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Gravity Forcing of Surface Waves

机译:表面波的重力强迫

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Surface waves in deep water are forced entirely by gravity at the air-sea interface when no other forces act tangentially to the surface. Then, according to Newton's second law, the fluid acceleration parallel to the surface must equal the component of gravity parallel to the surface. Between crest and trough the fluid accelerates; between trough and crest the fluid decelerates. By replacing Bernoulli's law, gravity forcing becomes the dynamic boundary condition needed to solve the mathematical problem of these waves. Irrotational waves with a sinusoidal profile satisfy the gravity forcing condition, with the usual dispersion relation, provided the slope is small compared to one, as is true also of the Stokes development. However, the exact wave shape can be calculated using the gravity forcing method in a way that is less complex and less time-consuming than that of the Stokes perturbation expansion. To the second order the surface elevation is the same as the Stokes resu the third-order calculation has not been made. Extensions of the gravity forcing concept can easily be carried out for multiple wave trains, solitary waves and bores, waves infinite constant mean depths, and internal waves in a two-layer system. For shoaling surface waves that encounter gradually decreasing mean depths of water gravity forcing provides a physical understanding of the progressive steepening often observed near shore. The initial wave steepening, which might lead to breaking, is caused by a decrease in wavelength rather than an increase in wave height, and therefore this process does not behave like a normal instability mechanism.
机译:当没有其他力切向地表时,深水中的表面波完全被重力在海气界面处强迫。然后,根据牛顿第二定律,平行于表面的流体加速度必须等于平行于表面的重力分量。在波峰和波谷之间,流体加速流动。在波谷和波峰之间,流体减速。通过取代伯努利定律,重力强迫成为解决这些波动的数学问题所需的动态边界条件。具有正弦曲线轮廓的非旋波满足重力强迫条件,并具有通常的色散关系,但前提是坡度比坡度小,这对斯托克斯发展也是如此。但是,可以使用重力强迫方法以比斯托克斯摄动扩展更简单,更省时的方式来计算精确的波形。对于第二阶,表面标高与斯托克斯结果相同;尚未进行三阶计算。重力强迫概念的扩展可以轻松实现,适用于两层系统中的多个波列,孤波和孔,无限恒定平均深度的波以及内部波。对于浅水波,遇到平均水深逐渐减小的重力,重力强迫提供了对通常在海岸附近观察到的逐渐陡峭的物理理解。初始波变陡可能会导致破裂,其原因是波长减小而不是波高增加,因此此过程的行为不像正常的不稳定机制。

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