Philips Research Europe, HTC 36 (WO-02), NL-5656AE Eindhoven, The Netherlands.
J Acoust Soc Am. 2010 Apr;127(4):2262-73. doi: 10.1121/1.3303978.
It has been argued that the sound radiation of a loudspeaker is modeled realistically by assuming the loudspeaker cabinet to be a rigid sphere with a resilient spherical cap. Series expansions, valid in the whole space outside the sphere, for the pressure due to a harmonically excited cap with an axially symmetric velocity distribution are presented. The velocity profile is expanded in functions orthogonal on the cap, rather than on the whole sphere. As a result, only a few expansion coefficients are sufficient to accurately describe the velocity profile. An adaptation of the standard solution of the Helmholtz equation to this particular parametrization is required. This is achieved by using recent results on argument scaling of orthogonal (Zernike) polynomials. The approach is illustrated by calculating the pressure due to certain velocity profiles that vanish at the rim of the cap to a desired degree. The associated inverse problem, in which the velocity profile is estimated from pressure measurements around the sphere, is also feasible as the number of expansion coefficients to be estimated is limited. This is demonstrated with a simulation.
有人认为,通过假设扬声器外壳为具有弹性球形盖的刚性球体,可以真实地模拟扬声器的声辐射。本文给出了在球体外部整个空间中,由于具有轴对称速度分布的谐波激励帽而产生的压力的级数展开式。速度分布被扩展为在帽上的正交函数,而不是在整个球体上。因此,只需几个展开系数就足以准确描述速度分布。需要将亥姆霍兹方程的标准解适用于这种特殊的参数化。这是通过使用最近关于正交(泽尼克)多项式的参数缩放的结果来实现的。通过计算某些速度分布的压力来演示该方法,这些速度分布在帽的边缘处以期望的程度消失。由于要估计的展开系数数量有限,因此也可以解决从球体周围的压力测量中估计速度分布的相关逆问题。通过模拟演示了这一点。