
【国外标准】 IEEE Standard Letter Designations for Radar-Frequency Bands
本网站 发布时间:
2025-04-28
- IEEE 521-2019
- 定价: 58元 / 折扣价: 50 元
- 在线阅读
开通会员免费在线看70000余条国内标准,赠送文本下载次数,单本最低仅合13.3元!还可享标准出版进度查询、定制跟踪推送、标准查新等超多特权!  
查看详情>>

适用范围:
Since World War II, radar systems engineers have used band letter designations as a short notation for describing the frequency band of operation. This usage has continued throughout the years and is now an accepted practice of radar engineers. Radar-frequency letter designations are used for the following reasons: - They provide a convenient method for describing the band in which the radar operates without the need for awkwardly stating the frequency limits in numerical terms. For example, it… read more is more convenient to say an "L-band radar" than a "1215 MHz-1400 MHz radar." This is especially important in titles of published papers on radar, in advertising of radar systems and components, or in any other situation where a short notation is desired. - In military radar systems, the exact frequency of operation cannot usually be disclosed, but it is permissible in many cases to describe the band in which it operates. The letter designations permit this. - Each radar-frequency band has its own particular characteristics. Thus, an X-band radar will be different from an S-band radar. The letter designations are often used in this manner to indicate the particular nature of the radar, as it is influenced by its frequency. There are vast differences in characteristics, applications, and environmental constraints that distinguish radars in the different bands. It is the need to communicate concisely the whole set of characteristics that are shared by S-band radar, as distinguished from L-band radar, C-band radar, and the others, which requires the established usage of letter designations. read less
标准号:
IEEE 521-2019
标准名称:
IEEE Standard Letter Designations for Radar-Frequency Bands
英文名称:
标准状态:
-
发布日期:
-
实施日期:
出版语种:
- 推荐标准
- ASTM D3364-99(2019) Standard Test Method for Flow Rates for Poly(Vinyl Chloride) with Molecular Structural Implications
- ASTM D3419-12(2019) Standard Practice for In-Line Screw-Injection Molding Test Specimens From Thermosetting Compounds
- ASTM D346/D346M-11(2019)e1 Standard Practice for Collection and Preparation of Coke Samples for Laboratory Analysis
- ASTM D3516-89(2019)e1 Standard Test Methods for Ashing Cellulose
- ASTM D3546-05(2019) Standard Test Method for Formic Acid in Glacial Acetic Acid
- ASTM D3611-06(2019) Standard Practice for Accelerated Aging of Pressure-Sensitive Tapes
- ASTM D3632-98(2019) Standard Test Method for Accelerated Aging of Adhesive Joints by the Oxygen-Pressure Method
- ASTM D3759/D3759M-05(2019) Standard Test Method for Breaking Strength and Elongation of Pressure-Sensitive Tape
- ASTM D3815/D3815M-05(2019) Standard Practice for Accelerated Weathering of Pressure-Sensitive Tapes by Open-Flame Carbon-Arc Exposure Apparatus
- ASTM D3885-07A(2019)e1 Standard Test Method for Abrasion Resistance of Textile Fabrics (Flexing and Abrasion Method)
- ASTM D3975-93(2019) Standard Practice for Development and Use (Preparation) of Samples for Collaborative Testing of Methods for Analysis of Sediments
- ASTM D3977-97(2019) Standard Test Methods for Determining Sediment Concentration in Water Samples
- ASTM D3983-98(2019) Standard Test Method for Measuring Strength and Shear Modulus of Nonrigid Adhesives by the Thick-Adherend Tensile-Lap Specimen
- ASTM D4037-02(2019) Standard Performance Specification for Woven, Knitted, or Flocked Bedspread Fabrics
- ASTM D4040-10(2019) Standard Test Method for Rheological Properties of Paste Printing and Vehicles by the Falling-Rod Viscometer