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Cell phone jammer blocker,cell phone blocker Sherbrooke,Chip-scale atomic clock. How a Chip-Scale Atomic Clock Can Help Mitigate Broadband Interference Small low-power atomic clocks can enhance the performance of GPS receivers in a number of ways,...

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Chip-scale atomic clock. How a Chip-Scale Atomic Clock Can Help Mitigate Broadband Interference Small low-power atomic clocks can enhance the performance of GPS receivers in a number of ways, including enhanced code-acquisition capability that precise long-term timing allows. And, it turns out, such clocks can effectively mitigate wideband radio frequency interference coming from GPS jammers. We learn how in this month’s column. By Fang-Cheng Chan, Mathieu Joerger, Samer Khanafseh, Boris Pervan, and Ondrej Jakubov INNOVATION INSIGHTS by Richard Langley THE GLOBAL POSITIONING SYSTEM is a marvel of science and engineering. It has become so ubiquitous that we are starting to take it for granted. Receivers are everywhere. In our vehicle satnav units, in our smart phones, even in some of our cameras. They are used to monitor the movement of the Earth’s crust, to measure water vapor in the troposphere, and to study the effects of space weather. They allow surveyors to work more efficiently and prevent us from getting lost in the woods. They navigate aircraft and ships, and they help synchronize mobile phone and electricity networks, and precisely time financial transactions. GPS can do all of this, in large part, because the signals emitted by each satellite are derived from an onboard atomic clock (or, more technically correct, an atomic frequency standard). The signals from all of the satellites in the GPS constellation need to be synchronized to within a certain tolerance so that accurate (conservatively stated as better than 9 meters horizontally and 15 meters vertically, 95% of the time), real-time positioning can be achieved by a receiver using only a crystal oscillator. This requires satellite clocks with excellent long-term stability so that their offsets from the GPS system timescale can be predicted to better than about 24 nanoseconds, 95% of the time. Such a performance level can only be matched by atomic clocks. The very first atomic clock was built in 1949. It was based on an energy transition of the ammonia molecule. However, it wasn’t very accurate. So scientists turned to a particular energy transition of the cesium atom and by the mid-1950s had built the first cesium clocks. Subsequently, clocks based on energy transitions of the rubidium and hydrogen atoms were also developed. These initial efforts were rather bulky affairs but in the 1960s, commercial rack-mountable cesium and rubidium devices became available. Further development led to both cesium and rubidium clocks being compact and rugged enough that they could be considered for use in GPS satellites. Following successful tests in the precursor Navigation Technology Satellites, the prototype or Block I GPS satellites were launched with two cesium and two rubidium clocks each. Subsequent versions of the GPS satellites have continued to feature a combination of the two kinds of clocks or just rubidium clocks in the case of the Block IIR satellites. While it is not necessary to use an atomic clock with a GPS receiver for standard positioning and navigation applications, some demanding tasks such as geodetic reference frame monitoring use atomic frequency standards to control the operation of the receivers. These standards are external devices, often rack mounted, connected to the receiver by a coaxial cable—too large to be embedded inside receivers. But in 2004, scientists demonstrated a chip-scale atomic clock, and by 2011, they had become commercially available. Such small low-power atomic clocks can enhance the performance of GPS receivers in a number of ways, including enhanced code-acquisition capability that precise long-term timing allows. And, it turns out, such clocks can effectively mitigate wideband radio frequency interference coming from GPS jammers. We learn how 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. Currently installed Local Area Augmentation System (LAAS) ground receivers have experienced a number of disruptions in GPS signal tracking due to radio frequency interference (RFI). The main sources of RFI were coming from the illegal use of jammers (also known as personal privacy devices [PPD]) inside vehicles driving by the ground installations. Recently, a number of researchers have studied typical properties of popular PPDs found in the market and have concluded that the effect of PPD interference on the GPS signal is nearly equivalent to that of a wideband signal jammer, to which the current GPS signal is most vulnerable. This threat impacts LAAS or any ground-based augmentation system (GBAS) in two ways: Continuity degradation — as vehicles with PPDs pass near the GBAS ground antennas, the reference receivers lose lock due to the overwhelming noise power.  Integrity degradation — the code tracking error will increase when the noise level in the tracking loop increases. Numerous interference mitigation techniques have been studied for broadband interference. The interference mitigation methods can be separated according to the two fundamental stages of GPS signal tracking: the front-end stage, in which automatic gain control and antenna nulling/beam forming techniques are relevant, and the baseband stage, where code and carrier-tracking loop algorithms and aiding methods are applicable. In our current work, the baseband strategy and resources that are practically implementable at GBAS ground stations are considered. Among those resources, we focus on using atomic clocks to mitigate broadband GNSS signal interference. For GPS receivers in general, wide tracking loop bandwidths are used to accommodate the change in signal frequencies and phases caused by user dynamics. Unfortunately, wide bandwidths also allow more noise to enter into the tracking loop, which will be problematic when wideband inference exists. The general approach to mitigate wideband interference is to reduce the tracking loop bandwidth. However, a reference receiver employing a temperature-compensated crystal oscillator (TCXO) needs to maintain a minimum loop bandwidth to track the dynamics of the clock itself, even when all other Doppler effects are removed. The poor stability of TCXOs fundamentally limits the potential to reduce the tracking loop bandwidth. This limitation becomes much less constraining when using an atomic clock at the receiver, especially in the static, vibration-free environment of a GBAS ground station. Integrating atomic clocks with GPS/GNSS receivers is not a new idea. Nevertheless, the practical feasibility of such integration remained difficult until recent advancements in atomic clock technology, such as commercially available compact-size rubidium frequency standards or, more recently, chip-scale atomic clocks (CSACs). Most of the research using atomic clock integrated GPS receivers aims to improve positioning and timing accuracy, enhance navigation system integrity, or coast through short periods of satellite outages. In these applications, the main function of the atomic clock is to improve the degraded system performance caused by bad satellite geometries. As for using narrower tracking loop bandwidths to obtain better noise/jamming-resistant performance, the majority of work in this area has focused on high-dynamic user environments with extra sensor aiding, such as inertial navigation systems, pseudolites, or other external frequency-stable radio signals. These aids alone do not permit reaching the limitation of tracking loop bandwidth reduction since the remaining Doppler shift from user dynamics still needs to be tracked by the tracking loop itself. Our research intends to explore the lower end of the minimum tracking loop bandwidth for static GPS/GNSS receivers using atomic clocks. High-frequency-stability atomic clocks naturally reduce the minimum required bandwidth for tracking clock errors (since clock phase random variations are much smaller). We have conducted analyses to obtain the theoretical minimum tracking loop bandwidths using clocks of varying quality. Carrier-phase tracking loop performance under deteriorated C/N0 conditions (that is, during interference) was investigated because it is the most vulnerable to wideband RFI. The limitations on the quality of atomic clocks and on the receiver tracking algorithms (second- or third-order tracking loop bandwidths) to achieve varying degrees of interference suppression at the GBAS reference receivers are explored. The tracking loop bandwidth reductions and interference attenuations that are achievable using different qualities of atomic clocks, including CSACs and commercially available rubidium receiver clocks, are also discussed in this article. In addition to the theoretical analyses, actual GPS intermediate frequency (IF) signals have been sampled using a GPS radio frequency (RF) frond-end kit, which is capable of utilizing external clock inputs, connected to a commercially available atomic clock. The sampled IF data are fed into a software receiver together with and without simulated wideband interference to evaluate the performance of interference mitigation using atomic clocks. The wideband interference is numerically simulated based on deteriorated C/N0. The actual tracking errors generated from real IF data are used to validate the system performance predicted by the preceding broadband interference mitigation analyses. Signal Tracking Loop and Tracking Error The carrier-phase tracking phase lock loop (PLL) is introduced first to understand the theoretical connection between the carrier-phase tracking errors and the signal noise plus receiver clock phase errors. A simplified PLL is shown in FIGURE 1 with incoming signals set to zero. In the figure, n(s), c(s), and δθ(s) are receiver white noise, clock phase error or clock disturbance, and tracking loop phase error respectively, with s being the Laplace transform parameter. G(s) is the product of the loop filter F(s) and the receiver clock model 1/s. FIGURE 1. Simplified tracking loop diagram. From Figure 1, the transfer functions relating the white noise and clock disturbance to the output can be derived as: (1) The frequency response of H(s) is complementary to 1-H(s). Therefore, the PLL tracking performance is a trade-off between the noise rejection performance and the clock disturbance tracking performance. Total PLL errors resulting from different error sources are presented as phase jitter, which is the root-mean-square (RMS) of resulting phase errors. Equation (2) shows the definition of the standard deviation of phase jitter resulting from the error sources considered in this work: (2) where , and are standard deviations of receiver white noise, receiver clock errors, and satellite clock error, respectively, for static receivers. The standard deviation for each of the clock error sources can be evaluated using the frequency response of the corresponding transfer function and power spectral densities (PSDs). The equations to evaluate the phase error from each error source are: (3) where Srx and Ssv are one-sided PSDs for receiver clock and satellite clock, respectively. Bw is the bandwidth of the tracking loop and Tc is the coherent integration time. Receiver and Satellite Clock Models In general, the receiver noise can be reasonably assumed to be white noise with constant PSD with magnitude (noise density) of N0. However, it is not the case for clock errors. The clock frequency error PSD is usually formulated in the form of a power-law equation and has been used to describe the time and frequency behaviors of the random clock errors in a free running clock: (4) where sy(f) represents the PSD of clock frequency errors and is a function of frequency powers. The clock phase error PSD can be analytically derived from the frequency PSD equation because the phase error is the time integral of the frequency error: (5) where f0 is the nominal clock frequency. The h coefficients of the clock phase error PSD are the product of the h coefficients from the clock frequency error PSD and the nominal frequency. We have adopted the PSD clock error models in our work to perform tracking loop performance analysis. The PSD of the CSAC is derived from an Allan deviation figure published by the manufacturer and is shown in FIGURE 2. We took three piecewise Allan deviation straight lines, which are slightly conservative, and converted them to a PSD. FIGURE 2. Allan deviations for chip-scale atomic clock. Three PSDs of clock error models are listed in TABLE 1, which represent spectrums of the well known TCXO, the CSAC, and a rubidium standard. Phase noise related h0 and h1 coefficients in the CSAC model are assumed to be the same as the TCXO because they can’t be obtained from the Allan deviation figure. The rubidium clock phase noises resulting from h0 and h1 coefficients are assumed to be two times smaller than those of the TCXO, and the same model is also used as the satellite clock error model in our tracking loop analysis. TABLE 1. Coefficients of power-law model. Theoretical Carrier Tracking Loop Performance Second- and third-order PLLs are used to study the tracking loop performance. The loop filters for each PLL are given by: (6) where F2(s) and  F3(s) are second- and third-order loop filters respectively. Typical coefficients for the second- and third-order loop filters are a2 = 1.414; wo,2 = 4×Bw,2 × a2/[(a2)2+1]; a3 = 1.1; b3 = 2.4; wo,3 = Bw,3/0.7845. Bw,2 and Bw,3 are the second- and third-order tracking loop bandwidths accordingly. As stated earlier, three error sources are considered for static receivers. Using the clock error models described earlier, the contribution of different error sources to phase jitter is a function of PLL tracking bandwidth. The resulting phase tracking errors from different error sources are evaluated based on Equation (3) and shown in FIGURE 3. FIGURE 3. Phase error contribution from different error sources. The third-order PLL performance using 2-, 1-, 0.5- and 0.1-Hz tracking loop bandwidths were analyzed as a function of C/N0 and are shown in FIGURES 4 and 5. For each selected bandwidth, three different qualities of receiver clocks were analyzed, and a conventional 15-degree performance threshold was adopted. The second-order PLL performs similarly to the third-order PLL. However, the phase jitter tends to be more biased when the tracking loop bandwidth becomes smaller. This phenomenon will be observed later on using signal data for performance validation. Therefore, only the third-order loop performance analysis is shown in Figures 4 and 5. It is obvious from these two figures that the minimum tracking loop bandwidth for a TCXO receiver PLL is about 2 Hz, and the PLL can work properly only while C/N0 is above 24 dB-Hz. FIGURE 4 Tracking loop performance analysis for 2- and 1-Hz loop bandwidth. FIGURE 5. Tracking loop performance analysis for 0.5- and 0.1-Hz loop bandwidth. As for the receiver using atomic clocks, CSAC and a rubidium frequency standard in our analysis, the PLL bandwidth can be reduced down to at least 0.1 Hz while C/N0 is above 15 dB-Hz. Experimental Tracking Loop Performance Experimental data were collected at Nottingham Scientific Limited. The experiment was conducted using a GPS/GNSS RF front end with a built-in TCXO clock. The RF front end also has the capability of accepting atomic clock signals through an external clock input connector to which the CSAC (see Photo) was connected during data collection. All data (using the built-in TCXO clock or the CSAC) were sampled at a 26-MHz sampling rate and at a 6.5-MHz IF with 2-MHz front-end bandwidth and four quantization levels. A MatLab-coded software defined receiver (SDR) was used to process collected IF samples for tracking loop performance validation. TCXO phase jitters resulting from different tracking loop bandwidths are shown in FIGURE 6 for a typical second-order PLL under a nominal C/N0, which is about 45 dB-Hz. A 45-degree loss-of-lock threshold was adopted (three times larger than the standard deviation threshold used in an earlier performance analysis). In our work, all code tracking delay lock loops (DLLs) are implemented using a second-order loop filter with 20-millisecond coherent integration time and 0.5-Hz loop bandwidth without any aiding. The resulting phase jitters in the figure become biased when the tracking loop bandwidth is reduced. This observed phenomenon implies that a second-order PLL time response cannot track the clock dynamics when the loop bandwidth approaches the minimum loop bandwidth (where loss of lock occurs). FIGURE 6. Second-order PLL phase jitter using TCXO. The same IF data was re-processed by the SDR using the third-order PLL with the same range of tracking loop bandwidths. The resulting phase jitters are shown in FIGURES 7 and 8. There is no observable phase jitter bias before the PLLs lose lock in the figures. These results demonstrate that a third-order PLL performs better in terms of capturing the clock dynamics when the tracking loop bandwidth is reduced close to the limitation. Therefore, only the third-order PLL will be considered further. FIGURE 7. Third-order PLL phase jitter using TCXO. FIGURE 8. Third-order PLL phase jitter using CSAC. The performance of the TCXO PLL can be evaluated from the results in Figure 7. It demonstrates that the minimum loop bandwidth is 2 Hz, which is consistent with the previous analysis shown in figure 4. However, the minimum bandwidth using the CSAC is shown to be 0.5 Hz in Figure 8. This result does not meet the performance predicted by the analysis, which shows that the working bandwidth can be reduced to 0.1 Hz. Analysis and Tracking Performance under PPD Interference The motivation of our work, as described earlier, is to improve the receiver signal tracking performance under PPD interference, or equivalently, wideband interference. We carried out a simple analysis first to understand how much signal deterioration a GBAS ground receiver could expect. A 13-dBm/MHz PPD currently available on the market was used to analyze the signal deterioration based on the distance between the PPD and the GBAS ground receiver. A simple analysis using a direct-path model shows that noise power roughly 30 dB higher than the nominal noise level (about -202 dBW/Hz) could be experienced by the GBAS ground receiver if the nearest distance is assumed to be 0.5 kilometers. In this case, any wideband interference mitigation method to address PPD interference has to handle C/N0 as low as 10 to 15 dB-Hz. Gaussian distributed white noises were simulated and added on top of the original IF samples, then re-quantized to the original four quantization levels to mimic the PPD interference signal condition. A 20-dB higher noise level was simulated to demonstrate the effectiveness of this signal deterioration technique. The tracking loop performance using the third-order PLL under low C/N0 conditions was evaluated using the IF sampling and PPD interference simulation technique just described. The evaluation results show that the minimum PLL bandwidth using the TCXO is still 2 Hz. This result is roughly consistent with a previous analysis showing a 24-dB-Hz C/N0 limitation using 2-Hz tracking bandwidth. The PLL using the CSAC performs better than that using the TCXO, which is expected. After raising the noise level 5 dB higher to achieve an average of C/N0 of 18 dB-Hz, phase jitters using the TCXO exceed the threshold at all bandwidths as shown in FIGURE 9. The same magnitude of noise was also added to the CSAC IF samples. The resulting phase jitters are shown in FIGURE 10, which demonstrates that the minimum bandwidth is 1 Hz for this deteriorated signal condition. Any further increase in noise level will result in loss of lock for PLLs using a CSAC at all tracking bandwidths. FIGURE 9. Phase jitter using TCXO under 18 dB-Hz C/N0. FIGURE 10. Phase jitter using CSAC under 18 dB-Hz C/N0. Summary and Future Work We explored a baseband approach for an effective wideband interference mitigation method in this article. We have presented the theoretical analysis and actual data validation to study the possible improvement of the PLL tracking performance under PPD interference, which has been experienced by LAAS ground receivers. The limitations of reducing PLL tracking loop bandwidths using different qualities of receiver clocks have been analyzed and compared with the experimental results generated by processing IF samples using an SDR. We conclude that the PLL tracking performance using a TCXO is consistent between theoretical prediction and data validation under both nominal and low C/N0 conditions. However, the PLL tracking performance using the CSAC was not as good as the analysis prediction under both conditions. In our future work, to understand the reason for the tracking performance inconsistency using the CSAC, we will carefully examine and evaluate the hardware components in line between the external clock input and the IF sampling chip. In this way, we will exclude the clock performance degradation due to any hardware incompatibility. Other types of high quality clocks, such as extra-low-phase-noise oven-controlled crystal oscillators and low-phase-noise rubidium oscillators, will also be tested to explore the limitation of PLL tracking bandwidth reduction. If the results using other clocks exhibit good consistency between performance analysis and data validation, it is highly possible that the CSAC clock error model mis-represents the available commercial products. In our future work, we will also consider simulating PPD interference more closely to the real scenario, by adding analog interference signals on top of GPS/GNSS analog signals before taking digital IF samples. Acknowledgments The authors would like to thank the Federal Aviation Administration for supporting the work described in this article. Also, the authors would like to extend their thanks to all members of the Illinois Institute of Technology NavLab and to the collaborators from Nottingham Scientific Limited for their insightful advice. This article is based on the paper “Using a Chip-scale Atomic Clock-Aided GPS Receiver for Broadband Interference Mitigation” presented at ION GNSS+ 2013, the 26th International Technical Meeting of the Satellite Division of The Institute of Navigation held in Nashville, Tennessee, September 16–20, 2013. Manufacturers The CSAC used in our tests is a Symmetricom Inc., now part of Microsemi Corp. (www.microsemi.com), model SA.45s. We used a Nottingham Scientific Ltd. (www.nsl.eu.com) Stereo GPS/GNSS RF front end with the MatLab-based SoftGNSS 3.0 software from the Danish GPS Center at Aalborg University (gps.aau.dk). FANG-CHENG CHAN is a senior research associate in the Navigation Laboratory of the Department of Mechanical and Aerospace Engineering at the Illinois Institute of Technology (IIT) in Chicago. He received his Ph.D in mechanical and aerospace engineering from IIT in 2008. He is currently working on GPS receiver integrity for Local Area Augmentation System (LAAS) ground receivers, researching GPS receiver interference detection and mitigation to prevent unintentional jamming using both baseband and antenna array techniques, and developing navigation and fault detection algorithms with a focus on receiver autonomous integrity monitoring or RAIM. MATHIEU JOERGER obtained a master’s in mechatronics from the National Institute of Applied Sciences in Strasbourg, France, in 2002, and M.S. and Ph.D. degrees in mechanical and aerospace engineering from IIT in 2002 and 2009 respectively. He is the 2009 recipient of the Institute of Navigation Bradford Parkinson award, which honors outstanding graduate students in the field of GNSS. He is a research assistant professor at IIT, working on multi-sensor integration, on sequential fault-detection for multi-constellation navigation systems, and on relative and differential RAIM for shipboard landing of military aircraft. SAMER KHANAFSEH is a research assistant professor at IIT. He received his M.S. and Ph.D. degrees in aerospace engineering at IIT in 2003 and 2008, respectively. He has been involved in several aviation applications such as autonomous airborne refueling of unmanned air vehicles, autonomous shipboard landing, and ground-based augmentation systems. He was the recipient of the 2011 Institute of Navigation Early Achievement Award for his contributions to the integrity of carrier-phase navigation systems. BORIS PERVAN is a professor of mechanical and aerospace engineering at IIT, where he conducts research focused on high-integrity satellite navigation systems. Prof. Pervan received his B.S. from the University of Notre Dame, M.S. from the California Institute of Technology, and Ph.D. from Stanford University. ONDREJ JAKUBOV received his M.Sc. in electrical engineering from the Czech Technical University (CTU) in Prague in 2010. He is a postgraduate student in the CTU Department of Radio Engineering and he also works as a navigation engineer for Nottingham Scientific Limited in Nottingham, U.K. His research interests include GNSS signal processing algorithms and receiver architectures. FURTHER READING • Authors’ Conference Paper “Performance Analysis and Experimental Validation of Broadband Interference Mitigation Using an Atomic Clock-Aided GPS Receiver” by F.-C. Chan, S. Khanafseh, M. Joerger, B. Pervan and O. Jakubov in the Proceedings of ION GNSS+ 2013, the 26th International Technical Meeting of the Satellite Division of The Institute of Navigation, Nashville, Tennessee, September 16–20, 2013, pp. 1371–1379. • Chip-Scale Atomic Clocks “The SA.45s Chip-Scale Atomic Clock–Early Production Statistics” by R. Lutwak in the Proceedings of the 43rd Annual Precise Time and Time Interval (PTTI) Systems and Applications Meeting, Long Beach, California, November 14–17, 2011, pp. 207–219. “Time for a Better Receiver: Chip-Scale Atomic Frequency References” by J. Kitching in GPS World, Vol. 18, No. 11, November 2007, pp. 52–57. “A Chip-scale Atomic Clock Based on Rb-87 with Improved Frequency Stability” by S. Knappe, P.D.D. Schwindt, V. Shah, L. Hollberg, J. Kitching, L. Liew, and J. Moreland in Optics Express, Vol. 13, No. 4, 2005, pp. 1249–1253, doi: 10.1364/OPEX.13.001249. • Atomic Clocks and GNSS Receivers “Three Satellite Navigation in an Urban Canyon Using a Chip-scale Atomic Clock” by R. Ramlall, J. Streter, and J.F. Schnecker in the Proceedings of ION GNSS 2011, the 24th International Technical Meeting of The Satellite Division of the Institute of Navigation, Portland, Oregon, September 20–23, 2011, pp. 2937–2945. “High Integrity Stochastic Modeling of GPS Receiver Clock for Improved Positioning and Fault Detection Performance” by F.-C. Chan, M. Joerger, and B. Pervan in the Proceedings of PLANS 2010, the Institute of Electrical and Electronics Engineers / Institute of Navigation Position, Location and Navigation Symposium, Indian Wells, California, May 4–6, 2010, pp. 1245–1257, doi: 10.1109/PLANS.2010.5507340. “Use of Rubidium GPS Receiver Clocks to Enhance Accuracy of Absolute and Relative Navigation and Time Transfer for LEO Space Vehicles” by D.B. Cox in the Proceedings of ION GNSS 2007, the 20th International Technical Meeting of the Satellite Division of The Institute of Navigation, Fort Worth, Texas, September 25–28, 2007, pp. 2442–2447. • Clock Stability “Signal Tracking,” Chapter 12 in Global Positioning System: Signals, Measurements, and Performance, Revised Second Edition by P. Misra and P. Enge. Published by Ganga-Jamuna Press, Lincoln, Massachusetts, 2011. “Opportunistic Frequency Stability Transfer for Extending the Coherence Time of GNSS Receiver Clocks” by K.D Wesson, K.M. Pesyna, Jr., J.A. Bhatti, and T.E. Humphreys in the Proceedings of ION GNSS 2010, the 23rd International Technical Meeting of The Satellite Division of the Institute of Navigation, Portland, Oregon, September 21–24, 2010, pp. 2937–2945. “Uncertainties of Drift Coefficients and Extrapolation Errors: Application to Clock Error Prediction” by F. Vernotte, J. Delporte, M. Brunet, and T. Tournier in Metrologia, Vol. 38, No. 4, 2001, pp. 325–342, doi: 10.1088/0026-1394/38/4/6. • Tracking Loop Filters and Inertial Navigation System Integration “Kalman Filter Design Strategies for Code Tracking Loop in Ultra-Tight GPS/INS/PL Integration” by D. Li and J. Wang in the Proceedings of NTM 2006, the 2006 National Technical Meeting of The Institute of Navigation, Monterey, California, January 18–20, 2006, pp. 984–992. “Satellite Signal Acquisition, Tracking, and Data Demodulation,” Chapter 5 in Understanding GPS: Principles and Applications, Second Edition,           E.D. Kaplan and C.J. Hegarty, Editors. Published by Artech House, Norwood, Massachusetts, 2006. “GPS and Inertial Integration”, Chapter 7 in Global Position System: Theory and Applications, Vol. 2, by R.L. Greenspan. Published by the American Institute of Aeronautics and Astronautics, Inc., Washington, DC, 1996. • GNSS Jamming “Know Your Enemy: Signal Characteristics of Civil GPS Jammers” by R.H. Mitch, R.C. Dougherty, M.L. Psiaki, S.P. Powell, B.W. O’Hanlon, J.A. Bhatti, and T.E. Humphreys in GPS World, Vol. 23, No. 1, January 2012, pp. 64–72. “The Impact of Uninformed RF Interference on GBAS and Potential Mitigations” by S. Pullen, G. Gao, C. Tedeschi, and J. Warburton in the Proceedings of ION GNSS 2012, the 25th International Technical Meeting of the Satellite Division of The Institute of Navigation, Nashville, Tennessee, September 17–21, 2012, pp. 780–789. “Survey of In-Car Jammers-Analysis and Modeling of the RF Signals and IF Samples (Suitable for Active Signal Cancelation)” by T. Kraus, R. Bauernfeind, and B. Eissfeller in Proceedings of ION GNSS 2011, the 24th International Technical Meeting of The Satellite Division of the Institute of Navigation, Portland, Oregon, September 20–23, 2011, pp. 430–435.  

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Targus apa30ca 19.5vdc 90w max used 2pin female ite power supply,fuji fujifilm ac-3vw ac adapter 3v 1.7a power supply camera.2 to 30v with 1 ampere of current,toshiba pa3035u-1aca paca002 ac adapter 15v 3a like new lap -(+).jobmate battery charger 18vdc used for rechargeable battery,acbel ad9014 ac adapter 19vdc 3.42a used -(+)- 1.8x4.8x10mm.dve dvr-0930-3512 ac adapter 9vdc 300ma -(+) 2x5.5mm 120v ac pow.15.2326 ac adapter 12vdc 1000ma -(+) used 2.4 x 5.5 x 8.3.5mm,this system considers two factors.adjustable power phone jammer (18w) phone jammer next generation a desktop / portable / fixed device to help immobilize disturbance,a low-cost sewerage monitoring system that can detect blockages in the sewers is proposed in this paper.skynet dnd-3012 ac adapter 30vdc 1a used -(+)- 2.5x5.5mm 120vac.rca cps015 ac adapter9.6vdc 2.3a 12.5v 1.6a used camcorder bat,oem ad-1590n ac adapter 15vdc 900ma - ---c--- + used 1.1 x 3.5 x.motorola psm4841b ac adapter 5.9vdc 350ma cellphone charger like.audiovox plc-9100 ac adapter 5vdc 0.85a power line cable,airspan sda-1 type 2 ethernet adapter 48vdc 500ma,delta electronics adp-29eb a ac adapter +5.2v +12v dc 4400ma 560,bionx hp1202l3 01-3443 ac adaptor 45.65vdc 2a 3pin 10mm power di.raheem hagan from meadow lake is wanted for discharging a firearm with intent and reckless discharge of a fire arm,compaq adp-50sb ac dc adapter 18.5v 2.8a power supply,all these functions are selected and executed via the display,nikon eh-64 ac adapter 4.8vdc 1.5a -(+) power supply for coolpix.ac adapter 9vdc 500ma - ---c--- + used 2.3 x 5.4 x 11 mm straigh,apx sp40905q ac adapter 5vdc 8a 6pin 13mm din male 40w switching,lei mu12-2075150-a1 ac adapter 7.5v 1.5a power supply.fit mains fw7218m24 ac adapter 24vdc 0.5a 12va used straight rou,skynet hyp-a037 ac adapter 5vdc 2400ma used -(+) 2x5.5mm straigh,apple powerbook m1893 ac adapter 16vdc 1.5a 16v 1a used 4 pin di.ap 2700 ac dc adapter 5.2v 320ma power supply,sony ac-fd008 ac adapter 18v 6.11a 4 pin female conector.ps06b-0601000u ac adapter used -(+) 6vdc 1000ma 2x5.5mm round ba.replacement a1012 ac adapter 24v 2.65a g4 for apple ibook powerb.you can produce duplicate keys within a very short time and despite highly encrypted radio technology you can also produce remote controls.the proposed system is capable of answering the calls through a pre-recorded voice message.kyocera txtvl10148 ac adapter 5vdc 350ma cellphone power supply,fixed installation and operation in cars is possible,ad-2425-ul ac dc adapter 24v 250ma transformateur cl ii power su.

High efficiency matching units and omnidirectional antenna for each of the three bandstotal output power 400 w rmscooling,toshiba pa3743e-1ac3 ac adapter 19vdc 1.58a power supply adp-30j.netbit dsc-51f-52p us ac adapter 5.2v 1a switching power supply,dell pa-1650-05d2 ac adapter 19.5vdc 3.34a used 1x5.1x7.3x12.7mm,information including base station identity, 5G jammer ,with an effective jamming radius of approximately 10 meters,qualcomm txaca031 ac adapter 4.1vdc 550ma used kyocera cell phon,nec adp-40ed a ac adapter 19vdc 2.1a used -(+) 2.5x5.5x11mm 90°,some powerful models can block cell phone transmission within a 5 mile radius,as a result a cell phone user will either lose the signal or experience a significant of signal quality,toshiba delta pa3714e-1ac3ac adapter 19v3.42alaptop power,samsung aa-e7 ac dc adapter 8.4v 1.5a power supply for camcorder.71109-r ac adapter 24v dc 500ma power supply tv converter,axis a41208c ac dc adapter 12v 800ma power supply,premium power 298239-001 ac adapter 19v 3.42a used 2.5 x 5.4 x 1.hp 0950-3796 ac adapter 19vdc 3160ma adp-60ub notebook hewlett p,replacement af1805-a ac adapter 5vdc 2.5a power supply 3 pin din,toshiba pa3378e-3ac3 ac adapter15vdc 5a -(+) 3x6.5mm used round,nokia acp-7u standard compact charger cell phones adapter 8260,.diamond 35-9-350d ac adapter 6vdc 350ma -(+) 2.5mm audio pin 703.phihong psa18r-120p ac adapter 12vdc 1.5a 5.5x2.1mm 2prong us.acbel api3ad14 ac adapter 19vdc 6.3a used (: :) female 4pin fema,toshibapa2521u-3aca ac adapter 15vdc 6alaptop power supply,this cell phone jammer is not applicable for use in europe.mastercraft maximum dc14us21-60a battery charger 18.8vdc 2a used,ault sw 130 ka-00-00-f-02 ac adapter 60vdc 0.42a medical power s.it employs a closed-loop control technique.delta adp-65jh db ac adapter 19vdc 3.42a used 1.5x5.5mm 90°rou.dc12500 ac adapter 12vdc 500ma power supply class 2 transformer,black and decker etpca-180021u2 ac adapter 26vdc 210ma class 2.panasonic cf-vcbtb1u ac adapter 12.6v 2.5a used 2.1x5.5 x9.6mm.artesyn ssl20-7660 ac dc adapter 5v 0.9a 12v 0.8a power supply.when the brake is applied green led starts glowing and the piezo buzzer rings for a while if the brake is in good condition.design of an intelligent and efficient light control system.ibm 2684292 ac adapter 15v dc 2.7a used 3x5.5x9.3mm straight,new bright a541500022 ac adapter 24vdc 600ma 30w charger power s,automatic telephone answering machine.

Dve dsa-9w-09 fus 090100 ac adapter 9vdc 1a used 1.5x4mm dvd pla,sam-1800 ac adapter 4.5-9.5vdc 1000ma used 100-240v 200ma 47-63h,craftsman 974062-002 dual fast charger 14.4v cordless drill batt,canon pa-v2 ac adapter 7v 1700ma 20w class 2 power supply.cambridge tead-48-091000u ac adapter 9vdc 1a used 2 x 5.5 x 12mm.the jammer is portable and therefore a reliable companion for outdoor use.3com ap1211-uv ac adapter 15vdc 800ma -(+)- 2.5x5.5mm pa027201 r,be possible to jam the aboveground gsm network in a big city in a limited way,> -55 to – 30 dbmdetection range,jhs-q05/12-334 ac adapter 5vdc 2a usedite power supply 100-240,medtronic pice-34a ac adapter 6v dc 35ma 1.1w battery chargerc.foxlink fa-4f020 ac adapter 6vdc 1a used -(+) 1.5x4x8.4mm 90° ro,sanyo var-33 ac adapter 7.5v dc 1.6a 10v 1.4a used european powe,toshiba pa2430u ac adapter 18v dc 1.1a laptop's power supplyco,hp ppp018h ac adapter 19vdc 1.58a power suppply 534554-002 for c,jvc ca-r455 ac adapter dc4.5v 500ma used 1.5 x 4 x 9.8mm.energy is transferred from the transmitter to the receiver using the mutual inductance principle,1800 to 1950 mhztx frequency (3g),the mobile jammer device broadcasts the signal of the same frequency to the gsm modem,philips 4222 029 00030 ac adapter 4.4vdc 0.85va used shaver powe,dell adp-50sb ac adapter 19vdc 2.64a 2pin laptop power supply,dell pa-1470-1 ac adapter 18v 2.6a power supply notebook latitud.1800 mhzparalyses all kind of cellular and portable phones1 w output powerwireless hand-held transmitters are available for the most different applications,cobra du28090020c ac adapter 9vdc 200ma -(+) 2x5.5mm 4.4w 120vac.skil class ii battery charger 4.1vdc 330ma used flexi charge int,toshiba pa-1600-01 ac dc adapter 19v 3.16a power supply lcd.condor sa-072a0u-2 used 7.5vdc 2a adapter 2.5 x 5.5 x 11.2mm,casio ad-1us ac adapter 7.5vdc 600ma used +(-) 2x5.5x9.4mm round,linearity lad6019ab5 ac adapter 12vdc 5a used 2.5 x 5.4 x 10.2 m.additionally any rf output failure is indicated with sound alarm and led display,toshiba pa3377e-2aca ac adapter 15vdc 4a used 3x6.5mm round barr,our pki 6120 cellular phone jammer represents an excellent and powerful jamming solution for larger locations.ibm 92p1105 ac adapter 19vdc 4.74a 5.5x7.9mm -(+) used 100-240va,soft starter for 3 phase induction motor using microcontroller,incoming calls are blocked as if the mobile phone were off,vehicle unit 25 x 25 x 5 cmoperating voltage,dell adp-50hh ac adapter 19vdc 2.64a used 0.5x5x7.5x12mm round b,pa-1600-07 replacement ac adapter 19vdc 3.42a -(+)- 2.5x5.5mm us.

Meadow lake rcmp received a complaint of a shooting at an apartment complex in the 200 block of second st,hna050100u ac adapter 5v 1a audio video power supply,canon a20630n ac adapter 6vdc 300ma 5w ac-360 power supply,2 to 30v with 1 ampere of current.dell ad-4214n ac adapter 14vdc 3a power supply,it creates a signal which jams the microphones of recording devices so that it is impossible to make recordings,a cell phone jammer - top of the range,a cell phone signal booster uses an outdoor antenna to search for cell phone signals in the area,binary fsk signal (digital signal),finecom ac dc adapter 15v 5a 6.3mmpower supply toshiba tec m3,compaq ppp003 series adp-50ub ac adapter 18.5v 2.7a.select and click on a section title to view that jammer flipbook download the pdf section from within the flipbook panel <,a user-friendly software assumes the entire control of the jammer,now type use wifi/wifi_ jammer (as shown in below image).the output of each circuit section was tested with the oscilloscope,load shedding is the process in which electric utilities reduce the load when the demand for electricity exceeds the limit,the cell phone signal jamming device is the only one that is currently equipped with an lcd screen.the aim of this project is to develop a circuit that can generate high voltage using a marx generator.ah-v420u ac adapter 12vdc 3a power supply used -(+) 2.5x5.5mm,ikea yh-u050-0600d ac adapter 5vdc 500ma used -(+) 2.5x6.5x16mm,pepsi diet caffein- free cola soft drink in bottles,nokia ac-4u ac adapter 5v 890ma cell phone battery charger.cs cs-1203000 ac adapter 12vdc 3a used -(+) 2x5.5mm plug in powe,the first types are usually smaller devices that block the signals coming from cell phone towers to individual cell phones,our pki 6085 should be used when absolute confidentiality of conferences or other meetings has to be guaranteed.yd-001 ac adapter 5vdc 2a new 2.3x5.3x9mm straight round barrel,sensormatic 0300-0914-01 ac adapter 12/17/20/24v 45va used class,premium power ea1060b ac adapter 18.5v 3.5a compaq laptop power,this sets the time for which the load is to be switched on/off,symbol sbl-a12t 50-24000-060 ac adapter 48vdc 2.5a power supply.aps ad-715u-2205 ac adapter 5vdc 12vdc 1.5a 5pin din 13mm used p.this combined system is the right choice to protect such locations,audf-20090-1601 ac adapter 9vdc 1500ma -(+) 2.5x5.5mm 120vac pow,finecom stm-1018 ac adapter 5vdc 12v 1.5a 6pin 9mm mini din dual.this project uses a pir sensor and an ldr for efficient use of the lighting system,ibm pa-1121-071 ac adapter 16vdc 7.5a used 4-pin female 02k7086.accordingly the lights are switched on and off,hon-kwang hk-u-090a060-eu european ac adapter 9v dc 0-0.6a new.

Designed for high selectivity and low false alarm are implemented,hppa-1121-12h ac adapter 18.5vdc 6.5a 2.5x5.5mm -(+) used 100-.if there is any fault in the brake red led glows and the buzzer does not produce any sound.toshiba pa8727u 18vdc 1.7a 2.2a ac adapter laptop power supply,fujitsu fmv-ac311s ac adapter 16vdc 3.75a -(+) 4.4x6.5 tip fpcac,hi capacity le-9720a-05 ac adapter 15-17vdc 3.5a -(+) 2.5x5.5mm,80h00312-00 5vdc 2a usb pda cradle charger used -(+) cru6600.the electrical substations may have some faults which may damage the power system equipment,overload protection of transformer,a break in either uplink or downlink transmission result into failure of the communication link,fuji fujifilm cp-fxa10 picture cradle for finepix a310 a210 a205.kingpro kad-01050101 ac adapter 5v 2a switching power supply,radioshack a20920n ac adapter 9v dc 200ma used -(+)- 2x5.5x10.3m.honor ads-7.fn-06 05008gpcu ac adapter 5v 1.5a switching power,samsung sac-42 ac adapter 4.2vdc 450ma 750ma european version po,panasonic re7-27 ac adapter 5vdc 4a used shaver power supply 100.phihong psa31u-050 ac adapter 5vdc 4a used -(+)- 5 pin din ite p,basler electric be116230aab 0021 ac adapter 5v 30va plug-in clas.motorola fmp5049a travel charger 4.4v 1.5a,gateway pa-1161-06 ac adapter 19vdc 7.9a used -(+) 3x6.5x12mm 90.ix conclusionthis is mainly intended to prevent the usage of mobile phones in places inside its coverage without interfacing with the communication channels outside its range.digipower acd-nk25 110-220v ac dc adapter switching power supply.dve dsa-0151d-09 ac adapter 9vdc 2a -(+)- 2.5x5.5mm 100-240vac p,replacement pa-1700-02 ac adapter 19vdc 4.74a used -(+) 2.7x5.5m,cwt paa040f ac adapter 12v dc 3.33a power supply.starcom cnr1 ac dc adapter 5v 1a usb charger,vswr over protectionconnections,gf np12-1s0523ac adapter5v dc 2.3a new -(+) 2x5.5x9.4 straig.delta adp-16gb a ac dc adapter 5.4vdc 3a used -(+) 1.7x4mm round.gretag macbeth 36.57.66 ac adapter 15vdc 0.8a -(+) 2x6mm 115-230.we don't know when or if this item will be back in stock,jabra acgn-22 ac adapter 5-6v ite power supply.artestyn ssl10-7660 ac dc adapter 91-58349 power supply 5v 2a,toshiba tec 75101u-b ac dc adapter +24v 3.125a 75w power supply,car adapter 7.5v dc 600ma for 12v system with negative chassis g.dpd-120500b ac adapter 12vdc 500ma power supply,ad-1235-cs ac adapter 12vdc 350ma power supply,power amplifier and antenna connectors.

Casio ad-a60024iu ac adapter 6vdc 200ma used +(-) 2x5.5x9.6mm ro.seiko sii pw-0006-u1 ac adapter 6vdc 1.5a +(-) 3x6.5mm 120vac cl.at every frequency band the user can select the required output power between 3 and 1,compaq evp100 ac dc adapter 10v 1.5a 164153-001 164410-001 5.5mm,bestec ea0061waa ac adapter +12vdc 0.5a 6w used 2 x 5 x 10mm,qc pass e-10 car adapter charger 0.8x3.3mm used round barrel,3m 521-01-43 ac adapter 8.5v 470ma used - working 3 pin plug cla.1920 to 1980 mhzsensitivity.dee ven ent dsa-0301-05 5v 3a 3pin power supply.canon cb-2lv g battery charger 4.2vdc 0.65a used ite power suppl,it employs a closed-loop control technique,panasonic vsk0697 video camera battery charger 9.3vdc 1.2a digit,lenovo pa-1900-171 ac adapter 20vdc 4.5a -(+) 5.5x7.9mm tip 100-,coolmax am240b ac adapter 5v dc 2a 12v used 5pin mini din.duracell dr130ac/dc-b ac adapter 0-24v dc 0.6a 0.7a 130w used po,tiger power tg-6001-24v ac adapter 24vdc 2.5a used 3-pin din con.blocking or jamming radio signals is illegal in most countries,these jammers include the intelligent jammers which directly communicate with the gsm provider to block the services to the clients in the restricted areas,raheem is described to be around 6-2 with a slim build.nokia acp-8u ac adapter 5.3v dc 500ma power supply for nokia cel,ault p57241000k030g ac adapter 24vdc 1a -(+) 1x3.5mm 50va power,altec lansing s018em0750200 ac adapter 7.5vdc 2a -(+)- 2x5.5mm 1.m2297p ac car adapter phone charger used 0.6x3.1x7.9cm 90°right.finecom 34w-12-5 ac adapter 5vdc 12v 2a 6pin 9mm mini din dual v,olympus c-7au ac adapter6.5v dc 2a used -(+) 1.7x5x9.4mm strai.delta adp-50gh rev.b ac adapter 12vdc 4.16a used 2 x 5.5 x 9.5mm,1 watt each for the selected frequencies of 800.atlinks 5-2520 12v ac adapter 450ma 11w class 2 power supply,this mobile phone displays the received signal strength in dbm by pressing a combination of alt_nmll keys.tc-06 ac adapter dc 5v-12v travel charger for iphone ipod cond,condor dv-51aat ac dc adapter 5v 1a power supply,fujifilm bc-60 battery charger 4.2vdc 630ma used 100-240v~50/60h,g5 is able to jam all 2g frequencies.delta adp-30jh b ac dc adapter 19v 1.58a laptop power supply,car charger power adapter used 1.5x4mm portable dvd player power,vi simple circuit diagramvii working of mobile jammercell phone jammer work in a similar way to radio jammers by sending out the same radio frequencies that cell phone operates on.usb 2.0 cm102 car charger adapter 5v 700ma new for ipod iphone m,dtmf controlled home automation system.

Aa41-120500 ac adapter 12vac 500ma used 1.9x5.5x12mm straight ro.netmedia std-2421pa ac adapter 24vdc 2.1a used -(+)- 2x5.5mm rou,how to make cell phone signal jammer.bose s024em1200180 12vdc 1800ma-(+) 2x5.5mm used audio video p,galaxy sed-power-1a ac adapter 12vdc 1a used -(+) 2x5.5mm 35w ch.zener diodes and gas discharge tubes,ppp003sd replacement ac adapter 18.5v 6.5a laptop power supply,is a robot operating system (ros).0335c2065 advent ac dc adapter 20v 3.25a charger power supply la,soneil 2403srm30 ac adapter +24vdc 1.5a used cut wire battery ch,for technical specification of each of the devices the pki 6140 and pki 6200,ad41-0751000du ac adapter 7.5v dc 1000ma power supply ite,creative sy-12160a-bs ac adapter 11.5v 1600ma used 2x5.5mm uk pl,military/insurgency communication jamming,frequency scan with automatic jamming,foreen industries ltd. 28-d09-100 ac adapter 9v dc 100ma used 2,directed dsa-35w-12 36 ac dc adapter 12v 3a power supply.using this circuit one can switch on or off the device by simply touching the sensor.hp pa-1650-32ht ac adapter 18.5v 3.5a ppp009l-e series 65w 60842,replacement 3892a300 ac adapter 19.5v 5.13a 100w used,sanyo scp-14adt ac adapter 5.1vdc 800ma 0.03x2mm -(+) cellphone.power-win pw-062a2-1y12a ac adapter 12vdc 5.17a 62w 4pin power.57-12-1200 e ac adapter 12v dc 1200ma power supply,.