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61.
62.
一种面向复杂系统的模糊可靠性分配方法 总被引:4,自引:1,他引:4
针对系统研制初期的不确定的约束条件与设计目标 ,进行了复杂系统模糊可靠性分配建模 ;结合遗传算法理论 ,考虑了一般系统的求解 ;实例分析验证了所提出方法的性能和可行性 . 相似文献
63.
朱崇军 《海军工程大学学报》2002,14(5):4-7
研究了非线性无穷时滞微分系统解的一致有界性和一致最终有界性.推广了这一研究领域的某些结果,便于对无穷时滞系统进行分析与综合. 相似文献
64.
系统可靠性分配是可靠性设计的重要任务之一,其主要作用是为可靠性设计提供辅助决策。给出了可靠性分配流程,研究了可靠性分配模型的发展状况,重点介绍了可靠性分配问题的求解算法,指出了各类算法在分配中的应用及其需进一步解决的问题,同时分析了国内外典型的分配软件,总结了各软件中可靠性分配的主要功能,最后对可靠性分配提出了进一步的研究展望。 相似文献
65.
提出了基于实值离散Gabor变换的阶比跟踪滤波方法.分析了阶比跟踪滤波为时频滤波的实质,给出了如何通过实值离散Gabor变换实现阶比跟踪滤波的步骤.通过对仿真信号阶比跟踪滤波前后的时频分布、阶比谱和时域信号对比,证实本方法能有效滤除阶比混叠成分.通过延长信号两端采样长度的方法可以消除阶比跟踪滤波后端点的误差. 相似文献
66.
《防务技术》2022,18(10):1842-1851
In this study, the approximate and exact solutions for the stationary-state of the solids model with neglecting reactant consumption for both non-uniform and uniform temperature systems were applied on gas ignition under a constant pressure condition. The criticality conditions for a slab, an infinite cylinder, and a sphere are determined and discussed using dimensionless temperatures under constant ambient and surface temperatures for a non-uniform temperature system. Exact solution for a Semenov model with convection heat loss was also presented. The solution of the Semenov problem for constant volume or density as a solid and constant pressure were compared. The critical parameter δ is calculated and compared with those of Frank-Kamenetskii solution values. The validation of the calculated ignition temperatures with other exact solution and experimental results were offered. The relation between critical parameters form Semenov and F.K. models solution was introduced. 相似文献
67.
In this article, we introduce the capacitated warehouse location model with risk pooling (CLMRP), which captures the interdependence between capacity issues and the inventory management at the warehouses. The CLMRP models a logistics system in which a single plant ships one type of product to a set of retailers, each with an uncertain demand. Warehouses serve as the direct intermediary between the plant and the retailers for the shipment of the product and also retain safety stock to provide appropriate service levels to the retailers. The CLMRP minimizes the sum of the fixed facility location, transportation, and inventory carrying costs. The model simultaneously determines warehouse locations, shipment sizes from the plant to the warehouses, the working inventory, and safety stock levels at the warehouses and the assignment of retailers to the warehouses. The costs at each warehouse exhibit initially economies of scale and then an exponential increase due to the capacity limitations. We show that this problem can be formulated as a nonlinear integer program in which the objective function is neither concave nor convex. A Lagrangian relaxation solution algorithm is proposed. The Lagrangian subproblem is also a nonlinear integer program. An efficient algorithm is developed for the linear relaxation of this subproblem. The Lagrangian relaxation algorithm provides near‐optimal solutions with reasonable computational requirements for large problem instances. © 2008 Wiley Periodicals, Inc. Naval Research Logistics, 2008 相似文献
68.
In this paper we present a componentwise delay measure for estimating and improving the expected delays experienced by customers in a multi‐component inventory/assembly system. We show that this measure is easily computed. Further, in an environment where the performance of each of the item delays could be improved with investment, we present a solution that aims to minimize this measure and, in effect, minimizes the average waiting time experienced by customers. © 2002 Wiley Periodicals, Inc. Naval Research Logistics 50: 2003 相似文献
69.
We consider a two‐echelon inventory system with a manufacturer operating from a warehouse supplying multiple distribution centers (DCs) that satisfy the demand originating from multiple sources. The manufacturer has a finite production capacity and production times are stochastic. Demand from each source follows an independent Poisson process. We assume that the transportation times between the warehouse and DCs may be positive which may require keeping inventory at both the warehouse and DCs. Inventory in both echelons is managed using the base‐stock policy. Each demand source can procure the product from one or more DCs, each incurring a different fulfilment cost. The objective is to determine the optimal base‐stock levels at the warehouse and DCs as well as the assignment of the demand sources to the DCs so that the sum of inventory holding, backlog, and transportation costs is minimized. We obtain a simple equation for finding the optimal base‐stock level at each DC and an upper bound for the optimal base‐stock level at the warehouse. We demonstrate several managerial insights including that the demand from each source is optimally fulfilled entirely from a single distribution center, and as the system's utilization approaches 1, the optimal base‐stock level increases in the transportation time at a rate equal to the demand rate arriving at the DC. © 2011 Wiley Periodicals, Inc. Naval Research Logistics, 2011 相似文献
70.
根据电场的作用机理,提出保障场的概念,从场思维的角度构建装备保障力量配置分析的优化模型;并进一步定量分析与定性判断相结合,提出装备保障力量配置优化的流程,最后结合实例具体分析。研究结果对装备保障的部署决策具有一定参考价值和指导意义。 相似文献