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Active flow control using dense wireless sensor and actuator networks

机译:使用密集的无线传感器和执行器网络进行主动流控制

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This paper describes the design of an active flow control (AFC) system for aeronautics applications based on dense wireless sensor and actuator networks (WSANs). The objective of this AFC system is to track gradients of pressure (or wall shear stress) across the surface of the fuselage of commercial aircraft. This collected information is used to activate a set of actuators that will attempt to reduce the skin drag effect produced by the separation between laminar and turbulent flows. This is expected to be translated into increased lift-off forces, higher vehicle speeds, longer ranges and reduced fuel consumption. The paper describes the architecture of the system in the context of the European research project DEWI (dependable embedded wireless infrastructure) using the concept of the DEWI Bubble and its three-tier architecture especially designed to ensure dependability and interoperability in industrial WSANs. A system-level simulator is also proposed to model each process of the AFC system and the aeronautics DEWI Bubble infrastructure, highlighting the interactions between the network simulation and the results of the computational fluid dynamics (CFD) simulation. The key element in the proposed solution is a polygonal patch of wired sensors and actuators. This patch is provided with a wireless link to a central coordinator or access point conveniently located in the aircraft to maximize coverage to a network of distributed patches. A trade-off between scalability, size of the patches, fluid speed/viscosity, sampling sensor and actuator rates in space and time, and the capacity/delay characteristic of the wireless inter-patch and the wireline infra-patch communication technologies is also here discussed. The hybrid wireless/wired sensor and actuator network achieves great flexibility, scalability, manageability, troubleshooting, and modularity as compared to a solution exclusively based on wireline or wireless components. The final details of the prototype and results in a wind tunnel test-bed are here described, demonstrating the validity of the concept and the use of wireless technologies for aeronautical applications (flexible architecture and innovative services). Future issues regarding security, safety and trustiness of the AFC system are also briefly introduced in the context of the spin-off European project SCOTT (secure connected trusted things).
机译:本文介绍了基于密集无线传感器和执行器网络(WSAN)的航空应用主动流控制(AFC)系统的设计。该AFC系统的目的是跟踪商用飞机机身表面的压力梯度(或壁面剪应力)。该收集的信息用于激活一组执行器,该执行器将尝试减少由层流和湍流之间的分离产生的蒙皮拖曳效应。预计这将转化为增加的升力,更高的车速,更长的航程和减少的燃油消耗。本文在欧洲研究项目DEWI(可靠的嵌入式无线基础设施)的背景下,使用DEWI Bubble的概念及其三层体系结构(专门用于确保工业WSAN的可靠性和互操作性)来描述系统的体系结构。还提出了一个系统级仿真器,以对AFC系统和航空DEWI Bubble基础设施的每个过程进行建模,突出显示网络仿真与计算流体动力学(CFD)仿真结果之间的相互作用。提出的解决方案中的关键元素是有线传感器和执行器的多边形补丁。该补丁具有到中央协调器或方便地位于飞机上的接入点的无线链路,以最大程度地覆盖分布式补丁网络。可扩展性,补丁的大小,流体速度/粘度,采样传感器和执行器在空间和时间上的速率以及无线补丁间和有线红外补丁通信技术的容量/延迟特性之间的权衡也在这里讨论过。与仅基于有线或无线组件的解决方案相比,无线/有线传感器和执行器混合网络实现了极大的灵活性,可扩展性,可管理性,故障排除和模块化。这里描述了原型的最终细节以及在风洞试验台上的结果,证明了该概念的有效性以及在航空应用中使用无线技术(灵活的体系结构和创新服务)的有效性。在衍生的欧洲项目SCOTT(安全连接的受信任事物)的背景下,还将简要介绍有关AFC系统的安全性,安全性和可靠性的未来问题。

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