Mobile Radio, which typically employs handheld portable radios, vehicle mounted
mobile radios, base stations and repeaters and network infrastructures for push-totalk wireless systems which provide vital communication for public safety organizations and emergency organizations, as well as in the commercial world in various
industries including industrial, transportation, utilities, security, and logistics.
Space Data is able to lease or sell licensed FCC spectrum in the 900 MHz band
in the event that a private network needs new spectrum. Its SkySite networks can
be launched in minutes to provide a responsive temporary capability such as disaster recovery operations under the Federal Emergency Management System.
On-scene emergency management personnel can use stratospheric wireless communications for coordination, control, and communications in order to achieve
faster response times, coordinate volunteers, and mitigate injury to first responders and members of the public.
9.4.4 Public Safety
Monitoring and controling remote equipment and sites is often a prerequisite for
safe and efficient operations in the oil and gas industry. Supervisory Control and
Data Acquisition (SCADA) solutions are available to enable alarms and real-time
monitoring, but use is limited to areas where affordable wireless coverage exists.
Space Data’s SkySite balloons support increased use of automation and alarming
by offering the coverage provided by satellite systems at a more affordable price.
In the critical transportation industry, fleet operators use wireless technology
for logistics, to locate and manage the movement of their trucks and trailers. To
stay in touch with those vehicles, operators simply must live with the spotty coverage offered by terrestrial networks, pay high prices for satellite coverage, or
employ multiple wireless devices, each operating on a different wireless network.
Space Data’s SkySite network provides wide area coverage for vehicle tracking on
the most rural of roads.
IMAGE LINKS
Fig. 9.1 https://www.nsf.gov/news/special_reports/livingsouthpole/images/sciencegoals/topimage.jpg
Fig. 9.2 http://www.southpolestation.com/0910/aerials/behindaro1.jpg
Fig. 9.3 https://www.nsf.gov/geo/opp/images/prss/spstation_flags.jpg
Fig. 9.4 https://www.nasa.gov/sites/default/files/styles/946xvariable_height/public/images/581238main_USA_Antarctica_size- orig_full.jpg?itok=t7sY4466
Fig. 9.5 https://lh3.googleusercontent.com/N8OzF51D3lcjTEg- Xn_E7BbL3Me46q9GU0pKMNJ8lzxlg_sq6jghBCUKc0mAA4l6Uy46=s128
Fig. 9.6
Fig. 9.7 https://stratocat.com.ar/globos/esq/esq_HASP.jpg
Fig. 9.8 https://encrypted- tbn0.gstatic.com/images?q=tbn%3AANd9GcRP3vwujQQv5ca6ekWidK7LoXUHdfUl5g8kOw&usqp=CAU
Fig. 9.9 https://uh.edu/nsm/news- events/stories/2018/1016- student- research.php
Fig 9.10 http://news.e- dirgantara.com/aerospace/100- days- over- the- south- pole
Fig. 9.11 https://www.nasa.gov/sites/default/files/thumbnails/image/img_3421.jpg
Fig. 9.12 http://1.bp.blogspot.com/- gTPWKwtbHw8/VJcCuFhLfzI/AAAAAAAAF7c/Zq0dgcQxYOo/s1600/McM%2BPeg%2Bplane%2B075.JPG
Fig. 9.13 https://scx1.b- cdn.net/csz/news/800/2020/1- firstdetecto.jpg
Fig. 9.14 https://www.jpl.nasa.gov/missions/web/ASTHROS- REV- 6.jpg
Fig. 9.15 https://stratocat.com.ar/bases/imgs/operations_building.jpg
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