非确定性设计优化对预测实际螺旋桨性能的重要性

K. Vidal, B. Mallol, C. Hirsch, L. Poppelier
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引用次数: 1

摘要

螺旋桨的制造伴随着几何变化,这些变化存在于标准化精度等级规定的预定义公差范围内。虽然由这些公差等级控制,但设计上的变化可能会导致预期螺旋桨性能的下降。在经典的确定性设计优化中,工程师改进数字模型,而不考虑这些变化。因此,推荐了一种新型的优化方法,即由统计矩表示的制造变异性的影响最小化。本文提出了一种内河船舶导管螺旋桨的鲁棒非确定性优化方法。在此试验用例中,在轴向推力受限的情况下,考虑空化现象的发生,对螺旋桨效率的统计矩进行了优化。制造不确定度来源于ISO s级几何公差。最后,为了强调非确定性设计方法的优点,将鲁棒优化与确定性优化进行了比较。
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THE IMPORTANCE OF A NON-DETERMINISTIC DESIGN OPTIMIZATION FOR PREDICTING REAL-LIFE PROPELLER PERFORMANCES
The manufacturing of propellers comes with geometrical variability that lies within predefined tolerances decreed by standardized accuracy classes. Although controlled by these tolerances classes, the variation in the design might result in a degradation of the expected propeller behaviour. In a classical deterministic design optimization, engineers improve a digital model, without taking into account these variations. Hence a new type of optimization method is recommended whereby the impact of the manufacturing variability, represented by statistical moments, is minimized. This paper presents a robust non-deterministic optimization of a ducted marine propeller mounted on an inland vessel. In this test case, the statistical moments of the propeller efficiency are optimized while axial thrust is constrained and cavitation occurrence is considered. The manufacturing uncertainties are derived from the ISO geometrical tolerances S-class. Eventually, a robust optimum is compared with a deterministic optimum in order to underline the benefits of the non-deterministic design methodology.
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THE IMPORTANCE OF A NON-DETERMINISTIC DESIGN OPTIMIZATION FOR PREDICTING REAL-LIFE PROPELLER PERFORMANCES NUMERICAL STUDY OF ACOUSTIC CHARACTERISTICS OF A DTMB 4119 PROPELLER DUE TO TIP RAKE FULL SCALE PREDICTION OF HYDRODYNAMIC NOISE USING COMPUTATIONAL FLUID DYNAMICS AN ELECTRO-MECHANICAL CONTROLLABLE-PITCH PROPELLER PROPELLERS GEOMETRY MODELING THROUGH B-SPLINES SURFACES
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