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Enhancing GNSS Receiver Sensitivity by Combining Signals from Multiple Satellites By Penina Axelrad, James Donna, Megan Mitchell, and Shan Mohiuddin A new approach to enhancing signal sensitivity combines the received signal power from multiple satellites in a direct-to-navigation solution. INNOVATION INSIGHTS by Richard Langley ALTHOUGH I HAVE MANAGED the Innovation column continuously since GPS World’s first issue, it wasn’t until the second issue that I authored a column article. That article, co-written with Alfred Kleusberg, was titled “The Limitations of GPS.” It discussed some of the then-current problems of GPS, including poor signal reception, loss of signal integrity, and limited positioning accuracy. In the ensuing 20 years, both signal integrity and positioning accuracy have improved significantly. Advances in the GPS control segment’s capabilities to continuously monitor and assess signal performance, together with receiver-autonomous integrity monitoring and integrity enhancement provided by augmentation systems, have reduced worries about loss of signal integrity. The removal of Selective Availability and use of error corrections provided by augmentation systems, among other approaches, have improved positioning accuracy. But the problem of poor reception due to weak signals is still with us. In that March/April 1990 article, we wrote “[GPS] signals propagate from the satellites to the receiver antenna along the line of sight and cannot penetrate water, soil, walls, or other obstacles very well. … In surface navigation and positioning applications, the signal can be obstructed by trees, buildings, and bridges. … [In] the inner city streets of urban areas lined with skyscrapers, the ‘visibility’ of the GPS satellites is very limited. In such areas, the signals can be obstructed for extended periods of time or even [be] continuously unavailable.” Poor signal reception in other than open-sky environments is still a problem with conventional GPS receivers. However, extending signal integration times and using assisted-GPS techniques can give GPS some degree of capability to operate indoors and in other restricted environments, albeit typically with reduced positioning accuracy. An antenna with sufficient gain is needed and capable systems are available on the market. The pilot channels of modernized GNSS signals will also benefit signal acquisition and tracking in challenging environments. In this month’s column, we look at a completely different approach to enhancing signal sensitivity. Rather than requiring each satellite’s signal to be acquired and tracked before it can be used in the navigation solution, the new approach — dubbed “collective detection” — combines the received signal power from multiple satellites in a direct-to-navigation-solution procedure. Besides providing a quick coarse position solution with weak signals, this approach can be used to monitor the signal environment, aid deeply-coupled GPS/inertial navigation, and assist with terrain and feature recognition. “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. Growing interest in navigating indoors and in challenging urban environments is motivating research on techniques for weak GPS signal acquisition and tracking. The standard approach to increasing acquisition and tracking sensitivity is to lengthen the coherent integration times, which can be accomplished by using the pilot channels in the modernized GPS signals or by using assisted GPS (A-GPS) techniques. These techniques operate in the traditional framework of independent signal detection, which requires a weak signal to be acquired and tracked before it is useful for navigation. This article explores a complementary, but fundamentally different, approach that enhances signal sensitivity by combining the received power from multiple GPS satellites in a direct-to-navigation-solution algorithm. As will be discussed in the following sections, this collective detection approach has the advantage of incorporating into the navigation solution information from signals that are too weak to be acquired and tracked, and it does so with a modest amount of computation and with no required hardware changes. This technology is appropriate for any application that requires a navigation solution in a signal environment that challenges traditional acquisition techniques. Collective detection could be used to monitor the signal environment, aid deeply coupled GPS/INS during long outages, and help initiate landmark recognition in an urban environment. These examples are explained further in a subsequent section. In order to understand how the collective detection algorithm works, it is instructive to first consider the traditional approach to acquisition and tracking. Acquisition Theory and Methods In a typical stand-alone receiver, the acquisition algorithm assesses the signal’s correlation power in discrete bins on a grid of code delay and Doppler frequency (shift). The correlation calculations take the sampled signal from the receiver’s RF front end, mix it with a family of receiver-generated replica signals that span the grid, and sum that product to produce in-phase (I) and quadrature (Q) correlation output. The correlation power is the sum of the I and Q components, I2 + Q2. Plotting the power as a function of delay and frequency shift produces a correlogram, as shown in FIGURE 1. It should be noted that both correlation power and its square root, the correlation amplitude, are found in the GPS literature. For clarity, we will always use the correlation power to describe signal and noise values. If a sufficiently powerful signal is present, a distinct peak appears in the correlogram bin that corresponds to the GPS signal’s code delay and Doppler frequency. If the peak power exceeds a predefined threshold based on the integration times and the expected carrier-to-noise spectral density, the signal is detected. The code delay and Doppler frequency for the peak are then passed to the tracking loops, which produce more precise measurements of delay — pseudoranges — from which the receiver’s navigation solution is calculated. When the satellite signal is attenuated, however, perhaps due to foliage or building materials, the correlation peak cannot be distinguished and the conventional approach to acquisition fails. The sensitivity of traditional tracking algorithms is similarly limited by the restrictive practice of treating each signal independently. More advanced tracking algorithms, such as vector delay lock loops or deeply integrated filters, couple the receiver’s tracking algorithms and its navigation solution in order to take advantage of the measurement redundancy and to leverage information gained from tracking strong signals to track weak signals. The combined satellite detection approach presented in this article extends the concept of coupling to acquisition by combining the detection and navigation algorithms into one step. Collective Detection In the collective detection algorithm, a receiver position and clock offset grid is mapped to the individual GPS signal correlations, and the combined correlation power is evaluated on that grid instead of on the conventional independent code delay and Doppler frequency grids. The assessment of the correlation power on the position and clock offset grid leads directly to the navigation solution. The mapping, which is key to the approach, requires the receiver to have reasonably good a priori knowledge of its position, velocity, and clock offset; the GPS ephemerides; and, if necessary, a simplified ionosphere model. Given this knowledge, the algorithm defines the position and clock offset search grid centered on the assumed receiver state and generates predicted ranges and Doppler frequencies for each GPS signal, as illustrated in FIGURE 2. The mapping then relates each one of the position and clock offset grid points to a specific code delay and Doppler frequency for each GPS satellite, as illustrated in FIGURE 3. Aggregating the multiple delay/Doppler search spaces onto a single position/clock offset search space through the mapping allows the navigation algorithm to consider the total correlation power of all the signals simultaneously. The correlation power is summed over all the GPS satellites at each position/clock-offset grid point to create a position domain correlogram. The best position and clock-offset estimates are taken as the grid point that has the highest combined correlation power. This approach has the advantage of incorporating into the position/clock-offset estimate information contained in weak signals that may be undetectable individually using traditional acquisition/tracking techniques. It should be noted that a reasonable a priori receiver state estimate restricts the size of the position and clock-offset grid such that a linear mapping, based on the standard measurement sensitivity matrix used in GPS positioning, from the individual signal correlations, is reasonable. Also, rather than attempt to align the satellite correlations precisely enough to perform coherent sums, noncoherent sums of the individual satellite correlations are used. This seems reasonable, given the uncertainties in ranging biases between satellites, differences and variability of the signal paths through the ionosphere and neutral atmosphere, and the large number of phases that would have to be aligned. Applications The most obvious application for collective detection is enabling a navigation fix in circumstances where degraded signals cause traditional acquisition to fail. The sweet spot of collective detection is providing a rapid but coarse position solution in a weak signal environment. The solution can be found in less time because information is evaluated cohesively across satellites. This is especially clear when the algorithm is compared to computationally intensive long integration techniques. There are several ways that collective detection can support urban navigation. This capability benefits long endurance users who desire a moderate accuracy periodic fix for monitoring purposes. In some circumstances, the user may wish to initiate traditional tracking loops for a refined position estimate. However, if the signal environment is unfavorable at the time, this operation will waste valuable power. The collective detection response indicates the nature of the current signal environment, such as indoors or outdoors, and can inform the decision of whether to spend the power to transition to full GPS capabilities. In urban applications, deeply integrated GPS/INS solutions tolerate GPS outages by design. However, if the outage duration is too long, the estimate uncertainty will eventually become too large to allow conclusive signal detection to be restored. Running collective detection as a background process could keep deeply integrated filters centered even in long periods of signal degradation. Because collective detection approaches the acquisition problem from a position space instead of the individual satellite line-of-sight space, it provides inherent integrity protection. In the traditional approach, acquiring a multipath signal will pollute the overall position fix. In collective detection, such signals are naturally exposed as inconsistent with the position estimate. Another use would be to initialize landmark correlation algorithms in vision navigation. Landmark correlation associates street-level video with 3D urban models as an alternative to (GPS) absolute position and orientation updates. This technique associates landmarks observed from ground-level imagery with a database of landmarks extracted from overhead-derived 3D urban models. Having a coarse position (about 100 meters accuracy) enhances initialization and restart of the landmark correlation process. Draper Laboratory is planning to demonstrate the utility of using collective detection to enable and enhance landmark correlation techniques for urban navigation. In all of these applications, collective detection is straightforward to implement because it simply uses the output of correlation functions already performed on GPS receivers. Simulations and Processing The new algorithm has been tested using live-sky and simulated data collected by a Draper Laboratory wideband data recorder. A hardware GPS signal simulator was used to simulate a stationary observer receiving 11 equally powered GPS signals that were broadcast from the satellite geometry shown in FIGURE 4. The data recorder and the signal simulator were set up in a locked-clock configuration with all of the simulator’s modeled errors set to zero. No frequency offsets should exist between the satellites and the receiver. A clock bias, however, does exist because of cable and other fixed delays between the two units. The data recorder houses a four-channel, 14-bit A/D module. It can support sample rates up to 100 MHz. For this work, it was configured to downconvert the signal to an IF of 420 kHz and to produce in-phase and quadrature samples at 10 MHz. Results and Discussion To combine satellites, a position domain search space is established, centered on the correct location and receiver clock bias. A grid spacing of 30 meters over a range of ± 900 meters in north and east directions, and ± 300 meters in the vertical. In the first simulated example, the correlation power for all the satellites is summed on the position grid using a single 1-millisecond integration period. In this case, the true carrier-to-noise-density ratio for each signal is 40 dB-Hz. The results are shown in FIGURE 5. The plots in the left panel show the individual signal correlations as a function of range error. The four plots in the upper-right panel show several views of the combined correlation as a function of position error. The upper-left plot in the panel shows the correlation value as a function of the magnitude of the position error. The upper-right plot shows the correlation as a function of the north-east error, the lower-left the north-down error, and the lower-right the east-down error. Notice how the shape of the constant power contours resembles the shape of the constant probability contours that would result from a least-squares solution’s covariance matrix. The final plot, the bottom-right panel, shows a 3D image of the correlation power as a function of the north-east error. It is clear in these images that in the 40 dB-Hz case each satellite individually reaches the highest correlation power in the correct bin and that the combined result also peaks in the correct bin. In the combined satellite results, each individual satellite’s correlation power enters the correlogram as the ridge that runs in a direction perpendicular to the receiver-satellite line-of-sight vector and represents a line of constant pseudorange. FIGURE 6 shows a similar set of graphs for a simulator run at 20 dB-Hz. The plots in the left panel and the four plots in the upper-right panel show the individual and combined correlations, as in Figure 5. In the lower-right panel, the 3D image has been replaced with correlations calculated using 20 noncoherent 1-millisecond accumulations. The indistinct peaks in many of the individual correlations (left panel) suggest that these signals may not be acquired and tracked using traditional methods. Those signals, therefore, would not contribute to the navigation solution. Yet in the combined case, those indistinct peaks tend to add up and contribute to the navigation solution. These results indicate the feasibility of using the information in weak signals that may not be detectable using traditional methods and short acquisition times. The situation is further improved by increasing the number of noncoherent integration periods. Impact of Reduced Geometry. Of course, it is a bit unrealistic to have 11 satellites available, particularly in restricted environments, so we also considered three subsets of four-satellite acquisitions, under the same signal levels. FIGURE 7 compares the position domain correlograms for the following 20 dB-Hz cases: (1) a good geometry case (PRNs 3, 14, 18, 26), (2) an urban canyon case where only the highest 4 satellites are visible (PRNs 15, 18, 21, 22), and (3) a weak geometry case where just a narrow wedge of visibility is available (PRNs 18, 21, 26, 29). As expected, the correlation power peak becomes less distinct as the satellite geometry deteriorates. The pattern of degradation, morphing from a distinct peak to a ridge, reveals that the position solution remains well constrained in some directions, but becomes poorly constrained in others. Again, this result is expected and is consistent with the behavior of conventional positioning techniques under similar conditions. Focusing on Clock Errors. In some real-world situations, for example, a situation where a receiver is operating in an urban environment, it is possible for the position to be fairly well known, but the clock offset and frequency to have substantial uncertainty. FIGURE 8 shows how the combined satellites approach can be used to improve sensitivity when viewed from the clock bias and frequency domain. The figure presents example 1-millisecond correlograms of clock bias and clock drift for three 20 dB-Hz cases: (1) a single GPS satellite case; (2) a four-satellite, good geometry case; and (3) an 11-satellite, good geometry case. The assumed position solution has been offset by a random amount (generated with a 1-sigma of 100 meters in the north and east components, and 20 meters in the up component), but no individual satellite errors are introduced. These plots clearly show the improved capability for acquisition of the clock errors through the combining process. Live Satellite Signals. FIGURE 9 shows combined correlograms derived from real data recorded using an outdoor antenna. The first example includes high-signal-level satellites with 1.5-second noncoherent integration. The second example includes extremely attenuated satellite signals with a long noncoherent integration period of six seconds. The plots in the upper-left and upper-right panels show combined correlograms as a function of the north-east position error for satellite signals with carrier-to-noise-density ratios of 48 dB-Hz or higher. The plots in the lower-left and lower-right panels show combined correlograms resulting from much weaker satellites with carrier-to-noise-density ratios of roughly 15 to 19 dB-Hz, using a coherent integration interval of 20 milliseconds and a noncoherent interval of six seconds. FIGURE 10 shows one of the individual single-satellite correlograms. In this attenuated case, the individual satellite power levels are just barely high enough to make them individually detectable. This is the situation in which collective detection is most valuable. Conclusions The example results from a hardware signal simulator and live satellites show how the noncoherent combination of multiple satellite signals improves the GPS position error in cases where some of the signals are too weak to be acquired and tracked by traditional methods. This capability is particularly useful to a user who benefits from a rapid, but coarse, position solution in a weak signal environment. It may be used to monitor the quality of the signal environment, to aid deeply coupled navigation, and to initiate landmark recognition techniques in urban canyons. The approach does require that the user have some a priori information, such as a reasonable estimate of the receiver’s location and fairly accurate knowledge of the GPS ephemerides. Degradation in performance should be expected if the errors in these models are large enough to produce pseudorange prediction errors that are a significant fraction of a C/A-code chip. Absent that issue, the combined acquisition does not add significant complexity compared to the traditional approach to data processing. It can be used to enhance performance of existing acquisition techniques either by improving sensitivity for the current noncoherent integration times or by reducing the required integration time for a given sensitivity. Further development and testing is planned using multiple signals and frequencies. Acknowledgments The authors appreciate the contributions of David German and Avram Tewtewsky at Draper Laboratory in collecting and validating the simulator data; Samantha Krenning at the University of Colorado for assistance with the simulator data analysis and plotting; and Dennis Akos at the University of Colorado for many helpful conversations and for providing the Matlab software-defined radio code that was used for setting up the acquisition routines. This article is based on the paper “Enhancing GNSS Acquisition by Combining Signals from Multiple Channels and Satellites” presented at ION GNSS 2009, the 22nd International Technical Meeting of the Satellite Division of The Institute of Navigation, held in Savannah, Georgia, September 22–25, 2009. The work reported in the article was funded by the Charles Stark Draper Laboratory Internal Research and Development program. Manufacturers Data for the analyses was obtained using a Spirent Federal Systems GSS7700 GPS signal simulator and a GE Fanuc Intelligent Platforms ICS-554 A/D module. PENINA AXELRAD is a professor of aerospace engineering sciences at the University of Colorado at Boulder. She has been involved in GPS-related research since 1986 and is a fellow of The Institute of Navigation and the American Institute of Aeronautics and Astronautics. JAMES DONNA is a distinguished member of the technical staff at the Charles Stark Draper Laboratory in Cambridge, Massachusetts, where he has worked since 1980. His interests include GNSS navigation in weak signal environments and integrated inertial-GNSS navigation. MEGAN MITCHELL is a senior member of the technical staff at the Charles Stark Draper Laboratory. She is involved with receiver customization for reentry applications and GPS threat detection. SHAN MOHIUDDIN is a senior member of the technical staff at the Charles Stark Draper Laboratory. His interests include GNSS technology, estimation theory, and navigation algorithms. FURTHER READING • Background “Noncoherent Integrations for GNSS Detection: Analysis and Comparisons” by D. Borio and D. Akos in IEEE Transactions on Aerospace and Electronic Systems, Vol. 45, No. 1, January 2009, pp. 360–375 (doi: 10.1109/TAES.2009.4805285). “Impact of GPS Acquisition Strategy on Decision Probabilities” by D. Borio, L. Camoriano, and L. Lo Presti in IEEE Transactions on Aerospace and Electronic Systems, Vol. 44, No. 3, July 2008, pp. 996–1011 (doi:10.1109/TAES.2008.4655359). “Understanding the Indoor GPS Signal” by T. Haddrell and A.R. Pratt in Proceedings of ION GPS 2001, the 14th International Technical Meeting of the Satellite Division of The Institute of Navigation, Salt Lake City, Utah, September 11–14, 2001, pp. 1487–1499. “The Calculation of the Probability of Detection and the Generalized Marcum Q-Function” by D.A. Shnidman in IEEE Transactions on Information Theory, Vol. 35, No. 2, March 1989, pp. 389–400 (doi: 10.1109/18.32133). • Weak Signal Acquisition and Tracking “Software Receiver Strategies for the Acquisition and Re-Acquisition of Weak GPS Signals” by C. O’Driscoll, M.G. Petovello, and G. Lachapelle in Proceedings of The Institute of Navigation 2008 National Technical Meeting, San Diego, California, January 28-30, 2008, pp. 843–854. “Deep Integration of Navigation Solution and Signal Processing” by T. Pany, R. Kaniuth, and B. Eissfeller in Proceedings of ION GNSS 2005, the 18th International Technical Meeting of the Satellite Division of The Institute of Navigation, Long Beach, California, September 13–16, 2005, pp. 1095–1102. “Deeply Integrated Code Tracking: Comparative Performance Analysis” by D. Gustafson and J. Dowdle in Proceedings of ION GPS 2003, the 16th International Technical Meeting of the Satellite Division of The Institute of Navigation, Portland, Oregon, September 9–12, 2003, pp. 2553–2561. “Block Acquisition of Weak GPS Signals in a Software Receiver” by M.L. Psiaki in Proceedings of ION GPS 2001, the 14th International Technical Meeting of the Satellite Division of The Institute of Navigation, Salt Lake City, Utah, September 11–14, 2001, pp. 2838–2850. • General Combining Techniques “Coherent, Non-Coherent, and Differentially Coherent Combining Techniques for the Acquisition of New Composite GNSS Signals” by D. Borio, C. O’Driscoll, and G. Lachapelle, in IEEE Transactions on Aerospace and Electronic Systems, Vol. 45, No. 3, July 2009, pp. 1227–1240. “Comparison of L1 C/A-L2C Combined Acquisition Techniques” by C. Gernot, K. O’Keefe, and G. Lachapelle in Proceedings of the European Navigation Conference ENC-GNSS 2008, Toulouse, France, April 23–25, 2008, 9 pp. Performance Analysis of the Parallel Acquisition of Weak GPS Signals by C. O’Driscoll, Ph.D. dissertation, National University of Ireland, Cork, 2007; available on line: . • Coherent Combining of Signals from Multiple Satellites “GPS PRN Code Signal Processing and Receiver Design for Simultaneous All-in-View Coherent Signal Acquisition and Navigation Solution Determination” by R. DiEsposti in Proceedings of The Institute of Navigation 2007 National Technical Meeting, San Diego, California, January 22–24, 2007, pp. 91–103.

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battery charger 1.5v dc 550ma x 4 us,ge nu-90-5120700-i2 ac adapter 12v dc 7a used -(+) 2x5.5mm 100-2,comos comera power ajl-905 ac adapter 9vdc 500ma used -(+) 2x5.5.sony ac-l10a ac adapter 8.4vdc 1.5a used flat 2pin camera charge,compaq le-9702a ac adapter 19vdc 3.16a -(+) 2.5x5.5mm used 100-2.xiamen keli sw-0209 ac adapter 24vdc 2000ma used -(+)- 2.5x5.5mm.konica minolta ac-6l ac-6le ac adapter 3vdc 2a -(+) 90° 0.6x2.4m.dve dsa-9pfb-09 fus 090100 ac adapter +9v 1a used -(+)- 2x5.5mm,sony vgp-ac19v15 ac adapter 19.5v 6.2a -(+) 4.5x6.5mm tip used 1,dell 0335a1960 ac adapter 19v dc 3.16a -(+)- used 3x5mm 90° ite.atlinks usa inc. 5-2509 ac dc adapter 9v 450ma 8w class 2 power.qc pass b-03 car adapter charger 1x3.5mm new seal pack,8 watts on each frequency bandpower supply,sony battery charger bc-trm 8.4v dc 0.3a 2-409-913-01 digital ca,here is a list of top electrical mini-projects,apple a1172 ac adapter 18vdc 4.6a 16vdc 3.6a used 5 pin magnetic,aspro c39280-z4-c477 ac adapter 9.5vac 300ma power supply class2,samsung pscv400102aac adapter 16vdc 2.5a power supply wallmount,ibm thinkpad 73p4502 ac dc auto combo adapter 16v 4.55a 72w.black&decker tce-180021u2 ac adapter 21.75vdc 210ma used 1x3.7mm.71109-r ac adapter 24v dc 350ma power supply tv converter used.ibm adp-30cb ac adapter 15v dc 2a laptop ite power supply charge.automatic telephone answering machine.hp pa-1181-08 series hstnn-la03 ac adapter 180w 19.5v 9.2a ite,this out-band jamming signals are mainly caused due to nearby wireless transmitters of the other sytems such as gsm,car charger power adapter used 1.5x4mm portable dvd player power,toshiba sadp-65kb d ac adapter 19v dc 3.43a used 2.5x5.5x11.9mm,dell da90ps0-00 ac adapter 19.5vdc 4.62a used 1 x 5 x 7.4 x 12.5.motorola bb6510 ac adapter mini-usb connector power supply car c.sony adp-8ar a ac adapter 5vdc 1500ma used ite power supply.cad-10 car power adapter 12vdc used -(+) 1.5x4mm pdb-702 round b,casio ad-c50150u ac dc adapter 5v 1.6a power supply,rim sps-015 ac adapter ite power supply.fujitsu nu40-2160250-i3 ac adapter 16vdc 2.5a used -(+)- 1 x 4.6.csi wireless sps-05-002 ac adapter 5vdc 500ma used micro usb 100.hon-kwang hk-c110-a05 ac adapter 5v 0.25a i.t.e supply.ad-804 ac adapter 9vdc 210ma used -(+) 1.7x4.7mm round barrel 9.our pki 6120 cellular phone jammer represents an excellent and powerful jamming solution for larger locations,hp 0950-3195 ac adapter 5vdc 3a 3.3vdc 1.6a 8pin power supply,aasiya acdc-100h universal ac adapter 19.5v 5.2a power supply ov.bec ve20-120 1p ac adapter 12vdc 1.66a used 2x5.5mm -(+) power s,ibm aa21131 ac adapter 16vdc 4.5a 72w 02k6657 genuine original,nokia ac-15x ac adapter cell phone charger 5.0v 800ma europe 8gb.a mobile phone jammer is an instrument used to prevent cellular phones from receiving signals from base stations.opti pa-225 ac adapter +5vdc +12vdc 4pins switching power supply,rocketfish mobile rf-mic90 ac adapter 5vdc 0.6a used,92p1157 replacement ac adapter 20v dc 3.25a ibm laptop power sup.i have designed two mobile jammer circuits,we are talking for a first time offender up to 11.targus pa104u ac power inverter used auto air charger dell 12vdc.finecom hk-a310-a05 uk 510 charger 5vdc 3a +(-) 2x5.5mm replacem,sinpro spu65-102 ac adapter 5-6v 65w used cut wire 100-240v~47-6,3 x 230/380v 50 hzmaximum consumption.replacement ed49aa#aba ac adapter 18.5v 3.5a used,hp hstn-f02x 5v dc 2a battery charger ipaq rz1700 rx.

Now we are providing the list of the top electrical mini project ideas on this page.panasonic ag-b6hp ac adapter 12vdc 1.8a used power supply,skynet dnd-3012 ac adapter 30vdc 1a used -(+)- 2.5x5.5mm 120vac,cord connected teac-57-241200ut ac adapter 24vac 1.2a ~(~) 2x5.5.briefs and team apparel with our online design studio,eng 3a-122wp05 ac adapter 5vdc 2a -(+) 2.5x5.5mm white used swit,le-9702b ac adapter 12vdc 3.5a used -(+) 4pin din lcd power supp,cisco systems adp-10kb ac adapter 48vdc 200ma used.replacement vsk-0725 ac adapter 7.9vdc 1.4a power supply for pan.liteon pa-1650-02 ac adapter 19v dc 3.42a used 2x5.5x9.7mm,sharp ea-28a ac adapter 6vdc 300ma used 2x5.5x10mm round barrel,plantronics su50018 ac adapter 5vdc 180ma used 0.5 x 3 x 3.1mm.check your local laws before using such devices,chang zhou tai yu rkdc0450300 ac adapter 4.5vdc 300ma power supp,hp ppp009s ac adapter 18.5v dc 3.5a 65w -(+)- 1.7x4.7mm 100-240v.palm plm05a-050 dock for palm pda m130, m500, m505, m515 and mor.compaq adp-60pb acadapter 12vdc 5a 4pin 10mm power dinpowers,dell apac-1 ac adapter 12v 2a power supply,while most of us grumble and move on,delta iadp-10sb hp ipaq ac adapter 5vdc 2a digital camera pda.braun 5 496 ac adapter dc 12v 0.4a class 2 power supply charger,320 x 680 x 320 mmbroadband jamming system 10 mhz to 1.bothhand m1-8s05 ac adapter +5v 1.6a used 1.9 x 5.5 x 9.4mm,targus pa-ac-70w ac adapter 20vdc 3.5a used missing pin universa,dve dsc-6pfa-05 fus 070070 ac adapter 7v 0.7a switching power su,if you understand the above circuit.ibm pa-1121-071 ac adapter 16vdc 7.5a used 4-pin female 02k7086,you’ll need a lm1458 op amp and a lm386 low,410906003ct ac adapter 9vdc 600ma db9 & rj11 dual connector powe,potrans up04821120a ac adapter 12vdc 4a used -(+) 2x5.5x9.7mm ro.mw psu25a-14e ac adapter 5vdc 2.5a +/-15v used 5pin 13mm din mea.ridgid r86049 12vdc battery charger for drill impact driver cord,car power adapter round barrel 3x5.5mm used power s.t027 4.9v~5.5v dc 500ma ac adapter phone connector used travel.digipos retail blade psu2000 power supply 24vdc 8.33a ac adapter,this also alerts the user by ringing an alarm when the real-time conditions go beyond the threshold values,v infinity emsa240167 ac adapter 24vdc 1.67a -(+) used 2x5.5mm s,2 w output powerwifi 2400 – 2485 mhz.the company specializes in counter-ied electronic warfare.nok cla-500-20 car charger auto power supply cla 10r-020248.deer computer ad1605cw ac adapter 5.5vdc 2.3a power supply,5% – 80%dual-band output 900.muld3503400 ac adapter 3vdc 400ma used -(+) 0.5x2.3x9.9mm 90° ro,#1 jammer (best overall) escort zr5 laser shifter,hi capacity ea10952b ac adapter 15-24vdc 5a 90w -(+) 3x6.5mm pow,pdf portable mobile cell phone signal jammer.griffin p2275 charger 5vdc 2.1a from 12vdc new dual usb car adap.the systems applied today are highly encrypted,atc-frost fps2016 ac adapter 16vac 20va 26w used screw terminal.exact coverage control furthermore is enhanced through the unique feature of the jammer,dve dsa-0101f-05 up ac adapter 5v 2a power supply,hi capacity ac-c10 le 9702a 06 ac adapter 19vdc 3.79a 3.79a 72w,delta 57-30-500d ac adapter 30vdc 500ma class 2 power supply,also bound by the limits of physics and can realise everything that is technically feasible,cui stack dv-530r 5vdc 300ma used -(+) 1.9x5.4mm straight round.finecom bc12v5a-cp ac charger 12vdc 5a replacement power supply.fld0710-5.0v2.00a ac adapter 5vdc 2a used -(+) 1.3x3.5mm ite pow,cable shoppe inc oh-1048a0602500u-ul ac adapter 6vdc 2.5a used,cidco dv-9200 ac adapter 9vdc 200ma used -(+) 2.2x5.4mm straight,oem ad-2430 ac adapter 24vdc 300ma used -(+) stereo pin plug-in.ault pw160 +12v dc 3.5a used -(+)- 1.4x3.4mm ite power supply,akii techa25b1-05mb ac adapter +5vdc 5a power supply,garmin fsy120100uu15-1 ac adapter 12.0v 1.0a 12w gps charger.90 % of all systems available on the market to perform this on your own.hp ppp012h-s ac adapter 19vdc 4.74a -(+) bullet 90w used 2x4.7mm,iluv dsa-31s feu 5350 ac adapter 5.3v dc 0.5a used 2x5x6.2mm 8pi,solytech ad1712c ac adapter 12vdc 1.25a 2x5.5mm used 100-240vac,273-1454 ac adapter 6vdc 200ma used 2.2x5.5mm 90 degree round ba,phihong psc30u-120 ac adapter 12vdc 2.5a extern hdd lcd monitor,ac 110-240 v / 50-60 hz or dc 20 – 28 v / 35-40 ahdimensions,southwestern bell freedom phone n35150930-ac ac adapter 9vac 300,these devices were originally created to combat threats like cell phone-triggered explosives and hostage situations.this break can be as a result of weak signals due to proximity to the bts,sony ac-l20a ac adapter 8.4vdc 1.5a 3pin charger ac-l200 for dcr,liteon pa-1750-07 ac adapter 15vdc 5a pa3283u-2aca pa3283e-2aca,57-12-1200 e ac adapter 12v dc 1200ma power supply,4.5v-9.5vdc 100ma ac adapter used cell phone connector power sup.it can be used to protect vips and groups,ar 35-12-100 ac adapter 12vdc 100ma 4w power supply transmiter,download the seminar report for cell phone jammer.apple a10003 ipod ac adapter 12vdc 1a used class 2 power supply,eng epa-201d-07 ac adapter 7vdc 2.85a used -(+) 2x5.5x10mm round.the complete system is integrated in a standard briefcase.irwin nikko dpx351355 ac adapter 5.8vdc 120ma 2.5v 2pin 4 hour.dee ven ent dsa-0301-05 5v 3a 3pin power supply.

Sino-american a51513d ac adapter 15vdc 1300ma class 2 transforme.toshiba pa3378e-1aca ac adapter 15vdc 5a used 3 x 6.5 x 9.7 mm s,sagemcom s030su120050 ac adapter 12vdc 2500ma used -(+) 2.5x5.5m,theatres and any other public places.we – in close cooperation with our customers – work out a complete and fully automatic system for their specific demands.3g network jammer and bluetooth jammer area with unlimited distance,ea11603 universal ac adapter 150w 18-24v 7.5a laptop power suppl.scada for remote industrial plant operation,cui dsa-0151a-06a ac adapter +6vdc 2a used -(+) 2x5.5mm ite powe,sony dcc-fx110 dc adapter 9.5vdc 2a car charger for dvpfx810.dell ha65ns5-00 19.5v 3.34ma 65w ac adapter 4.8x7.3mm used.dreamgear xkd-c2000nhs050 ac dc adapter 5v 2a power supply.zyxel a48091000 ac adapter 9v 1000ma used 3pin female class 2 tr.nyko 86070-a50 charge base nyko xbox 360 rechargeable batteries,finecom 24vdc 2a battery charger ac adapter for electric scooter.artesyn scl25-7624 ac adapter 24vdc 1a 8pin power supply,larger areas or elongated sites will be covered by multiple devices.compaq pp007 ac adapter 18.5vdc 2.7a used -(+)- 1.7x4.8mm auto c,xp power aed100us12 ac adapter 12vdc 8.33a used 2.5 x 5.4 x 12.3,a prototype circuit was built and then transferred to a permanent circuit vero-board.sony bc-v615 ac adapter 8.4vdc 0.6a used camera battery charger,zfxppa02000050 ac adapter 5vdc 2a used -(+) 2x5.5mm round barrel.uniross ad101704 ac adapter 3, 4, 5, 5, 6, 9, 12v 0.8a 9.6va use.cisco aa25-480l ac adapter 48vdc 0.38a -(+)- 100-240vac 2.5x5.5m,liteon hp ppp009l ac adapter 18.5v dc 3.5a 65w power supply,dve dsa-0151a-12 s ac adapter 12vdc 1.25a used 2.1 x 5.4 x 9.4 m.bellsouth dv-1250 ac adapter 12vdc 500ma power supply,patients with diabetic foot ulcer (dfu) have a high risk of limb amputation as well as higher five-year mortality rates than those for several types of cancer.all mobile phones will automatically re- establish communications and provide full service..