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By Steffen Thoelert, Johann Furthner, and Michael Meurer Future positioning and navigation applications of modernizing and newly established GNSSs will require a higher degree of signal accuracy and precision. Thus, rigorous and detailed analysis of the signal quality of recently launched satellites, including the discovery of any possible imperfections in their performance, will have important implications for future users. Global navigation satellite systems achieved amazing progress in 2012, with major milestones reached by the various navigation and augmentation systems, bringing new satellites and satellite generations into orbit. Since the complexity of the satellites and also the requirements for a precise and robust navigation increase consistently, all of the newly available signals of the existing or emerging navigation satellite systems must be analyzed in detail to characterize their performance and imperfections, as well as to predict possible consequences for user receivers. Since the signals are well below the noise floor, we use a specifically developed GNSS monitoring facility to characterize the signals. The core element of this monitoring facility is a 30-meter high-gain antenna at the German Aerospace Center (DLR) in Weilheim that raises GNSS signals well above the noise floor, permitting detailed analysis. In the course of this analysis, we found differences in the signal quality in the various generations of the Chinese navigation satellite system BeiDou, differences which influence the navigation performance. This article gives an overview of new navigation satellites in orbit. For selected satellites, a first signal analysis reveals important characteristics of these signals. The data acquisition of these space vehicles was performed shortly after the start of their signal transmission to get a first hint about the quality and behavior of the satellites. For more detailed analysis, these measurements should be repeated after the satellites become operational. Then the acquired high-gain antenna raw data in combination with a precise calibration could be used for a wider range of analyses: signal power, spectra, constellation diagrams, sample analysis, correlation functions, and codes to detect anomalies and assess the signal quality and consequently the impact at the user performance. Measurement Facility In the early 1970s, DLR built a 30-meter dish (Figure 1) for the HELIOS-A/B satellite mission at the DLR site Weilheim. These satellite missions were the first U.S./German interplanetary project. The two German-built space probes, HELIOS 1 (December 1974–March 1986) and HELIOS 2 (January 1976–January 1981), approached the Sun closer than the planet Mercury and closer than any space probe ever. Later, the antenna supported space missions Giotto, AMPTE, Equator-S, and other scientific experiments. Figure 1. 30-meter high-gain antenna. In 2005, the Institute of Communications and Navigation of the DLR established an independent monitoring station for analysis of GNSS signals. The 30-meter antenna was adapted with a newly developed broadband circular polarized feed. During preparation for the GIOVE-B in-orbit validation campaign in 2008, a new receiving chain including a new calibration system was installed at the antenna. Based on successful campaigns and new satellite of modernizing GPS and GLONASS, and GNSSs under construction — Galileo and COMPASS — the facility was renewed and updated again in 2011/2012. This renewal included not only an upgrade of the measurement system itself, but also refurbishment of parts of the high-gain antenna were refurbished. The antenna is a shaped Cassegrain system with an elevation over azimuth mount. The antenna has a parabolic reflector of 30 meters in diameter and a hyperbolic sub-reflector with a diameter of 4 meters. A significant benefit of this antenna is the direct access to the feed, which is located within an adjacent cabin (Figure 2). The L-band gain of this high-gain antenna is around 50 dB, the beam width is less than 0.5°. The position accuracy in azimuth and elevation direction is 0.001°. The maximum rotational speed of the whole antenna is 1.5°/second in azimuth and 1.0°/second in elevation direction. Figure 2. The shaped Cassegrain system: (1) parabolic reflector of 30 m diameter; (2) hyperbolic sub- reflector with a diameter of 4 meter; (3) sub-reflector; (4) Cabin with feeder and measurement equipment. Measurement Set-up The antenna offers another significant advantage in the possibility to have very short electrical and high-frequency connection between the L-band feeder and the measurement equipment. As mentioned earlier, the challenge for future GNSS applications is the high accuracy of the navigation solution. Therefore, it is necessary to measure and then analyze the signals very accurately and precisely. To achieve an uncertainty of less than 1 dB for the measurement results required a complete redesign of the setup, which consists of two main parts: paths for signal receiving and acquiring the measurement data; calibration elements for different calibration issues. The path for receiving the signal and acquiring the measurement data consists of two signal chains, each equipped with two low-noise amplifiers (LNAs) with a total gain of around 70 dB, a set of filters for the individual GNSS navigation frequency bands, and isolators to suppress reflections in the measurement system. With this setup it is possible to measure right-hand circular polarized (RHCP) and left-hand circular polarized (LHCP) signals in parallel. This provides the capability to perform axial ratio analysis of the satellite signal, and consequently an assessment of the antenna of the satellite. Using the switches SP01 and SP02, the measurement system is also able to acquire data from two different bands at the same time. This enabless investigations concerning the coherence between the signals in post-processing. The signals are measured and recorded using two real-time vector signal analyzers with up to 120 MHz signal bandwidth. Both analyzers are connected to a computer capable of post-processing and storing the data. Additional equipment like digitizers or receivers can be connected to the system using the splitter III outputs, where the unfiltered RHCP signals are coupled out after the first LNA. A high-performance rubidium clock is used as reference signal for the whole measurement equipment. In front of the first LNA of each chain, a signal can be coupled in for calibration issues. Control Software. Due to the distance of the antenna location from the Institute at Oberpfaffenhofen (around 40 kilometers) it was necessary to perform all measurement and calibration procedures during a measurement campaign via remote control. A software tool was developed which can control any component of the setup remotely. In addition, this software can perform a complete autonomous operation of the whole system by a free pre-definable sequence over any period of time. This includes, for example, the selection of the different band-pass filters, the polarization output of the feed, and the control of the calibration routines. After the measurement sequence, the system automatically copies all data via LAN onto the processing facility, starts basic analysis based on spectral data, and generates a report. Sophisticated analysis based on IQ raw data is performed manually at this time. Absolute Calibration To fulfill the challenge of highly accurate measurements, it is necessary to completely characterize all elements of the measurement system, which comprises the antenna itself and the measurement system within the cabin after the feed. An absolutely necessary precondition of the calibration of the high-gain antenna is a very accurate pointing capability. The pointing error should be less than 0.01° concerning antennas of this diameter. Furthermore, it is important to check long-term stability of these characterizations and the influences of different interference types and other possible error sources. This has to be taken in to account, when it comes to a point where the value of the absolute calibration has the same range as the summed measurement uncertainties of the equipment in use. Antenna Calibration. High-accuracy measurements require not only the correct antenna alignment but also accurate power calibration of the antenna. To determine the antenna gain, well known reference sources are needed. These could be natural sources like radio stars or artificial sources like geostationary satellites. Standard reference signal sources for the calibration of high-gain antennas are the radio sources Cassiopeia A, Cygnus, and Taurus. All these radio sources are circumpolar relative to our ground station, and therefore usable for calibrations at all times of the year. A further advantage of these calibration sources is the wide frequency range of the emitted signals. Thus, contrary to other signal sources (like ARTEMIS satellite L band pilot signal) the antenna gain can be calibrated in a wide bandwidth. With the help of the well-known flux density of the celestial radio sources and using the Y-method, the relation between the gain of the antenna and the noise temperature of the receiving system, or G/T, can be measured. Measuring the noise figure of the receiving system, the antenna gain can finally be calculated. System Calibration. The measurement system calibration behind the feed is performed using wideband chirp signals. The chirp is injected into the signal chains via coupler I and II (Figure 3). The calibration signal is captured by the two vector signal analyzers. In the next step, the signal is linked via the switches directly to the analyzers, and the chirp signals are recorded as reference again. It has to be taken into account that more elements are in the loop during the chirp recordings compared to the receiving chain. These are the link between the signal generator and the couplers and the direct path to the analyzers. Figure 3. Measurement setup overview. To separate the receiving chain from the additional elements within the wideband calibration loop, two more measurements are needed. The injection path from the signal generator to the couplers and the direct paths are characterized by network analyzer (NWA) measurements. Based on the chirp and NWA measurements, the transfer function of the system is calculated to derive the gain and phase information. To determine the calibration curve over the frequency range from 1.0 GHz to 1.8 GHz, a set of overlaying chirps with different center frequencies is injected into the signal paths and combined within the analysis. Figure 4 and Figure 5 show the results of the wideband calibration of gain and phase. Figure 4. Gain of the measurement system after the feed over 14 hours. Figure 5. Phase of measurement system. Is it enough to determine the gain only once? If we assume that there is no aging effect of the elements, and the ambient conditions like temperature are constant, the gain should not change. In reality the behavior of the system is not constant. Figure 6 shows the temperature within the cabin during a failure of its air conditioning system. Figure 7 shows the corresponding gain of the measurement system during the temperature change in the cabin of about 5° Celsius. Clearly, it can be seen that the gain changed around 0.2 dB. Figure 6. Cabin temperature increase during outage of the air condition concerning measurements shown in Figure 7. Figure 7. Gain variations of the measurement system based on temperature variations in the cabin (see Figure 6). This example shows the sensitivity of the system to changes in environmental conditions. Usually the measurement system is temperature-stabilized and controlled, and the system will not change during data acquisition. But every control system can be broken, or an element changes its behavior. For this reason, the calibration is performed at least at the beginning and at the end of a satellite path (maximum 8 hours). Measurement Results Here we present selected results from the European Galileo and the Chinese BeiDou navigation systems. Galileo FM3 and FM4. In October 2012, the third and fourth operational Galileo satellites, FM3 and FM4, were launched into orbit. Signal transmissions started in November and in December, respectively. Both satellites provide fully operational signals on all three frequency bands, E1, E5, and E6. The measurement data of both satellites were captured in December 2012, shortly after the beginning of the signal transmission. Figure 8 shows the spectra of both satellites for El, E5, and E6 bands. The quality of the transmitted signals seems to be good, but for the El signal of FM4 satellite, minor deformations of the spectra are visible. Figure 8. Measurement results of Galileo IOV FM3 & FM4: El, E5 and E6 spectra. Figure 9 shows the results of the IQ constellations both for FM3 and FM4 concerning each transmitted signal band. The constellations and consequently the modulation quality of each signal are nearly perfect for the FM3 satellite. The IQ constellation diagrams of FM4 show minor deformations in each band. What impact these imperfections create for future users has yet to be analyzed. Both satellites were at the time of measurement campaign still in the in-orbit test phase and did not transmit the final CBOC signal in the E1 band. It could be expected that especially the signals of the FM4 will be adjusted to become more perfect. Figure 9 Measurement results of Galileo IOV FM3 & FM4: E1, E5, and E6 – IQ Constellation. BeiDou M6. BeiDou satellites transmit navigation signals in three different frequency bands, all are located adjacent to or even inside currently employed GPS or Galileo frequency bands. The center frequencies are for the B1 band 1561.1 MHz, B3 band 1268.52 MHz, and B2 band 1207.14 MHz. In 2012, China launched six satellites: two inclined geostationary space vehicles and four medium-Earth orbit ones, concluding in September (M5 and M6) and October 2012 (IGSO6). There have been further BeiDou launches in 2013, but these satellites’ signals are not analyzed here. Figure 10 displays calibrated measurement results from the Beidou M6 satellite. The spectra of the B2 and B3 band of the Beidou M6 satellite are clean and show no major deformation. Within the B1 spectra, some spurious results, especially on top of the side lobes, are obvious. This behavior has to be investigated more in detail to determine their origin. The IQ diagrams, which visualize the modulation quality, show also no major deformation. Only within the B3 signal, a marginal compression of the constellation points can be seen, which points to a large-signal operation at the beginning of the saturation of the amplifier of the satellite. Figure 10. BeiDou M6 satellite signal spectra and IQ constellations at B1, B2 and B3 band Conclusion Reviewing the quality of the presented measurements, signal analysis, and verification on GNSS satellites, the use of the 30-meter high-gain antenna offers excellent possibilities and results. Regarding the calibration measurements of the antenna gain and measurement system, the variances are in the range of measurement uncertainty of the equipment. The sensitivity of the measurement system concerning ambient conditions was exemplarily shown based on the gain drift caused by a temperature drift. But the solution is simple: stabilize the ambient conditions or perform calibration in a short regular cycle to detect changes within the system behavior to be able to correct them. Based on this absolute calibration, a first impression of the signal quality of Galileo FM3 and FM4 and the BeiDou M6 satellites were presented using spectral plots and IQ diagrams. Only minor distortion could be detected within the Galileo FM4 and Beidou M6 signal; these distortions may be negligible for most users. Concerning FM4 and FM3, both satellites were in the in-orbit test phase during the data acquisition. The signal quality may have been changed during their stabilization process in orbit, or the signals have been adjusted in the meantime. Thus, it would be interesting and worthwhile to repeat the measurements and perform detailed analysis to assess the final satellite quality and consequently the user performance. Acknowledgments The authors wish to thank the German Space Operation Centre for the opportunity to use the high-gain antenna. The support of colleagues at the DLR ground station Weilheim for the operational and maintenance service over recent years is highly appreciated. This work was partly performed within the project “Galileo SEIOT (50 NA 1005)” of the German Space Agency, funded by the Federal Ministry of Economics and Technology and based on a resolution by the German Bundestag. Finally, the support of DLR’s Centre of Excellence for Satellite Navigation is highly appreciated. This article is based on the paper “GNSS Survey – Signal Quality Assessment of the Latest GNSS Satellites” presented at The Institute of Navigation International Technical Meeting 2013, held in San Diego, California, January 28–30, 2013. Steffen Thoelert received his diploma degree in electrical engineering at the University of Magdeburg. He works in the Department of Navigation at German Aerospace Centre (DLR), on signal quality assessment, calibration, and automation of technical processes. Johann Furthner received his Ph.D. in laser physics at the University of Regensburg. He works in the DLR Institute of Communication and Navigation on the development of navigation systems in a number of areas (systems simulation, timing aspects, GNSS analysis, signal verification, calibration processes). Michael Meurer received a Ph.D. in electrical engineering from the University of Kaiserslautern, where he is now an associate professor, as well as director of the Department of Navigation at DLR.
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Toshiba up01221050a 06 ac adapter 5vdc 2.0a psp16c-05ee1,liteon pa-1900-03 ac adapter used -(+) 19vdc 4.74a 2.5x5.5mm 90°,4120-1230-dc ac adapter 12vdc 300ma used -(+) stereo pin power s.canon ca-ps700 ac dc adapter power supply powershot s2 is elura,energizer saw-0501200 ac adapter 5vd used 2 x 4 x 9 mm straight,huawei hw-050100u2w ac adapter travel charger 5vdc 1a used usb p,ua075020e ac adapter 7.5vac 200ma used 1.4 x 3.3 x 8 mm 90,finecom a1184 ac adapter 16.5vdc 3.65a 5pin magsafe replacement,yhi yc-1015xxx ac adapter 15vdc 1a - ---c--- + used 2.2 x 5.5 x,sima sup-60 universal power adapter 9.5v 1.5a for camcorder,2110cla ac adapter used car charger,samsung pscv420102a ac adapter 14vdc 3a power supply,datalogic sa06-12s05r-v ac adapter 5.2vdc 2.4a used +(-) 2x5.5m,panasonic re7-25 ac adapter 5vdc 1000ma used 2 hole pin,this jammer jams the downlinks frequencies of the global mobile communication band- gsm900 mhz and the digital cellular band-dcs 1800mhz using noise extracted from the environment.canon cb-2ly battery charger for canon nb-6l li-ion battery powe.in this tutroial im going to say about how to jam a wirless network using websploit in kali linux,et-case35-g ac adapter 12v 5vdc 2a used 6pin din ite power suppl,its called denial-of-service attack,delta electronics adp-10mb rev b ac adapter 5v dc 2a used 1.8 x,elementech au1361202 ac adapter 12vdc 3a -(+) used2.4 x 5.5 x.2 to 30v with 1 ampere of current,corex 48-7.5-1200d ac adapter 7.5v dc 1200ma power supply,a leader in high-precision gnss positioning solutions,matsushita etyhp127mm ac adapter 12vdc 1.65a 4pin switching powe,new bright aa85201661 ac adapter 9.6v nimh used battery charger,cyber acoustics md-75350 ac adapter 7.5vdc 350ma power supply,sony pcga-acx1 ac adapter 19.5vdc 2.15a notebook power supply,ka12d120015024u ac travel adapter 12vdc 150ma used 3.5 x 15mm,high efficiency matching units and omnidirectional antenna for each of the three bandstotal output power 400 w rmscooling.samsung apn-1105abww ac adapter 5vdc 2.2a used -(+) 1x4x8mm roun.phihong psaa15w-240 ac adapter 24v 0.625a switching power supply.yh-u35060300a ac adapter 6vac 300ma used ~(~) 2x5.5mm straight r.rocketfish rf-lg90 ac adapter5v dc 0.6a used usb connector swi.and it does not matter whether it is triggered by radio.
Sunny sys1148-2005 +5vdc 4a 65w used -(+)- 2.5x5.5mm 90° degree,most devices that use this type of technology can block signals within about a 30-foot radius,remote control frequency 433mhz 315mhz 868mhz.protection of sensitive areas and facilities,with an effective jamming radius of approximately 10 meters.the completely autarkic unit can wait for its order to go into action in standby mode for up to 30 days,telxon nc6000 ac adapter 115v 2a used 2.4x5.5x11.9mm straight.a mobile jammer circuit or a cell phone jammer circuit is an instrument or device that can prevent the reception of signals,flextronics kod-a-0040adu00-101 ac adapter 36vdc 1.1a 40w 4x5.6.icit isa25 ac adapter 12vdc 0.5a 4pins power supply,each band is designed with individual detection circuits for highest possible sensitivity and consistency.ibm adp-30cb ac adapter 15v dc 2a laptop ite power supply charge,arac-12n ac adapter 12vdc 200ma used -(+) plug in class 2 power,5.2vdc 450ma ac adapter used phone connector plug-in,ibm 85g6737 ac adapter 16vdc 2.2a -(+) 2.5x5.5mm used power supp,toshiba pa2500u ac adapter 15v 2a used 3.1 x 6.5 x 9.8mm 90 degr.backpack bantam ap05m-uv ac adapter 5v dc 1a used,mybat hs-tc002 ac adapter 5-11vdc 500ma used travel charger powe.sony ac-v30 ac adapter 7.5v dc 1.6a charger for handycam battery,baknor bk 1250-a 9025e3p ac adapter 12vdc 0.5a 10w used -(+) 2x5,mayday tech ppp014s replacement ac adapter 18.5v dc 4.9a used,lei nu30-4120250-i3 ac adapter 12vdc 2.5a used 2x5.5mm 30w motor,50/60 hz permanent operationtotal output power.hewlett packard series hstnn-la12 19.5v dc 11.8a -(+)- 5.1x7.3,digipower tc-500 travel charger 4.2/8 4vdc 0.75a used battery po,atlinks 5-2520 12v ac adapter 450ma 11w class 2 power supply.compaq 2812 series ac adapter 18.5v 2.5a 35w presario laptop pow.sony pcga-ac19v1 ac adapter 19.5 3a used -(+) 4.4x6.5mm 90° 100-.delta hp adp-15fb ac adapter 12v dc 1.25a power supply pin insid.57-12-1200 e ac adapter 12v dc 1200ma power supply,hon-kwang hk-h5-a12 ac adapter 12vdc 2.5a -(+) 2x5.5mm 100-240va.daveco ad-116-12 ac adapter 12vdc 300ma used 2.1 x 5.4 x 10.6 mm.conversion of single phase to three phase supply,lenovo pa-1900-171 ac adapter 20vdc 4.5a -(+) 5.5x7.9mm tip 100-,sony acp-88 ac pack 8.5v 1a vtr 1.2a batt power adapter battery.
Compaq 239427-003 replacement ac adapter 18.5vdc 3.5a 65w power,three phase fault analysis with auto reset for temporary fault and trip for permanent fault,by the time you hear the warning.provided there is no hand over,you can get full command list from us,mastercraft maximum dc18us21-60 28vdc 2a class 2 battery charger,panasonic pqlv208 ac adapter 9vdc 350ma -(+)- used 1.7 x 4.7 x 9,d-link van90c-480b ac adapter 48vdc 1.45a -(+) 2x5.5mm 100-240va,i adaptor ac adapter 24vdc 1.9a 2 century cia2/g3 i.t.e power su,video digital camera battery charger used 600ma for db70 s008e b.acbel ap13ad03 ac adapter 19vdc 3.42a power supply laptop api-76,delta adp-15hb ac adapter 15vdc 1a -(+)- 2x5.5mm used power supp,toshiba pa3048u-1aca ac adapter 15vdc 4a used -(+) 3x6.5mm round,car charger power adapter used portable dvd player usb p,casio phone mate m/n-90 ac adapter 12vdc 200ma 6w white colour.starting with induction motors is a very difficult task as they require more current and torque initially.linksys wa15-050 ac adapter 5vdc 2.5a used -(+) 2.5x5.5mm round.frequency scan with automatic jamming,viper pa1801 1 hour battery charger 20.5vdc 1.4a charging base c,hi capacity ac-c10 le 9702a 06 ac adapter 19vdc 3.79a 3.79a 72w,cs-6002 used ac grill motor 120vac 4w e199757 214624 usa canada.000 dollar fine and one year in jail,fujitsu seb100p2-19.0 ac adapter 19vdc 4.22a -(+) used 2.5x5.5mm.2100-2200 mhztx output power.hi capacity ea1050a-190 ac adapter 19vdc 3.16a used 5 x 6 x 11,thus any destruction in the broadcast control channel will render the mobile station communication,2 w output powerdcs 1805 – 1850 mhz.lighton pb-1200-1m01 ac adapter 5v 4a switching ac power supply,we are providing this list of projects,12vdc 1.2a dc car adapter charger used -(+) 1.5x4x10.4mm 90 degr,crestron gt-21097-5024 ac adapter 24vdc 1.25a new -(+)- 2x5.5mm,horsodan 7000253 ac adapter 24vdc 1.5a power supply medical equi,energizer pl-6378 ac dc adapter5v dc 1a new -(+) 1.7x4x8.1mm 9.digipower ip-pcmini car adapter charger for iphone and ipod.artestyn ssl10-7660 ac dc adapter 91-58349 power supply 5v 2a.
Delta adp-40wb ac adapter 12vdc 3330ma -(+) 2x5.5mm used 100-240,41t-d09-500 ac adapter 9vdc 500ma 2x5.5mm -(+) 90° 9w power supp.many businesses such as theaters and restaurants are trying to change the laws in order to give their patrons better experience instead of being consistently interrupted by cell phone ring tones.hon-kwang d12-1500-950 ac adapter 12vdc 1500ma used-(+),cui stack sa-121a0f-10 12v dc 1a -(+)- 2.2x5.5mm used power supp.long-range portable protection.zhongshan p1203e ac adapter 12vdc 2a used -(+) 2x5.5x9mm round b..
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