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考虑连接的一体化机翼传力分析方法与结构设计
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作者 隋国祥 金海波 《航空工程进展》 2025年第1期169-176,共8页
一体化机翼体现了功能部件与机翼承载结构相融合的一体化设计思想,但是在结构中会出现蒙皮传力不连续、分离面连接难度大等问题,为结构设计增加难度。结合一体化机翼的结构特点,提出一种考虑连接的一体化机翼传力分析方法,对功能蒙皮设... 一体化机翼体现了功能部件与机翼承载结构相融合的一体化设计思想,但是在结构中会出现蒙皮传力不连续、分离面连接难度大等问题,为结构设计增加难度。结合一体化机翼的结构特点,提出一种考虑连接的一体化机翼传力分析方法,对功能蒙皮设计分离面处进行连接特性分析,完成连接设计与结构设计,并通过有限元分析与优化分析进行验证。结果表明:该传力分析方法计算出的盒段截面弯矩分配与有限元结果具有较好的一致性;盒段结构截面尺寸分布的分析结果与优化结果相近,能够满足连接强度与稳定性要求;盒段结构中有效高度越大的翼梁,承担的载荷越大,其优化结果与传力分析结果越吻合。 展开更多
关键词 一体化机翼 功能蒙皮 传力分析 结构分离面 有限元分析
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A High-Elasticity Router Architecture with Software Data Plane and Flow Switching Plane Separation 被引量:1
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作者 GAO Xianming WANG Baosheng +1 位作者 ZHANG Xiaozhe MA Shicong 《China Communications》 SCIE CSCD 2016年第3期37-52,共16页
Routers have traditionally been architected as two elements: forwarding plane and control plane through For CES or other protocols. Each forwarding plane aggregates a fixed amount of computing, memory, and network int... Routers have traditionally been architected as two elements: forwarding plane and control plane through For CES or other protocols. Each forwarding plane aggregates a fixed amount of computing, memory, and network interface resources to forward packets. Unfortunately, the tight coupling of packet-processing tasks with network interfaces has severely restricted service innovation and hardware upgrade. In this context, we explore the insightful prospect of functional separation in forwarding plane to propose a next-generation router architecture, which, if realized, can provide promises both for various packet-processing tasks and for flexible deployment while solving concerns related to the above problems. Thus, we put forward an alternative construction in which functional resources within a forwarding plane are disaggregated. A forwarding plane is instead separated into two planes: software data plane(SDP) and flow switching plane(FSP), and each plane can be viewed as a collection of "building blocks". SDP is responsible for packet-processing tasks without its expansibility restricted with the amount and kinds of network interfaces. FSP is in charge of packet receiving/transmitting tasks and can incrementally add switching elements, such as general switches, or even specialized switches, to provide network interfaces for SDP. Besides, our proposed router architecture uses network fabrics to achievethe best connectivity among building blocks,which can support for network topology reconfiguration within one device.At last,we make an experiment on our platform in terms of bandwidth utilization rate,configuration delay,system throughput and execution time. 展开更多
关键词 router architecture forwarding plane functional separation packet-processing task packet receiving/transmitting task network fabric
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