首页> 外文会议>Symposium on Cavitation >Effect of hole-to-hole spacing and row-to-row spacing as well as inclined angle of venting holes on the pressure-equalizing film along the surface of a vertical launched underwater vehicle
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Effect of hole-to-hole spacing and row-to-row spacing as well as inclined angle of venting holes on the pressure-equalizing film along the surface of a vertical launched underwater vehicle

机译:孔对孔间距和行到行间距的影响以及沿垂直发射水下车辆表面的压力均衡膜上的倾斜角度倾斜角度

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Pressure-equalizing film is a slice of air layer attached to vehicle's exterior with nearly uniform inner pressure. Similar to ventilated cavity in composition, it is generated through exhaust process via venting holes as vehicle travels from launch tube to water surface, and could significantly weaken the pitching moment and environment disturbance that vehicle suffers. Depending on the venting structure, the forming speed of this film as well as its covering range on vehicle's exterior are the key factors that determine the improvement effect of vehicle's trajectory stability. In this article, the emerging process of vehicle through the water layer with pressure-equalizing film is simulated. Based on previous work, single-row holes with different hole-to-hole spacings and double-row holes with different row-to-row spacings as well as inclined angles are chose to investigate the influence of geometry parameters and arrangements of holes on the evolution of air film and the hydrodynamic characteristics of vehicle. Discussions about the distribution of phase and pressure, mass flow rate, and vortices motion near venting holes indicate that, as the value of pitch to diameter ratio (s/d) increases with the same total exhaust area, film length grows faster with the inner vortex structures further development. As for the double-row hole cases, reverse flow between different rows of holes is induced which has enlarged the size of film covering the exits of back holes, leading to the faster exhausting of back holes. Besides, the decreasing of row-to-row spacing inhibits the growing of film length, and simplifies the flow structures that dominate the reverse flow While as the venting holes gradually incline to the gravity direction (inclined angle changes from 90°/90°to 90745°to 45°/45°), the shearing action and impeding effect of surrounding water decrease, which have weakened the reverse flow and promoted the axial extension of air film in some degree.
机译:压力均衡膜是一片空气层,其空气层连接到车辆的外部,内部压力几乎均匀。与组合物中的通风腔类似,通过排气过程通过排气过程产生,因为车辆从发射管到水面行驶,并且可以显着削弱车辆遭受的俯仰力矩和环境干扰。根据通风结构,本胶片的成形速度以及其车辆外部的覆盖范围是确定车辆轨迹稳定性的提高效果的关键因素。在本文中,模拟了通过水层的车辆通过具有压差均衡膜的新出现过程。基于以前的工作,具有不同的孔到孔间距的单排孔和具有不同行到行间距的双排孔以及倾斜角度都选择了几何参数和孔的布置对孔的影响。空气薄膜的演变与载体的流体动力学特性。关于相位和压力,质量流量和涡流运动近的分布的讨论表明,随着距直径比(S / D)的值随着总排气区域的增加而增加,薄膜长度随内部增长涡旋结构进一步发展。对于双排孔壳,诱导不同排孔之间的反向流动,其增大了覆盖后孔的薄膜的薄膜的尺寸,导致后孔的速度更快。此外,排行间距的减小抑制了薄膜长度的生长,并简化了占据反向流动的流动结构,同时当通气孔逐渐倾斜到重力方向(倾斜角度从90°/ 90°变化) 90745°至45°/ 45°),剪切动作和周围水的阻力效果降低,这已经削弱了反向流动并在某种程度上促进了空气膜的轴向延伸。

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