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PROBABILISTIC DESIGNS OF AIR-BEARING SURFACE ON MANUFACTURING TOLERANCES

机译:概率设计在制造公差上的空气轴承表面

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The focus in this paper is to automatically design the air-bearing surface (ABS) considering the randomness of its geometry as an uncertainty of design variables. Designs determined by the conventional optimization could only provide a low level of confidence in practical products due to the existence of uncertainties in either engineering simulations or manufacturing processes. This calls for a reliability-based approach to the design optimization, which increases product or process quality by addressing randomness or stochastic properties of design problems. In this study, a probabilistic design problem is formulated considering the reliability analysis which is employed to estimate how the fabrication tolerances of individual slider parameters affect the final flying attitude tolerances. The proposed approach first solves the deterministic optimization problem. Beginning with this solution, the reliability-based design optimization (RBDO) is continued with the probabilistic constraints affected by the random variables. Probabilistic constraints overriding the constraints of the deterministic optimization attempt to drive the design to a reliability solution with minimum increase in the objective. The simulation results of the probabilistic design are directly compared with the values of the initial design and the results of the deterministic optimum design, respectively. In order to show the effectiveness of the proposed approach, the reliability analyses by the Monte Carlo simulation are carried out. And the results demonstrate how efficient the proposed approach is, considering the enormous computation time of the reliability analysis.
机译:本文的重点是考虑到其几何形状的随机性作为设计变量的不确定性,自动设计空气表面(ABS)。由传统优化确定的设计可以仅由于工程模拟或制造过程中的不确定性存在而在实际产品中提供低水平的置信度。这呼吁通过基于可靠性的方法来设计优化,通过解决设计问题的随机性或随机性能来增加产品或工艺质量。在本研究中,考虑了概率设计问题,考虑了用于估计各个滑块参数的制造公差如何影响最终的飞行姿态公差的可靠性分析。所提出的方法首先解决了确定性优化问题。从该解决方案开始,继续基于可靠性的设计优化(RBDO)与受随机变量影响的概率约束继续。概率约束覆盖确定性优化尝试的约束,以使设计与目标最小增加的可靠性解决方案。概率设计的仿真结果分别与初始设计的值和确定性最佳设计的结果进行了比较。为了展示所提出的方法的有效性,执行蒙特卡罗模拟的可靠性分析。结果表明,考虑到可靠性分析的巨大计算时间,所提出的方法有多效率。

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