Wind Velocity Profile and Representative Wind Velocity for Wind Resistance Measurement of Ship Models

K. Kume, Hiroki Ohba, H. Orihara, S. Mizokami
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引用次数: 4

Abstract

Wind resistances and moment acting on a ship model measured in a wind tunnel are non-dimensionalized using the air density, the projected area of the model and the representative wind velocity. However, there is no common definition of the representative wind velocity in wind tunnel tests for ships, thus wind velocities which are obtained by an anemometer fixed in a certain place in a wind tunnel or measured at a height equivalent to 10 m from the sea surface are often used. In principle, there is no problem as long as the wind velocity profile under the same condition is assumed and the wind velocity at the same position is employed when the wind resistance coefficients are converted into forces of different scales. Nevertheless, if the wind velocity distributions between in the wind tunnel test and the assumed distribution by the user are different, the wind resistance coefficients cannot be used in the first place. And the existence of various definitions of non-dimensionalization makes it difficult to simply compare wind resistance coefficients themselves. Since it is meaningful to clarify the definition of the representative wind velocity which can provide wind resistances in a realistic and reasonable manner using the wind resistance coefficients without being influenced by the assumed wind velocity distribution, it was derived from the results of wind tunnel tests under the conditions of various wind velocity profiles and using various types of ship models. Furthermore, the influence of the wind velocity profile on the wind resistance measurement was evaluated with the results of the wind resistance measurement in different wind velocity profiles. Several findings on the wind velocity profile required for wind resistance measurements are reported in this paper.
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船舶模型风阻测量的风速廓线和代表风速
利用空气密度、模型投影面积和代表风速对风洞中船舶模型的风阻和风力矩进行了无因次化处理。然而,船舶风洞试验中具有代表性的风速并没有统一的定义,因此通常使用固定在风洞某一位置的风速计获得的风速或在距离海面10米的高度测量的风速。原则上,当风阻系数转换成不同尺度的力时,只要假设相同条件下的风速廓线,并采用相同位置的风速,就没有问题。但是,如果风洞试验中的风速分布与用户假设的风速分布不一致,则首先不能使用风阻系数。而各种无量纲化定义的存在,使得风阻系数本身难以进行简单的比较。考虑到在不受假设风速分布影响的情况下,利用风阻系数来明确能够真实合理地提供风阻力的代表性风速的定义是有意义的,因此本文根据不同风速廓线条件下和不同型号船模的风洞试验结果得出了代表性风速的定义。利用不同风速廓线的风阻测量结果,评价了风速廓线对风阻测量的影响。本文报道了风阻测量所需的风速廓线的几个研究结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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