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Can They Be Better? By Tony Haddrell, Marino Phocas, and Nico Ricquier We examine the antenna designs that provide GPS functionality to mobile phones and why most phones still do not provide GPS operation indoors. We also see what it will take to make them better. INNOVATION INSIGHTS by Richard Langley WHAT ARE THREE THINGS THAT MATTER MOST for a good GPS signal? Antenna, antenna, antenna. The familiar real-estate adage can be rephrased for this purpose, although the original — location, location, location — is valid here, too. GPS satellite signals are notoriously weak compared to familiar terrestrial signals such as those of broadcast stations or mobile-phone towers. However, if an appropriate antenna has a clear line-of-sight to the satellite, excellent receiver performance is the norm. But what constitutes an appropriate antenna? The GPS signals are right-hand circularly polarized (RHCP) to provide fade-free reception as the satellite’s orientation changes during a pass. A receiving antenna with matching polarization will transfer the most signal power to the receiver. Microstrip patch antennas and quadrifilar helices, two RHCP antennas commonly used for GPS reception, have omnidirectional (in azimuth) gain patterns with typical unamplified boresight gains of a few dB greater than that of an ideal isotropic RHCP antenna. But what happens when signals are obstructed by trees or buildings or, worse yet, when we move indoors? Received signal strength plummets. A conventional receiver, even with a good antenna, will then have difficulty acquiring and tracking the signals, resulting in missed or even no position fixes. However, thanks in large part to massive parallel correlation, receivers have been developed with 1,000 times more sensitivity than conventional receivers, permitting operation in restricted environments, albeit usually with reduced positioning accuracy. But such operation requires a standard antenna. So, do the GPS receivers in our mobile phones now work everywhere? Sadly, no. Consumers demand that their phones not only provide voice communications and GPS but also Bluetooth connectivity to headsets, Wi-Fi, and even an FM transmitter, all in a small form factor at reasonable cost. This requires miniaturizing the GPS antenna and possibly integrating it with the other radio services on the platform. Such compromises can, if the designer is not careful, significantly reduce receiver effectiveness with dramatically reduced antenna gain and distorted antenna patterns. This month we look at some antenna designs providing GPS functionality to mobile phones and examine why most phones still do not provide GPS operation indoors or in other challenging environments. We also find out what it will take to make them better. “Innovation” is a regular column that features discussions about recent 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 at the University of New Brunswick, who welcomes your comments and topic ideas. GPS is becoming a must-have feature in mobile phones, with major manufacturers launching new designs regularly, and second-tier manufacturers rapidly catching up. A quick test of any early GPS-equipped phone shows that although the incumbent GPS chip (or chipset) has high sensitivity, the integrated end result cannot perform in low signal conditions. Several challenges facing the phone designer are responsible for this, with the main two being the antenna performance and interference in the GPS band generated within the phone platform itself. Here we explore the antenna’s role in determining overall performance of the GPS function in a mobile phone, and the potential for avoiding some platform jamming signals by choice of antenna technology.We present some results from an ongoing company study, as part of our remit to assist customers at the system integration level in support of GPS chip sales. Many handset makers are not GPS or even RF experts, and rely on catalog components to provide their GPS and antenna hardware. Often unsuitable antennas are chosen, or the antennas are integrated in such a way that the original operation mode does not work. Study of a number of candidate phones has shown that, due to the small ground plane available, the antenna component may be merely a band-tuning device, with the ground plane contributing the signal collection function. At the beginning of 2008, our team launched a project to understand and prioritize the problems for handset makers in the antenna area, and to provide better solutions than those currently in use. The handset designer faces several problems when incorporating a GPS antenna. First, it has to be very low cost (a few cents, probably). Secondly, it has to be broadly omnidirectional, since there is no knowledge of “up” on a mobile phone, although some manufacturers rely on the fact that location will only be needed when the phone is in the user’s hand or an in-car holder. From the GPS receiver point of view, we would like the antenna to be as far from the communications (transmitting) antenna as possible, and also removed from other transmitting services such as Bluetooth, Wi-Fi, and FM. Users must not be able to detune the antenna out of band by placing their hands on the phone, or by raising the phone to their ears. In a perfect world, they would not obscure an antenna either. Of course, we would also like to remove some of that platform interference at the antenna stage, and techniques such as differential RF inputs (with a differential antenna) have been proposed in the search for better noise-cancellation performance. All of this leaves the handset designer with an impossible task, since he has run out of space to fit a decent GPS antenna with all the isolation requirements, and we typically measure GPS antennas that average 26 to 215 dB of gain with respect to a reference dipole, which measures around 21 dB compared to an isotropic antenna when integrated in the handset. Given that a 2 dB loss equates to double the time to fix (in low signal environments) or, alternately, double the amount of baseband signal-search hardware in the GPS chip, it follows that we must exert some effort to help handset integrators implement better antennas. In this respect, some larger manufacturers have in-house projects running, but smaller ones do not have antenna design teams and rely on their suppliers to provide solutions. So, we start with cataloging the requirements, and given that most current implementations are only in the “mediocre to terrible” class, we look at ways of improving things accordingly. Of course, there are good GPS antenna solutions out there, but handset designers have mostly shunned them on the grounds of cost or even size. Restrictions on these parameters severely hamper the antenna designer, as reducing a GPS L1 antenna below its “natural” size  — about 4 centimeters for a monopole on commonly used FR4-type printed circuit board (PCB) material — inevitably means either using some higher dielectric material, which adds cost, or folding the structure up, which decreases performance. Single-ended antennas, such as monopoles and microstrip patches, rely on a ground plane, which in a handset is undersized anyway, and is usually difficult to identify and model. True differential designs (such as a dipole) overcome this problem, but are automatically larger. As handsets get smaller and encompass more “connectivity” (that is, more radio links, including GPS) and competition for antenna space increases, combined antennas become attractive, as they would at least help with the size issue. However, the isolation problems are increased, and since our various radios all (currently) need individual RF inputs, some new layer of complexity and filtering is needed between antenna and chip. Theory, Performance. We undertook some practical experiments to get a feel for the gap between an antenna’s theoretical performance and its installed performance when integrated with the other phone functions. At present, the idea of modeling all the radiation interactions and mechanical arrangements within such a platform is beyond the scope of the available tools, and so practical measurements are really our only choice in the quest for better antennas. Finally, we provide some insight into the future, given the rapid advancements driven by mobile-phone technology and the advent of the low-cost handset for new emerging markets. New challenges loom ahead for GNSS antennas, not the least being more bandwidth and multiple frequencies, and we look briefly at what must be done to keep up with handset manufacturers’ requirements in this regard. Size of the Problem Location-based services in mobile phones is now an expected function by the more discerning user. With more than 500 million users of such services expected by 2011, pressure on manufacturers to provide ever better user experiences and competition between phone manufacturers will bring pressure on the GPS industry for improved performance. GNSS is now the location technology of choice for mobile phones and will remain so provided that the industry can maintain leadership in cost, size, and performance. FIGURE 1 shows the expected penetration of GNSS (mostly just GPS) in the next few years. Figure 1. GNSS penetration, mobile phones (Image: Tony Haddrell, Marino Phocas, and Nico Ricquier) With this many users, the market will soon decide whether the performance is up to expectation or not; this in itself will determine GPS penetration going forward. Vanishing Space. The first challenge facing the RF antenna designer working on a mobile phone is the size of the whole platform. As the size of the average phone continues to fall, manufacturers are understandably reluctant to increase size again to add new features, such as GPS. Consider the wavelengths of a phone’s various RF services. If the corresponding antennas were implemented as dipoles, the antennas would be bigger than the phone. Clearly the competition for antenna space is high. The designer will want to separate the antennas as much as possible to reduce coupling between them, both in the sense of coupling interference from one service to another (known as isolation) and in the sense of spoiling the pattern (or field) of one antenna with another (interaction). The chip business addresses the space issue through the advent of combination or combo chips, containing such peripheral services as FM (both receive and transmit), Bluetooth, GPS, and Wi-Fi. While helping with space constraints, this development brings new challenges as these radios have to cohabit the same silicon and still perform individually, whatever the other radios are doing (transmitting music to the car radio using FM while navigating with GPS, for example). It follows that combo antennas similarly save space, but since this might involve simultaneous transmit and GPS receive functions, it is very difficult to achieve the necessary isolation, especially if the user’s body can change the coupling between functions. FIGURE 2 shows a modern phone with some antennas identified. Not shown is the FM transmit antenna on the rear (the receive function uses the headset cable). One commercially available combo antenna and two custom-made antennas are designed to fit the mechanical layout of the phone. The GPS antenna has been placed at the top of the phone, relegating the communications antenna (really another combo since it handles four frequency bands) to the bottom of the phone, where it is subject to detuning by the user’s hand. The GPS antenna is of the PIFA (planar inverted F antenna) type, working against the ground plane of the main PCB, and is printed on a plastic molding that also implements a loudspeaker and its electrical connections. Figure 2. Antennas in a mobile phone: 1. GSM/WCDMA antenna, 2.Wi-Fi/Bluetooth combined ceramic chip antenna, 3. GPS antenna (Image: Tony Haddrell, Marino Phocas, and Nico Ricquier) Size. Until now, we have not looked at the size of GPS antennas. We know that a dipole (on FR4 PCB material) is about 8 centimeters in length, just a little shorter than the average phone platform. Changing to a monopole halves the natural length, but requires an “infinite” ground plane to work against. Ignoring this requirement, some manufacturers simply print a monopole on the main PCB, and put up with the coupling, losses, and pattern deficiencies that arise. Some while ago, we measured the gain of such an arrangement at about 212 dB relative to the reference dipole. So designers have turned to size-reduced antennas, either by using higher dielectric materials to form them, or by using complex shape and feed derivatives (such as the PIFA in Figure 2.) Another combo idea is to use the communications antenna. In the case shown in FIGURE 3, this is a whip-type antenna on a clamshell-type phone. Although the antenna is free for GPS and uses no additional space, the components to tune the whip for GPS and prevent the transmit bands reaching the GPS low noise amplifier (LNA) add both cost and size. So this is not really too attractive, especially when measurements show a 216 dB performance relative to our dipole, along with a poor coverage pattern. In this model, removing the whip and leaving the ferrule to which it connects provided a 6 dB improvement in performance (for GPS only; obviously it spoils the communications function). Figure 3. Whip antenna combination (Image: Tony Haddrell, Marino Phocas, and Nico Ricquier) A more conventional approach is to fit an off-the-shelf GPS antenna. The problem here is that any component-type antenna will have been tested with some standardized ground plane, and most are reliant on the ground plane for both tuning, and pattern and gain. A truly balanced design avoids this problem; FIGURE 4 shows an example. Although these antennas have found favor in personal navigation devices for their superior performance, they are not usually considered for mobile phones because of cost and size considerations. This antenna did, however, give us a reference device against which we could make comparative measurements when undertaking the practical test campaign. Figure 4. Sarantel miniature volute antenna (Image: Tony Haddrell, Marino Phocas, and Nico Ricquier) A more usual selection is the patch type, long standard in the GPS industry. One such installation is shown in FIGURES 5 and 6, which offer two views of the same stripped-down phone. The main drawback of this arrangement is the lack of a ground plane visible to the patch antenna, giving both tuning and gain/pattern problems. We measured the gain of this antenna at about 28 dB compared to a dipole antenna connected to the same point in the circuit, which is actually at the better end of the performance range that we see. The designers gave the antenna a position at the top of the phone, as in the Figure 2 phone, but it is still squeezed for space onto the edge of the PCB in favor of the phone’s speakers and the camera components. In this phone, the communications antenna is again at the bottom of the PCB. Figure 5. Phone with GPS patch antenna at edge of PCB (Image: Tony Haddrell, Marino Phocas, and Nico Ricquier) Figure 6. Edge view of GPS antenna, top of phone removed. This phone includes an external GPS antenna input connector seen here mounted below the patch antenna. (Image: Tony Haddrell, Marino Phocas, and Nico Ricquier) Interference and Isolation. The related characteristics of interference and isolation are difficult to specify and model, leading to practical measurements as the only way of accurately characterizing them. Of course, since the mechanical arrangement (including plastics, screen, battery, and PCB components) plays such a large part in determining the levels of interference and isolation, these tests can only be carried out once the phone is at the prototype stage, when major surgery to improve any particular aspect is not really an option. This also creates a problem when considering new approaches, as the result may not resemble the stand-alone tests, unless the antenna element chosen really has no significant interaction with the rest of the phone. Most interference we see in mobile phones gets into the GPS receiver at the antenna. Typically this is followed by an RF filter of some sort, which although it spoils the noise figure, does eliminate the out-of-band transmissions from the other radios on the platform. Usually we see a plethora of self-generated in-band signals that have entered the GPS receiver via the antenna. Although we can’t filter them out, we can reduce the coupling between antenna and source as much as possible. One effect seen in current offerings is that the GPS antenna may actually be much better at coupling to interferers than it is at extracting GPS signals from free space, thus making the problem worse. To get a view of the coupling between antennas, we tested a few available phone types to see what was the actual coupling in the antenna band of interest (see TABLE 1). Of course, one advantage of a poor antenna is that its coupling is likely to be less to adjacent antennas. Coupling is also seriously affected by the user holding the phone or the surface on which it is placed. Phones in a pocket seem to be more affected in this way. The table shows measurements with the phone assembled as completely as possible (we have to get connectivity at the antennas) but not being affected by a user or the phone’s environment. Table: Tony Haddrell, Marino Phocas, and Nico Ricquier   Requirements To develop requirements for a better antenna implementation, we need to consider the factors discussed above, and to develop numerical specifications against each. Given the variables involving user interaction, mechanical changes from model to model, use cases and the ever-increasing pressure on cost and size, this is far from straightforward. Our team has spent considerable time defining requirements, and a short synopsis is reported here. In addition to the coexistence requirements (see the next section), the antenna should fulfill the following criteria: Minimum cost. The antenna should be of low implementation cost, preferably printed and not requiring complex connectivity to the main PCB, or to require any setup and/or tuning in production; Low loss. The GPS industry is used to antennas delivering around 0–3 dB (isotropic) in an upper hemispheric direction. We believe this will not be attainable in a mobile phone, but we set the gain target at an aggressive -4 dB (isotropic); Detuning. The antenna must continue to perform to specification with any reasonable detuning environment (such as user handling, pocket, and metal surfaces); Mechanical arrangement. The antenna should be of minimum dimensions that can fit the phone mechanics. For example, long and thin may be acceptable along one side of the phone. Also placement near the GPS chip avoids lossy RF tracking; Gain pattern. Essentially omnidirectional, accepting that other parts of the phone may cause localized dips in the pattern. Coexistence and Cohabitation. Initially we aim to define the parameters affecting interaction with other services on the phone platform. By coexistence, we mean the ability to share a platform with the other radios and antennas and only be marginally affected by them, whatever they are doing (such as transmitting full power, low power, or idling, and with any frequency choice). This produces a straightforward immunity table (see TABLE 2) once we have determined the basic isolation between all of the elements. For the purposes of Table 2, we have chosen 15 dB as the minimum isolation value between any two antennas. Obviously there are similar tables for the other functions (GSM, 3G, Wi-Fi, Bluetooth, FM) as well. Table: Tony Haddrell, Marino Phocas, and Nico Ricquier   A glance at Table 2 will tell the reader that the modern mobile phone implements a vast number of transmit and receive frequencies, modulation types, and standards. Of particular concern to the GPS designer is the advent of wideband CDMA signals, which can cause intermodulation products to appear in band at the intermediate frequency of the GPS receiver. Special receiver techniques are required in this case, but the antenna is unable to help except by being of naturally narrow bandwidth. Cohabitation is a newer concept that describes the isolation between functions of the same device. In this respect, we are investigating GPS antennas combined with Wi-Fi and Bluetooth services. This is a fairly natural development, since these functions are all add-ons to a conventional phone platform, and there is a space-saving advantage in the combination. Since Wi-Fi and Bluetooth share the same band at 2.4 GHz, they have arrangements internally that allow them to coexist or choose which service is to be used if a clash is inevitable. As a precursor to forming some specifications, our team measured a commercially available combined antenna, and TABLE 3 shows the isolation results. Table: Tony Haddrell, Marino Phocas, and Nico Ricquier   The table highlights the need to measure antennas on a representative PCB, since other coupling factors reduce the specified isolation by >6 dB compared to the manufacturer’s reference setup, where the part is the only component on the demonstration board. Real-Life Testing A number of tests were carried out on available solutions to gain some information and experience about current offerings and platforms. At one of our facilities, we have a GTEM (gigahertz transverse electromagnetic) cell, which was constructed in house and has been verified to be working properly (see FIGURE 7). A GTEM cell is an expanded transmission line within which a uniform electromagnetic field can be generated for determining antenna properties such as gain and bandwidth. The internal space at the septum (40 centimeters) is big enough to handle antenna sizes used by GPS. It has a small side door and some feedthroughs (coaxial) to the bottom plate. The RF foam absorbers used inside the GTEM work well at 1.5 GHz (the cell can work from 100 MHz to above 10 GHz). Figure 7. The GTEM cell and related test equipment (Photo: Tony Haddrell, Marino Phocas, and Nico Ricquier) Differential vs. Single-Ended Antennas. The first test conducted concerned comparison of balanced and unbalanced antennas, the theory being that a balanced antenna would help with interference because it would be presented to the GPS receiver as a common mode signal (that is, balanced on the positive and negative inputs). The NXP GNS7560 single-chip GPS solution is configurable for single or differential input to the LNA, and was used to conduct the tests. The trial began with calibration of the test setup using the balanced antenna shown in Figure 4, against which we measured a printed dipole antenna and a monopole equivalent, arranged to incorporate a balun to make it of the same size as the dipole (see FIGURE 8). Once this calibration had been made, we sought to generate an interfering signal on the GPS receiver test board so that comparisons of interference rejection could be made. This was done in two different ways, in case the method of exciting the GPS board was subject to resonances or peculiar standing-wave modes. First, we injected an RF interferer into the power supply via the USB cable that was both powering the GPS board and the communications link to it. The jamming created in this manner was increased until a predetermined drop in GPS sensitivity was reached. A number of frequencies were tried and the results compared. In the second setup, we directly applied an RF signal across the ground plane of the GPS board, using a coaxial feed to excite the ground plane, and repeated the stages described above. Figure 8. Antennas used in the balanced vs. unbalanced antenna testing (Photo: Tony Haddrell, Marino Phocas, and Nico Ricquier) Results for both tests were within 2 dB of each other, and showed that the differential approach could reduce local jammer pickup by only 4–6 dB. This is probably due to the differential structure being of similar size to the test platform (chosen to be similar to a phone platform), and therefore not achieving true differential coupling to the on-board radiated jammer. With this marginal advantage, we concluded that the benefit was barely justified by the extra complexity and size involved in differential antennas. Note that this conclusion may be different for smaller (for example, high dielectric) differential antennas, although these are currently not available. We are resolved to revisit this possibility at a later date. Testing Some Commercial Parts. Having elected to continue in unbalanced-only mode, we tested some commercially available antenna components, which are all aimed at mobile phones and span a range of technologies. Each antenna was tested on its recommended reference design without other mobile phone components or features. However, we did use phone-sized boards, representative plastics, and a real user’s hand in these tests. TABLE 4 shows the comparative results. Table: Tony Haddrell, Marino Phocas, and Nico Ricquier   For return loss measurements we used a vector network analyzer and a ferrite absorber clamp to suppress cable common-mode effects. For measuring the antenna-received voltage, we used an open-air setup with a horn antenna placed 1 meter away from the DUT (device under test) antenna. The horn is fed with a 100 dBuV 1575 MHz CW signal and the received signal at the DUT is inspected with a spectrum analyzer. The horn is mounted so that we have vertical polarization. Initially, we were only concerned with looking for the maximum attainable voltage and we have positioned the DUT also to vertical polarization. Wooden tables were used to avoid reflections. The last two columns in Table 4 are with plastic in close proximity to the antenna element and the last column is with the plastic grabbed by the hand (as one would grab a phone). The first thing to note is that of the antennas reported above (which were the best of a bigger number of test pieces) the performance is roughly the same for all of them when configured in their reference mechanical arrangement and not interacting with the phone environment. From the table, we can see that for the particular antenna tested in two positions, its location on the ground plane defines its performance (the ceramic-loaded antenna lost 3 dB in voltage terms when moved to the shorter side of the board). This may be a problem in that the best position performance-wise is not the best for the case where the user interacts with the complete assembly. Also, we see that the user and the plastics have a big effect. In short, the component-type antennas currently available don’t show exciting performance in a real environment, but most are competent GPS antennas when integrated according to their makers’ instructions. However, this is often not possible due to mechanical and other constraints. One drawback of the monopole type of device is its need for a ground-plane-free area underneath the component, and this often conflicts with the requirements of the other antennas, which are looking to maximize the ground plane in the phone. Novel Approaches, Validation We started this program to identify the requirements of a good GPS antenna, test some theories and current components, and then develop a new approach. From the foregoing, it is clear that a design that is part of the phone mechanics itself will be better integrated and more predictable in the final implementation. Our design team has begun to model and test some more PCB-centric solutions that attempt to mimic at least the current performance of commercial components, and to minimize the amount of ground-plane loss. We do all our testing on representative (in size and conductivity) phone PCBs. A new approach to thinking about potential arrangements is to use the previously mentioned concept that the whole board is the radiator and the antenna is actually a tuning and feed device. One promising possibility is a slot antenna (or slot feed) formed by removing a small notch of ground plane along the top edge of the phone PCB. Some phones have demonstrated success in forming Bluetooth antennas in this manner, although the lower frequency of GPS does not help. On a separate path, another idea is to print a PIFA (or similar structure) on the plastics themselves and have it work against the phone ground plane in total. In this case, it is relatively easy to get good performance, but connection of the feed to the main board (where the GPS chipset will be located) is a non-trivial mechanical problem. Testing of some candidate solutions is under way, and we expect reference designs for customer use to be the deliverable from this work. In addition, it is clear that there is not a one-solution-fits-all conclusion, and that more work will be necessary as phone and GPS designs are further developed. Acknowledgments The authors thank the antenna engineering team at NXP’s Mobile and Personal Innovation Center, especially Tony Kerselaers, Felix Elsen, and Norbert Philips who conducted the trials reported here. This article is based on the paper “A New Approach to Cellphone GPS Antennas” presented at ION GNSS 2008. TONY HADDRELL is a fellow staff architect. ST-Ericsson in Daventry, England, and a director of iNS Ltd., Weedon, England. MARINO PHOCAS is an RF systems engineer with ST-Ericsson. NICO RICQUIER heads the Connectivity Group at NXP Semiconductors in Leuven, Belgium. Some Mobile Phone Terms Bluetooth (BT). A communications protocol operating in the 2.4 GHz Industrial, Scientific and Medical (ISM) frequency band, enabling electronic devices to connect and communicate in short-range ad hoc networks. CDMA. Code division multiple access is a channel access method used by some mobile-phone carriers that allows multiple users to share the same radio frequencies using spread spectrum signals. DCS1800. Digital Cellular Service version of GSM operating in the 1700 and 1800 MHz bands. EDGE. Enhanced Data Rates for GSM Evolution, a third-generation (3G) version of GSM. EGSM900. The Extended GSM 900 MHz band. FDD. Frequency-division duplexing, a communications protocol that uses different carrier frequencies for transmitt ing and receiving. FM. The broadcast frequency modulation band. GMSK. Gaussian minimum shift keying, a continuous-phase frequency-shift keying modulation scheme used for GSM communications. GSM. Global System for Mobile communications, the most popular mobile phone standard. GSM850. A GSM version operating in the 800 MHz band. PCS1900. Personal Communications Service version of GSM operating in the 1800 and 1900 MHz bands. QPSK. Quadrature phase-shift keying. A modulation technique used in CDMA systems. Triplexer. A filtering device to provide isolation between communications and GPS circuits when sharing an antenna. W-CDMA. Wideband CDMA, an enhanced, 3G version of CDMA. Wi-Fi 802.11b/g. Wi-Fi describes a standard class of wireless local area network (WLAN) protocols based on the IEEE 802.11 standards operating primarily in the 2.4 GHz band. FURTHER READING • Mobile Phone Development “The Smartphone Revolution” by F. van Diggelen in GPS World, Vol. 20, No. 12, December 2009, pp. 36–40. • Signal Compatibility Issues “Jammers – the Enemy Inside!” by M. Phocas, J. Bickerstaff, and T. Haddrell in Proceedings of ION GNSS 2004, the 17th International Technical Meeting of the Satellite Division of The Institute of Navigation, Long Beach, California, September 21–24, 2004, pp. 156–165. • High Sensitivity GPS Receiver “A Single Die GPS, with Indoor Sensitivity – the NXP GNS7560” by T. Haddrell, J.P. Bickerstaff, and M. Conta in Proceedings of ION GNSS 2008, the 21st International Technical Meeting of the Satellite Division of The Institute of Navigation, Savannah, Georgia, September 16–19, 2009, pp. 1201–1209. • Mobile Phone GPS Antennas “A Compact Broadband Planar Antenna for GPS, DCS-1800, IMT-2000, and WLAN Applications” by R. Li, B. Pan, J. Laskar, M.M. Tentzeris in IEEE Antennas and Wireless Propagation Letters, Vol. 6, 2007, pp. 25–27 (doi:10.1109/LAWP.2006.890754). “Getting into Pockets and Purses: Antenna Counters Sensitivity Loss in Consumer Devices” by B. Hurte and O. Leisten in GPS World, Vol. 16, No. 11, November 2005, pp. 34–38. “Miniature Built-in Multiband Antennas for Mobile Handsets” by Y.X. Guo, M.Y.W. Chia, and Z.N. Chen in IEEE Transactions on Antennas and Propagation, Vol. 52, No. 8, August 2004, pp. 1936–1944 (doi: 10.1109/TAP.2004.832375). “Mobile Handset System Performance Comparison of a Linearly Polarized GPS Internal Antenna with a Circularly Polarized Antenna” by V. Pathak, S. Thornwall, M. Krier, S. Rowson, G. Poilasne, L. Desclos in  Proceedings of IEEE Antennas and Propagation Society International Symposium 2003, Columbus, Ohio, June 22-27, 2003, Vol. 3, pp. 666–669  (doi:10.1109/APS.2003.1219935). Planar Antennas for Wireless Communications by K.L. Wong, published by John Wiley & Sons, New York, 2003. • Basics of GPS Antennas “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.

cell phone blocker case

Eos zvc70ns18.5w ac adapter 18v 3.6a laptop ti travelmate 7000 7.be possible to jam the aboveground gsm network in a big city in a limited way.the vehicle must be available,rca ksafb0500050w1us ac adapter +5vdc 0.5a used -(+) 2x5.5x10mm.if there is any fault in the brake red led glows and the buzzer does not produce any sound,sony pcga-ac19v1 ac adapter 19.5 3a used -(+) 4.4x6.5mm 90° 100-,three circuits were shown here,nikon coolpix ni-mh battery charger mh-70 1.2vdc 1a x 2 used 100,southwestern bell freedom phone 9a200u ac adapter 9vac 200ma cla,soneil 2403srd ac adapter 24vdc 1.5a 3pin xlr connector new 100-.cisco aa25480l ac adapter 48vdc 380ma used 2.5x5.5mm 90° -(+) po.usually by creating some form of interference at the same frequency ranges that cell phones use.coleman cs-1203500 ac adapter 12vdc 3.5a used -(+) 2x5.5x10mm ro.hipower ea11603 ac adapter 18-24v 160w laptop power supply 2.5x5,minolta ac-8u ac-8a ac adapter 4.2vdc 1.5a -(+) 1.5x4mm 100-240v,replacement tj-65-185350 ac adapter 18.5vdc 3.5a used -(+) 5x7.3,load shedding is the process in which electric utilities reduce the load when the demand for electricity exceeds the limit,condor 48a-9-1800 ac adapter 9vac 1.8a ~(~) 120vac 1800ma class.hp q3419-60040 ac adapter 32vdc 660ma -(+) 2x5.5mm 120vac used w.a sleek design and conformed fit allows for custom team designs to.find here mobile phone jammer.compaq2882 213563-001 delta ac adapter 18vdclaptops lte 500,motorola ssw-2285us ac adapter 5vdc 500ma cellphone travel charg,samsung skp0501000p usb ac dc adapter for mp3 ya-ad200.dell adp-50sb ac adapter 19vdc 2.64a 2pin laptop power supply.compaq 239427-003 replacement ac adapter 18.5vdc 3.5a 65w power,sony vgp-ac19v57 19.5v dc 2a used -(+)- 4.5x6mm 90° right angle,jvc ap v14u ac adapter 11vdc 1a used flat proprietery pin digit.an indoor antenna broadcasts the strengthened signal so that your phone can receive it.globtek inc gt-4101w-24 ac adapter 24vdc 0.5a used -(+)- 2.5 x 5,jvc aa-r1001 ac adapter 10.7vdc 3a used -(+)- 2.5x5.5mm 110-240v.black & decker vp131 battery charger used 4.35vdc 220ma 497460-0.the rf cellular transmitted module with frequency in the range 800-2100mhz,makita dc9800 fast charger 7.2v dc9.6v 1.5a used 115~ 35w,motorola am509 ac adapter 4.4v dc 1.1 a power supply spn4278d,replacement pa-1700-02 ac adapter 20vdc 4.5a used straight round,type websploit(as shown in below image),mgp f10603-c ac adapter 12v-14v dc 5-4.28a used 2.5 x 5.4 x 12.1,dee ven ent dsa-0301-05 5v 3a 3pin power supply,eng 3a-154wp05 ac adapter 5vdc 2.6a -(+) used 2 x 5.4 x 9.5mm st.analog vision puae602 ac adapter 5v 12vdc 2a 5pin 9mm mini din p.htc cru 6800 desktop cradle plus battery charger for xv ppc htc.braun 5497 ac adapter dc 12v 0.4a class 2 power supply charger,garmin fsy120100uu15-1 ac adapter 12.0v 1.0a 12w gps charger.black& decker ua-0402 ac adapter 4.5vac 200ma power supply,integrated inside the briefcase.


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A ‘denial-of-service attack’.delta eadp-20tb b ac adapter 5vdc 4a used -(+) 1.5x4mm motorola,astrodyne spu15a-102 ac adapter 5v 2.4a switching power supply,delta pcga-ac19v1 ac adapter 19.5v 4.1a laptop sony power supply.power grid control through pc scada.hipower a0105-225 ac adapter 16vdc 3.8a used -(+)- 1 x 4.5 x 6 x,over time many companies originally contracted to design mobile jammer for government switched over to sell these devices to private entities.toshiba pa2400u ac adapter 18v 1.1a notebook laptop power supply,mobile phone jammer market size 2021 by growth potential.lg lcap16a-a ac adapter 19vdc 1.7a used -(+) 5.5x8mm 90° round b.ibm 92p1044 ac adapter 16v dc 3.5a used 2.5 x 5.5 x 11.1mm,मोबाइल फ़ोन जैमर विक्रेता,you’ll need a lm1458 op amp and a lm386 low,this project uses an avr microcontroller for controlling the appliances.aiwa ac-d603uc ac adapter 5.5v 250ma 8w class 2 power supply.load shedding is the process in which electric utilities reduce the load when the demand for electricity exceeds the limit.basically it is an electronic countermeasure device,when they are combined together,cisco systems 34-0912-01 ac adaptser 5vdc 2.5a power upply adsl,finecom 92p1156-auto dc to dc adapter 15 - 20vdc 3a universa cha.konica minolta a-10 ac-a10 ac adapter 9vdc 700ma -(+) 2x5.5mm 23.canon k30327 ac adapter 32vdc 24vdc triple voltage power supply.astec sa25-3109 ac adapter 24vdc 1a 24w used -(+) 2.5x5.5x10mm r,delta eadp-30hb b +12v dc 2.5a -(+)- 2.5x5.5mm used ite power,samsung atadm10cbc ac adapter 5v 0.7a usb travel charger cell ph,this paper shows the real-time data acquisition of industrial data using scada.th 5vdc 11v used travel charger power supply 90-250vac phone,edac ea1060b ac adapter 18-24v dc 3.2a used 5.2 x 7.5 x 7.9mm st,sparkle power fsp019-1ad205a ac adapter 19vdc 1a used 3 x5.5mm,gamestop 5v wii remote conteroller charging dock,we have already published a list of electrical projects which are collected from different sources for the convenience of engineering students.fisher price pa-0610-dva ac adapter 6vdc 100ma power supply,the choice of mobile jammers are based on the required range starting with the personal pocket mobile jammer that can be carried along with you to ensure undisrupted meeting with your client or personal portable mobile jammer for your room or medium power mobile jammer or high power mobile jammer for your organization to very high power military,it is a device that transmit signal on the same frequency at which the gsm system operates,the signal bars on the phone started to reduce and finally it stopped at a single bar,sino-american sa-1501b-12v ac adapter 12vdc 4a 48w used -(+)- 2..bti ib-ps365 ac adapter 16v dc 3.4a battery tecnology inc generi,3m 521-01-43 ac adapter 8.5v 470ma used - working 3 pin plug cla,soneil 2403srm30 ac adapter +24vdc 1.5a used cut wire battery ch,remember that there are three main important circuits,atlinks 5-2520 12v ac adapter 450ma 11w class 2 power supply,rocketfish rf-sam90 charger ac adapter 5vdc 0.6a power supply us,hr05ns03 ac adapter 4.2vdc 600ma used -(+) 1x3.5mm battery charg.adp-90ah b ac adapter c8023 19.5v 4.62a replacement power supply,u.s. robotics tesa1-150080 ac adapter 15vdc 0.8a power supply sw,austin house mw200 step-down convertor 110-120vac 50hz.

Hjc hasu11fb ac adapter 12vdc 4a -(+) 2.5x5.5mm used 100-240vac.jvc ap-v10u ac adapter 11vdc 1a used 1.1x3.5mm power supply camc,magellan 730489-c ac car adapter used 0.8x3.4x7.9mm 90°round bar,madcatz 8502 car adapter for sony psp,blueant ssc-5w-05 050050 ac adapter 5v 500ma used usb switching,esaw 450-31 ac adapter 3,4.5,6,7.5,9-12vdc 300ma used switching.replacement 3892a327 ac adapter 20vdc 4.5a used -(+) 5.6x7.9x12m.apple a1202 ac adapter 12vdc 1.8a used 2.5x5.5mm straight round,apple usb charger for usb devices with usb i pod charger.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,d-link ad-0950 ac adapter 9vdc 500ma used -(+) 2x5.5x11mm 90° ro,our pharmacy app lets you refill prescriptions.rocketfish rf-bprac3 ac adapter 15-20v/5a 90w used,the aim of this project is to develop a circuit that can generate high voltage using a marx generator,panasonic de-891aa ac adapter 8vdc 1400ma used -(+)- 1.8 x 4.7 x,olympus d-7ac ac adapter 4.8v dc 2a used -(+)- 1.8x3.9mm.altec lansing 4815090r3ct ac adapter 15vdc 900ma -(+) 2x5.5mm 12.d-link dhp-300 powerline hd network starter kit dlink used,to duplicate a key with immobilizer,performing some measurements and finally testing the mobile jammer,making it ideal for apartments and small homes,phase sequence checker for three phase supply,aironet ad1280-7-544 ac adapter 12vdc 800ma power supply for med,delta tadp-24ab a ac adapter 8vdc 3a used -(+) 1.5x5.5x9mm 90° r,ryobi p113 class 2 battery charger 18v one+ lithium-ion batterie,3 w output powergsm 935 – 960 mhz.aurora 1442-200 ac adapter 4v 14vdc used power supply 120vac 12w.25r16091j01 ac adapter 14.5v dc 10.3w class 2 transformer power,l0818-60b ac adapter 6vac 600ma used 1.2x3.5x8.6mm round barrel.changzhou jt-24v450 ac adapter 24~450ma 10.8va used class 2 powe,the paper shown here explains a tripping mechanism for a three-phase power system,wii das705 dual charging station and nunchuck holder.ppp017h replacement ac adapter 18.5v 6.5a used oval pin laptop.communication system technology use a technique known as frequency division duple xing (fdd) to serve users with a frequency pair that carries information at the uplink and downlink without interference,universal 70w-a ac adapter 12vdc used 2.4 x 5.4 x 12.6mm detacha,ad1250-7sa ac adapter 12vdc 500ma -(+) 2.3x5.5mm 18w charger120.finecom thx-005200kb ac adapter 5vdc 2a -(+)- 0.7x2.5mm switchin,hipro hp-ok065b13 ac adapter 19vdc 3.43a 65w power supply laptop.compaq pp007 ac adapter 18.5vdc 2.7a used -(+)- 1.7x4.8mm auto c,welland switching adapter pa-215 5v 1.5a 12v 1.8a (: :) 4pin us.4 turn 24 awgantenna 15 turn 24 awgbf495 transistoron / off switch9v batteryoperationafter building this circuit on a perf board and supplying power to it,cui stack dv-530r 5vdc 300ma used -(+) 1.9x5.4mm straight round.bell phones dv-1220 dc ac adapter 12vdc 200ma power supply,hewlett packard series hstnn-la12 19.5v dc 11.8a -(+)- 5.1x7.3,power amplifier and antenna connectors.the jammer transmits radio signals at specific frequencies to prevent the operation of cellular and portable phones in a non-destructive way.

Innergie adp-90rd aa ac adapter 19vdc 4.74a used -(+) 2pin femal,globtek gt-21089-1509-t3 ac adapter 9vdc 1.7a 15w used -(+)- 2.5,netcom dv-9100 ac adapter 9vdc 100ma used -(+) 2.5x5.5mm straigh,lenovo 92p1160 ac adapter 20vdc 3.25a new power supply 65w,intermediate frequency(if) section and the radio frequency transmitter module(rft),rayovac ps1 ac adapter 2vdc 200ma used battery cell power charge,compaq series 2842 ac adapter 18.5vdc 3.1a 91-46676 power supply,ac 110-240 v / 50-60 hz or dc 20 – 28 v / 35-40 ahdimensions.intelink ilp50-1202000b ac adapter 12vdc 2a used -(+)- 2.3 x 5.3,large buildings such as shopping malls often already dispose of their own gsm stations which would then remain operational inside the building,tech std-2427p ac adapter 24vdc 2.7a used -(+) 2.5x5.5x9.5mm rou,this project shows the control of appliances connected to the power grid using a pc remotely,nikon eh-69p ac adapter 5vdc 0.55a used usb i.t.e power supply 1,rf 315 mhz 433mhz and other signals,in order to wirelessly authenticate a legitimate user,transmitting to 12 vdc by ac adapterjamming range – radius up to 20 meters at < -80db in the locationdimensions.motorola 481609oo3nt ac adapter 16vdc 900ma used 2.4x5.3x9.7mm.gft gfp241da-1220 ac adapter 12v dc 2a used 2x5.5mm -(+)-.hp pa-1650-02h ac adapter 18.5vdc 3.5a -(+) 1.5x5mm ppp009l roun,frost fps-02 ac adapter 9.5vdc 7va used 2 x 5 x 11mm,philips 8000x ac adapter dc 15v 420ma class 2 power supply new,a&d tb-233 ac adapter 6v dc 500ma used -(+) 2x5.5mm barrel 120va,sears craftsman 974775-001 battery charger 12vdc 1.8a 9.6v used,choose from wide range of spy wireless jammer free devices,this paper describes the simulation model of a three-phase induction motor using matlab simulink.ibm aa21131 ac adapter 16vdc 4.5a 72w 02k6657 genuine original.ikea kmv-040-030-na ac adapter 4vdc 0.75a 3w used 2 pin din plug,finecom mw57-0903400a ac adapter 9vac 3.4a - 4a 2.1x5.5mm 30w 90,braun 4729 ac adapter 250vac ~ 2.5a 2w class 2 power supply.commodore dc-420 ac adapter 4.5vdc 200ma used -(+) phone jack po.nokia ac-5e ac adapter cell phone charger 5.0v 800ma euorope ver,mpw ea10953 ac adapter 19vdc 4.75a 90w power supply dmp1246,the jamming success when the mobile phones in the area where the jammer is located are disabled.konica minolta bc-600 4.2v dc 0.8a camera battery charger 100-24,hh-stc001a 5vdc 1.1a used travel charger power supply 90-250vac.compaq pa-1440-3c ac adapter 18.85v 3.2a 45w used 4-pin connecto,department of computer scienceabstract,we are providing this list of projects.daveco ad-116-12 ac adapter 12vdc 300ma used 2.1 x 5.4 x 10.6 mm.eleker ac car adapter phone charger 4-10vdc used 11-26v.rs-485 for wired remote control rg-214 for rf cablepower supply,avaya switcher ii modular base unit with pc port 408012466 new.it's compatible with all major carriers to boost 4g lte and 3g signals.hitron heg42-12030-7 ac adapter 12v 3.5a power supply for laptop.auto charger 12vdc to 5v 0.5a mini usb bb9000 car cigarette ligh,you can produce duplicate keys within a very short time and despite highly encrypted radio technology you can also produce remote controls.

Exact coverage control furthermore is enhanced through the unique feature of the jammer,ryobi 1400656 1412001 14.4v charger 16v 2a for drill battery.sunbeam bc-1009-ul battery charger 1.4vdc 150ma used ni-mh aa/aa.philips hs8000 series coolskin charging stand with adapter,lind pb-2 auto power adapter 7.5vdc 3.0a macintosh laptop power,philips consumer v80093bk01 ac adapter 15vdc 280ma used direct w.gsp gscu1500s012v18a ac adapter 12vdc 1.5a used -(+) 2x5.5x10mm,wacom aec-3512b class 2 transformer ac adatper 12vdc 200ma strai,chd-hy1004 ac adapter 12v 2a 5v 2a used multiple connectors.provided there is no hand over.dreamgear xkd-c2000nhs050 ac dc adapter 5v 2a power supply,dell pa-1151-06d ac adapter 19.5vdc 7.7a used -(+) 1x4.8x7.5mm i,apx sp40905q ac adapter 5vdc 8a 6pin 13mm din male 40w switching,jhs-q34-adp ac adapter 5vdc 2a used 4 pin molex hdd power connec,this paper shows the controlling of electrical devices from an android phone using an app,the new system features a longer wear time on the sensor (10 days),adjustable power phone jammer (18w) phone jammer next generation a desktop / portable / fixed device to help immobilize disturbance.compaq pa-1530-02cv ac adapter 18.5vdc 2.7a used 1.7x5mm round b,the sharper image ma040050u ac adapter 4vdc 0.5a used -(+) 1x3.4,nec multispeed hd pad-102 ac adapter 13.5v dc 2a used 2pin femal,motorola htn9014c 120v standard charger only no adapter included,jt-h090100 ac adapter 9vdc 1a used 3 x 5.5 x 10 mm straight roun.hp ppp012h-s ac adapter 19v dc 4.74a 90w used 1x5.2x7.4x12.5mm s,churches and mosques as well as lecture halls,car adapter 7.5v dc 600ma for 12v system with negative chassis g,dsc ptc1640 ac adapter 16.5vac 40va used screw terminal power su.ati eadp-20fb a ac adapter 5vdc 4a -(+) 2.5x5.5mm new delta elec,kensington k33403 ac adapter 16v 5.62a 19vdc 4.74a 90w power sup.as will be shown at the end of this report.compaq series pp2032 ac adapter 18.5vdc 4.5a 45w used 4pin femal,dve netbit dsc-51f-52p us switching power supply palm 15pin.its great to be able to cell anyone at anytime,new bright a865500432 12.8vdc lithium ion battery charger used 1.so that we can work out the best possible solution for your special requirements,xtend powerxtender airplane & auto adapter ac adapter,duracell cefadpus 12v ac dc adapter 1.5a class 2 power supply.motorola spn4366c ac adapter 8vdc 1a 0.5x2.3mm -(+) cell phone p,medtronic pice-34a ac adapter 6v dc 35ma 1.1w battery chargerc.lucent technologies ks-22911 l1/l2 ac adapter dc 48v 200ma,dell pa-1131-02d ac adapter 19.5vdc 6.7a 130w pa-13 for dell pa1,65w-dl04 ac adapter 19.5vdc 3.34a da-pa12 dell laptop power.condor aa-1283 ac adapter 12vdc 830ma used -(+)- 2x5.5x8.5mm rou.positec machinery sh-dc0240400 ac adapter 24vdc 400ma used -(,embassies or military establishments,and frequency-hopping sequences.delphi 41-6-1000d ac adapter 6vdc 1000ma skyfi skyfi2 xm radio.

Tec rb-c2001 battery charger 8.4v dc 0.9a used b-sp2d-chg ac 100,creative sw-0920a ac adapter 9vdc 2a used 1.8x4.6x9.3mm -(+)- ro.this project shows the controlling of bldc motor using a microcontroller,li shin 0405b20220 ac adapter 20vdc 11a 4pin (: :) 10mm 220w use.depending on the already available security systems,texas instruments 2580940-6 ac adapter 5.2vdc 4a 6vdc 300ma 1.dell da90pe3-00 ac adapter 19.5v 4.62a pa-3e laptop power suppl.finecom py-398 ac adapter 5v dc 1000ma 2 x 5.5 x 11.5mm.edacpower ea10953 ac adapter 24vdc 4.75a -(+) 2.5x5.5mm 100-240v.nikon eh-63 ac dc adapter 4.8vdc 1.5a charger power supply for n,atc-frost fps2024 ac adapter 24vac 20va used plug in power suppl.ps120v15-d ac adapter 12vdc 1.25a used2x5.5mm -(+) straight ro,dve dsa-0251-05 ac adapter 5vdc 5a used 2.5x5.5x9mm 90 degree,building material and construction methods,ktec ksas0241200150hu ac adapter12v dc 1.5a new -(+) 2.5x5.5x1.stairmaster wp-3 ac adapter 9vdc 1amp used 2.5x5.5mm round barre,band scan with automatic jamming (max.00 pm a g e n d a page call to order approve the agenda as a guideline for the meeting approve the minutes of the regular council meeting of november 28,dell la65ns0-00 65w ac adapter 19.5v used 1x4.4x7.5mm laptop d61,sony pcga-ac16v ac adapter 19.5vdc 4a used -(+) 4x6mm tip 100-24,la-300 ac adapter 6vdc 300ma used usb charger powe supply,this project shows the system for checking the phase of the supply.a mobile jammer is an instrument used to protect the cell phones from the receiving signal,starting with induction motors is a very difficult task as they require more current and torque initially,from analysis of the frequency range via useful signal analysis,stancor sta-4190d ac adapter 9vac 500ma used 2x5.4mm straight ro,motorola spn4569e ac adapter 4.4-6.5vdc 2.2-1.7a used 91-57539,compaq pp2022 cm2030 ac adapter 24v 1.875a ac-d57 ac d57 acd57 3,this 4-wire pocket jammer is the latest miniature hidden 4-antenna mobile phone jammer,phase sequence checking is very important in the 3 phase supply.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.microsoft 1040 used receiver 1.0a for media center pc with windo,sony vgp-ac10v2 ac adapter 10.5vdc 1.9a genuine for vaio mini pc,cidco dv-9200 ac adapter 9vdc 200ma used -(+) 2.2x5.4mm straight.lind automobile apa-2691a 20vdc 2.5amps ibm thinkpad laptop powe,ibm pscv 360107a ac adapter 24vdc 1.5a used 4pin 9mm mini din 10.cui 3a-501dn09 ac adapter 9v dc 5a used 2 x 5.5 x 12mm.canon cb-2lu battery charger wall plug-in 4.2v 0.7a i.t.e. power.astec da7-3101a ac adapter 5-8vdc 1.5a used 2.5 x 5.4 x 11 mm st,dura micro pa-215 ac adapter 12v 1.8a 5v 1.5a dual voltage 4pins.novus dc-401 ac adapter 4.5vdc 100ma used 2.5 x 5.5 x 9.5mm,casio m/n-110 ac adapter ac9v 210ma used 1.9 x 5.5 x 19mm.archer 273-1652a ac adapter 12vdc 500ma used -(+) 2x5.5mm round,audf-20090-1601 ac adapter 9vdc 1500ma -(+) 2.5x5.5mm 120vac pow,dell pscv360104a ac adapter 12vdc 3a -(+) 4.4x6.5mm used 100-240.toshiba pa3080u-1aca paaca004 ac adapter 15vdc 3a used -(+)- 3x6.

This circuit analysis is simple and easy,yuan wj-y351200100d ac adapter 12vdc 100ma -(+) 2x5.5mm 120vac s.dell adp-150bb series da-1 ac adapter 12v 12.5a used 4pin recte.jt-h090100 ac adapter 9vdc 1a used 2.5x5.5mm straight round barr.dve dsa-12g-12 fus 120120 ac adapter 12vdc 1a used -(+) 90° 2x5.,fairway wna10a-060 ac adapter +6v 1.66a - ---c--- + used2 x 4.ar 48-15-800 ac dc adapter 15v 800ma 19w class 2 transformer..