FPGA-based embedded system for wind tunnel variable-geometry nozzle positioning

B. Ilic, Mirko Milosavljević
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引用次数: 3

Abstract

Over the last few decades, the accuracy requirements for wind tunnel testing have become much more stringent as aircraft industry strives to achieve the best performance of their products. Investments in advanced capabilities are necessary to obtain more accurate test results more efficiently, ensuring that the wind tunnels stay productive well into the future. The VTI Belgrade T-38 wind tunnel responded to these challenges by applying a hierarchical approach to design a distributed multilevel control system, a part of which is the variable-geometry nozzle positioning system, presented in this paper. It follows the hierarchy of the entire wind tunnel control system, with critical positioning loops at the field-programmable gate array (FPGA), and the user interface with real-time data analysis capability implemented on a central wind tunnel computer. In addition to more accurate positioning, the FPGA-based control system significantly improved overall operation efficiency, speed and reliability. Since the nozzle geometry uniquely determines supersonic Mach number, the improved positioning accuracy is verified in wind tunnel tests
基于fpga的嵌入式风洞变几何喷管定位系统
在过去的几十年里,随着飞机工业努力实现其产品的最佳性能,对风洞测试的精度要求变得更加严格。为了更有效地获得更准确的测试结果,确保风洞在未来保持良好的生产能力,对先进能力的投资是必要的。VTI贝尔格莱德T-38风洞通过采用分层方法设计分布式多级控制系统来应对这些挑战,其中一部分是本文提出的可变几何喷嘴定位系统。它遵循整个风洞控制系统的层次结构,在现场可编程门阵列(FPGA)上具有关键定位回路,并在中央风洞计算机上实现具有实时数据分析能力的用户界面。除了更精确的定位外,基于fpga的控制系统显著提高了整体运行效率、速度和可靠性。由于喷管的几何形状决定了超音速马赫数,因此改进的定位精度在风洞试验中得到了验证
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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