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High-Resolution and Large-Detection-Range Virtual Antenna Array for Automotive Radar Applications

机译:用于汽车雷达应用的高分辨率和大型检测范围的虚拟天线阵列

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摘要

Collision avoidance and autonomous control of vehicles have become essential needs for providing a high-quality and safe life. This paper introduces a new generic scheme for a virtual antenna array (VAA) and its application in a train collision-avoidance system (TCAS). The proposed TCAS shall have the capability of identifying the range and angle of an object in front of a moving train and provide the required alerts. Thereby, a new virtual array distribution for both the transmitting and the receiving antenna arrays is introduced to get a long-range object detection and high-resolution multi-input multi-output (MIMO) system. This can be accomplished because the VAA radiation pattern is the multiplication of the radiation patterns for both the transmitting and receiving antenna arrays, which is different than each one of them alone. In this work, the VAA is utilized in radar systems in which the radar range depends on the multiplication of the gain of the transmitting and receiving antennas. So, we introduce a new scheme for the general design of VAA-based radars. A prototype for the antenna system was fixed on a of Texas Instruments platform for the cascading radar. One of the main problems of the VAA is the loss of radiated power in undesired directions, which affects the maximum detection range in beamforming systems and degrades the diversity gain in MIMO applications. These issues have been solved by the introduction of the practical implementation of a proposed high-gain, low side lobe level VAA system for automotive radar that is based on the integration of four AWR1243 RF chips operating in a frequency range of 76 GHz to 81 GHz. It was implemented using low-power 45 nm (TI) RFCMOS technology. The measured gain of the realized VAA was 47.2 dBi, which was 1.815 times higher than that of the Texas instrumentation linear frequency modulated continuous wave (TI’ LFMCW) radar, which was 26 dBi. The proposed VAA saved 45% of the required implementation area compared to the TI’ LFMCW antenna array. The VAA system was fabricated and tested in an anechoic chamber, and it was found that the simulated and measured patterns of the proposed VAA were highly matched in terms of half-power beamwidth and side lobe level.
机译:碰撞避免和自主控制的车辆已经成为提供高质量和安全生活的必要需求。本文介绍了一种用于虚拟天线阵列(VAA)的新通用方案及其在列车碰撞避免系统(TCAS)中的应用。所提出的TCA应具有识别移动列车前面的物体的范围和角度并提供所需的警报。由此,引入了用于发送和接收天线阵列的新虚拟阵列分布,以获得远程对象检测和高分辨率多输入多输出(MIMO)系统。这可以实现,因为VAA辐射模式是发送和接收天线阵列的辐射图案的乘法,其与它们中的每一个不同。在这项工作中,VAA用于雷达系统,其中雷达范围取决于发送和接收天线的增益的乘法。因此,我们为基于VAA的雷达的一般设计介绍了一种新的方案。天线系统的原型是固定在德克萨斯仪器平台上的级联雷达的一个原型。 VAA的主要问题之一是在不希望的方向上丢失辐射功率,这会影响波束成形系统中的最大检测范围,并降低了MIMO应用中的分集增益。这些问题已经通过引入建议的高增益,用于汽车雷达的实际实施,这是用于汽车雷达的实际实施,这是基于在76 GHz至81 GHz的频率范围内运行的四个AWR1243 RF芯片的集成。它是使用低功率45nm(Ti)RFCMOS技术实现的。实现VAA的测量增益为47.2dBi,比德克萨斯仪器线性频率调制连续波(TI'LFMCW)雷达高1.815倍,为26dBI。与TI'LFMCW天线阵列相比,建议的VAA保存了45%所需的实施区域。在一个AneChice室中制造和测试VAA系统,发现所提出的VAA的模拟和测量图案在半功率束宽度和侧凸水平方面具有高度匹配。

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