【24h】

A novel digital receiver concept for ISRO's future remote sensing radars

机译:一种新的数字接收器概念,用于ISRO未来的遥感雷达

获取原文

摘要

Technology development related to digital, antenna and RF subsystems for Microwave Radar Sensors like Synthetic Aperture Radar, Scatterometer, Altimeter and Radiometer is one of the major activities under JSRO's microwave remote sensing programme, since 1980s. These technologies are now being gainfully utilized for building ISRO's operational Earth Observation missions involving microwave sensors like Radar Imaging Satellite, RISAT SAR, Oceansat-2 Scatterometer, Megha-Tropiques, MADRAS and Airborne SAR for Disaster Management, DMSAR. Concurrently, advanced technology developments in these fields are underway to meet the major technological challenges of building ISRO's proposed advanced microwave missions like ultra-high resolution SAR's, Synthetic Aperture Radiometer (SARAD), Milli-meter and sub-millimeter wave sounders and SAR Constellations for Disaster management as well as lnterferometric, Polarmetric and polarmetric interferometry applications. Also, these hardware are being designed with core radar electronics concept, in which the same RF and digital hardware sub-units / modules will be utilized to build different microwave radar sensors. One of the major and common requirements for all these active and passive microwave sensors is the moderate to highspeed data acquisition and signal processing system. Traditionally, the Data acquisition units for all these radar sensors are implemented as stand-alone units, following the radar receivers. For ISRO's C-band airborne SAR (ASAR) and RISAT high resolution SAR, we have designed and developed High Speed 8-bit ADC based I/Q Digitisers, operating at 30.814 MHz and 250 MHz sampling rates, respectively. With the increasing demand of wide bandwidth and ultra-high resolution in imaging and non-imaging radar systems, the technology trend worldwide is towards a digital receiver, involving bandpass or IF sampling, thus eliminating the need for RF down converters and analog IQ demodulators. In order to evolve a generic configuration for all the microwave sensors, we have initiated design and development of a generic L-band digital receiver, consisting of receiver elements (LNA, digital attenuator and Bandpass filter) followed by Analog-to-Digital Converter. The digitised data can then be output in parallel or serial format. Additionally, a digital signal processor performing tasks like data compression, convolution or correlation and formatting can also be integrated with this generic digital receiver. The front end of the receiver is wide-band, catering to bandwidths of upto 2 GHz while the digitisation rates are also of the order of 1-2 GHz. It is proposed to standardize the design and use this generic receiver for front end data acquisition of all the future microwave sensors. It will meet the digitisation requirements of 500 MHz to 1 GHz for ultra-high resolution (0.25-0.5 meter) SAR as well as direct sampling of the signal around 1.4GHz for L-band Synthetic Aperture Radiometer. After initial prototyping using discrete receiver elements and ultra-high speed 8-bit ADC, it will be taken up as a custom ASIC or multi-chip module consisting of RF MMIC's and a mixed signal ADC ASIC. These designs will be fabricated using InP, GaAs or SiGe process technologies at competent foundries like GATEC, SCL, Infineon/Germany, X-Fab/Germany and Ommic-Philips/France. This novel digital receiver will offer several advantages like flexibility, stability, reduced RF hardware and miniaturisation. This paper describes the ultra-high speed design requirements, configuration details and target specifications and salient features of this generic L-band digital receiver for ISRO's future spaceborne and airborne radar missiions. It also addresses the associated signal integrity, EMI/EMC and thermal issues.
机译:技术开发相关的数字,天线和射频子系统像合成孔径雷达微波雷达传感器,微波散射计,高度计和辐射计是在JSRO的微波遥感方案的主要活动之一,20世纪80年代以来。这些技术正在酬用于建设印度空间研究组织的涉及微波传感器,如雷达成像卫星RISAT SAR,OCEANSAT-2散射计,热带云,马德拉斯和机载SAR灾害管理,DMSAR的地球观测任务。同时,先进技术的发展在这些领域正在进行中,以满足建筑ISRO提出的先进的微波任务一样的超高分辨率SAR的合成孔径辐射计(SARAD),纯水仪和亚毫米波探测器和SAR星座的主要技术挑战灾害管理以及lnterferometric,Polarmetric和polarmetric干涉测量应用。此外,这些硬件正在设计用芯雷达电子概念,其中相同的RF和数字硬件的子单元/模块将被用来建立不同的微波雷达传感器。一的所有这些有源和无源微波传感器的主要和共同的要求是中等至高速数据采集和信号处理系统。传统上,数据采集单元,所有这些雷达传感器被实现为独立单元,下面雷达接收。对于ISRO的C波段机载SAR(ASAR)和RISAT高分辨率SAR,我们设计和开发分别高速8位ADC基于I / Q数字化仪,在30.814 MHz和250 MHz的采样速率工作。随着宽带宽和超高分辨率成像和非成像雷达系统的需求不断增加,上述技术趋势在全世界是向数字接收器,包括带通或IF采样,从而省去了RF下转换器和模拟IQ解调器。为了发展一种通用的配置对于所有的微波传感器,我们已开始一个通用的L波段数字接收机的设计和开发,由接收器元件(LNA,数字衰减器和带通滤波器),接着模拟数字转换器。然后将数字化数据可以是并行或串行格式输出。此外,在执行像数据压缩,卷积或相关和格式化的任务的数字信号处理器也可以与此通用数字接收机集成在一起。接收器的前端是宽频带,迎合高达2GHz的带宽,而数字化速率是1-2 GHz量级的也。提议规范设计,并使用所有未来的微波传感器的前端数据采集这个通用接收器。这将满足500 MHz到1 GHz的超高分辨率(0.25-0.5米)SAR以及围绕1.4GHz的信号进行L波段合成孔径微波辐射计的直接采样数字化的要求。使用分立接收器元件和超高速8位ADC的初始原型之后,它将被收集成定制ASIC或由RF MMIC的多芯片模块和混合信号ASIC ADC。这些设计将使用磷化铟,砷化镓或SiGe的工艺技术在主管代工厂等GATEC,SCL,英飞凌/德国,X-FAB /德国和Ommic飞利浦/法国制造。这种新颖的数字接收器将提供几个优点等柔性,稳定性,降低的RF硬件和小型化。本文介绍了超高速的设计要求,配置细节和目标规格和印度空间研究组织的未来星载和机载雷达missiions这个通用的L波段数字接收机的显着特征。这也解决了相关的信号完整性,EMI / EMC和散热问题。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号