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Off-the-Shelf Antennas for Controlled-Reception-Pattern Antenna Arrays By Yu-Hsuan Chen, Sherman Lo, Dennis M. Akos, David S. De Lorenzo, and Per Enge INNOVATION INSIGHTS by Richard Langley THE ANTENNA IS A CRITICAL COMPONENT OF ANY GNSS RECEIVING EQUIPMENT. It must be carefully designed for the frequencies and structures of the signals to be acquired and tracked. Important antenna properties include polarization, frequency coverage, phase-center stability, multipath suppression, the antenna’s impact on receiver sensitivity, reception or gain pattern, and interference handling. While all of these affect an antenna’s performance, let’s just look at the last two here. The gain pattern of an antenna is the spatial variation of the gain, or ratio of the power delivered by the antenna for a signal arriving from a particular direction compared to that delivered by a hypothetical isotropic reference antenna. Typically, for GNSS antennas, the reference antenna is also circularly polarized and the gain is then expressed in dBic units. An antenna may have a gain pattern with a narrow central lobe or beam if it is used for communications between two fixed locations or if the antenna can be physically steered to point in the direction of a particular transmitter. GNSS signals, however, arrive from many directions simultaneously, and so most GNSS receiving antennas tend to be omni-directional in azimuth with a gain roll-off from the antenna boresight to the horizon. While such an antenna is satisfactory for many applications, it is susceptible to accidental or deliberate interference from signals arriving from directions other than those of GNSS signals. Interference effects could be minimized if the gain pattern could be adjusted to null-out the interfering signals or to peak the gain in the directions of all legitimate signals. Such a controlled-reception-pattern antenna (CRPA) can be constructed using an array of antenna elements, each one being a patch antenna, say, with the signals from the elements combined before feeding them to the receiver. The gain pattern of the array can then be manipulated by electronically adjusting the phase relationship between the elements before the signals are combined. However, an alternative approach is to feed the signals from each element to separate banks of tracking channels in the receiver and form a beam-steering vector based on the double-difference carrier-phase measurements from pairs of elements that is subsequently used to weight the signals from the elements before they are processed to obtain a position solution. In this month’s column, we learn how commercial off-the-shelf antennas and a software-defined receiver can be used to design and test such CRPA arrays. “Innovation” features discussions about advances in GPS technology, its applications, and the fundamentals of GPS positioning. The column is coordinated by Richard Langley, Department of Geodesy and Geomatics Engineering, University of New Brunswick. To contact him with topic ideas, email him at lang @ unb.ca. Signals from global navigation satellite systems are relatively weak and thus vulnerable to deliberate or unintentional interference. An electronically steered antenna array system provides an effective approach to mitigate interference by controlling the reception pattern and steering the system’s beams or nulls. As a result, so-called controlled-reception-pattern-antenna (CRPA) arrays have been deployed by organizations such as the U.S. Department of Defense, which seeks high levels of interference rejection. Our efforts have focused on developing a commercially viable CRPA system using commercial off-the-shelf (COTS) components to support the needs of Federal Aviation Administration (FAA) alternative position navigation and timing (APNT) efforts. In 2010, we implemented a seven-element, two-bit-resolution, single-beam and real-time CRPA software receiver. In 2011, the receiver was upgraded to support all-in-view, 16-bit-resolution with four elements. Even though we can implement these CRPA software receivers in real time, the performance of anti-interference is highly dependent on the antenna array layout and characteristics of the antenna elements. Our beamforming approach allows us to use several COTS antennas as an array rather than a custom-designed and fully calibrated antenna. The use of COTS antennas is important, as the goal of our effort is to develop a CRPA for commercial endeavors — specifically for robust timing for the national airspace. Hence, it is important to study the geometry layout of the individual antennas of the array to assess the layouts and to determine how antenna performance affects the array’s use. In our work, we have developed a procedure for calculating the electrical layouts of an antenna array by differential carrier-phase positioning. When compared to the physical layout, the results of electrical layouts can be used to determine the mutual coupling effect of each combination. Using the electrical layout, the resultant gain patterns can be calculated and used to see the beamwidth and the side-lobe issue. This is important as these factors have significant effects on anti-interference performance. This study focuses on understanding the performance effects of geometry and developing a method for describing the best geometry. We adopted three models of COTS antenna and two possible layouts for a four-element array. Then, signal collection hardware consisting of four Universal Software Radio Peripheral (USRP) software-defined radios and one host personal computer was assembled to collect array data sets for each layout/antenna combination. Our developed CRPA software receiver was used to process all data sets and output carrier-phase measurements. In this article, we will present the pattern analysis for the two selected layouts and describe how we collected the experimental data. We’ll then show the results of calculating the electrical spacing for the layouts are compare them to the physical layouts. Lastly, we’ll show the resulting patterns, discuss the antenna mutual coupling effects, and give our conclusions. Antenna Array Pattern Analysis Pattern is defined as the directional strength of a radio-frequency signal viewed from the antenna. The pattern of an antenna array is the product of the isotropic array factor and the isolated element pattern. We assume that the pattern of each element is identical and only consider the isotropic array factor. FIGURE 1 shows the coordination of an antenna array. The first element is set as a reference position. The x-axis is the east direction, the y-axis is the north direction, and the z-axis is the up direction. The baseline vector of the ith antenna is given by and  is the unit vector to the satellite. Figure 1. Antenna array geometry and direction of satellite. Array elements are identified as E#1, E#2, E#3, and E#4. The isotropic array factor is given by    (1) where λ is wavelength, and Ai is a complex constant. Currently, we only implement a four-element-array CRPA software receiver in real time. Hence, we analyze two kinds of layout of half-wavelength four-element arrays: a symmetrical Y array and a square array. Each antenna is separated from its nearest neighbor by a half wavelength. FIGURE 2 shows photos of the two layouts. FIGURE 3 shows the physical layouts. Figure 2. Photos of antenna arrays (left: Y array; right: square array). Figure 3A. Physical layout of antenna arrays (Y array). Figure 3B. Physical layout of antenna arrays (square array). The antenna patterns towards an elevation angle of 90 degrees, computed using equation 1 and the design layouts, are shown in FIGURE 4. One of the key characteristics of a pattern is the beamwidth, which is defined as the angle with 3-dB loss. FIGURE 5 shows the patterns in elevation angle where the beamwidth of the Y layout is 74 degrees and 86 degrees for the square layout. A narrow beamwidth will benefit anti-interference performance particularly if the interference is close to the direction of a target satellite. Figure 4. Patterns of antenna arrays (left: Y array; right: square array). Figure 5. Pattern beamwidths of Y and square arrays (3 dB beamwidth shown). Specifications of COTS Antennas Typically, the COTS antenna selection is determined by high gain and great out-of-band rejection. TABLE 1 shows the specifications of the three antenna models used in this article. These antennas are all patch antennas. The antennas are equipped with surface-acoustic-wave filters for rejecting out-of-band signals. A three-stage low noise amplifier with over 30 dB gain is also embedded in each antenna. Table 1. Specifications of COTS antennas used. Signal Collection Hardware and Experimental Setup The hardware used to collect the antenna array datasets is shown in FIGURE 6 with block-diagram representation in FIGURE 7. The hardware includes a four-element antenna array, four USRP2 software radio systems and one host computer. The signal received from the COTS antenna passes to a USRP2 board equipped with a 800–2300 MHz DBSRX2 programmable mixing and down-conversion daughterboard. The individual USRP2 boards are synchronized by a 10-MHz external common clock generator and a pulse-per-second (PPS) signal. The USRP2s are controlled by the host computer running the Ubuntu distribution of Linux. The open-source GNU Radio software-defined radio block is used to configure USRP2s and collect datasets. All USRP2s are configured to collect the L1 (1575.42 MHz) signal. The signals are converted to near zero intermediate frequency (IF) and digitized to 14-bit complex outputs (I and Q). Figure 6. Photo of the signal collection hardware. Figure 7. Block diagram of the signal collection hardware. The sampling rate is set as 4 MHz. The host computer uses two solid state drives for storing data sets. For our study, a 64-megabytes per second data transfer rate is needed. The fast solid state drives are especially useful when using high bandwidth signals such as L5, which will require an even higher data streaming rate (80 megabytes per second per channel). To compare the physical and electrical layouts of the antenna arrays, we set up the signal collection hardware to record six data sets for the two layouts and the three antenna models as shown in TABLE 2. All of the data sets were five minutes long to obtain enough carrier-phase measurements for positioning. Table 2. Experimental setups. Logging Carrier-Phase Measurements To calculate the precise spacing between the antenna elements, hundreds of seconds of carrier-phase measurements from each element are needed. The collected data sets were provided by our in-house-developed CRPA software receiver. The receiver was developed using Visual Studio under Windows. Most of source code is programmed using C++. Assembly language is used to program the functions with high computational complexity such as correlation operations. The software architecture of the receiver is depicted in FIGURE 8. This architecture exploits four sets of 12 tracking channels in parallel to process each IF signal from an antenna element. Each channel is dedicated to tracking the signal of a single satellite. The tracking channels output carrier-phase measurements to build the steering vectors for each satellite. The Minimum Variance Distortionless Response (MVDR) algorithm was adopted for adaptively calculating the weights for beamforming. Here, there are 12 weight sets, one for each satellite in a tracking channel, for the desired directions of satellites. Figure 8. Block diagram of the software architecture. Using the pre-correlation beamforming approach, the weights are multiplied with IF data and summed over all elements to form 12 composite signals. These signals are then processed by composite tracking channels. Finally, positioning is performed if pseudoranges and navigation messages are obtained from these channels. FIGURE 9 is the graphical user interface (GUI) of the CRPA software receiver. It consists of the channel status of all channels, carrier-phase differences, positioning results, an east-north (EN) plot, a sky plot, a carrier-to-noise-density (C/N0) plot and the gain patterns of the array for each tracked satellite. In the figure, the CRPA software receiver is tracking 10 satellites and its positioning history is shown in the EN plot. The beamforming channels have about 6 dB more gain in C/N0 than the channels of a single element. In each pattern, the direction with highest gain corresponds to the direction of the satellite. While the CRPA software receiver is running, the carrier-phase measurements of all elements and the azimuth and elevation angle of the satellites are logged every 100 milliseconds. Each data set in Table 2 was processed by the software receiver to log the data. Figure 9. Screenshot of the controlled-reception-pattern-antenna software-receiver graphical user interface. Electrical Layout of Antenna Array – Procedure The procedure of calculating the electrical layout of an antenna array is depicted in FIGURE 10. The single-difference integrated carrier phase (ICP) between the signals of an element, i, and a reference element, j, is represented as:    (2) where rkij is differential range toward the kth satellite between the ith and jth antenna elements (a function of the baseline vector between the ith and jth elements), δLij is the cable-length difference between the ith and jth antenna elements, Nkij is the integer associated with Φkij , εkij and  is the phase error. The double-difference ICP between the kth satellite and reference satellite l is represented as:    (3) The cable-length difference term is subtracted in the double difference. Since the distances between the antenna elements are close to one wavelength, equation (3) can be written as:    (4) where  is the unit vector to satellite k, pij is the baseline vector between the ith and jth elements. By combining all the double-difference measurements of the ijth pair of elements, the observations equation can be represented as:       (5) From the positioning results of composite channels, the azimuth and elevation angle of satellites are used to manipulate matrix G. To solve equation (5), the LAMBDA method was adopted to give the integer vector N. Then, pij  is solved by substituting N into equation (5). Finally, the cable-length differences are obtained by substituting the solutions of N and pij into equation (2). This approach averages the array pattern across all satellite measurements observed during the calibration period. Figure 10. Procedure for calculating antenna-array electrical spacing. Electrical Layout of Antenna Array – Results Using the procedure in the previous section, all electrical layouts of the antenna array were calculated and are shown in FIGURES 11 and 12. We aligned the vectors from element #1 to element #2 for all layouts. TABLE 3 lists the total differences between the physical and electrical layouts. For the same model of antenna, the Y layout has less difference than the square layout. And, in terms of antenna model, antenna #1 has the least difference for both Y and square layouts. We could conclude that the mutual coupling effect of the Y layout is less than that of the square layout, and that antenna #1 has the smallest mutual coupling effect among all three models of antenna for these particular elements and observations utilized. Figure 11. Results of electrical layout using three models of antenna compared to the physical layout for the Y array. Figure 12. Results of electrical layout using three models of antenna compared to physical layout for the square array. Table 3. Total differences between physical and electrical layouts. To compare the patterns of all calculated electrical layouts, we selected two specific directions: an elevation angle of 90 degrees and a target satellite, WAAS GEO PRN138, which was available for all data sets. The results are shown in FIGURES 13 and 14, respectively. From Figure 13, the beamwidth of the Y layout is narrower than that of the square layout for all antenna models. When compared to Figure 5, this result confirms the validity of our analysis approach. But, in Figure 14, a strong sidelobe appears at azimuth -60º in the pattern of Y layout for antenna #2. If there is some interference located in this direction, the anti-interference performance of the array will be limited. This is due to a high mutual coupling effect of antenna #2 and only can be seen after calculating the electrical layout. Figure 13. Patterns of three models of antenna and two layouts toward an elevation angle of 90 degrees. Figure 14. Patterns of three models of antenna and two layouts toward the WAAS GEO satellite PRN138. Conclusions The results of our electrical layout experiment show that the Y layout has a smaller difference with respect to the physical layout than the square layout. That implies that the elements of the Y layout have less mutual coupling. For the antenna selection, arrays based on antenna model #1 showed the least difference between electrical and physical layout. And its pattern does not have a high grating lobe in a direction other than to the target satellite. The hardware and methods used in this article can serve as a testing tool for any antenna array. Specifically, our methodology, which can be used to collect data, compare physical and electrical layouts, and assess resultant antenna gain patterns, allows us to compare the performances of different options and select the best antenna and layout combination. Results can be used to model mutual coupling and the overall effect of layout and antenna type on array gain pattern and overall CRPA capabilities. This procedure is especially important when using COTS antennas to assemble an antenna array and as we increase the number of antenna elements and the geometry possibilities of the array. Acknowledgments The authors gratefully acknowledge the work of Dr. Jiwon Seo in building the signal collection hardware. The authors also gratefully acknowledge the Federal Aviation Administration Cooperative Research and Development Agreement 08-G-007 for supporting this research. This article is based on the paper “A Study of Geometry and Commercial Off-The-Shelf (COTS) Antennas for Controlled Reception Pattern Antenna (CRPA) Arrays” presented at ION GNSS 2012, the 25th International Technical Meeting of the Satellite Division of The Institute of Navigation, held in Nashville, Tennessee, September 17–21, 2012. Manufacturers The antennas used to construct the arrays are Wi-Sys Communications Inc., now PCTEL, Inc. models WS3978 and WS3997 and PCTEL, Inc. model 3978D-HR. The equipment used to collect data sets includes Ettus Research LLC model USRP2 software-defined radios and associated DBSRX2 daughterboards. Yu-Hsuan Chen is a postdoctoral scholar in the GNSS Research Laboratory at Stanford University, Stanford, California. Sherman Lo is a senior research engineer at the Stanford GNSS Research Laboratory. Dennis M. Akos is an associate professor with the Aerospace Engineering Science Department in the University of Colorado at Boulder with visiting appointments at Luleå Technical University, Sweden, and Stanford University. David S. De Lorenzo is a principal research engineer at Polaris Wireless, Mountain View, California, and a consulting research associate to the Stanford GNSS Research Laboratory. Per Enge is a professor of aeronautics and astronautics at Stanford University, where he is the Kleiner-Perkins Professor in the School of Engineering. He directs the GNSS Research Laboratory. FURTHER READING • Authors’ Publications “A Study of Geometry and Commercial Off-The-Shelf (COTS) Antennas for Controlled Reception Pattern Antenna (CRPA) Arrays” by Y.-H. Chen in Proceedings of ION GNSS 2012, the 25th International Technical Meeting of The Institute of Navigation, Nashville, Tennessee, September 17–21, 2012, pp. 907–914 (ION Student Paper Award winner). “A Real-Time Capable Software-Defined Receiver Using GPU for Adaptive Anti-Jam GPS Sensors” by J. Seo, Y.-H. Chen, D.S. De Lorenzo, S. Lo, P. Enge, D. Akos, and J. Lee in Sensors, Vol. 11, No. 9, 2011, pp. 8966–8991, doi: 10.3390/s110908966. “Real-Time Software Receiver for GPS Controlled Reception Pattern Array Processing” by Y.-H. Chen, D.S. De Lorenzo, J. Seo, S. Lo, J.-C. Juang, P. Enge, and D.M. Akos in Proceedings of ION GNSS 2010, the 23rd International Technical Meeting of The Institute of Navigation, Portland, Oregon, September 21–24, 2010, pp. 1932–1941. “A GNSS Software Receiver Approach for the Processing of Intermittent Data” by Y.-H. Chen and J.-C. Juang in Proceedings of ION GNSS 2007, the 20th International Technical Meeting of The Institute of Navigation, Fort Worth, Texas, September 25–28, 2007, pp. 2772–2777. • Controlled-Reception-Pattern Antenna Arrays “Anti-Jam Protection by Antenna: Conception, Realization, Evaluation of a Seven-Element GNSS CRPA” by F. Leveau, S. Boucher, E. Goron, and H. Lattard in GPS World, Vol. 24, No. 2, February 2013, pp. 30–33. “Development of Robust Safety-of-Life Navigation Receivers” by M.V.T. Heckler, M. Cuntz, A. Konovaltsev, L.A. Greda, A. Dreher, and M. Meurer in IEEE Transactions on Microwave Theory and Techniques, Vol. 59, No. 4, April 2011, pp. 998–1005, doi: 10.1109/TMTT.2010.2103090. Phased Array Antennas, 2nd Edition, by R. C. Hansen, published by John Wiley & Sons, Inc., Hoboken, New Jersey, 2009. • Antenna Principles “Selecting the Right GNSS Antenna” by G. Ryley in GPS World, Vol. 24, No. 2, February 2013, pp. 40–41 (in PDF of 2013 Antenna Survey.) “GNSS Antennas: An Introduction to Bandwidth, Gain Pattern, Polarization, and All That” by G.J.K. Moernaut and D. Orban in GPS World, Vol. 20, No. 2, February 2009, pp. 42–48. “A Primer on GPS Antennas” by R.B. Langley in GPS World, Vol. 9, No. 7, July 1998, pp. 50-54. • Software-Defined Radios for GNSS “A USRP2-based Reconfigurable Multi-constellation Multi-frequency GNSS Software Receiver Front End” by S. Peng and Y. Morton in GPS Solutions, Vol. 17, No. 1, January 2013, pp. 89-102. “Software GNSS Receiver: An Answer for Precise Positioning Research” by T. Pany, N. Falk, B. Riedl, T. Hartmann, G. Stangl, and C. Stöber in GPS World, Vol. 23, No. 9, September 2012, pp. 60–66. “Simulating GPS Signals: It Doesn’t Have to Be Expensive” by A. Brown, J. Redd, and M.-A. Hutton in GPS World, Vol. 23, No. 5, May 2012, pp. 44–50. Digital Satellite Navigation and Geophysics: A Practical Guide with GNSS Signal Simulator and Receiver Laboratory by I.G. Petrovski and T. Tsujii with foreword by R.B. Langley, published by Cambridge University Press, Cambridge, U.K., 2012. “A Real-Time Software Receiver for the GPS and Galileo L1 Signals” by B.M. Ledvina, M.L. Psiaki, T.E. Humphreys, S.P. Powell, and P.M. Kintner, Jr. in Proceedings of ION GNSS 2006, the 19th International Technical Meeting of The Institute of Navigation, Fort Worth, Texas, September 26–29, 2006, pp. 2321–2333.

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Are freely selectable or are used according to the system analysis,dell pa-1900-28d ac adaoter 19.5vdc 4.62a -(+) 7.4x5mm tip j62h3,acbel polytech api-7595 ac adapter 19vdc 2.4a power supply,sharp ea-65a ac adapter 6vdc 300ma used +(-) 2x5.5x9.6mm round b,compaq ppp003s ac adapter 18.5vdc 2.7a -(+) 1.5x4.75cm 100-240va,394903-001 ac adapter 19v 7.1a power supply,yuyao wj-y666-12 ac adapter 12vdc 500ma used -(+) 2.1x5.5x12mm r,this system considers two factors,410906003ct ac adapter 9vdc 600ma db9 & rj11 dual connector,we are providing this list of projects,the data acquired is displayed on the pc,sony ac-v25b ac adapter 7.5v 1.5a 10v 1.1a charger power supply,phase sequence checking is very important in the 3 phase supply,jt-h090100 ac adapter 9vdc 1a used 3 x 5.5 x 10 mm straight roun.canon ad-50 ac adapter -(+)- +24vdc 1.8a used 2x5.5mm straight r.potrans up04821120a ac adapter 12vdc 4a used -(+) 2x5.5x9.7mm ro,2110 to 2170 mhztotal output power.dell fa90pe1-00 ac adapter 19.5vdc 4.62a used -(+) 5x7.3x12.5mm,toshiba adp-15hh ac adapter 5vdc 3a - (+) - new switching power,rexon ac-005 ac adapter 12v 5vdc 1.5a 5pin mini din power supply.creative ys-1015-e12 12v 1.25a switching power supply ac adapter,jentec jta0402d-a ac adapter 5vdc 1.2a wallmount direct plug in.plantronics u093040d ac adapter 9vdc 400ma -(+)- 2x5.5mm 117vac.finecom 12vdc 1a gas scooter dirt bike razor charger atv 12 volt.new bright a519201194 battery charger 7v 150ma 6v nicd rechargab,databyte dv-9300s ac adapter 9vdc 300ma class 2 transformer pow.6 different bands (with 2 additinal bands in option)modular protection.foreen industries 28-a06-200 ac adapter 6vdc 200ma used 2x5.5mm,ault 5305-712-413a09 ac adapter 12v 5vdc 0.13a 0.5a power supply,a portable mobile phone jammer fits in your pocket and is handheld,its great to be able to cell anyone at anytime.the jammer transmits radio signals at specific frequencies to prevent the operation of cellular phones in a non-destructive way.panasonic ag-b6hp ac adapter 12vdc 1.8a used power supply,when zener diodes are operated in reverse bias at a particular voltage level,acbel api3ad03 ac adapter 19v dc 3.42a toshiba laptop power supp,us robotics dv-9750-5 ac adapter 9.2vac 700ma used 2.5x 5.5mm ro.

Ksah2400200t1m2 ac adapter 24vdc 2a used -(+) 2.5x5.5mm round ba.lei mu12-2075150-a1 ac adapter 7.5v 1.5a power supply.toshiba pa3048u-1aca ac adapter 15vdc 4a used -(+) 3x6.5mm round,toshiba pa2444u ac adapter 15vdc 4a 60w original switching powe,radioshack ad-362 ac adapter 9vdc 210ma used -(+)- 2.1 x 5.5 x 1.delta electronics adp-10ub ac adapter 5v 2a used -(+)- 3.3x5.5mm.hp adp-65hb bc ac adapter 18.5v 3.5a 65w 463552-004 laptop compa,ad3230 ac adapter 5vdc 3a used 1.7x3.4x9.3mm straight round.creative dv-9440 ac adapter 9v 400ma power supply,delta eadp-36kb a ac adapter 12vdc 3a used -(+) 2.5x5.5mm round,kvh’s new geo-fog 3d inertial navigation system (ins) continuously provides extremely accurate measurements that keep applications operating in challenging conditions,condor sa-072a0u-2 used 7.5vdc 2a adapter 2.5 x 5.5 x 11.2mm,toshiba pa3241u-1aca ac adapter 15vdc 3a -(+) 3x6.5mm 100v-200va,curtis dvd8005 ac adapter 12vdc 2.7a 30w power supply.so that pki 6660 can even be placed inside a car.ault pw15aea0600b05 ac adapter 5.9vdc 2000ma used -(+) 1.3x3.5mm,the second type of cell phone jammer is usually much larger in size and more powerful.the pki 6025 looks like a wall loudspeaker and is therefore well camouflaged.sony adp-708sr ac adapter 5vdc 1500ma used ite power supply.sony ac-v65a ac power adapter 7.5vdc 10v 1.6a 1.3a 20w charger p,gn netcom a30750 ac adapter 7.5vdc 500ma used -(+) 0.5x2.4mm rou,preventing them from receiving signals and …,globtek gt-4076-0609 ac adapter 9vdc 0.66a -(+)- used 2.6 x 5.5.fujitsu ca01007-0520 ac adapter 16v dc 2.7a new 4.5x6x9.7mm,blackberry bcm6720a battery charger 4.2vdc 0.7a used 100-240vac~.a mobile jammer circuit or a cell phone jammer circuit is an instrument or device that can prevent the reception of signals by mobile phones.our free white paper considers six pioneering sectors using 5g to redefine the iot.sanken seb55n2-16.0f ac adapter 16vdc 2.5a power supply,amperor adp-90dca ac adapter 18.5vdc 4.9a 90w used 2.5x5.4mm 90.aplha concord dv-1215a ac adapter 12vac.this project shows the measuring of solar energy using pic microcontroller and sensors,exvision adn050750500 ac adapter 7.5vdc 500ma used -(+) 1.5x3.5x.gme053-0505-us ac adapter 5vdc 0.5a used -(+) 1x3.5x7.5mm round.ktec ka12a2000110023u ac adapter 20vc 100ma used 1x3.5x9mm round.austin adp-bk ac adapter 19v dc 1.6a used 2.5x5.5x12.6mm,arac-12n ac adapter 12vdc 200ma used -(+) plug in class 2 power.

Hipro hp-02036d43 ac adapter 12vdc 3a -(+) 36w power supply,stancor sta-4190d ac adapter 9vac 500ma used 2x5.4mm straight ro,apple powerbook m1893 ac adapter 16vdc 1.5a 16v 1a used 4 pin di,ingenico pswu90-2000 ac adapter 9vdc 2a -(+) 2.5x5.5 socket jack.toshiba up01221050a 06 ac adapter 5vdc 2.0a psp16c-05ee1.leap frog ad529 ac adapter 5vdc 1500ma used usb switching power,altec lansing a1664 ac adapter 15vdc 800ma used -(+) 2x,“1” is added to the fault counter (red badge) on the hub icon in the ajax app,as many engineering students are searching for the best electrical projects from the 2nd year and 3rd year,usb 2.0 cm102 car charger adapter 5v 700ma new for ipod iphone m,sony ericsson cst-75 ac adapter 4.9vdc 700ma used cell phone uk.ibm 66g9984 adapter 10-20vdc 2-2.2a used car charger 4pin female,avaya sa41-118a ac adapter 9vdc 700ma 13w -(+)- power supply.accordingly the lights are switched on and off,codi a03002 ac adapter 20vac 3.6a used 3 pin square auto/air pow.ibm 02k6665 ac adapter 16vdc 4.5a use-(+) 2.5x5.5mm power supply.the marx principle used in this project can generate the pulse in the range of kv,premium power ea1060b ac adapter 18.5v 3.5a compaq laptop power,powmax ky-05048s-29 ac adapter 29vdc 1.5a 3pin female uk plug,nyko 87000-a50 nintendo wii remote charge station,replacement 324816-001 ac adapter 18.5v 4.9a used,dve dsa-0151f-15 ac adapter 15vdc 1.2a 1200ma switching power su,ibm adp-30fb 04h6197 ac dc adapter 16v 1.88a 04h6136 charger pow,axis sa120a-0530-c ac adapter 5.1vdc 2000ma used -(+) 0.9x3.5x9m,sunbeam pac-214 style 85p used 3pin remote wired controller 110v,ac adapter 30vac 500ma ~(~) telephone equipment i.t.e. power sup,ad41-0601000du ac adapter 6vdc 1a 1000ma i.t.e. power supply,replacement seb100p2-15.0 ac adapter 15vdc 8a 4pin used pa3507u-,but are used in places where a phone call would be particularly disruptive like temples.you can produce duplicate keys within a very short time and despite highly encrypted radio technology you can also produce remote controls,phihong psa31u-050 ac adapter 5vdc 4a used -(+)- 5 pin din ite p,black & decker ua060020 ac adapter 6v ac ~ 200ma used 2x5.5mm.motorola 481609oo3nt ac adapter 16vdc 900ma used 2.4x5.3x9.7mm,wakie talkie jammer free devices,li shin lse9802a2060 ac adapter 20vdc 3a 60w used -(+) 2.1x5.5mm.lei mt12-y090100-a1 ac adapter 9vdc 1a used -(+) 2x5.5x9mm round.

Wahl db06-3.2-100 ac adapter 3.2vdc 100ma class 2 transformer,one is the light intensity of the room,seh sal115a-0525u-6 ac adapter 5vdc 2a i.t.e switching power sup,amigo am-121200a ac adapter 12vac 1200ma plug-in class 2 power s,sony vgp-ac19v10 ac adapter 19.5vdc 4.7a notebook power supply,nec adp-40ed a ac adapter 19vdc 2.1a used -(+) 2.5x5.5x11mm 90°,panasonic pv-dac13 battery charger video camera ac adapter.delta electronics adp-60cb ac dc adapter 19v 3.16a power supply,there are many methods to do this,black & decker 371415-11 ac adapter 13vdc 260ma used -(+) 2x5.5m,kodak xa-0912 ac adapter 12v dc 700 ma -(+) li-ion battery charg,digipower ip-pcmini car adapter charger for iphone and ipod.atc-frost fps4024 ac adapter 24v 40va used 120v 60hz 51w class 2.1 w output powertotal output power.sony bc-cs2a ni-mh battery charger used 1.4vdc 400max2 160max2 c,frequency counters measure the frequency of a signal.ppp003sd replacement ac adapter 18.5v 6.5a laptop power supply r,the jamming radius is up to 15 meters or 50 ft,”smart jammer for mobile phone systems” mobile &,this circuit shows a simple on and off switch using the ne555 timer,ryobi 1400666 charger 14vdc 2a 45w for cordless drill 1400652 ba,bellsouth sa41-57a ac adapter 9vdc 400ma used -(+) 2x5.5x12mm 90.liteon pa-1480-19t ac adapter (1.7x5.5) -(+)- 19vdc 2.6a used 1..motorola aa26100l ac adapter 9vdc 2a -(+)- 1.8x4mm used 1.8 x 4.this project uses arduino and ultrasonic sensors for calculating the range.akii techa25b1-05mb ac adapter +5vdc 5a power supply,the aim of this project is to achieve finish network disruption on gsm- 900mhz and dcs-1800mhz downlink by employing extrinsic noise,umec up0351e-12p ac adapter +12vdc 3a 36w used -(+) 2.5x5.5mm ro,upon activating mobile jammers.pure energy cp2-a ac adapter 6vdc 500ma charge pal used wall mou,jvc aa-r1001 ac adapter 10.7vdc 3a used -(+)- 2.5x5.5mm 110-240v.bomb threats or when military action is underway,depending on the vehicle manufacturer.1800 to 1950 mhztx frequency (3g).the signal bars on the phone started to reduce and finally it stopped at a single bar,fisher price pa-0610-dva ac adapter 6vdc 100ma power supply.

Ccm sdtc8356 ac adapter 5-11vdc used -(+)- 1.2x2.5x9mm,compaq ppp003 series adp-50ub ac adapter 18.5v 2.7a,hp 0957-2292 ac adapter +24vdc 1500ma used -(+)- 1.8x4.8x9.5mm.oem ads18b-w 220082 ac adapter 22vdc 818ma used -(+)- 3x6.5mm it,5 kgadvanced modelhigher output powersmall sizecovers multiple frequency band,2 w output powerphs 1900 – 1915 mhz,92p1157 replacement ac adapter 20v dc 3.25a ibm laptop power sup,band scan with automatic jamming (max,replacement ac adapter 15dc 5a 3x6.5mm fo acbel api4ad20 toshiba,duracell dr130ac/dc-b ac adapter 0-24v dc 0.6a 0.7a 130w used po.livewire simulator package was used for some simulation tasks each passive component was tested and value verified with respect to circuit diagram and available datasheet,finecom gt-21089-1305-t2 ac adapter 5v 2.6a new 3pin din power.zigbee based wireless sensor network for sewerage monitoring.hna050100u ac adapter 5v 1a audio video power supply,nokia ac-5e ac adapter cell phone charger 5.0v 800ma euorope ver,sony ericsson 316ams43001 ac adapter 5v dc 400ma -(+)- 0.5x2.5mm,kodak k5000 li-ion battery charger4.2vdc 650ma for klic-5000 kli,lighton pb-1200-1m01 ac adapter 5v 4a switching ac power supply,altec lansing ps012001502 ac adapter 12vdc 1500ma 2x5.5mm -(+) u,this is also required for the correct operation of the mobile,ault 7612-305-409e 12 ac adapter +5vdc 1a 12v dc 0.25a used.it employs a closed-loop control technique,airspan pwa-024060g ac adapter 6v dc 4a charger,tatung tps-048 ac adapter 12vdc 4a -(+) 2.5x5.5mm 100-240vac ite, Cell Phone Jammer for sale ,lenovo adp-65yb b ac adapter 19vdc 3.42a used -(+) 2.1x5.5x12mm..

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