船舶力学
船舶力學
선박역학
JOURNAL OF SHIP MECHANICS
2014年
11期
1377-1385
,共9页
圆柱壳%振动%声辐射%欧拉梁%等效杨氏模量系数
圓柱殼%振動%聲輻射%歐拉樑%等效楊氏模量繫數
원주각%진동%성복사%구랍량%등효양씨모량계수
cylindrical shell%vibration%sound radiation%Euler-Bernoulli beam%equivalent Young’s modulus coefficients
为了提高水下大长径比圆柱壳低频振动响应和辐射声功率的计算效率,该文提出了一种用水下梁模型等效计算的方法。该等效模型基于欧拉梁理论,采用附加水质量近似流固耦合作用,通过计算梁的等效杨氏模量系数,使其与圆柱壳的梁式弯曲振动模态对应。计算表明,对大长径比简支圆柱薄壳(L/a>20),等效梁杨氏模量系数主要取决于结构长径比,而厚度对其的影响甚小。文中还给出了不同长径比圆柱壳前五阶模态频率的等效杨氏模量系数曲线,利用梁模型并结合此曲线,可准确预报水下圆柱壳低频域辐射声功率和圆柱壳的梁式弯曲振动模态。
為瞭提高水下大長徑比圓柱殼低頻振動響應和輻射聲功率的計算效率,該文提齣瞭一種用水下樑模型等效計算的方法。該等效模型基于歐拉樑理論,採用附加水質量近似流固耦閤作用,通過計算樑的等效楊氏模量繫數,使其與圓柱殼的樑式彎麯振動模態對應。計算錶明,對大長徑比簡支圓柱薄殼(L/a>20),等效樑楊氏模量繫數主要取決于結構長徑比,而厚度對其的影響甚小。文中還給齣瞭不同長徑比圓柱殼前五階模態頻率的等效楊氏模量繫數麯線,利用樑模型併結閤此麯線,可準確預報水下圓柱殼低頻域輻射聲功率和圓柱殼的樑式彎麯振動模態。
위료제고수하대장경비원주각저빈진동향응화복사성공솔적계산효솔,해문제출료일충용수하량모형등효계산적방법。해등효모형기우구랍량이론,채용부가수질량근사류고우합작용,통과계산량적등효양씨모량계수,사기여원주각적량식만곡진동모태대응。계산표명,대대장경비간지원주박각(L/a>20),등효량양씨모량계수주요취결우결구장경비,이후도대기적영향심소。문중환급출료불동장경비원주각전오계모태빈솔적등효양씨모량계수곡선,이용량모형병결합차곡선,가준학예보수하원주각저빈역복사성공솔화원주각적량식만곡진동모태。
In order to improve the computational efficiency of the vibration and the sound radiation of un-derwater cylindrical shells with large length-to-radius ratio in the low-frequency range, a method by using the equivalent beams is proposed. The equivalent beam theoretical model is based on Euler-Bernoulli beam theory, in which the interaction between the structures and water is approximated to added mass. Different equivalent Young’s modulus coefficients for the beam models are obtained, through which the modal fre-quencies of the beams are made identical to the beam-type modal frequencies of the cylindrical shell with large length-to-radius ratio (L/a>20). The results show that the equivalent Young’s modulus coefficients are mainly dominated by the length-to-radius ratio for cylindrical shells, and the effect of the shell thickness on those is much weaker. The equivalent Young’s modulus coefficients curves for the first five order beam-type natural frequencies of cylindrical shells with different length-to-radius ratio are calculated, through which the radiated sound power and the beam-type modes of underwater cylindrical shells in the low-fre-quency range can be precisely predicted by using a simple beam theoretical model.