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Analysis of fretting inception for marine propeller by single blade loads measurement in realistic operating conditions. Straight ahead and turning circle maneuver

机译:在实际操作条件下,通过单叶片载荷测量来分析船用螺旋桨的微动开始。直行和转圈动作

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Controllable pitch propeller (CPP) is a versatile solution to fulfill high hydrodynamic efficiency and low environmental emissions for different operative scenario of a seagoing vessel because it allows the most suitable matching between the prime mover and the propulsor. In contrast, this configuration is a complex mechanical system and, therefore, it may be subjected to a wide range of failures related to the automation system of blade pitch variation, strength and fatigue life of the various mechanical components. This paper focuses on blade fretting, that is a small amplitude vibratory motion of the blade with respect to its lodging in the hub; this motion causes the wear between the contact surfaces, reducing the fatigue life of the material as well. The prediction of this phenomenon in realistic sailing conditions during the design stage is of utmost importance to prevent damages and failures during ship operations, by developing suitable control laws. The analysis is based on single blade loads measurements, obtained with a novel set-up installed on a free running maneuvering, self-propelled model of a twin screw ship. The experimental campaign was aimed to characterize single blade loads during different ship operations, with particular effort on maneuvering (standard and safety maneuvers) and motion in waves. This paper is focused on the straight ahead motions as well as steady and transient phases of the turning circle maneuver, performed at different rudder angles and speeds. The results show that the onset of fretting is sensitive to the wake evolution, and, hence, to the rudder angles; moreover, consistently to the asymmetric behavior of the propellers, fretting is differently triggered on the port and starboard propeller.
机译:可控螺距螺旋桨(CPP)是一种通用解决方案,可针对海船的不同操作场景实现高水动力效率和低环境排放,因为它允许原动机和推进器之间进行最合适的匹配。相反,该配置是复杂的机械系统,因此,它可能会遭受与各种机械部件的桨距变化,强度和疲劳寿命自动化系统有关的广泛故障。本文着重于叶片微动,即叶片相对于轮毂的小幅振动。这种运动会引起接触面之间的磨损,同时也降低了材料的疲劳寿命。在设计阶段对实际航行情况下的这种现象进行预测,对于通过制定适当的控制规律来防止船舶运营期间的损坏和故障至关重要。该分析基于单叶片载荷测量值,该测量值是通过将新型装置安装在双螺杆船的自由运行机动,自行式模型上获得的。该实验活动旨在表征不同船舶操作期间的单个叶片负载,特别是在操纵(标准操纵和安全操纵)和波浪运动方面。本文的重点是在不同的舵角和速度下执行的转弯回旋动作的笔直向前运动以及稳定和过渡阶段。结果表明,微动的发生对尾流的演变很敏感,因此对舵角也很敏感。此外,与螺旋桨的不对称行为一致,在左舷和右舷螺旋桨上触发微动的方式也有所不同。

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