REG NASA-LLIS-1180--2002 Lessons Learned - TDRS-H S-Band Multiple Access Antenna Performance Shortfall.pdf
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1、Lessons Learned Entry: 1180Lesson Info:a71 Lesson Number: 1180a71 Lesson Date: 2002-04-25a71 Submitting Organization: GSFCa71 Submitted by: Marco ToralSubject: TDRS-H S-Band Multiple Access Antenna Performance Shortfall Description of Driving Event: The TDRS-H was launched on June 30, 2000. The sate
2、llite is the first of a new series of Tracking Data Relay Satellites. The satellite incorporated a number of new communication technologies including the Single Access Springback Reflector Antenna, transmitters and receivers operating at Ka-band and the S-band microstrip patch antenna elements used
3、in the Multiple Access (MA) phase arrays. During In-Orbit Test (IOT), performance deficiencies were observed in the MA forward (MAF) and return (MAR) channels. The MA phase array system is complex in design and relies on both hardware and software to perform the on-board beam forming to track user s
4、atellites. Based on analysis of test data, a few minor deficiencies were corrected through changes to the software (sign error) and calibration error (phase shift settings). However, the MAR formed beam G/T performance remained significantly below predicted performance. Performance testing of indivi
5、dual return array elements was initiated revealing widely divergent gain and axial ratios for the elements when compared to pre launch factory measurements. In one case, the performance of a single element was seen to degrade significantly in a 12-hour period. BSS initiated a comprehensive anomaly i
6、nvestigation incorporating: 1) On-orbit testing of TDRS-H; 2) Laboratory performance investigation of flight MA antenna elements; and 3) Factory satellite system level MA testing using the TDRS-I then undergoing integration and test. Ultimately, BSS determined that the most probable cause of the obs
7、erved performance was due to the MA array sunshield (thermal blanket) coming into contact with the antenna array elements. Such contact creates a dielectric loading of the microstrip patch radiators and transmission lines altering the phase relationship of the radiators and shifting the resonant fre
8、quency of the elements. Altering the phase relationship causes the element gain pattern to “squint“ or move off axis by some 8 degrees. The peak directivity, resistive loss and VSWR (Voltage Standing Wave Ratio) performance of the MA antenna elements degraded as a result of the close proximity of th
9、e sunshield. The sunshield is held in contact with the elements by electrostatic force created by deep charging of the dielectric materials used in the construction of the antenna elements. In response, a negative “image“ charge appears in the sunshield (since it is conductive and grounded), and the
10、 electrostatic attractive force field is created.Provided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-Lesson(s) Learned: 1. The use of microstrip patch elements was a new design to BSS, and as such, received substantial attention during the design, develo
11、pment and test phase. However, the interrelated physics of the sunshield contact and performance shortfall were never fully understood.2. Designers assumed that the designed spacing between the elements and the sunshield would be achieved. (The designed spacing of approximately 1/2 inch is more than
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