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Interceptor and trim tab combination to prevent interceptor's unfit effects

机译:拦截器和装饰条的组合可防止拦截器产生不良影响

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摘要

Trim tabs, small surfaces connected to the end of the craft to control the trim by adjusting the angle of tab, relative to the larger surface, have been used to optimize the running trim of displacement, semi-planning, and planning vessels for many years. Interceptors are the same as trim tabs, but are vertically installed at the end of the craft to control the trim by changing the height. As demonstrated in this paper, the same size as the interceptor and trim tab (when span and chord of trim tab are respectively equal to span and height of interceptor), the interceptor shows better efficiency (better trim and resistance reduction). While efficiency of trim tab just depends on the trim tab angle, the effective factors on the interceptor effectiveness are little complicated. The interceptor efficiency highly depends on the interceptor height and boundary layer thickness at transom. Although the higher interceptor increases the amount of lift force, but that could create a very strong moment against trim moment and consequently negative trim angle. The results of this investigation prove that the combination of an interceptor with a trim tab shows better performance compared to an interceptor or a trim tab. Also instead of increasing the interceptor height to gain more lift, which could make intense negative trim, it is better to use integrated interceptor with trim tab. To do so, a comprehensive series of dynamic CFD simulations have been performed in the case of a simple planning boat model with three different trim control appendages. Unsteady Reynolds Average Navier-Stokes equations (URANS) are applied to model the flow around the considered model with interceptor, trim tab and combination of an interceptor and a trim tab at an equal span length. The model is analyzed based on finite volume method and SIMPLE algorithm using dynamic meshes in the Fluent computational code. For validation of the CFD results, the Savitsky planning boat calculations (only for model boat) and the grid convergence index (GCI) were used to estimate the uncertainties due to grid-spacing and time-step.
机译:修整翼片是连接至飞船末端的小表面,可通过调节翼片相对于较大表面的角度来控制修整,多年来一直用于优化排水,半规划和规划船只的运行修整。拦截器与装饰片相同,但垂直安装在飞船的末端,以通过更改高度来控制装饰。如本文所示,与拦截器和装饰片的尺寸相同(当装饰片的跨度和弦长分别等于拦截器的跨度和高度时),拦截器显示出更好的效率(更好的修剪和降低的阻力)。尽管装饰片的效率仅取决于装饰片的角度,但对拦截器效果的影响因素并不复杂。拦截器的效率很大程度上取决于拦截器的高度和尾部的边界层厚度。尽管较高的拦截器会增加举升力,但是这可能会产生很大的力矩来抵抗纵倾力矩,从而产生负的纵倾角。这项调查的结果证明,与拦截器或装饰片相比,拦截器与装饰片的组合具有更好的性能。另外,与其增加拦截器的高度以获取更大的升力(可能会产生强烈的负修剪),不如使用带有“修剪”选项卡的集成拦截器。为此,在具有三个不同配平控制附件的简单规划船模型的情况下,已执行了一系列全面的动态CFD模拟。应用非稳态雷诺平均Navier-Stokes方程(URANS),以等距长度的拦截器,修剪选项卡以及拦截器和修剪选项卡的组合,对所考虑模型周围的流动进行建模。使用Fluent计算代码中的动态网格,基于有限体积法和SIMPLE算法对模型进行了分析。为了验证CFD结果,使用Savitsky规划船计算(仅适用于模型船)和网格收敛指数(GCI)来估算由于网格间距和时间步长而引起的不确定性。

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