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Jammer st枚rsender,hva er gps jammer stores,A Look at High-Latitude and Equatorial Ionospheric Disturbances of GPS Signals By Yu Jiao, Yu (Jade) Morton, Steve Taylor, and Wouter Pelgrum INNOVATION INSIGHTS by Richard Langley THE EARTH’S...

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A Look at High-Latitude and Equatorial Ionospheric Disturbances of GPS Signals By Yu Jiao, Yu (Jade) Morton, Steve Taylor, and Wouter Pelgrum INNOVATION INSIGHTS by Richard Langley THE EARTH’S IONOSPHERE. It’s both a blessing and a curse. Together with the magnetosphere, it helps to protect life on our planet from the damaging outpour of particle and electromagnetic radiation from the sun. In particular, it absorbs a lot of the extreme-ultraviolet (EUV) radiation arriving at the Earth. In fact, that is primarily how the ionosphere is formed. The EUV energy strips off the outer electrons of atmospheric gases producing a plasma of free electrons and ions. The ionosphere has another beneficial role in that it permits long distance radio communication using high-frequency (HF) or shortwave signals. Although its use is in decline since the advent of the Internet, HF is still in use by some broadcasters and military organizations and is indispensible during natural disasters when electricity grids and network links go down. But the ionosphere can be a pain, too, particularly for GNSS users. The signals from GNSS satellites must travel though the ionosphere on their way to receivers on or near the Earth’s surface. The signals are perturbed by the presence of the free electrons causing an advance in the phase of a signal’s carrier and a delay in the arrival of the pseudorandom noise code modulation (due to the refractive index being frequency dependent or dispersive) and so there is a contribution to carrier-phase and pseudorange (code) measurements, which must be accounted for when determining positions, velocities, and time (PVT) from the measurements. Again, since the ionosphere is a dispersive medium, by linearly combining simultaneous measurements (either pseudoranges or carrier phases) on two frequencies such as the GPS L1 and L2 frequencies, an observable virtually free of ionospheric effects can be constructed and used for PVT determinations. This approach does require, however, a dual- or multi-frequency receiver. Single-frequency receivers (or the post-processing of single-frequency data) require the use of a model to account for the ionospheric biases as much as possible. The GPS navigation message, for example, includes values of the parameters of a simple ionospheric model. But, on average, its accuracy is only around 50%. More accurate ionospheric corrections can be acquired from elsewhere, even in real time, such as those from satellite-based augmentation systems. But there is another ionospheric effect that can play havoc with GNSS signals: scintillations. These are rapid fluctuations in the amplitude and phase of the signals caused by small-scale irregularities in the ionosphere. When sufficiently strong, scintillations can result in the strength of a received signal dropping below the threshold required for acquisition and tracking or in causing problems for the receiver’s phase lock loop resulting in many cycle slips. The occurrence of scintillations depends on many factors including solar and geomagnetic activity, time of year, time of day, and geographical location. In particular, scintillations are most prevalent in equatorial and polar (Arctic and Antarctic) regions. And the processes involved are not fully understood, hindering our ability to model and predict scintillations. In an effort to help improve the monitoring, mapping, and modeling of scintillations, a team of researchers led by Prof. Jade Morton is monitoring high-latitude and equatorial scintillations and they discuss some of their preliminary results in this month’s column. “Innovation” is a regular feature that discusses advances in GPS technology and its applications as well as the fundamentals of GPS positioning. The column is coordinated by Richard Langley of the Department of Geodesy and Geomatics Engineering, University of New Brunswick. He welcomes comments and topic ideas. Write to him at lang @ unb.ca. Among other effects of the Earth’s ionosphere on GPS and other GNSS signals, scintillation is potentially the most problematic. Ionospheric scintillation refers to the random amplitude and phase fluctuations of radio signals after propagating through plasma irregularities. These irregularities occur more frequently in high-latitude and equatorial regions, especially during solar maxima. Occurrence of scintillation is difficult to predict and model because of the complexity of the ionosphere’s internal mechanisms and solar activities that are the driving forces of space weather phenomena. GNSS signals are particularly vulnerable to scintillation, as strong scintillation can severely impact the acquisition and tracking processes in GNSS receivers, causing degradation in positioning accuracy and even loss-of-lock. With the increasing reliance on GNSS applications, understanding the characteristics of ionospheric scintillation and its effects on GNSS signals and receivers has become an important topic and has gained worldwide attention from both ionospheric scientists and GNSS engineers. Since 2009, our research group has established several ionospheric scintillation monitoring and data collection systems located in high-latitude and equatorial regions. The results presented here are based on data collected from a specialized commercial dual-frequency GPS ionospheric monitoring receiver at Gakona, Alaska (62.4°N, 145.2°W), and a commercial multi-system, multi-frequency GNSS ionospheric monitoring receiver located at Jicamarca, Peru (11.9°S, 76.9°W).  Measurements are filtered to remove slowly varying trends caused by satellite-receiver dynamics, receiver oscillator errors, the background ionosphere and troposphere gradient, and other potential contributions from multipath and man-made interferences. Scintillation events above preset threshold levels from the filter outputs are extracted for analysis. The threshold levels are set based on two commonly used scintillation indices, the S4 index and σφ , which are defined as the standard deviations of the detrended signal amplitude and carrier phase to represent the magnitude of signal intensity and phase fluctuation, respectively. In the study discussed in this article, the thresholds for S4 and σφ  are 0.15 and 15°, respectively for high-latitude measurements. For low-latitude data, the threshold for S4 is raised to 0.2 to accommodate stronger amplitude scintillation, while the threshold for σφ remains 15°. From data collected at Gakona, between August 2010 and March 2013, we extracted 655 amplitude and 2,355 phase-scintillation events from 657 equivalent days of data, while from data collected at Jicamarca, we extracted about 830 amplitude and 1,100 phase-scintillation events from 190 days of data collected from November 2012 to June 2013. Based on these events, we established a number of amplitude and phase scintillation distributions, which include scintillation-index-magnitude distributions, event-duration distributions, and event-occurrence frequency distributions. These results show very different characteristics of scintillation observed at low latitudes and high latitudes, indicating that there must be different mechanisms contributing to the formation and evolution of ionosphere plasma irregularities in the two regions. These characteristics are useful for scintillation-event prediction and modeling in the future. Data Collection System and Event Thresholds FIGURE 1 illustrates the general architecture of the event-driven GNSS data collection system. The system hardware consists of a multi-band GNSS antenna, a commercial ionospheric scintillation monitor (ISM) receiver, an array of reconfigurable software-defined radio (SDR) radio-frequency (RF) front-end devices capable of sampling intermediate-frequency (IF) signals, one or multiple data collection servers, a data storage array, timing signal distribution hardware to ensure both time and frequency consistency across all RF front ends and receivers, and network/communication devices that allow remote access of the receivers and servers to monitor the status of the hardware, to query recorded data, and reset and reconfigure the data collection system.  FIGURE 1. General architecture of the event-driven GNSS data collection system deployed at several high-latitude and equatorial sites since 2009. Custom-designed space weather event monitoring and trigger software resides on the data collection and control server. The ISM receiver operates continuously to produce and record routine measurements such as I and Q channel accumulator outputs, pseudorange, carrier phase, Doppler frequency, C/N0, and scintillation indices, while the SDR RF front ends only temporarily store the latest one-minute worth of IF samples in each device’s circular buffer. Scintillation event thresholds are pre-determined based on analysis of baseline data collected at the same local site using the same hardware. The real-time event trigger software compares ISM receiver measurements with the pre-set event threshold. If the measurements exceed the thresholds, the contents of the circular buffers will be written to the data storage array until after the event subsides. These raw IF samples are then further post-processed using a wide range of receiver processing algorithms for analysis of scintillation features and robust receiver algorithm development. The high-latitude GNSS receiver array at Gakona, was initially established in 2009 and has been continuously evolving into a four-antenna array capable of collecting GPS L1, L2C, and L5 and GLONASS L1 and L2 signal data until its recent relocation to and upgrade at Poker Flat Research Range, north of Fairbanks. Several publications have discussed the system setup, receiver signal processing of data collected by the system, and characterization of high-latitude scintillations based on analysis of the array outputs (see Further Reading). In this article, only the data collected using the commercial ISM receiver are discussed because this is the longest operating receiver at this site. The receiver outputs L1C/A signal intensity and carrier-phase measurements at a rate of 50 Hz and semi-codeless tracking results of L2P(Y) at 1 Hz. Since 2011, several GNSS data collection systems have been deployed at low-latitude locations, including Hong Kong, Singapore, Peru, Ascension Island, and Puerto Rico. In this article, we use results from the ISM receiver at Jicamarca, Peru, close to the geomagnetic equator. FIGURE 2 shows the data-collection-system-setup block diagram at Jicamarca. The ISM receiver used in this location generates 100-Hz carrier-phase measurements and I/Q channel correlator outputs; the latter are further processed to generate 50-Hz signal-intensity measurements for GPS L1C/A, L2C, and L5 signals and GLONASS, Galileo, and BeiDou open signals. Seven SDR front ends driven by the same oven-controlled crystal oscillator (OCXO) signal from the ISM receiver sample GPS, GLONASS, Galileo, and BeiDou open signals. Preliminary results obtained from these and other low-latitude SDR data have been presented in several papers in the archived literature (see Further Reading).  FIGURE 2. Current multi-GNSS data collection system configuration at Jicamarca Radio Observatory in Peru. (GLO = GLONASS, BDS = BeiDou System, VPN = virtual private network, ISMET = ionospheric scintillation monitoring event triggering, RAID = redundant array of independent disks) The raw carrier-phase and signal-intensity measurements obtained from the two ISM receivers at Gakona and Jicamarca were detrended, from which the two scintillation indices S4 and σφ were computed using Equations (1) and (2). In the two equations, I and φ stand for detrended signal intensity and carrier phase, respectively, and represents the expected value that is essentially the average value over the interval of interest. In this study, the interval of interest was set to 10 seconds to most effectively highlight scintillation features based on evaluations of several different time intervals between 10 and 60 seconds.  (1)  (2)  As we mentioned earlier, the characterization of scintillation was carried out on the basis of scintillation events extracted from the raw data. After the evaluation of non-scintillation events and baseline indicators, a set of criteria has been established to extract interesting events through a semi-automated process from a large amount of data while keeping the number of selected events caused by non-scintillation factors (such as multipath and interference) low. A brief summary and explanations of the criteria are listed as follows: The elevation angle mask is 30° to reduce multipath effects. The thresholds for S4 and σφ are 0.15 and 15° respectively for data collected at Gakona.  For Jicamarca data, the thresholds are 0.2 and 15° respectively. To exclude interference cases, the index value has to remain above the threshold value for a minimum of 30 seconds to qualify as a scintillation event.  An event detected within 5 minutes of the end of another event is combined as one event with the previous one. Scintillations experienced by multiple satellite signals simultaneously are treated separately, and events experienced simultaneously for all visible satellites are further analyzed to ensure that they are not caused by interferences. Carrier cycle slip/loss-of-lock detection and repair procedures are implemented to determine whether these cases are caused by scintillation or other factors. It is important to note that the above criteria and procedures contain some degrees of arbitration, especially the last two, as they were applied based on visual inspections. These artificially imposed rules nevertheless are necessary for statistical analysis and comparison of scintillation observations. Results and Discussion In this section, we discuss the data sets we have collected and analyzed. Available Dataset from Alaska and Peru. The ISM receiver at Gakona, started recording effective GPS data in August 2010. Environmental issues and human factors lead to a few intermittent data gaps during the more than three and a half years of data recording. TABLE 1 lists monthly normal operation days and the percentage of time when data were collected. In all, the results presented in this article are based on approximately 3,000 scintillation events extracted from 657 days’ worth of data that was collected in a time span of 32 months. Similarly, the number and percentage of days of effective data from Jicamarca, are summarized in Table 2. The dataset from this location runs from November 2012 until June 2013. Roughly 2,000 scintillation events have been extracted to enable statistical comparison of characteristics of scintillation observed in high- and low-latitude regions. Scintillation Indicator Distributions. The magnitudes of the two scintillation indices, S4 and σφ , are often used to indicate the intensity of ionospheric scintillation, as their values directly reflect the disturbance rate of received power and carrier-phase measurements. Although there have been discussions regarding the suitability of σφ  as a phase scintillation indicator, it is, nevertheless, a measure of the magnitude of carrier variations in a certain spectral range that are related to scintillation activities. In the absence of a commonly accepted new indicator for phase scintillation, we will use σφ  in this study simply as a means to measure the phase fluctuations. FIGURE 3 compares the intensity distributions of amplitude and phase scintillation observed at the Alaska (square markers) and Peru (triangle markers) sites. MaxS4/σφ  in the figures is the peak S4 or σφ  value during an amplitude or phase scintillation event, which is a more practical indicator of scintillation impact on GNSS receivers.  FIGURE 3. Maximum S4 and σφ distributions of (a) amplitude and (b) phase scintillation observed at Gakona, Alaska, and Jicamarca, Peru. Figure 3a shows that amplitude scintillation events observed at Jicamarca are generally more intense than those observed at Gakona. This is consistent with most previous studies, which concluded that scintillation is the most intense in the equatorial region. Figure 3b, on the other hand, shows that the intensity of phase scintillation at Jicamarca is slightly lower than that at Gakona. Nevertheless, this result does not necessarily reflect scintillation intensity observed in other parts of the equatorial region, as Jicamarca is not located close to the equatorial anomaly crest where scintillation activity is the strongest.  The duration of a scintillation event is another indicator of scintillation’s negative impact on the acquisition and tracking processes in receivers. FIGURE 4 plots the amplitude and phase event duration probability distributions, with the mean event durations at each site shown in the plots. The results show that at Gakona (square markers), phase scintillation lasts much longer than amplitude scintillation. At Jicamarca (triangle markers), amplitude scintillation events last slightly longer than the phase ones on average, and both types have much longer durations than those at high latitudes. FIGURE 4. Duration distributions of (a) amplitude and (b) phase scintillation events observed at Gakona, Alaska, and Jicamarca, Peru. Ionospheric scintillation of combined high intensity and long duration is usually considered a big threat to signal processing in GNSS receivers. Unfortunately, these two aspects are often correlated, especially at low latitudes. Moderate correlation coefficient values have been observed between scintillation durations and the magnitudes of scintillation indicators at Jicamarca (FIGURE 5b). The correlations, however, are much smaller at Gakona (FIGURE 5a), especially for amplitude scintillation events. These results further confirm that scintillation is a more severe issue in the equatorial region. FIGURE 5. Scintillation duration vs. intensity at (a) Gakona, Alaska, and (b) Jicamarca, Peru. Scintillation Occurrence Frequency and Relating Factors. We define the scintillation occurrence frequency as the number of scintillation events recorded during a certain time interval, which can be an hour, a day, a month, a season, and so on. The occurrence frequency is an important indicator in scintillation monitoring and forecasting, as it helps to identify the periods when scintillation events are most likely to occur.  FIGURE 6 illustrates scintillation hourly occurrence probabilities at the two sites with respect to Coordinated Universal Time (UTC) (upper) and hours post sunset (lower). Also consistent with numerous previous research findings, scintillation at high latitudes was more frequent during nighttime than at other times. Scintillation observed at Jicamarca occurred more frequently at night as well, but was greatly concentrated between one and two hours post sunset and midnight. Statistics show that 98% of Jicamarca’s scintillation events were observed from one to six hours after local sunset. FIGURE 6. Scintillation occurrence frequency with respect to UTC hours and hours after sunset at (a) Gakona, Alaska, and (b) Jicamarca, Peru. As demonstrated in Figure 6, scintillation occurrence frequency is largely influenced by solar inputs, which are the main driving force in atmospheric ionization and ionospheric irregularity formation. Scintillation occurrence can also be affected by geomagnetic activities. FIGURE 7 shows how scintillation occurrence frequency was affected by solar activity and seasons. The four seasons are defined as: spring (SP) – March to May; summer (SU) — June to August; fall (FA) — September to November; and winter (WI) – December to February. The intensity of solar activity is indicated by the smoothed average sunspot numbers, which are marked as black dots in the plot. FIGURE 7. Seasonal scintillation occurrence frequency and smoothed sunspot number. Several phenomena can be observed in Figure 7. At Gakona, scintillation occurrence frequency is clearly influenced by solar activity. The occurrence frequency is also modulated by season, with equinoxes generally more active than adjacent solstices. In contrast to the half-a-year cycle at high latitudes, scintillation occurrence frequency at Jicamarca more closely follows a one-year cycle as described in previous research, and decreases largely in the summer.  Our analysis also shows that the level of geomagnetic field activity also directly impacts scintillation occurrence frequency. FIGURE 8 shows the correlations between scintillation daily occurrence frequencies and Ap index values at the two sites. Ap is a widely used index that linearly reflects the daily average level of global geomagnetic field activity. Ap can be converted to the conventional Kp index using a quasi-logarithmic conversion table. The result in Figure 8a was obtained using data collected during seven months at Gakona: March and November 2011; March, July, October, and November 2012; and March 2013. During these months, scintillation activity was generally high. Figure 8b was generated using all the data listed in Table 2. Clearly shown in the plots, scintillation occurrence frequency at high latitudes is strongly correlated with geomagnetic field activities, while at Jicamarca such correlations do not exist. This result also confirms many previous research findings. FIGURE 8. Daily scintillation occurrence frequency with respect to Ap index value at (a) Gakona, Alaska, and (b) Jicamarca, Peru. Summary and Conclusions This article presented comparative work on ionospheric scintillation characterization using data collected at Gakona, Alaska, and Jicamarca, Peru, during the current solar maximum to investigate the different natures of scintillation at high latitude and in equatorial regions. Scintillation intensity, duration, and occurrence frequency distributions were analyzed to demonstrate the differences at the two locations. Scintillation in the equatorial region is typically more severe with deeper and faster signal power fadings and longer durations. Also, low-latitude scintillation with stronger intensity usually lasts longer, which further contributes to its negative impact on receivers. At high latitudes, phase fluctuations overwhelmed amplitude scintillation by the number of occurrences and their duration. Scintillation is more frequent during nighttime, and almost all low-latitude scintillation events occur within six hours after local sunset. The overall occurrence frequency of scintillation not only increases with high solar activity, but also follows certain seasonal patterns. In general, scintillation is more active around the equinoxes. Additionally, high-latitude scintillation is also closely correlated to geomagnetic field activity, while the relationship is not obvious in the equatorial region. Lastly, we would like to point out that the results presented here are preliminary and may be restricted to local effects, especially at low latitudes. As more data become available from Jicamarca and other equatorial sites where SDR data collection systems ensure quality inputs during strong scintillation events, a more comprehensive analysis and comparison can be made to facilitate global scintillation monitoring, mapping, and modeling.  Acknowledgments The data collection and analysis project discussed in this article was supported by the U.S. Air Force Office of Scientific Research and Air Force Research Laboratory grants. The authors appreciate the support of High Frequency Active Auroral Research Program (HAARP) staff and the University of Alaska Fairbanks Geophysical Institute for organizing and sponsoring the HAARP campaign and HAARP staff support of the GNSS receiver data collection system setup. The authors would also like to acknowledge Jicamarca Radio Observatory for hosting the GNSS equipment. The Jicamarca Radio Observatory is a facility of the Instituto Geofisico del Peru, operated with support from the U.S. National Science Foundation through Cornell University. This article is based, in part, on the paper “Comparative Studies of High-latitude and Equatorial Ionospheric Scintillation Characteristics of GPS Signals” presented at PLANS 2014, the Institute of Electrical and Electronics Engineers / Institute of Navigation Position, Location and Navigation Symposium held in Monterey, California, May 5–8, 2014.  Manufacturers The commercial ISM receivers used at Gakona and Jicamarca were a GPS Silicon Valley — now NovAtel Inc. — GSV4004B and a Septentrio N.V. PolaRxS Pro, respectively. YU JIAO is a Ph.D. candidate at the Colorado State University (CSU), Fort Collins, Colorado. She received her master’s degree in computational science and engineering from Miami University, Oxford, Ohio, in 2013 and her bachelor’s degree in electronic and information engineering from Beihang University (previously known as the Beijing University of Aeronautics and Astronautics), Beijing, China, in 2011. Her research interests are in GNSS signal processing and ionosphere effects on GNSS in both high-latitude and equatorial regions. YU (JADE) MORTON is an electrical engineering professor at CSU. She received a Ph.D. in electrical engineering from Pennsylvania State University (Penn State), State College, Pennsylvania, and was a post-doctoral research fellow in the Space Physics Research Laboratory of the University of Michigan, Ann Arbor, Michigan. Prior to joining CSU, she was a professor in the Department of Electrical and Computer Engineering at Miami University. Her research interests are advanced GNSS receiver algorithms for accurate and reliable operations in challenging environments, studies of the atmosphere using radar and satellite signals, and development of new applications using satellite navigation technologies. STEVE TAYLOR is a graduate student in the Department of Electrical and Computer Engineering at Miami University. He received his B.S. in computer science from Miami University in 2011. Taylor developed software systems for ionosphere space weather monitoring and has been involved in deployment of Dr. Morton’s research team’s GNSS data collection system in Alaska, Peru, Hong Kong, Ascension Island, and Puerto Rico.  WOUTER PELGRUM is an assistant professor of electrical engineering at Ohio University, where he conducts research in and teaches about topics in electronic navigation, such as GNSS, Distance Measuring Equipment or DME, and time and frequency transfer. Before joining Ohio University in 2009, he worked in private industry, where he contributed to the development of an integrated GPS-eLoran receiver and antenna. From 2006 until 2008 he operated his own company, specializing in navigation-related research and consulting. FURTHER READING • Authors’ Conference Paper “Comparative Studies of High-latitude and Equatorial Ionospheric Scintillation Characteristics of GPS Signals” by Y. Jiao, Y. Morton, and S. Taylor in Proceedings of PLANS 2014, the Institute of Electrical and Electronics Engineers / Institute of Navigation Position, Location and Navigation Symposium, Monterey, California, May 5–8, 2014, pp. 37–42, doi: 10.1109/PLANS.2014.6851355. • Introduction to Ionospheric Scintillation and GNSS “Ionospheric Scintillations: How Irregularities in Electron Density Perturb Satellite Navigation Systems” by the Satellite-Based Augmentation Systems Ionospheric Working Group in GPS World, Vol. 23, No. 4, April 2012, pp. 44–50. “GNSS and Ionospheric Scintillation: How to Survive the Next Solar Maximum” by P. Kintner, Jr., T. Humphreys, and J. Hinks in Inside GNSS, Vol. 4, No. 4, July/August 2009, pp. 22–30. “GPS and Ionospheric Scintillations” by P. Kintner, B. Ledvina, and E. de Paula in Space Weather, Vol. 5, S09003, 2007, doi: 10.1029/2006SW000260. A Beginner’s Guide to Space Weather and GPS by P. Kintner, Jr., unpublished article, October 31, 2006. “Limitations in GPS Receiver Tracking Performance Under Ionospheric Scintillation Conditions” by S. Skone, K. Knudsen, and M. de Jong in Physics and Chemistry of the Earth, Part A: Solid Earth and Geodesy, Vol. 26, No. 6-8, 2001, pp. 613–621, doi: 10.1016/S1464-1895(01)00110-7. “Radio Wave Scintillations in the Ionosphere” — a review paper by C.K. Yeh and C.-H. Liu in Proceedings of the IEEE, Vol. 70, No. 4, 1982, pp. 324–360, doi: 10.1109/PROC.1982.12313. High-Latitude Scintillations “Characterization of High Latitude Ionospheric Scintillation of GPS Signals” by Y. Jiao, Y. Morton, S. Taylor, and W. Pelgrum in Radio Science, Vol. 48, 2013, pp. 698–708, doi: 10.1002/2013RS005259. Equatorial Scintillations “Statistics of GPS Scintillations over South America at Three Levels of Solar Activity” by A.O. Akala, P.H. Doherty, C.E. Valladares, C.S. Carrano, and R. Sheehan in Radio Science, Vol. 46, No. 5, October 2011, doi: 10.1029/2011RS004678. “Measuring Ionospheric Scintillation in the Equatorial Region over Africa, Including Measurements from SBAS Geostationary Satellite Signals” by A.J. Van Dierendonck and B. Arbesser-Rastburg in Proceedings of ION GNSS 2004, the 17th International Technical Meeting of the Satellite Division of The Institute of Navigation, Long Beach, California, September 21–24, 2004, pp. 316–324. “Effects of the Equatorial Ionosphere on GPS” by L. Wanninger in GPS World, Vol. 4, No. 7, July 1993, pp. 48–54. Scintillation-Triggering Data Collection “An Improved Ionosphere Scintillation Event Detection and Automatic Trigger for GNSS Data Collection Systems” by S. Taylor, Y. Morton, Y. Jiao, J. Triplett, and W. Pelgrum in Proceedings of ION ITM 2012, The Institute of Navigation 2012 International Technical Meeting, Newport Beach, California, January 30 – February 1, 2012, pp. 1563–1569. Software Defined Radio Processing of GPS Scintillation Data “Triple Frequency GPS Signal Tracking During Strong Ionospheric Scintillations over Ascension Island” by M. Carroll, Y.J. Morton, and E. Vinande in Proceedings of PLANS 2014, the Institute of Electrical and Electronics Engineers / Institute of Navigation Position, Location and Navigation Symposium, Monterey, California, May 5–8, 2014, pp. 43–49, doi: 10.1109/PLANS.2014.6851356. Forecasting Scintillations “A Forecasting Ionospheric Real-time Scintillation Tool (FIRST)” by R.J. Redmon, D. Anderson, R. Caton, and T. Bullett in Space Weather, Vol. 8, No. 12, December 2010, doi: 10.1029/2010SW000582. “Specification and Forecasting of Scintillations in Communication/Navigation Links: Current Status and Future Plans” by S. Basu, K.M. Groves, Su. Basu, and P.J. Sultan in Journal of Atmospheric and Solar-Terrestrial Physics, Vol. 64, 2002, pp. 1745–1754, doi: 10.1016/S1364-6826(02)00124-4. Alternative Scintillation Indices “Improved Amplitude- and Phase-scintillation Indices Derived from Wavelet Detrended High-latitude GPS Data” by S.C. Mushini, P.T. Jayachandran, R.B. Langley, J.W. MacDougall, and D. Pokhotelov in GPS Solutions, Vol. 16, No. 3, July 2012, pp. 363–373, doi: 10.1007/s10291-011-0238-4 “Perils of the GPS Phase Scintillation Index (sf)” by T.L. Beach in Radio Science, Vol. 41, RS5S31, 2006, doi: 10.1029/2005RS003356. “Problems in Data Treatment for Ionospheric Scintillation Measurements” by B. Forte and S.M. Radicella in Radio Science, Vol. 37, No. 6, 1096, 2002, pp. 8-1–8.5, doi: 10.1029/2001RS002508.

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jammer st枚rsender

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The pki 6160 covers the whole range of standard frequencies like cdma.posiflex pw-070a-1y20d0 ac power adapter desktop supply 20v 3.5a,cte 4c24040a charger ac adapter 24vdc 4a 96w used 3pin xlr power,this mobile phone displays the received signal strength in dbm by pressing a combination of alt_nmll keys,sunny sys1298-1812-w2 ac dc adapter 12v 1a 12w 1.1mm power suppl.kodak k3000 ac adapter 4.2vdc 1.2a used li-on battery charger e8.soneil 2403srd ac adapter 24vdc 1.5a 3pin xlr connector new 100-,transmission of data using power line carrier communication system,cell phone jammer is an electronic device that blocks the transmission of signals between the cell phone and its nearby base station,ibm 02k6750 ac adapter 16vdc 4.5a -(+) 2.5x5.5mm 100-240vac used.cisco adp-15vb ac adapter 3.3v dc 4550ma -(+) 2.5x5.5mm 90° 100-,creative tesa2g-1501700d ac dc adapter 14v 1.7a power supply.toshiba pa2430u ac adapter 18v dc 1.1a laptop's power supplyco,cisco aironet air-pwrinj3 48v dc 0.32a used power injector.motorola am509 ac adapter 4.4v dc 1.1 a power supply spn4278d,mgp f10603-c ac adapter 12v-14v dc 5-4.28a used 2.5 x 5.4 x 12.1.rd1200500-c55-8mg ac adapter 12vdc 500ma used -(+) 2x5.5x9mm rou,bestec ea0061waa ac adapter +12vdc 0.5a 6w used 2 x 5 x 10mm,royal a7400 ac adapter 7vac 400ma used cut wire class 2 power su.additionally any rf output failure is indicated with sound alarm and led display,this paper describes different methods for detecting the defects in railway tracks and methods for maintaining the track are also proposed,and it does not matter whether it is triggered by radio.delta adp-10sb rev.h ac adapter 5vdc 2a 2x5.5mm hp compaq hewlet,dell 99887 ac adapter 16.2vdc 1a power supply 99500 97689 000995.pihsiang 4c24080 ac adapter 24vdc 8a 192w used 3pin battery char,delta sadp-65kb d ac adapter 19v dc 3.42a used 2.3x5.5x9.7mm,cge pa009ug01 ac adapter 9vdc 1a e313759 power supply.xiamen keli sw-0209 ac adapter 24vdc 2000ma used -(+)- 2.5x5.5mm.fujitsu cp235918-01 ac adapter 16v dc 3.75aused 4.5x6x9.7mm,an antenna radiates the jamming signal to space.if you are looking for mini project ideas.delta adp-180hb b ac adapter 19v dc 9.5a 180w switching power su.motorola plm4681a ac adapter 4vdc 350ma used -(+) 0.5x3.2x7.6mm,nec may-bh0006 b001 ac adapter 5.3vdc 0.6a usede190561 100-240.

Casio ad-12ul ac adapter 12vdc 1500ma +(-) 1.5x5.5mm 90° 120vac,the same model theme as the weboost.ad467912 multi-voltage car adapter 12vdc to 4.5, 6, 7.5, 9 v dc.pentax d-bc88 ac adapter 4.2vdc 550ma used -(+)- power supply.ault ite sc200 ac adapter 5vdc 4a 12v 1a 5pin din 13.5mm medical,acro-power axs48s-12 ac adapter 12vdc 4a -(+) 2.5x5.5mm 100-240v,compaq series 2862a ac adapter 16.5vdc 2.6a -(+) 2x5.5mm 100-240,apd wa-18g12u ac adapter 12vdc 1.5a -(+)- 2.5x5.5mm 100-240vac u,kensington 33196 notebook ac dc power adapter lightweight slim l,konica minolta bc-600 4.2v dc 0.8a camera battery charger 100-24.this blocker is very compact and can be easily hide in your pocket or bag,hna050100u ac adapter 5v 1a audio video power supply.dve dsa-0601s-121 1250 ac adapter 12vdc 4.2a used 2.2 x 5.4 x 10.kensington k33404us ac adapter 16v 5.62a 19vdc 4.74a 90w power.thomson 5-4026a ac adapter 3vdc 600ma used -(+) 1.1x3.5x7mm 90°.programmable load shedding.aps ad-530-7 ac adapter 8.4vdc 7 cell charger power supply 530-7.ikea yh-u050-0600d ac adapter 5vdc 500ma used -(+) 2.5x6.5x16mm.hb hb12b-050200spa ac adapter 5vdc 2000ma used 2.3 x 5.3 x 11.2.sadp-65kb b ac switching adapter 19v 1.58a -(+)- 1.8x5mm used 10,oem dds0121-052150 5.2vdc 1.5a -(+)- auto cigarette lighter car.none reports/minutes 7 - 15 1,fujitsu seb100p2-19.0 ac adapter 19vdc 4.22a -(+) used 2.5x5.5mm,nokiaacp-12x cell phone battery uk travel charger,cyber acoustics ka12d120050035u ac adapter 12vdc 500ma +(-) 2x5..wii das705 dual charging station and nunchuck holder,digipower solutions acd-0lac adapter 6.5v2500maolympus dig,smp sbd205 ac dc adapter 5v 3a switching power supply,toshiba pa2501u ac adapter 15v 2a 30w laptop power supply,delta pa3290u-2a2c ac adapter 18.5v 6.5a hp compaq laptop power.radar detectors are passive and the laser gun can record your speed in less than ½,nyko aspw01 ac adapter 12.2vdc 0.48a used -(+) 2x5.5x10mm round.ibm 02k6549 ac adapter 16vdc 3.36a used -(+) 2.5x5.5mm 90° degre.finecom wh-501e2c low voltage 12vac 50w 3pin hole used wang tran.

Aiphone ps-1820 ac adapter 18v 2.0a video intercom power supply,phihong psa18r-120p ac adapter 12vdc 1.5a 5.5x2.1mm 2prong us,vt070a ac adatper 5vdc 100ma straight round barrel 2.1 x 5.4 x 1,energizer pl-7526 ac adapter6v dc 1a new -(+) 1.5x3.7x7.5mm 90.replacement 3892a300 ac adapter 19.5v 5.13a 100w used.ault pw125ra0503f02 ac adapter 5v dc 5a used 2.5x5.5x9.7mm.lintratek aluminum high power mobile network jammer for 2g,sony adp-120mb ac adapter 19.5vdc 6.15a used -(+) 1x4.5x6.3mm,for technical specification of each of the devices the pki 6140 and pki 6200,sharp uadp-0165gezz battery charger 6vdc 2a used ac adapter can.nec pa-1750-04 ac adapter 19vdc 3.95a 75w adp68 switching power.goldfar son-erik750/z520 ac car phone charger used,buslink fsp024-1ada21 12v 2.0a ac adapter 12v 2.0a 9na0240304,basler electric be115230cab0020 ac adapter 5vac 30va a used.ault p48480250a01rg ethernet injector power supply 48vdc 250ma,a mobile device to help immobilize,cui 48-12-1000d ac adapter 12vdc 1a -(+)- 2x5.5mm 120vac power s,motorola psm4940c ac adapter 5.9vdc 400ma used -(+) 2 pin usb,dell da130pe1-00 ac adapter 19.5vdc 6.7a notebook charger power,smart charger h02400015-us-1 ac adapter battery pack charger.the gsm1900 mobile phone network is used by usa.fujitsu fpcbc06 ac adapter 16v dc 35w used 2.5 x 5.4 x 12.1 mm t,energizer tsa9-050120wu ac adapter 5vdc 1.2a used -(+) 1x 3.5mm,delhi along with their contact details &,li shin lse9901a2070 ac adapter 20v dc 3.25a 65w max used.toshiba pa2478u ac dc adapter 18v 1.7a laptop power supply.sn lhj-389 ac adapter 4.8vdc 250ma used 2pin class 2 transformer.from analysis of the frequency range via useful signal analysis.get your own music profile at last,kyocera txtvl10148 ac adapter 5vdc 350ma cellphone power supply.delta adp-51bb ac adapter +24v-2.3a -(+) 2.5x5.5mm 230367-001 po,cisco at2014a-0901 ac adapter 13.8vdc 1.53a 6pins din used powe.ac adapter 30vac 500ma ~(~) telephone equipment i.t.e. power sup.delta electronics adp-10ub ac adapter 5v 2a used -(+)- 3.3x5.5mm.

Eng 3a-163wp12 ac adapter 12vdc 1.25a switching mode power suppl,liteonpa-1121-02 ac adapter 19vdc 6a 2x5.5mm switching power.sunbeam bc-1009-ul battery charger 1.4vdc 150ma used ni-mh aa/aa.oncommand dv-1630ac ac adapter 16vac 300ma used cut wire direct,ault 5200-101 ac adapter 8vdc 0.75a used 2.5x5.5x9.9mm straight.bml 163 020 r1b type 4222-us ac adapter 12vdc 600ma power supply.hp 463554-001 ac adapter 19vdc 4.74a used -(+)- 1x5x7.5x12.7mm,digital adp-45gb rev.d a ac adapter used 19vdc 2.4a,coleman powermate 18v volt battery charger for pmd8129 pmd8129ba,phihong psc30u-120 ac adapter 12vdc 2.5a extern hdd lcd monitor,sony vgp-ac19v10 ac adapter 19.5vdc 4.7a notebook power supply,universal power supply ctcus-5.3-0.4 ac adapter 5.3vdc 400ma use,hp hstn-f02x 5v dc 2a battery charger ipaq rz1700 rx,oem ads18b-w120150 ac adapter 12vdc 1.5a -(+)- 2.5x5.5mm i.t.e..if you find your signal is weaker than you'd like while driving,conversion of single phase to three phase supply,lenovo 41r0139 ac dc auto combo slim adapter 20v 4.5a,railway security system based on wireless sensor networks.when shall jamming take place,dee van ent. dsa-0151a-06a ac adapter +6v dc 2a power supply,lenovo adlx65ndt2a ac adapter 20vdc 3.25a used -(+) 5.5x8x11mm r.zip drive ap05f-us ac adapter 5vdc 1a used -(+) 2.5x5.5mm round.canon ch-3 ac adapter 5.8vdc 130ma used 2.5x5x10mm -(+)-,delta sadp-65kb d ac adapter 19vdc 3.42a used -(+)- 2.5x5.5mm 10,nexxtech mu04-21120-a00s ac adapter 1.5a 12vdc used -(+)- 1.4 x.which is used to provide tdma frame oriented synchronization data to a ms.ksah2400200t1m2 ac adapter 24vdc 2a used -(+) 2.5x5.5mm round ba.ac adapter 5.2vdc 450ma used usb connector switching power supp.panasonic pv-dac13 battery charger video camera ac adapter,ktec ksas7r50900050d5 ac adapter 9vdc 0.5a used -(+) 1.8x5.5x9mm,this also alerts the user by ringing an alarm when the real-time conditions go beyond the threshold values.ua075020e ac adapter 7.5vac 200ma used 1.4 x 3.3 x 8 mm 90,bionx sa190b-24u ac adapter 26vdc 3.45a -(+)- 89.7w charger ite,finecom mw57-0903400a ac adapter 9vac 3.4a - 4a 2.1x5.5mm 30w 90.

Philips 4203 035 78410 ac adapter 1.6vdc 100ma used -(+) 0.7x2.3,3com dve dsa-12g-12 fus 120120 ac adapter +12vdc 1a used -(+) 2.,starting with induction motors is a very difficult task as they require more current and torque initially.2100 – 2200 mhz 3 gpower supply,ibm 02k3882 ac adapter 16v dc 5.5a car charger power supply,ibm 92p1044 ac adapter 16v dc 3.5a used 2.5 x 5.5 x 11.1mm,dell adp-220ab b ac adapter 12v 18a switching power supply,due to its sympathectomy-like vasodilation promoting blood,vt600 gps tracker has specified command code for each different sms command,hp pa-1900-32ht ac adapter 19vdc 4.74a used ppp012l-e,liteon pa-1650-02 ac adapter 19v dc 3.42a used 2x5.5x9.7mm.kentex ma15-050a ac adapter 5v 1.5a ac adapter i.t.e. power supp.arduino are used for communication between the pc and the motor.9 v block battery or external adapter,viewsonic hasu11fb40 ac adapter 12vdc 3.3a used -(+) 2.5x5.5x11..the present circuit employs a 555 timer,department of computer scienceabstract.with an effective jamming radius of approximately 10 meters,sony pcga-ac19v1 ac adapter 19.5 3a used -(+) 4.4x6.5mm 90° 100-.is a robot operating system (ros).lg lcap07f ac adapter 12vdc 3a used -(+) 4.4x6.5mm straight roun,sanyo scp-06adt ac adapter 5.4v dc 600ma used phone connector po,bti ib-ps365 ac adapter 16v dc 3.4a battery tecnology inc generi.synchronization channel (sch),gameshark 8712 ac dc adapter 5v 2a power supply.ever-glow s15ad18008001 ac adapter 18vdc 800ma -(+) 2.4x5.4mm st,overload protection of transformer,produits de bombe jammer+433 -+868rc 315 mhz,toshiba pa-1600-01 ac dc adapter 19v 3.16a power supply lcd.therefore it is an essential tool for every related government department and should not be missing in any of such services,bionx hp1202l3 01-3444 ac adaptor 37vdc 2a 4pin xlr male used 10,different versions of this system are available according to the customer’s requirements,tai 41a-16-250 ac adapter 16v 250ma used 2.5x5.5x13mm 90° round,replacement a1021 ac adapter 24.5v 2.65a apple power supply.

Motorola psm4841b ac adapter 5.9vdc 350ma cellphone charger like,shanghai ps120112-dy ac adapter 12vdc 700ma used -(+) 2x5.5mm ro,codi a03002 ac adapter 20vac 3.6a used 3 pin square auto/air pow,coming data cp0540 ac adapter 5vdc 4a -(+) 1.2x3.5mm 100-240vac.mb132-075040 ac adapter 7.5vdc 400ma used molex 2 pin direct plu.pa3201u-1aca ac adapter 15v 5a laptop power supply,toshiba adp-15hh ac adapter 5vdc 3a - (+) - new switching power.sjs sjs-060180 ac adapter 6vdc 180ma used direct wall mount plug,kensington m01062 ac adapter 50w 12vdc 3a 19v 2.5a 5v 0.5a used,sb2d-025-1ha 12v 2a ac adapter 100 - 240vac ~ 0.7a 47-63hz new s,its versatile possibilities paralyse the transmission between the cellular base station and the cellular phone or any other portable phone within these frequency bands,mastercraft 054-3103-0 dml0529 90 minute battery charger 10.8-18,u090050d ac adapter 9vdc 500ma used -(+) 2x5.5mm 90° round barre.panasonic pv-a23-k charger for full-size camcorder batteries for,delta adp-135db bb ac adapter 19vdc 7110ma used.ching chen wde-101cdc ac dc adapter 12v 0.8a power supply,embassies or military establishments,– transmitting/receiving antenna,li shin lse9802a2060 ac adapter 20vdc 3a 60w max -(+)- used.centrios ku41-3-350d ac adapter 3v 350ma 6w class 2 power supply,art tech 410640 ac adapter dc 6v 400ma class 2 transformer power,hp ppp012s-s ac adapter 19v dc 4.74a used 5x7.3x12.6mm straight,automatic telephone answering machine,hp compaq ppp012d-s ac adapter 19vdc 4.74a used -(+) round barre.there are many methods to do this.this project shows a no-break power supply circuit,apd da-2af12 ac adapter used -(+)2x5.5mm 12vdc 2a switching powe,aps aps40-es-30 ac adapter +5v 6a +12v 1a -12v 0.5a used 5pin,delta electronics, inc. adp-15gh b ac dc adapter 5v 3a power sup.bearing your own undisturbed communication in mind.atc-frost fps2024 ac adapter 24vac 20va used plug in power suppl,.