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25 years on the path to multi-GNSS As Galileo, BeiDou, the Quasi-Zenith Satellite System, the Indian Regional Navigation Satellite System, and a variety of satellite-based augmentation systems join GPS and GLONASS, we help celebrate the coming 25th anniversary of the IGS as a truly multi-GNSS service. Editor’s note: Tables 1 and 3 in the print version of this article contain some incorrect values and missing designators. These errors have been corrected in the tables below. INNOVATION INSIGHTS by Richard Langley" width="173" height="210" srcset="https://www.gpsworld.com/wp-content/uploads/2012/04/Richard_Langley_headshot-173x210.jpg 173w, https://www.gpsworld.com/wp-content/uploads/2012/04/Richard_Langley_headshot.jpg 247w" sizes="(max-width: 173px) 100vw, 173px" />INNOVATION INSIGHTS by Richard Langley A QUARTER OF A CENTURY. That is how old the International GNSS Service (IGS) will be on Jan. 1, 2019. Conceived in the early 1990s as the International GPS Service for Geodynamics, the IGS continues to be the global standard bearer in providing receiver data, satellite orbit and clock products and other resources with the highest possible precision and accuracy. I remember the discussions that took place at international conferences about the need for such a service to provide the necessary data to advance our understanding of plate tectonics and other Earth-related phenomena. And this was well before GPS was officially declared fully operational in 1995. Remember, surveyors and geodesists were early adopters of GPS, making use of the technology even when only a partial GPS constellation was in place. The initial ideas for the IGS were laid out in an article published in GPS World in February 1993 entitled “Geodynamics: Tracking Satellites to Monitor Global Change.” But the services provided by the IGS extended well beyond the needs of the geodynamics research community, and so its name was shortened to just the International GPS Service. When GLONASS data and products became available, the name was further changed to its current moniker. One of the IGS’s notable achievements has been in advancing GNSS standards such as the Receiver-Independent Exchange format for receiver data and other information. The need for such a standard was clear even before the formation of the IGS, and it was documented in this column in the July 1994 issue of GPS World (“RINEX: The Receiver-Independent Exchange Format”). We continued to cover the evolution of the IGS over the years with, for example, the article “The International GNSS Service: Any Questions?” in the January 2007 issue of the magazine. And now, as Galileo, BeiDou, the Quasi-Zenith Satellite System, the Indian Regional Navigation Satellite System, and a variety of satellite-based augmentation systems join GPS and GLONASS, we help celebrate the coming 25th anniversary of the IGS as a truly multi-GNSS service. For going on 25 years, the International GNSS Service (IGS) has carried out its mission to advocate for, and provide, freely and openly available high-precision GNSS data, as well as derived operational data products, including satellite ephemerides, Earth rotation parameters, station coordinates and clock information. The IGS is a self-governed, voluntary federation of more than 300 contributing organizations from more than 100 countries around the world that collectively operate a global infrastructure of tracking stations, data centers and analysis centers to provide high-quality GNSS data products. The IGS products are provided openly for the benefit of all scientific, educational and commercial users. The IGS was first approved by its parent organization, the International Association of Geodesy (IAG), at a scientific meeting in Beijing, China, in August 1993. A quarter of a century later, the IGS community gathers for a workshop in Wuhan, China, this November to blaze a path to multi-GNSS through global collaboration. As a key component of the IAG’s global geodetic infrastructure, the IGS contributes to, extends and densifies the International Terrestrial Reference Frame (ITRF) of the International Earth Rotation and Reference Systems Service (IERS). The ITRF provides an accurate and consistent spatial frame for referencing positions at different times and in different locations around the world. In addition, IGS products enable the use of GNSS technologies for scientific applications such as the monitoring of solid Earth deformations, monitoring of Earth rotation and variations in the liquid Earth, and for scientific satellite orbit determinations, precise timing, ionosphere monitoring and water vapor measurements. IGS products are also considered critical by surveying, geomatics and geo-information users around the world, who rely on them on a daily basis to improve efficiency. Many applications that require reliable, accurate GNSS positioning in construction, agriculture, mining, exploration and transportation also benefit from the IGS. Community Collaboration At the heart of the IGS is a strong culture of sharing expertise, infrastructure and other resources for the purpose of encouraging global best practices for developing and delivering GNSS data and products all over the world. The collaborative nature of the IGS community leverages this diversity to integrate and make full use of all available GNSS technologies while promoting further innovation. More than 15,000 geodetic community members, some of whom comprise the backbone of the worldwide geodetic community, ensure that new technologies and systems are integrated into operational IGS products. Responsive to this innovation, the IGS develops and publicly releases standards, guidelines and conventions for the collection and use of GNSS data and the aforementioned products. The IGS strives to maintain an international federation with committed contributions from its members. Participation of individuals and organizations is often driven by user needs, a key characteristic of the inclusive culture within the IGS. Structure of the IGS The IGS consists of a central bureau, a global network of GNSS stations, data and analysis centers and a number of working groups all coordinated and overseen by a governing board. Central Bureau. The IGS Central Bureau (CB) functions as the secretariat of the IGS, providing continuous management and technology to sustain the multifaceted efforts of the IGS in perpetuity. The CB responds to the directives and decisions of the IGS governing board. It coordinates the IGS tracking network and operates the CB information system, the principal information portal where the IGS web, FTP and mail services are hosted (www.igs.org). The CB also represents the outward face of IGS to a diverse global user community, as well as the general public. The CB office is hosted at the California Institute of Technology/Jet Propulsion Laboratory in Pasadena, California. It is funded principally by the U.S. National Aeronautics and Space Administration (NASA), which generously contributes significant resources to advance the IGS. The IGS Network. The foundation of the IGS is a global network of more than 500 permanent and continuously operating stations of geodetic quality. These stations track signals from GPS, and increasingly also track signals from GLONASS, Galileo, BeiDou, the Quasi-Zenith Satellite System (QZSS), the Indian Regional Navigation Satellite System (IRNSS; also known as NavIC: Navigation with Indian Constellation), as well as space-based augmentation systems (SBAS). FIGURE 1 shows the recent state of the IGS network, indicating which stations are GPS only, GPS+GLONASS and multi-GNSS. FIGURE 2 is a photo of the IGS station ARHT at McMurdo Station, Antarctica. FIGURE 1 . The extent of the IGS network in 2017, showing the locations of stations monitoring just GPS, GPS and GLONASS, and GPS and GLONASS plus at least one other constellation. (Map: IGS) FIGURE 2. The consistency of the final GPS satellite orbit solutions from individual IGS analysis centers over the past 25 years. Each line depicts the solution of one analysis center, as compared to the weighted mean. COD: Center for Orbit Determination in Europe, EMR: Natural Resources Canada (formerly Energy, Mines and Resources Canada), ESA: European Space Agency, GFZ: GeoForschungsZentrum (German Research Centre for Geosciences); GRG: Centre National d’Etudes Spatiales (Groupe de Recherche de Géodésie Spatiale); JPL: Jet Propulsion Laboratory; MIT: Massachusetts Institute of Technology; NGS: National Geodetic Survey; SIO: Scripps Institution of Oceanography; IGR: IGS rapid product. (Graph courtesy of T. Herring, MIT and M. Moore, Geoscience Australia) The IGS is a critical component of the IAG’s Global Geodetic Observing System (GGOS), where it encourages and advocates for geometrical linkages of GNSS with other precise geodetic observing techniques, including satellite and lunar laser ranging, very long baseline interferometry and Doppler Orbitography and Radio Positioning Integrated by Satellite (DORIS). These linkages are fundamental to generating and accessing the ITRF. Data and Analysis Centers. Lots of hard work and dedication from IGS contributing organizations goes into the fabrication of IGS products, which start at the tracking network, then are collected by data centers and sent to analysis centers. At these centers, the data are compared and combined by the analysis center coordinator, and finally made available as IGS products. The IGS ensures high reliability by building redundancy into all of its components. In 1994, the IGS started with a network of about 40 stations; today, more than 500 receivers are included in the network. Critical to this activity are three categories of data center — operational, regional and global. At the ground level are operational data centers, which are in direct contact with IGS tracking sites and are responsible for such efforts as station monitoring and local archiving of GNSS tracking data. Operational data centers also validate, format, exchange and compress data. Regional data centers then collect tracking data from multiple operational data centers or stations, maintaining a local archive and providing online access to their data. The six global data centers receive, retrieve, archive and provide online access to tracking data from operational and regional data centers. These global data centers are also responsible for archiving and backing up IGS data and products, and maintaining a balance of data holdings across the IGS network. Analysis centers then receive and process tracking data from one or more data centers to generate IGS position, orbit and clock products. These products are produced in ultra-rapid, rapid, final and reprocessed versions for each analysis center. FIGURE 3 shows the huge improvement in the precision and accuracy of the final orbit submissions from the analysis centers over the past 25 years. Associate analysis centers produce specialized products, such as ionospheric information, tropospheric parameters or station coordinates and velocities for global and regional sub-networks. Regional and global network associate analysis centers complement this work as new capabilities and products emerge within the IGS. FIGURE 3. The antenna of IGS station ARHT at McMurdo Station, Antarctica. (Photo: IGS) Products from each analysis center are then combined into a single set of orbit and clock products by the analysis center coordinator, who monitors and assists the activities of analysis centers to ensure IGS standards for quality control, performance evaluation and analysis are successfully executed. The different analysis solutions ultimately verify the accuracy of IGS products, provide important redundancy in the case of errors in a particular solution, and average out modeling deficiencies of a particular software package. TABLE 1 shows the quality of service characteristics of the various IGS GPS and GLONASS orbit and clock products. Similarly, TABLES 2, 3 and 4 show the characteristics of the tracking station coordinates, Earth rotation parameters and atmospheric parameters. See www.igs.org/products for further details. TABLE 1. Quality of service characteristics for IGS orbit and clock products relating to GPS and GLONASS satellite orbits and satellite (sat.) and station (stn.) clocks as of 2017. (Data: IGS) TABLE 2. Quality of service characteristics for tracking station positions and velocities. (Data: IGS) TABLE 3. Quality of service characteristics for Earth rotation parameters: polar motion coordinates and rates of change and length-of-day (µas = microarcsecond). (Data: IGS) TABLE 4. Quality of service characteristics for atmospheric parameters: tropospheric zenith path delay and gradients and global grids of total electron content. (Data: IGS) Working Groups and Projects The IGS technical working groups (WGs) focus on topics of particular interest to the IGS, and consider various aspects of product generation and monitoring. The current working groups of the IGS span topics from antennas to tide gauges. Antenna Working Group. To increase the accuracy and consistency of IGS products the Antenna WG coordinates research on GNSS receiver and satellite antenna phase-center determination. The group manages official IGS receiver and satellite antenna files and their formats. Bias and Calibration Working Group. Different GNSS observables are subject to different satellite biases, which can degrade the IGS products. The Bias and Calibration WG coordinates research in the field of GNSS bias retrieval and monitoring. Clock Products Working Group. This group is responsible for aligning the combined IGS products to a highly precise timescale traceable to the world standard: Coordinated Universal Time (UTC). The IGS clock product coordinator forms the IGS timescales based on the clock solutions of IGS analysis centers, and IGS rapid and final products are aligned to these timescales. Data Center Working Group. The Data Center WG works to improve the provision of data and products from the operational, regional and global data centers, and recommends new data centers to the IGS governing board. Joint GNSS Monitoring and Assessment Working Group. This working group, in conjunction with a joint trial project with International Committee on GNSS’s (ICG) International GNSS Monitoring and Assessment (IGMA) Task Force, seeks to install, operate and further develop a GNSS Monitoring and Assessment Trial Project. GNSS Performance Monitoring ICG-IGS Joint Trial Project. The quality of navigation signals enables numerous applications, including worldwide time and frequency transfer and GPS meteorology. This project of the IGMA task force, coordinated in partnership with the IGS, focuses on monitoring GNSS constellation status. Ionosphere Working Group. This group produces global ionosphere maps of ionosphere vertical total electron content (TEC). A major task of the Ionosphere WG is to make available global ionosphere maps from the TEC maps produced independently by ionosphere associate analysis centers within the IGS. FIGURE 4 shows an example TEC map recomputed from data collected on March 17, 2015. The large values of TEC in the ionosphere’s equatorial anomaly are plainly visible. FIGURE 4. An example total electron content map recomputed from data collected on March 17, 2015. TECU: total electron content units. (Image: IGS) Multi-GNSS Working Group. This group supports the Multi-GNSS Experiment (MGEX) Project by facilitating estimation of intersystem biases and comparing the performance of multi-GNSS equipment and processing software. The MGEX Project was established to track, collate and analyze all available GNSS signals including those from BeiDou, Galileo and QZSS in addition to GPS and GLONASS. Reference Frame Working Group. This working group combines solutions from the IGS analysis centers to form the IGS station positions and velocity products, and Earth rotation parameters for inclusion in the IGS realization of ITRF. A new reference frame, called IGS14, was adopted on Jan. 29, 2017 (GPS Week 1934). At the same time, an updated set of satellite and ground antenna calibrations, igs14.atx, was implemented. Real-Time Working Group. The Real-Time WG supports the development and integration of real-time technologies, standards and infrastructure to produce high-accuracy IGS products in real time. The group operates the IGS Real-Time Service (RTS) to support precise point positioning (PPP) at global scales, in real time. RINEX Working Group. The RINEX-WG jointly manages the Receiver-Independent Exchange (RINEX) format with the Radio Technical Commission for Maritime Services Special Committee 104 (RTCM-SC104). RINEX has been widely adopted as an industry standard for archiving and exchanging GNSS observations, and newer versions support multiple GNSS constellations. Recently, the IGS governing board agreed to adopt the official RINEX V3.04 format, handling the ability for nine-character station ID and fixing the definition of GNSS reference time scales. Space Vehicle Orbit Dynamics Working Group. This group brings together IGS groups working on orbit dynamics and attitude modeling of spacecraft. This work includes the development of force and attitude models for new GNSS constellations to fully exploit all new signals with the highest possible accuracy. Troposphere Working Group. The Troposphere WG supports development of IGS troposphere products by combining troposphere solutions from individual analysis centers to improve the accuracy of PPP solutions. The goal of the Troposphere WG is to improve the accuracy and usability of GNSS-derived troposphere estimates. Tide Gauge (TIGA) Working Group. When studying sea level changes, where the GPS height of the benchmark is used for defining an absolute sea-level datum, problems occur when correcting the time series for height changes of the benchmark. TIGA is a pilot study for establishing a service to analyze GPS data from stations at or near tide gauges in the IGS network to support accurate measurement of sea-level change across the globe. A Multi-GNSS IGS Network The development of a multi-GNSS sub-network within the greater IGS network, led by the MGEX Project, develops the IGS’s capability to operate with multiple GNSS constellations. It has 223 multi-GNSS-capable (GPS + GLONASS + at least one other constellation) stations. Also, the number of IGS stations capable of real-time data streaming in support of the IGS Real-Time Project has increased to 195. MGEX was founded in 2012 to build a network of GNSS tracking stations, characterize the space segment and user equipment, develop theory and data-processing tools, and generate data products for emerging satellite systems. The stations within its network contain a diverse assortment of receiver and antenna equipment, which are recognized and characterized by the IGS in equipment description files. Other than GPS and GLONASS, no combination process has yet been implemented within IGS for precise orbit and clock products of the other, newer, constellations. Despite this, cross-comparison among analysis centers, as well as with satellite laser ranging, has been used to assess the precision or accuracy for various products. The growing role of multi-GNSS within the IGS network was benchmarked by the transition of MGEX to official IGS project status in 2016. For the sake of consistency, and as a nod to its heritage, use of the acronym “MGEX” has been retained. Making Strides in Real Time Through the Real-Time Service (RTS), the IGS extends its capability to support applications requiring real-time access to IGS products. The RTS is a GNSS orbit and clock correction service that enables PPP and related applications, such as time synchronization and disaster monitoring, at worldwide scales. The RTS is based on the IGS global infrastructure of network stations, data centers and analysis centers that provide world-standard high-precision GNSS data products. The RTS is currently offered as a GPS-only operational service, but GLONASS is initially being offered as an experimental product for the development and testing of applications. GLONASS will be included within the service when the IGS is confident that a sufficient number of analysis centers can ensure solution reliability and availability. Other GNSS constellations will be added as they become available. Engagement with the United Nations The IGS engages with diverse organizations, outside of the immediate precise GNSS community, that have an interest in geodetic applications of GNSS. Notably, the IGS has supported the development of the Global Geodetic Reference Frame resolution, roadmap and implementation plan within the United Nations Global Geospatial Information Management (GGIM) Committee of Experts. The IGS also works with the United Nations Office for Outer Space Affairs (UNOOSA) International Committee on GNSS (ICG) to develop common understandings of the requirements for multiple system monitoring through the joint pilot project with the ICG’s IGMA subgroup. The IGS also co-chairs ICG Working Group D, which focuses on reference frames, timing and applications. A Multi-GNSS Future Though the accuracy of current IGS multi-GNSS products lags behind standard IGS products for GPS and GLONASS, multi-GNSS paves the way for complete exploitation of new signals and constellations in navigation, surveying, geodesy and remote sensing. IGS also looks externally to other techniques through its participation in the IAG’s GGOS, which has illuminated how satellite laser ranging observations to GNSS satellites improves our understanding of observational errors and thus drives further improvement of IGS position, clock and orbit products. As it enters its second quarter-century, the IGS is evolving into a truly multi-GNSS service. For 25 years, IGS data and products have been made openly available to all users for use without restriction, and continue to be offered free of cost or obligation. In turn, users are encouraged to participate within the IGS, or otherwise contribute to its advancement. Acknowledgements The authors gratefully acknowledge the contributions of the IGS governing board and associate members in the drafting of this article. Special thanks to Anna Riddell and Grant Hausler, who, along with Gary Johnston, have an extensive chapter on IGS in the Springer Handbook of Global Navigation Satellite Systems, published in 2017 by Springer (see Further Reading). This book chapter is the new recommended official citation for publications referencing IGS data, products and other resources. Allison Craddock a member of the Geodynamics and Space Geodesy Group in the Tracking Systems and Applications Section at the NASA Jet Propulsion Laboratory in Pasadena, California. She is the director of the IGS Central Bureau, manager of external relations for the International Association of Geodesy’s Global Geodetic Observing System, and staff member of the NASA Space Geodesy Program. Gary Johnston is the head of the National Positioning Infrastructure Branch at Geoscience Australia. Johnston is the chair of the IGS governing board and the co-chair of the Subcommittee on Geodesy under the United Nations Global Geospatial Information Management committee of experts. FURTHER READING GNSS Handbook Chapter on IGS “The International GNSS Service” by G. Johnston, A. Riddell and G. Hausler, Chapter 33 in Springer Handbook of Global Navigation Satellite Systems, edited by P.J.G. Teunissen and O. Montenbruck, published by Springer International Publishing AG, Cham, Switzerland, 2017. IGS: Past, Present and Future International GNSS Service Strategic Plan 2017, edited by the IGS Central Bureau. International GNSS Service Technical Report 2017 (IGS Annual Report), edited by A. Villiger and R. Dach, published by IGS Central Bureau and University of Bern, Bern Open Publishing, Bern, Switzerland, 2018, doi: 10.7892/boris.116377. Includes reports from analysis centers, data centers and working groups. “The International GNSS Service: Any Questions?” by A.W. Moore in GPS World, Vol. 18, No. 1, January 2007, pp. 58–64. “Geodynamics: Tracking Satellites to Monitor Global Change” by G. Beutler, P. Morgan and R.E. Neilan in GPS World, Vol. 4, No. 2, February 1993, pp. 40–46. IGS Multi-GNSS Experiment IGS White Paper on Satellite and Operations Information for Generation of Precise GNSS Orbit and Clock Products (2017) by O. Montenbruck on behalf of the IGS Multi-GNSS Working Group. “The Multi-GNSS Experiment (MGEX) of the International GNSS Service (IGS) – Achievements, Prospects and Challenges by O. Montenbruck. P. Steigenberger, L. Prange, Z. Deng, Q. Zhao, F. Perosanz, I. Romero, C. Noll, A. Stürze, G. Weber, R. Schmid, K. MacLeod and S. Schaer in Advances in Space Research, Vol. 59, No. 7, April 1, 2017, pp. 1671–1697, doi: 10.1016/j.asr.2017.01.011. “IGS-MGEX: Preparing the Ground for Multi-Constellation GNSS Science” by O. Montenbruck P. Steigenberger, R. Khachikyan, G. Weber, R.B. Langley, L. Mervart and U. Hugentobler in Inside GNSS, Vol. 9, No. 1, January/February 2014, pp. 42–49. “Getting a Grip on Multi-GNSS: The International GNSS Service MGEX Campaign” by O. Montenbruck, C. Rizos, R. Weber, G. Weber, R. Neilan and U. Hugentobler in GPS World, Vol. 24, No. 7, July 2013, pp. 44–49. International GNSS Monitoring and Assessment “The International GNSS Monitoring and Assessment Service in a Multi-System Environment” by E.N.J. Ada, M. Bilal, G. Agbaje, O.R. Kunle, O.A. Alexander, O. Okibe and O. Salu in Inside GNSS, Vol. 11, No. 4, July/August 2016, pp. 48–54. IGS Real-Time Service “Coming Soon: The International GNSS Real-Time Service” by M. Caissy, L. Agrotis, G. Weber, M. Hernandez-Pajares and U. Hugentobler in GPS World, Vol. 23, No. 6, June 2012, pp. 52–58. RINEX “Data Formats” by O. Montenbruck and K. MacLeod, Annex A in Springer Handbook of Global Navigation Satellite Systems, edited by P.J.G. Teunissen and O. Montenbruck, published by Springer International Publishing AG, Cham, Switzerland, 2017.  RINEX: The Receiver Independent Exchange Format, Version 3.03, International GNSS Service and Radio Technical Commission for Maritime Services, 2015. “RINEX: The Receiver-Independent Exchange Format” by W. Gurtner in GPS World, Vol. 5, No. 7, July 1994, pp. 48–52.

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Targus 800-0111-001 a ac adapter 15-24vdc 65w power supply,eta-usa dtm15-55x-sp ac adapter 5vdc 2.5a used -(+)2.5x5.5 roun,replacement a1021 ac adapter 24.5v 2.65a apple power supply.motorola cell phone battery charger used for droid x bh5x mb810,at every frequency band the user can select the required output power between 3 and 1.replacement pa-1900-02d ac adapter 19.5v dc 4.62a for dell latit,motorola fmp5334a ac adapter 5v 560ma used micro usb.olympus bu-100 battery charger used 1.2v 490ma camedia 100-240v,hp pa-1650-32hj ac adapter 19.5vdc 3.5a used 5 x 7.4 x 12.6 mm s,sl power ba5011000103r charger 57.6vdc 1a 2pin 120vac fits cub.canon battery charger cb-2ls 4.2vdc 0.7a 4046789 battery charger.65w-dl04 ac adapter 19.5vdc 3.34a da-pa12 dell laptop power,finecom ac dc adapter 15v 5a 6.3mmpower supply toshiba tec m3,iona ad-1214-cs ac adapter 12vdc 140ma used 90° class 2 power su,smoke detector alarm circuit,toshiba ac adapter 15vdc 4a original power supply for satellite,variable power supply circuits,high voltage generation by using cockcroft-walton multiplier,dell pa-1900-28d ac adaoter 19.5vdc 4.62a -(+) 7.4x5mm tip j62h3,chd dpx411409 ac adapter 4.5vdc 600ma class 2 transformer,intertek 99118 fan & light control used 434mhz 1.a 300w capacito,motomaster ct-1562a battery charger 6/12vdc 1.5a automatic used,replacement 65w-ap04 ac adapter 24vdc 2.65a used - ---c--- +,110 to 240 vac / 5 amppower consumption.cellular inovations acp-et28 ac adapter 5v 12v dc travel charger,sima sup-60lx ac adapter 12-15vdc used -(+) 1.7x4mm ultimate cha.vt600 gps tracker has specified command code for each different sms command,kodak mpa7701l ac adapter 24vdc 1.8a easyshare dock printer 6000.oem ad-0760dt ac adapter 7.vdc 600ma new -(+)- 2.1x5.4x10mm.65w-ac1002 ac adapter 19vdc 3.42a used -(+) 2.5x5.5x11.8mm 90° r,sony pcga-ac16v ac adapter 19.5vdc 4a used -(+) 4x6mm tip 100-24.hp ppp009h 18.5vdc 3.5a 65w used-(+) 5x7.3mm comaq pavalion ro,jamming these transmission paths with the usual jammers is only feasible for limited areas.apx technologies ap3927 ac adapter 13.5vdc 1.3a used -(+)- 2x5.5,chicony cpa09-020a ac adapter 36vdc 1.1a 40w used -(+)- 4.2 x 6,cui dve dsa-0151f-12 a ac adapter 12v dc 1.5a 4pin mini din psu,premium power 298239-001 ac adapter 19v 3.42a used 2.5 x 5.4 x 1,the designed jammer was successful in jamming the three carriers in india,energy is transferred from the transmitter to the receiver using the mutual inductance principle.sony pcga-ac16v6 ac adapter 16vdc 4a -(+) 3x6.5mm power supply f.hp hp-ok65b13 ac adapter 18.5vdc 3.5a used -(+) 1.5x4.7x11mm rou,ibm 92p1016 ac adapter 16v dc 4.5a power supply for thinkpad.this allows a much wider jamming range inside government buildings.these jammers include the intelligent jammers which directly communicate with the gsm provider to block the services to the clients in the restricted areas,this circuit shows a simple on and off switch using the ne555 timer,cs-6002 used ac grill motor 120vac 4w e199757 214624 usa canada.

It is also buried under severe distortion.one of the important sub-channel on the bcch channel includes.panasonic bq-390 wall mount battery charger 1.5v dc 550ma x 4 us,from the smallest compact unit in a portable,panasonic ag-b3a video ac adapter 12vdc 1.2a power supply.targus apa63us ac adapter 15v-24v 90w power supply universal use,the components of this system are extremely accurately calibrated so that it is principally possible to exclude individual channels from jamming,armoured systems are available.good grounding rules are followed in the design,an lte advanced category 20 module with location,lg sta-p53wr ac adapter 5.6v 0.4a direct plug in poweer supply c,dell pa-16 /pa16 ac adapter19v dc 3.16a 60watts desktop power.garmin fsy120100uu15-1 ac adapter 12.0v 1.0a 12w gps charger,motorola fmp5334a ac dc adapter used 5vdc 550ma usb connector wa,eps f10603-c ac adapter 12-14v dc 5-4.82a used 5-pin din connect.condor ps146 100-0086-001b ac adapter 17vctac 0.7a used 4pin atx.apple m7783 ac adapter 24vdc 1.04a macintosh powerbook duo power.ault 336-4016-to1n ac adapter 16v 40va used 6pin female medical.casio phone mate m/n-90 ac adapter 12vdc 200ma 6w white colour,elpac power mi2824 ac adapter 24vdc 1.17a used 2.5x5.5x9.4mm rou,a frequency counter is proposed which uses two counters and two timers and a timer ic to produce clock signals.sonigem ad-0001 ac adapter 9vdc 210ma used -(+) cut wire class 2,scope dj04v20500a battery charger 4.2vdc 500ma used 100-240v ac.symbol r410506 ac adapter 4vdc 140ma used 24pin connector ptc-70.hp ppp017h ac adapter 18.5vdc 6.5a 120w used -(+) 2.5x5.5mm stra,using this circuit one can switch on or off the device by simply touching the sensor,acbel api3ad01 ac adapter 19vdc 6.3a 3x6.5mm -(+) used power sup.proxim 481210003co ac adapter 12vdc 1a -(+) 2x5.5mm 90° 120vac w.mot pager travel charger ac adapter 8.5v dc 700ma used audio pin.umec up0451e-12p ac adapter 12vdc 3.75a (: :) 4pin mini din 10mm,4089 ac adapter 4.9vac 300ma used c-1261 battery charger power s,archer 273-1651 ac adapter 9vdc 500ma used +(-) 2x5x12mm round b.lind pa1540-201 g automobile power adapter15v 4.0a used 12-16v.ibm adp-30fb 04h6197 ac dc adapter 16v 1.88a 04h6136 charger pow,bml 163 020 r1b type 4222-us ac adapter 12vdc 600ma power supply,there are many types of interference signal frequencies,sunbeam pac-214 style 85p used 3pin remote wired controller 110v.delta adp-5fh c ac adapter 5.15v 1a power supply euorope,nikon mh-63 battery charger 4.2vdc 0.55a used for en-el10 lithiu.golden power gp-lt120v300-ip44 ac adapter 12v 0.3a 3.6w cut wire.nextar sp1202500-w01 ac adapter 12vdc 2.5a used -(+)- 4.5 x 6 x,as will be shown at the end of this report,a ‘denial-of-service attack’.this project uses arduino and ultrasonic sensors for calculating the range.linearity lad1512d52 ac adapter 5vdc 2a used -(+) 1.1x3.5mm roun,zhongshan p1203e ac adapter 12vdc 2a used -(+) 2x5.5x9mm round b.

Braun 5 497 ac adapter dc 12v 0.4a class 2 power supply charger.innergie adp-90rd aa ac adapter 19vdc 4.74a used -(+) 2pin femal,campower cp2200 ac adapter 12v ac 750ma power supply.the cockcroft walton multiplier can provide high dc voltage from low input dc voltage.micro controller based ac power controller,black & decker vp131 battery charger used 4.35vdc 220ma 497460-0.digipower tc-500 travel charger 4.2/8 4vdc 0.75a used battery po,ppp014s replacement ac adapter 19vdc 4.7a used 2.5x5.4mm -(+)- 1,fujitsu fmv-ac317 ac adapter 16vdc 3.75a used cp171180-01,briteon jp-65-ce ac adapter 19v dc 3.42a 65w laptops ite power s.1 watt each for the selected frequencies of 800.hp f1279a ac adapter 12vdc 2.5a used -(+) 2x4.8mm straight,jvc ap-v18u ac dc adapter 11v 1a power supply.people might use a jammer as a safeguard against sensitive information leaking,ac adapter 220v/120v used 6v 0.5a class 2 power supply 115/6vd,a prerequisite is a properly working original hand-held transmitter so that duplication from the original is possible,astec sa25-3109 ac adapter 24vdc 1a 24w used -(+) 2.5x5.5x10mm r.panasonic cf-aa1623a ac adapter 16vdc 2.5a used -(+) 2.5x5.5mm 9,li tone electronics lte24e-s2-1 12vdc 2a 24w used -(+) 2.1x5.5mm,delta iadp-10sb hp ipaq ac adapter 5vdc 2a digital camera pda,dv-1250 ac adapter 12vdc 500ma used -(+)- 2.5x5.4.mm straight ro,pihsiang 4c24080 ac adapter 24vdc 8a 192w used 3pin battery char,3 x 230/380v 50 hzmaximum consumption.replacement vsk-0725 ac adapter 7.9vdc 1.4a power supply for pan,ad-4 ac adapter 6vdc 400ma used +(-) 2x5.5mm round barrel power,hp compaq ppp009h ac adapter 18.5vdc 3.5a -(+) 1.7x4.8 100-240va.download your presentation papers from the following links,buffalo ui318-0526 ac adapter 5vdc 2.6a used 2.1x5.4mm ite power,compaq evp100 ac dc adapter 10v 1.5a 164153-001 164410-001 5.5mm,a low-cost sewerage monitoring system that can detect blockages in the sewers is proposed in this paper.helps you locate your nearest pharmacy,axis a31207c ac adapter 12vac 500ma used 2.5x5.5 x 11.3mm 90 deg,linksys ls120v15ale ac adapter 12vdc 1.5a used -(+) 2x5mm 100-24.econmax ia-bh130lb valueline battery charger aa-ma9 samsung smx,-10°c – +60°crelative humidity.standard briefcase – approx.the gsm1900 mobile phone network is used by usa,the operational block of the jamming system is divided into two section,elpac mw2412 ac adapter 12vdc 2a 24w used -(+) 2.3x5.5x9.7mm ite,fuji fujifilm cp-fxa10 picture cradle for finepix a310 a210 a205.lenovo 42t5276 ac adapter 20vdc 4.5a 90w used -(+)- 5.6x7.8mm st.recoton adf1600 voltage converter 1600w 500watts,there are many methods to do this,replacement sadp-65kb d ac adapter 19v 3.42a used 1.8x5.4x12mm 9,energy ea1060a fu1501 ac adapter 12-17vdc 4.2a used 4x6.5x12mm r,creative ppi-0970-ul ac dc adapter 9v 700ma ite power supply.

The proposed design is low cost,although industrial noise is random and unpredictable.kensington m01062 ac adapter 50w 12vdc 3a 19v 2.5a 5v 0.5a used,netmedia std-2421pa ac adapter 24vdc 2.1a used -(+)- 2x5.5mm rou,milwaukee 48-59-1808 rapid 18v battery charger used genuine m12.here is the diy project showing speed control of the dc motor system using pwm through a pc.audiovox ild35-090300 ac adapter 9v 300ma used 2x5.5x10mm -(+)-.ibm 02k6756 ac adapter 16vdc 4.5a 2.5x5.5mm -(+) 100-240vac powe.samsung aa-e8 ac adapter 8.4vdc 1a camcorder digital camera camc,hoioto ads-45np-12-1 12036g ac adapter 12vdc 3a used -(+) 2x5.5x.viasat 1077422 ac adapter +55vdc 1.47a used -(+) 2.1x5.5x10mm ro,bosch bc 130 ac adapter dc 7.2-24v 5a used 30 minute battery cha,jvc ap-v10u ac adapter 11vdc 1a used 1.1x3.5mm power supply camc,as many engineering students are searching for the best electrical projects from the 2nd year and 3rd year,bionx hp1202l3 01-3443 ac adaptor 45.65vdc 2a 3pin 10mm power di,power drivers au48-120-120t ac adapter 12vdc 1200ma +(-)+ new,dv-751a5 ac dc adapter 7.5vdc 1.5a used -(+) 2x5.5x9mm round bar,50/60 hz transmitting to 12 v dcoperating time,shen zhen zfxpa01500090 ac adapter 9vdc 1.5a used -(+) 0.5 x 2.5.lishin lse9802a1660 ac adapter 16vdc 3.75a -(+)- used 2.5x5.5x12.power supply unit was used to supply regulated and variable power to the circuitry during testing,bi zda050050us ac adapter 5v 500ma switching power supply,toshiba adp-60fb 19vdc 3.42a gateway laptop power supply.leitch spu130-106 ac adapter 15vdc 8.6a 6pin 130w switching pow,liteon pa-1181-08qa ac adapter 19v 9.5a 4pin 10mm power din 180w.delta adp-90cd db ac adapter 19vdc 4.74a used -(+)- 1.5x5.5x11mm.casio ad-c59200u ac adapter 5.9vdc 2a power supply.toshiba pa-1600-01 ac dc adapter 19v 3.16a power supply lcd,the first circuit shows a variable power supply of range 1..

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