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Reliability-based structural optimization using response surface approximations and probabilistic sufficiency factor.

机译:基于可靠性的结构优化,使用响应面近似和概率充足因子。

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Uncertainties exist practically everywhere from structural design to manufacturing, product lifetime service, and maintenance. Uncertainties can be introduced by errors in modeling and simulation; by manufacturing imperfections (such as variability in material properties and structural geometric dimensions); and by variability in loading. Structural design by safety factors using nominal values without considering uncertainties may lead to designs that are either unsafe, or too conservative and thus not efficient.; The focus of this dissertation is reliability-based design optimization (RBDO) of composite structures. Uncertainties are modeled by the probabilistic distributions of random variables. Structural reliability is evaluated in term of the probability of failure. RBDO minimizes cost such as structural weight subject to reliability constraints.; Since engineering structures usually have multiple failure modes, Monte Carlo simulation (MCS) was used employed to calculate the system probability of failure. Response surface (RS) approximation techniques were used to solve the difficulties associated with MCS. The high computational cost of a large number of MCS samples was alleviated by analysis RS, and numerical noise in the results of MCS was filtered out by design RS.; RBDO of composite laminates is investigated for use in hydrogen tanks in cryogenic environments. The major challenge is to reduce the large residual strains developed due to thermal mismatch between matrix and fibers while maintaining the load carrying capacity. RBDO is performed to provide laminate designs, quantify the effects of uncertainties on the optimum weight, and identify those parameters that have the largest influence on optimum design. Studies of weight and reliability tradeoffs indicate that the most cost-effective measure for reducing weight and increasing reliability is quality control.; A probabilistic sufficiency factor (PSF) approach was developed to improve the computational efficiency of RBDO, to design for low probability of failure, and to estimate the additional resources required to satisfy the reliability requirement. The PSF is a safety factor needed to meet the reliability target. The methodology is applied to the RBDO of composite stiffened panels for the fuel tank design of reusable launch vehicles. Examples are used to demonstrate the advantages of the PSF over other RBDO techniques.
机译:从结构设计到制造,产品终身服务和维护,不确定性几乎无处不在。不确定性可以由建模和仿真中的错误引起;由于制造缺陷(例如材料特性和结构几何尺寸的可变性);以及负载的可变性。不考虑不确定性而使用标称值的安全系数进行结构设计,可能会导致设计不安全或过于保守,从而导致效率低下。本文的重点是复合结构基于可靠性的设计优化。不确定性通过随机变量的概率分布来建模。结构可靠性是根据失效概率进行评估的。 RBDO最大限度地降低了成本,例如受可靠性约束的结构重量。由于工程结构通常具有多种故障模式,因此采用了蒙特卡洛模拟(MCS)来计算系统的故障概率。响应面(RS)近似技术用于解决与MCS相关的困难。通过分析RS可以减轻大量MCS样本的高计算成本,并通过设计RS过滤掉MCS结果中的数值噪声。研究了复合层压板的RBDO,用于低温环境中的氢气罐。主要的挑战是在保持负载能力的同时,减少由于基体和纤维之间的热失配而产生的大残余应变。执行RBDO可以提供层压板设计,量化不确定性对最佳重量的影响,并确定那些对最佳设计影响最大的参数。对重量和可靠性权衡的研究表明,减轻重量和增加可靠性的最具成本效益的措施是质量控制。为了提高RBDO的计算效率,设计低故障概率并估计满足可靠性要求所需的额外资源,开发了一种概率充足因子(PSF)方法。 PSF是满足可靠性目标所需的安全系数。该方法适用于复合加筋板的RBDO,用于可重复使用运载火箭的油箱设计。实例用于证明PSF相对于其他RBDO技术的优势。

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