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Turnover stability of shuttlecocks-Transient angular response and impact deformation of feather and synthetic shuttlecocks

机译:羽毛球瞬间角度响应和羽毛和综合羽毛球的影响变形的营业额稳定性

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This paper looks at the impact deformation and turnover stability of both feather and synthetic shuttlecocks using a racket based launcher. Flight of a shuttlecock can be described by steady state and unsteady state. Previous works were mainly focused on the steady state flight. While bulk of flight is in the steady state, the transient unsteady state is critical because it determines the initial condition of stabilized flight. The whole phase of rapid angular change during the unsteady state is the turnover process. Impact deformation and turnover response were studied with a racket-based launcher. Angles of attack with respect to time were recorded using high speed capturing. While the resultant plot showed significant variations between shuttles, most completed turnover process within 0.05s to 0.06s. Despite inherent disadvantage in density of the skirt material, turnover stability of synthetic shuttlecock was not compromised. All shuttles exhibited under damped behaviour in angular response and a 2nd order approximation was identified for the mean response of each. Feather shuttles have higher damping factor and smaller natural period. Higher-grade feather shuttle was observed to maintain skirt structural integrity better than lower tier shuttle in the impact deformation testing. Skirt stiffness is desirable to prevent deformation upon impact at higher racket speed. The practice grade feather shuttle displayed deformation pattern akin to a blooming flower, while the top grade shuttle was able to resist impact deformation at same racket speed. In conclusion, higher-grade shuttles could resist skirt deformation from racket-shuttle impact and attain steady state flight within a shorter time.
机译:本文使用基于球拍的发射器俯瞰羽毛和合成羽毛球的影响变形和换档稳定性。 Shuttlecock的飞行可以通过稳态和不稳定的状态来描述。以前的作品主要集中在稳定的国家飞行中。虽然大部分飞行处于稳定状态,但瞬态不稳定状态至关重要,因为它决定了稳定飞行的初始条件。在不稳定状态期间快速角度变化的整个阶段是营业额的过程。用基于球拍的发射器研究了影响变形和营业额响应。使用高速捕获来记录相对于时间的攻击角度。虽然所得到的曲线显示出梭之间的显着变化,但最多完成的营业额在0.05℃至0.06s之间。尽管裙材料密度具有固有的缺点,但合成梭子的周转稳定性并未受到损害。在角度响应中抑制行为和第二阶近似下展示的所有梭子都被识别为每个的平均响应。羽毛梭具有更高的阻尼因子和较小的自然时期。观察到较高级羽毛梭,以维持裙子结构完整性比较低层班车在碰撞变形测试中更好。裙部刚度是希望防止在较高球拍速度冲击时变形。练习级羽毛梭展示了类似于盛开的花的变形模式,而顶级班车能够抵抗相同的球拍速度的影响变形。总之,较高级的梭子可以抵抗球拍 - 梭子冲击的裙子变形,并在较短的时间内获得稳态飞行。

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