐。此外,对混合动力和电力推进系统的探索也为减少温室气体排放和提高整体能效带来了希望。确保船舶主机的安全对于船舶在海上的可靠性和可操作性至关重要。在潜在问题升级为代价高昂的故障或造成安全隐患之前,必须采取有力的维护措施来识别和解决这些问题。例行检查、预防性维护和状态监测在发现异常、磨损和撕裂方面发挥着至关重要的作用,从而可以及时进行干预和维修。此外,预测性维护技术(如远程监控系统和数据分析)的发展也使发动机性能的实时评估和潜在故障的早期检测成为可能。ARAS 方法缺乏处理模糊性、主观判断和应对不完整信息的能力。它依靠无偏见的正确判断来应对不确定性,尤其是在未知和复杂的条件下,因此是一种非常有价值的方法。该方法提供了基于事实和特殊情况的排序和分析选项,允许选择者表达乐观和理性的态度。虽然它在纸面上看起来是数字型的,但它提供了根据个人需求量身定制电子学习路径的灵活性,强调了掌握的重要性。为这一方法开发的集成软件既具有成本效益,又经过了适用性验证,可确保其实际应用。先进发动机设计、改进监测和维护、强化燃料管理、创新推进技术、自动化和远程监测以及先进材料和涂料。先进材料和涂料排名最高,先进发动机设计排名最低。提高燃油效率、减少排放、可靠性和维护成本以及安全性能。
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Efforts to Improve Ship Main Engine Efficiency and Ensure Its Safety
Efforts to improve ship main engine efficiency and ensure its safety have been ongoing endeavors in the maritime industry, driven by the dual imperatives of economic competitiveness and environmental sustainability. The main engine of a ship serves as its heart, propelling it through the vast expanses of the world's oceans while consuming significant quantities of fuel. Therefore, enhancing its efficiency directly impacts operational costs and reduces the environmental footprint associated with maritime transport. One primary focus of improving main engine efficiency lies in the advancement of engine design and technology. Over the years, there has been a concerted effort to develop engines that offer higher power output while consuming less fuel. This has led to the emergence of more efficient engine designs, such as slow-speed two-stroke engines and high-pressure, common-rail fuel injection systems. These innovations optimize fuel combustion, minimize energy losses, and enhance overall propulsion efficiency. Moreover, ongoing research and development efforts are aimed at harnessing alternative fuels and propulsion technologies to further enhance efficiency and reduce environmental impact. LNG (liquefied natural gas) has gained traction as a cleaner-burning fuel alternative, offering significant reductions in sulfur oxides (SOx) and nitrogen oxides (NOx) emissions compared to traditional marine fuels. Additionally, the exploration of hybrid and electric propulsion systems holds promise for reducing greenhouse gas emissions and improving overall energy efficiency. Ensuring the safety of ship main engines is paramount to the reliability and operability of vessels at sea. A robust maintenance regimen is essential to identify and address potential issues before they escalate into costly failures or pose safety hazards. Routine inspections, preventive maintenance, and condition monitoring play crucial roles in detecting abnormalities, wear, and tear, allowing for timely interventions and repairs. Furthermore, advancements in predictive maintenance technologies, such as remote monitoring systems and data analytics, enable real-time assessment of engine performance and early detection of potential malfunctions. The ARAS method lacks the capability to handle ambiguity, subjective judgments, and coping with incomplete information. It relies on unbiased good judgment to address uncertainty, particularly in unknown and complex conditions, making it a valuable approach. The method provides options for sequencing and analysis based on facts and special cases, allowing selectors to express both optimistic and rational attitudes. While it appears numerical on paper, it offers the flexibility to create e-learning pathways tailored to individual needs, emphasizing the importance of mastery. The proposed integrated software for this method is both cost-effective and validated for suitability, ensuring its practical application. Advanced Engine Designs, Improved Monitoring and Maintenance, Enhanced Fuel Management, Innovative Propulsion Technologies, Automation and Remote Monitoring and Advanced Materials and Coatings. the Rank Efforts to improve ship Main Engine efficiency and Ensure its safety for Additive Ratio Assessment method. Advanced Materials and Coatings is showing the highest rank and Advanced Engine Designs is showing the lowest rank. Fuel Efficiency Improvement, Emissions Reduction, Reliability and Maintenance Costs and Safety Performance.
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