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Wave-piercing catamaran transom stern ventilation process

机译:穿浪双体船尾部通风工艺

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The new class of highly fuel-efficient medium-speed catamarans operate at speeds where the transom is partially or fully ventilated, hence it is important to understand the characteristics of the wake for resistance prediction. Unsteady Reynolds-Averaged Navier Stokes simulations were used to simulate the flow around a 98 m catamaran, at both model and full scale, and compared to model test results for a 1∶22 scale model. A non-shedding squashed horseshoe vortex was found to build up in the stagnant zone past the vessel, with the transom running dry at transom draft Froude numbers of 2.5 in model test experiments and at transom draft Froude numbers of 2.4 in numerical simulations. For full-scale Reynolds numbers, ventilation occurred at transom draft Froude numbers of 2.2. Finally, unsteady Reynolds-Averaged Navier Stokes simulations are capable of accurately predicting the recirculating flow in the wake of the vessel and the state of transom ventilation.
机译:新型的高燃油效率中速双体船以尾气部分或完全通风的速度运行,因此,重要的是要了解尾流的特性以进行阻力预测。使用非稳态雷诺平均Navier Stokes模拟在模型和全比例下模拟98 m双体船周围的水流,并将其与1∶22比例模型的模型测试结果进行比较。在模型停滞后的停滞区内发现了一个不脱落的,挤压的马蹄形涡流,在模型试验实验中,尾板的弗劳德数为2.5,尾板的弗劳德数为2.4,尾板处于干态。对于满量程的雷诺数,通风在尾气Froude数为2.2时发生。最后,不稳定的雷诺平均Navier Stokes模拟能够准确预测船只尾流和船尾通风状态下的再循环流量。

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