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首页> 外文期刊>Bioinspiration & biomimetics >Effect of vehicle configuration on the performance of a submersible pulsed-jet vehicle at intermediate Reynolds number
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Effect of vehicle configuration on the performance of a submersible pulsed-jet vehicle at intermediate Reynolds number

机译:雷诺数中等时,车辆配置对潜水式脉冲喷气式车辆性能的影响

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摘要

Recent results have demonstrated that pulsed-jet propulsion can achieve propulsive efficiency greater than that for steady jets when short, high frequency pulses are used, and the pulsed-jet advantage increases as Reynolds number decreases into the intermediate range (50). An important aspect of propulsive performance, however, is the vehicle configuration. The nozzle configuration influences the jet speed and, in the case of pulsed-jets, the formation of the vortex rings with each jet pulse, which have important effects on thrust. Likewise, the hull configuration influences the vehicle speed through its effect on drag. To investigate these effects, several flow inlet, nozzle, and hull tail configurations were tested on a submersible, self-propelled pulsed-jet vehicle (Robosquid for short) for jet pulse length-to-diameter ratios (L/D) in the range 0.5-6 and pulsing duty cycles (St L) of 0.2 and 0.5. For the configurations tested, the vehicle Reynolds number (Re υ) ranged from 25 to 110. In terms of propulsive efficiency, changing between forward and aft-facing inlets had little effect for the conditions considered, but changing from a smoothly tapered aft hull section to a blunt tail increased propulsive efficiency slightly due to reduced drag for the blunt tail at intermediate Re υ. Sharp edged orifices also showed increased vehicle velocity and propulsive efficiency in comparison to smooth nozzles, which was associated with stronger vortex rings being produced by the flow contraction through the orifice. Larger diameter orifices showed additional gains in propulsive efficiency over smaller orifices if the rate of mass flow was matched with the smaller diameter cases, but using the same maximum jet velocity with the larger diameter decreased the propulsive efficiency relative to the smaller diameter cases.
机译:最近的结果表明,当使用短的高频脉冲时,脉冲喷气推进比常规喷气可以获得更高的推进效率,并且随着雷诺数减小到中间范围,脉冲喷气的优势会增加(50)。然而,推进性能的重要方面是车辆配置。喷嘴的形状会影响射流速度,在脉冲射流的情况下,会影响每个射流脉冲的涡流环的形成,这对推力有重要影响。同样,船体配置通过其对阻力的影响来影响车速。为了研究这些影响,在潜水式自推进式脉冲喷气飞行器(以下简称“ Robosquid”)上测试了几种进水口,喷嘴和船体尾部配置,以使喷射脉冲的长径比(L / D)在0.5-6,脉冲占空比(St L)为0.2和0.5。对于测试配置,车辆雷诺数(Reυ)在25到110之间。就推进效率而言,在前进气口和后进气口之间进行转换对于所考虑的条件影响不大,但是从平滑的锥形后部船体截面进行了更改。钝尾的推进效率略有提高,这是由于中间Reυ钝尾的阻力减小了。与光滑的喷嘴相比,锋利的边缘孔口还显示出更高的车速和推进效率,这与通过孔口的流动收缩产生更强的涡流环有关。如果质量流率与较小直径的情况相匹配,则较大直径的孔比较小的孔显示出更高的推进效率,但是相对于较小直径的情况,使用相同的最大射流速度和较大直径会降低推进效率。

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