基于阵列风扇的非定常特种风洞技术研究进展

Advances in design and application of multi-array fan modular wind tunnel

  • 摘要: 基于阵列风扇的非定常特种风洞技术,是面向大气扰动、风切变等复杂非定常流动环境模拟需求而发展起来的新型实验平台。该技术通过高密度、独立可控的风扇阵列,实现了流场风速、风向及湍流特性的高自由度时空调控,显著提升了动态流场复现能力,成为支撑低空飞行器、城市风工程及低空微气象研究的关键设施。研究聚焦于分布式风扇结构优化、模块化设计、气动同步耦合以及智能化控制等核心环节,广泛采用计算流体力学仿真、人工智能优化和实时反馈等先进方法。当前,该技术面临阵列间气动耦合、非线性滞后效应、高频湍流重构精度等关键科学与技术瓶颈,亟须在多源传感、智能协同与端到端控制算法方面取得突破。典型应用涵盖无人机自由飞行试验、城市微气候再现及交通工具气动优化,推动非定常特种风洞平台向高性能、智能化及数字孪生深度融合的方向迈进。未来发展将依托人工智能、高分辨率传感及分布式智能控制,实现低空复杂工况下非定常特种风洞实验的高精度、全流程智能优化,并持续扩展其在结构安全、环境治理等多领域的高质量应用范围。

     

    Abstract: Modular multi-array fan wind tunnel technology represents a transformative advancement in experimental aerodynamics, overcoming fundamental limitations of traditional wind tunnels in structural rigidity, energy consumption, and flow-field reconfigurability. This innovation leverages high-density, independently controllable fan arrays to dynamically manipulate the flow field, enabling unprecedented dynamic control over wind speed, direction, and crucially, unsteady flow characteristics like turbulence. Consequently, this significantly enhances flow-field uniformity, spatiotemporal response, and terrain wind speed profile reproduction, establishing thistechnology as vital for aerospace, UAV testing, and urban microclimate studies. Current research focuses on optimizing distributed fan structures and modular design, managing inherent aerodynamic coupling, and developing intelligent control systems employing CFD, AI optimization, and real-time feedback. However, significant challenges persist concerning nonlinear hysteresis effects, large-section flow-field uniformity, and high-dynamic turbulence reconstruction; addressing these necessitates breakthroughs in multi-source sensing and intelligent control algorithms. Driven by diverse applications, the technology's evolution consequently moves towards deeper AI integration and synergy with digital twins. Future developments will leverage AI/ML, high-resolution sensing, and distributed control to achieve high-precision testing under extreme conditions while expanding into structural safety and environmental domains.

     

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