Maximizing firm-track range on low-observable targets

D. K. Barton
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Abstract

It has been shown that a multifunction radar can initiate firm tracks at ranges well beyond those at which its search function would have sufficient single-scan detection probability to support reliable track initiation and track-while-scan operation. The advantage, attributable to the sequential detection process of alarm followed by validation, represents an increase in range capability corresponding to some four to six decibels in power-aperture product (25% to 40% in range). A disadvantage is that the target must be detected initially in the microwave band that supports the tracking function, and the low-observable target may have very low cross section in that band, requiring a very high search power-aperture product to cover the required volume in space. An alternative system design procedure uses a lower-frequency search radar and a multiple-channel, electronically scanned tracking radar in which an unused fire control channel performs the same validation and track initiation steps as would be used in a multifunction radar, based on an unvalidated alarm from the search radar. The search radar need not obtain the string of three or more detections that would be required for it to establish a firm track, and hence the same four to six decibel advantage is obtained as with the multifunction radar, but with search at the more optimum lower frequency. The result is to combine the sequential-detection gain of the multifunction radar with the RCS enhancement of the lower-frequency search radar to maximize firm-track range on all targets.
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在低可观测目标上最大化固定跟踪范围
研究表明,多功能雷达可以在远超过其搜索功能具有足够单扫描探测概率的范围内启动可靠的跟踪,从而支持可靠的跟踪启动和边扫描边跟踪操作。由于警报的顺序检测过程随后进行验证,其优势代表了范围能力的增加,相应的功率孔径产品增加了大约4到6分贝(范围增加了25%到40%)。缺点是必须首先在支持跟踪功能的微波波段检测目标,而低可观测目标在该波段的横截面可能非常低,需要非常高的搜索功率-孔径乘积才能覆盖所需的空间体积。另一种系统设计程序使用低频搜索雷达和多通道电子扫描跟踪雷达,其中一个未使用的火控通道执行与多功能雷达相同的验证和跟踪启动步骤,基于来自搜索雷达的未经验证的警报。搜索雷达不需要获得三个或更多的探测串,这将需要它建立一个坚实的轨道,因此获得与多功能雷达相同的4到6分贝优势,但搜索在更理想的较低频率。结果是将多功能雷达的序列探测增益与低频搜索雷达的RCS增强相结合,以最大化对所有目标的固定跟踪距离。
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