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Microwave vs optical crosslink studyThe intersatellite links (ISL's) at geostationary orbit is currently a missing link in commercial satellite services. Prior studies have found that potential application of ISL's to domestic, regional, and global satellites will provide more cost-effective services than the non-ISL's systems (i.e., multiple-hop systems). In addition, ISL's can improve and expand the existing satellite services in several aspects. For example, ISL's can conserve the scarce spectrum allocated for fixed satellite services (FSS) by avoiding multiple hopping of the relay stations. ISL's can also conserve prime orbit slot by effectively expanding the geostationary arc. As a result of the coverage extension by using ISL's more users will have direct access to the satellite network, thus providing reduced signal propagation delay and improved signal quality. Given the potential benefits of ISL's system, it is of interest to determine the appropriate implementations for some potential ISL architectures. Summary of the selected ISL network architecture as supplied by NASA are listed. The projected high data rate requirements (greater than 400 Mbps) suggest that high frequency RF or optical implementations are natural approaches. Both RF and optical systems have their own merits and weaknesses which make the choice between them dependent on the specific application. Due to its relatively mature technology base, the implementation risk associated with RF (at least 32 GHz) is lower than that of the optical ISL's. However, the relatively large antenna size required by RF ISL's payload may cause real-estate problems on the host spacecraft. In addition, because of the frequency sharing (for duplex multiple channels communications) within the limited bandwidth allocated, RF ISL's are more susceptible to inter-system and inter-channel interferences. On the other hand, optical ISL's can offer interference-free transmission and compact sized payload. However, the extremely narrow beam widths (on the order of 10 micro-rad) associated with optical ISL's impose very stringent pointing, acquisition, and tracking requirements on the system. Even if the RF and optical systems are considered separately, questions still remain as to selection of RF frequency, direct versus coherent optical detection, etc. in implementing an ISL for a particular network architecture. These and other issues are studied.
Document ID
19930010800
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Kwong, Paulman W.
(Stanford Telecommunications, Inc. Reston, VA, United States)
Bruno, Ronald C.
(Stanford Telecommunications, Inc. Reston, VA, United States)
Marshalek, Robert G.
(Ball Aerospace Systems Div. Muncie, IN., United States)
Date Acquired
September 6, 2013
Publication Date
January 3, 1992
Subject Category
Communications And Radar
Report/Patent Number
NASA-CR-192207
NAS 1.26:192207
TR-91-124
Report Number: NASA-CR-192207
Report Number: NAS 1.26:192207
Report Number: TR-91-124
Accession Number
93N19989
Funding Number(s)
CONTRACT_GRANT: NAS3-25091
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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