Hs_hkO4cG@aol.com
Premium Plus
Lifetime Premium
Advanced User
- Joined
- 2021/07/07
- Messages
- 16
- Reaction score
- 13
By Thorsten Lück, Günter Heinrichs, IFEN GmbH, and Achim Hornbostel, German Aerospace Center This article discusses the GALANT adaptively steered antenna array and receiver and demonstrates the test scenarios generated with the GNSS simulator. Exemplary results of different static and dynamic test scenarios are presented, demonstrating the attitude determination capabilities as well as the interference detection and mitigation capabilities. The vulnerability of GNSS to radio frequency interference and spoofing has become more and more of a concern for navigation applications requiring a high level of accuracy and reliability, for example, safety of life applications in aviation, railway, and maritime environments.In addition to pure power jamming with continuous wave (CW), noise or chirp signals, cases of intentional or unintentional spoofing with wrong GNSS signals have also been reported. Hardware simulations with GNSS constellation signal generators enable the investigation of the impact of radio interference and spoofing on GNSS receivers in a systematic, parameterized and repeatable way. The behavior of different receivers and receiver algorithms for detection and mitigation can be analyzed in dependence on interference power, distance of spoofers, and other parameters. This article gives examples of realistic and advanced simulation scenarios, set up for simulation of several user antennas simultaneously. The professional-grade high-end satellite navigation testing and R&D device used here is powerful, easy to use, and fully capable of multi-constellation / multi-frequency GNSS simulations for safety-of-life, spatial and professional applications. It provides all L-band frequencies for GPS, GLONASS, Galileo, BeiDou, QZSS, SBAS and beyond in one box simultaneously. It avoids the extra complexity and cost of using additional signal generators or intricate architectures involving several hardware boxes, and offers full control of scenario generation. A multi-RF capable version provides up to four independent RF outputs and a master RF output that combines the RF signal of each of the up to four individual RF outputs. Each individual RF output is connected to one or more “Merlin” modules (the core signal generator module for one single carrier) allowing simulation of up to 12 satellites per module. Because of the flexible design of the Merlin module, each one can be configured to any of the supported L-band frequencies. As one chassis supports up to nine individual Merlin modules, different Multi-RF combinations are feasible: two RF outputs with up to four modules each three RF outputs with up to three modules each four RF outputs with up to two modules each. With these configurations, the user can simulate different static or dynamic receivers or even one receiver with multiple antennas, covering such challenging scenarios as ground networks, formation flying or use of beam-forming antennas. As the user is free to assign each individual module to a dedicated simulated antenna, the user could also employ up to nine modules to simulate nine different carrier signals for one single antenna using the master RF output, thus simulating the complete frequency spectrum for all current available GNSS systems in one single simulation. All modules are calibrated to garantee a carrier phase coherency of better than ±0.5°. Figure 1 shows the output at the RF master of two modules assigned to the same carrier but with a phase offset of 180°. Figure 1. Carrier-phase alignment of the high-end simulator with six modules compared to the first module. Theoretically, the resulting signal should be zero because of the destructive interference. In practice, a small residual signal remains because of component tolerance, small amplitude differences and other influences. Nevertheless the best cancellation can be seen at this point. The phase accuracy can now simply be estimated from the measured power level of the residual signal: (1) (2) with This means that the sum of two sine waves with the same frequency gives another sine wave. It has again the same frequency, but a phase offset and its amplitude is changed by the factor A. The factor A does affect the power level. If φ is 180° then A is 0, which means complete cancellation. So A shows the power of the resulting signal relative to the single sine wave. It can also be transformed to dB: (3) Figure 2 shows the carrier suppression as a function of carrier phase offset with a pole at 180ϒ. Figure 2. Carrier suppresion as a function of phase delay. The factory calibration aligns the modules to a maximum of 0.5ϒ misalignment. The measured suppresion therefore shall be better than 41.18 dBc. In practice, the residual signal is also caused by other influences, so that the actual phase alignment can be expected to be much better. With four RF outputs, the received signal of a four element antenna can be configured very easily. Figure 3 shows the dialog to configure a four-element antenna with the geometry shown in Figure 4. Note that the antenna elements are configured in the body-fixed system with the x-axis to front and the y-axis to the right (inline with a north-east-down, NED, system when facing to north), while the geometry shown in Figure 4 follows an east-north-up (ENU) convention. Figure 3. Configuration of individual antennas per receiver. Figure 4. Geometry of the GALANT four-element phased-array antenna (view from top). The following sections give an overview of multi-antenna systems and discuss results from a measurement campaign of the German Aerospace Center (DLR) utilizing the simulator and the DLR GALileo ANTenna array (GALANT) four-element multi-antenna receiver. Multi-Antenna Receivers Multi-antenna receivers utilize an antenna array with a number of antenna elements. The signals of each antenna element are mixed down and converted from analog to digital for baseband processing. In the baseband, the signals received by the different antenna elements are multiplied with complex weighting factors and summed. The weighting factors are chosen in such a way that the received signals from each antenna element cancel out into the direction of the interferers (nulling) and additionally, for advanced digital beamforming, such that the gain is increased into the direction of the satellites by forming of individual beams to each satellite. Because all these methods work with carrier phases, it is important that in the simulation setup, the signals contain the correct carrier phases at the RF-outputs of the simulator corresponding to the user satellite and user-interferer geometry, and the position and attitude of the simulated array antenna. Figure 5 presents the geometry of a rectangular antenna array with 2×2 elements and a signal s(t) impinging from direction (ϕ, θ). Figure 5. Parallel wavefront impinging on a rectangular array with 2×2 elements. The spacings of the elements dx, dy are typically half a wavelength, but can also be less. The range difference for antenna element i relative to the reference element in the center of the coordinate system depends on the incident direction (ϕ, θ) and the position (m=0,1, n=0,1) of the element within the array: (4) The corresponding carrier phase shift is: (5) For CRPA and adaptive beam forming applications, the differential code delays may be neglected if they are small compared to the code chip length. However, it is essential that the carrier phase differences are precisely simulated, because they contain the information about the incident direction of the signal and are the basis for the array processing in the receiver. For instance, the receiver can estimate the directions of arrival of the incident signals from these carrier phase differences. Now we consider a 2×2 array antenna. It can be simulated with the simulator with four RF outputs, where each output corresponds to one antenna element. In the simulator control software, a user with four antennas is set up, where the position of each antenna element is defined as an antenna position offset relative to the user position. In this approach, both differential code and carrier delays due to the simulated array geometry are taken into account, because the code and carrier pseudoranges are computed by the simulator for the position of each antenna element. However, the RF hardware channels of the receiver front-end may have differential delays against each other, which may even vary with time. If the direction of the satellites and interferers shall be estimated correctly by the receiver algorithms, a calibration signal is required to measure and compensate these differential hardware delays. For the real antenna system, a binary phase-shift keying (BPSK) signal with zero delay for each antenna channel is generated by the array receiver and fed into the antenna calibration port. For the simulation, this calibration signal must also be generated by the constellation simulator. In a simple way, a satellite in the zenith of the user antenna can be simulated, which has the same distance and delay to all antenna elements. Unfortunately, this simple solution includes some limitations to the simulated position and attitude of the user, because the user position must be at the Equator (if a “real” satellite is simulated in form of a geostationary satellite) and the antenna must not be tilted. With a small customization of the simulator software, these limitations could be overcome. Figure 6 shows how to set up the generation of a reference signal. This reference signal can either be simulated as a transmitter directly above the user position, which follows the user position and thus allows also simulations offside the Equator, or simulated as a zero-range signal on all RF outputs, neglecting any geometry, which is the preferred method. The latter one is more or less identical to the reference/calibration signal generated by the receiver itself. Figure 6. Configuration of a modulated reference signal. The power level of this signal is held constant and is not affected by any propagation delay or attenuation simulated by the control center. Attitude Determination According to Figure 5, the phase difference measured between antenna elements is a function of the direction of arrival (DoA). Thus, the DoAs of the incident signals can be estimated from the phase differences. In the GALANT receiver, the DoAs are estimated by an EPSPRIT algorithm after correlation of the signals. Compared with the (known) positions of the GNSS satellites, this allows the estimation of the antenna array attitude. Figure 7 shows the sky-plot of simulated satellites as seen at receiver location (simulated on the right; reconstructed by the receiver from the decoded almanac in the middle and the DoA on the left). By comparison of the estimated DoAs of all satellites and the skyplot from the almanac, the attitude of the antenna is estimated (left). In addition, the attitude angles simulated by the simulator is given (right). Figure 7. Simulating and estimating attitude with a multi-element antenna. Simulation of Interference It is possible to simulate some simple types of interference. Possible interference scenarios are: Wideband Noise. By increasing the power of a single satellite of the same or another GNSS constellation, a wideband pseudo-noise signal can be generated. Using a geostationary satellite also enables simulating an interference source at low elevations and constant position. Use of power-level files also allow generation of scenarios with intermittent interference (switching on and off the interference) with switching rates up to 5 Hz. CW or Multi-Carrier IF. By disabling the spreading code and navigation message, a CW signal can be generated. The simulator also allows configuration of subcarrier modulations. Without spreading code (or to be precise with a spreading code of constant zero) the generated signal will consist of two carriers symmetrically around the original signal carrier (for example, configuring a BOC(1,1) signal will create two CW signals at 1.57542 GHz ± 1.023 MHz, thus producing “ideal” interferer for the Galileo E1 OS signal.) Depending on the number of Merlin modules per RF output, interference to signal ratios up to 80 dB could be realized, limited by a dynamic range of 40 dB within one module and additional 40 dB range between two modules. However, the maximum power level of one individual signal is currently limited to -90 dBm. If only one channel per module is used, the maximum power level of this single signal can be increased by another 18 dB (for example, by using one module solely for interference generation and another module for GNSS simulation). Figure 8 shows the simulated geometry for an interference scenario based on wideband noise generated by a geostationary satellite, producing –90 dBm signal power at the receiver front end. The interference source is very near to the direction of PRN 22 with a jammer power of –90 dBm, resulting in a jammer to signal ratio of J/S = 25 dB. Figure 8. Geometry for the wideband noise interference scenario. Figure 9 shows the two-dimensional antenna pattern as a result of the beam-forming before and after switching on the interferer. The mitigation algorithm tries to minimize gain into the direction of the interferer. As this also decreases gain into the direction of the intended satellite, the C/N0 drops by approximately 10 dB for PRN 22, because its main beam is shifted away from the interference direction. For satellites in other directions, the decrease in C/N0 is less: compare Figure 9 with Figure 10. However, the receiver still keeps tracking the satellite. After switching of beamforming, the signal is lost. Figure 9. Beamforming for PRN 22 (light green line in lower plot) to mitigate for interference. Figure 10. Tracking is lost after switching off beamforming for individual channels (light blue, purple) and all channels (at the end of the plot). Simulation of Spoofing The simulation of a spoofing signal requires twice the resources as the real-world scenario, as every “real” LoS-signal must also be generated for the spoofing source. A simulation of an intentional spoofer who aims to spoof a dedicated position in this context is, however, very similiar to the simulation of a repeater ([un-]intentional interferer) device: The repeater (re-)transmits the RF signal received at its receiver position. A receiver tracking this signal will generate the position of the repeater location but will observe an additional local clock error defined by the processing time within the repeater and the travel time between repeater and receiver position. A correct simulation for a multi-antenna receiver therefore has to superpose the code and carrier range as observed at the repeater location (considering geometric range between the transmit antenna of the repeater and the individual antenna elements) with the code and carrier ranges at the receiver location. Instead of the location of the repeater P2, however, any intended location Px could be used to simulate an intelligent spoofer attack (Figure 11). The simulator can generate such scenarios by configuring the position of the (re-)transmitting antenna and the intended position (for example, the position of the repeater). By calculating the difference between the real receiver position and the position of the transmitting antenna, the additional delay and free-space loss can be taken into account. The user may also configure the gain of the transmit antenna and the processing time within the repeater. Currently, this setup does only support one “user” antenna to be simulated. However, this feature combined with multi-antenna support will enable the simulator to simulate repeater or intelligent spoofer attacks in the future (Figure 12). To distinguish the “real” signal from the “repeated” signal, the “repeated” signal could be tagged as a multipath signal. This approach would allow simulation of the complete environment of “real” and “repeated” GNSS signals in one single simulator. Figure 11. Geometry of repeater/spoofer and GNSS receiver. Figure 12. Simulator’s capability to simulate a repeater. Manufacturers The simulator producing the results described here is the NavX-NCS from IFEN GmbH. The simulator is valuable laboratory equipment for testing not only standard or high-end single-antenna GNSS receivers, but also offers additional benefit for multi-antenna GNSS receivers like the DLR GALANT controlled reception pattern antenna system. The GNSS constellation simulator offers up to four phase-coherent RF outputs, allowing the simulation of four antenna elements with two carrier frequencies, each utilizing one single chassis being 19 inch wide and 2 HU high. Simulation of intentional and unintentional interference is a possible feature of the simulator and allows receiver designers and algorithm developers to test and enhance their applications in the presence of interference to identify, locate and mitigate for interference sources. Thorsten Lück studied electrical engineering at the universities in Stuttgart and Bochum. He received a Ph.D. (Dr.- Ing.) from the University of the Federal Armed Forces in Munich in 2007 on INS/GNSS integration for rail applications. Since 2003, he has worked for IFEN GmbH, where he started as head of R&D embedded systems in the receiver technology division. In 2012 he changed from receiver development to simulator technologies as product manager of IFEN’s professional GNSS simulator series NavX-NCS and head of the navigation products department. Günter Heinrichs is the head of the Customer Applications Department and business development at IFEN GmbH, Poing, Germany. He received a Dipl.-Ing. degree in communications engineering in 1988, a Dipl.- Ing. degree in data processing engineering and a Dr.-Ing. degree in electrical engineering in 1991 and 1995, respectively. In 1996 he joined the satellite navigation department of MAN Technologie AG in Augsburg, Germany, where he was responsible for system architectures and design, digital signals, and data processing of satellite navigation receiver systems. From 1999 to April 2002 he served as head and R&D manager of MAN Technologie’s satellite navigation department. Achim Hornbostel joined the German Aerospace Center (DLR) in 1989 after he received his engineer diploma in electrical engineering from the University of Hannover in the same year. Since 2000, he has been a staff member of the Institute of Communications and Navigation at DLR. He was involved in several projects for remote sensing, satellite communications and satellite navigation. In 1995 he received his Ph.D. in electrical engineering from the University of Hannover. His main activities are in receiver development, interference mitigation and signal propagation.
cell phone jammer reviews
Radioshack 15-1838 ac adapter dc 12v 100ma wallmount direct plug,samsung sad03612a-uv ac dc adapter 12v 3a lcd monitor power supp,sanyo var-33 ac adapter 7.5v dc 1.6a 10v 1.4a used european powe.ic-dsi171002 ac adapter 4.6vdc 900ma used usb connector switchin.ibm 07h0629 ac adapter 10vdc 1a used -(+)- 2 x 5 x 10 mm round b,sony bc-cs2a ni-mh battery charger used 1.4vdc 400max2 160max2 c,toshiba pa3378e-1aca ac adapter 15vdc 5a used 3 x 6.5 x 9.7 mm s,the proposed system is capable of answering the calls through a pre-recorded voice message,apple adp-22-611-0394 ac adapter 18.5vdc 4.6a 5pin megnatic used,nokiaacp-12x cell phone battery uk travel charger,2100 to 2200 mhz on 3g bandoutput power,motomaster 11-1552-4 manual battery charger 6/12v dc 1a,electra 26-26 ac car adapter 6vdc 300ma used battery converter 9,ibm 85g6704 ac adapter 16v dc 2.2a power supply 4pin 85g6705 for,yl5u ac adapter 12vdc 200ma -(+) rf connecter used 0.05x9.4mm.canon k30327 ac adapter 32vdc 24vdc triple voltage power supply,sunny sys1148-3012-t3 ac adapter 12v 2.5a 30w i.t.e power supply,ultra ulac901224ap ac adapter 24vdc 5.5a used -(+)5.5x8mm power,cell phone jammer is an electronic device that blocks transmission of ….dell hp-af065b83 ow5420 ac adapter 19.5vdc 3.34a 65w laptop powe.cool-lux ad-1280 ac adapter 12vdc 800ma battery charger.oral-b 3733 blue charger personal hygiene appliance toothbrush d.hon-kwang d7-10 ac adapter 7.5vdc 800ma used -(+) 1.7x5.5x12mm 9,4 ah battery or 100 – 240 v ac.xenotronixmhtx-7 nimh battery charger class 2 nickel metal hyd,the data acquired is displayed on the pc,l.t.e lte12w-s2 ac adapter 12vdc 1a 12w power supply.d-link mt12-y075100-a1 ac adapter 7.5vdc 1a -(+) 2x5.5mm ac adap.| video cellphone jammers | 4891 | 7754 | 5664 |
| make your cell phone jammer | 403 | 7239 | 1008 |
| kaidaer cellphone jammer security | 1538 | 7699 | 8520 |
| hidden cellphone jammer increment | 720 | 3406 | 7614 |
| kaidaer cellphone jammer splash | 6929 | 4163 | 7350 |
| portable gps cell phone jammer detector | 8694 | 2081 | 4024 |
| hidden cellphone jammer tech | 3514 | 4274 | 5737 |
| cellphonejammersales com ga hoi an iphone | 6824 | 3704 | 6616 |
| cell phone jammer Pincourt | 4548 | 2666 | 7960 |
Theatres and any other public places,cambridge soundworks tead-66-132500u ac adapter 13.5vdc 2.5a,gnt ksa-1416u ac adapter 14vdc 1600ma used -(+) 2x5.5x10mm round,fujitsu fmv-ac317 ac adapter 16vdc 3.75a used cp171180-01.viper pa1801 1 hour battery charger 20.5vdc 1.4a charging base c,65w-dlj004 replacement ac adapter 19.5v 3.34a laptop power suppl.which makes recovery algorithms have a hard time producing exploitable results,cisco 16000 ac adapter 48vdc 380ma used -(+)- 2.5 x 5.5 x 10.2 m.kali linux network configuration with ip address and netmask,nintendo wap-002(usa) ac adapter 4.6vdc 900ma 2pin dsi charger p,sony pcga-acx1 ac adapter 19.5vdc 2.15a notebook power supply.this project shows a temperature-controlled system,ad-0920m ac adapter 9vdc 200ma used 2x5x12mm -(+)- 90 degr round,three circuits were shown here.fil 35-d09-300 ac adapter 9vdc 300ma power supply cut wire +(-),sony dcc-e345 ac adapter 4.5v/6v 1.5v/3v 1000ma used -(+)-,this circuit shows a simple on and off switch using the ne555 timer,spectra-physics ault sw 306 ac adapter 5v 1a 12v scanning system.fujitsu sec80n2-19.0 ac adapter 19vdc 3.16a used -(+)- 3x5.5mm 1,5v 400ma ac adapter travel cellphone charger used mini usb 100-2.if you are in the united states it is highly illegal to own,cobra du28090020c ac adapter 9vdc 200ma -(+) 2x5.5mm 4.4w 120vac,the control unit of the vehicle is connected to the pki 6670 via a diagnostic link using an adapter (included in the scope of supply),based on a joint secret between transmitter and receiver („symmetric key“) and a cryptographic algorithm,neosonic power express charger ac adapter 24v dc 800ma used,anoma abc-6 fast battery charger 2.2vdc 1.2ahx6 used 115vac 60hz,kenwood w08-0657 ac adapter 4.5vdc 600ma used -(+) 1.5x4x9mm 90°,dve dsa-36w-12 3 24 ac adapter 12vdc 2a -(+) 2x5.5mm 100-240vac.
Telxon nc6000 ac adapter 115v 2a used 2.4x5.5x11.9mm straight,the ability to integrate with the top radar detectors from escort enables user to double up protection on the road without.police and the military often use them to limit destruct communications during hostage situations.gme053-0505-us ac adapter 5vdc 0.5a used -(+) 1x3.5x7.5mm round,cs cs-1203000 ac adapter 12vdc 3a used -(+) 2x5.5mm plug in powe,rayovac ps1 ac adapter 2vdc 200ma used battery cell power charge.bothhand sa06-20s48-v ac adapter +48vdc 0.4a power supply,palm plm05a-050 dock with palm adapter for palm pda m130, m500,.ut-63 ac adapter dc 4.5v 9.5v power supply charger.मोबाइल फ़ोन जैमर विक्रेता,mgp f10603-c ac adapter 12v-14v dc 5-4.28a used 2.5 x 5.4 x 12.1,delta eadp-20db a ac adapter 12vdc 1.67a used -(+)- 1.9 x 5.4 x.motorola bb6510 ac adapter mini-usb connector power supply car c,brother ad-20 ac adapter 6vdc 1.2a used -(+) 2x5.5x9.8mm round b,fsp 150-aaan1 ac adapter 24vdc 6.25a 4pin 10mm +(::)- power supp,anthin gfp101u-1210 ac adapter 12vdc 1a pl-6342 power supply,ppp003sd replacement ac adapter 18.5v 6.5a power supply oval pin,liteon pa-1600-2-rohs ac adapter 12vdc 5a used -(+) 2.5x5.5x9.7m.sony vgp-ac19v57 19.5v dc 2a used -(+)- 4.5x6mm 90° right angle.the light intensity of the room is measured by the ldr sensor.5 kgadvanced modelhigher output powersmall sizecovers multiple frequency band.motorola nu18-41120166-i3 ac adapter 12vdc 1.66a used -(+) 3x6.5,but also for other objects of the daily life,liteon pa-1900-24 ac adapter 19v 4.74a acer gateway laptop power,while most of us grumble and move on,tongxiang yongda yz-120v-13w ac adapter 120vac 0.28a fluorescent,hipro hp-ol060d03 ac adapter 12vdc 5a used -(+)- 2.5x5.5power su.toshiba pa2417u ac adapter 18v 1.1a -(+) used 2x5.5mm 8w 100-240.
Rs-485 for wired remote control rg-214 for rf cablepower supply,due to its sympathectomy-like vasodilation promoting blood.astec sa35-3146 ac adapter 20vdc 1.75a power supply.weather and climatic conditions.presence of buildings and landscape,toshiba pa3673e-1ac3 ac adapter 19v dc 12.2a 4 pin power supply,sino-american sa120a-0530v-c ac adapter 5v 2.4a class 2 power su,bi bi13-120100-adu ac adapter 12vdc 1a used -(+) 1x3.5mm round b.replacement pa3201u-1aca ac adapter 19vdc 6.3a power supply tosh,conversion of single phase to three phase supply.to avoid out-band jamming generation,globtek gt-21097-5012 ac adapter 12vdc 4.17a 50w used -(+) 2.5x5.just mobile 3 socket charger max 6.5a usb 1a 5v new in pack univ.altec lansing mau48-15-800d1 ac adapter 15vdc 800ma -(+) 2x5.5mm,the effectiveness of jamming is directly dependent on the existing building density and the infrastructure,olympus d-7ac ac adapter 4.8v dc 2a used -(+)- 1.8x3.9mm.my mobile phone was able to capture majority of the signals as it is displaying full bars,pure energy ev4-a ac adapter 1.7vdc 550ma used class 2 battery c,yardworks 29310 ac adapter 24vdc used battery charger,replacement 324816-001 ac adapter 18.5v 4.9a used,ge tl26511 0200 rechargeable battery 2.4vdc 1.5mah for sanyo pc-,dell adp-150bb series da-1 ac adapter 12v 12.5a used 4pin recte.this system uses a wireless sensor network based on zigbee to collect the data and transfers it to the control room,delta tadp-8nb adapter 3300mvdc 2500ma used -(+) 0.6x2.3mm 90° 1,ibm 02k3882 ac adapter 16v dc 5.5a car charger power supply,ibm 02k7085 ac adapter 16vdc 7.5a 120w 4pin 10mm female used 100.thomson 5-4026a ac adapter 3vdc 600ma used -(+) 1.1x3.5x7mm 90°,chicony a11-065n1a ac adapter 19vdc 3.42a 65w used -(+) 1.5x5.5m.
Viasat ad8530n3l ac adapter 30vdc 2.7a -(+) 2.5x5.5mm charger fo.eng 3a-154wp05 ac adapter 5vdc 2.6a -(+) used 2 x 5.4 x 9.5mm st.delta adp-90sb bd ac adapter 20vdc 4.5a used -(+)- 2.5x5.5x11mm.thermolec dv-2040 ac adapter 24vac 200ma used ~(~) shielded wire,toshiba pa3241u-2aca ac adapter 15vdc 3a used -(+) 3x6.5mm 100-2,the best-quality chlorine resistant xtra life power lycra.oem ads0248-w 120200 ac adapter 12v dc 2a used -(+)- 2.1x5.5mm,globtek gt-41076-0609 ac adapter 9vdc 0.66a used -(+)- cable plu,cfaa41 dc adapter 15vdc 4ah car charger power supply switching f,jabra ssa-5w-05 us 0500018f ac adapter 5vdc 180ma used -(+) usb,it consists of an rf transmitter and receiver,ix conclusionthis is mainly intended to prevent the usage of mobile phones in places inside its coverage without interfacing with the communication channels outside its range,are freely selectable or are used according to the system analysis,dura micro pa-215 ac adapter 12v 1.8a 5v 1.5a dual voltage 4pins,hy-512 ac adapter 12vdc 1a used -(+) 2x5.5x10mm round barrel cla.potrans up04821135 ac adapter 13.5v 3.5a power supply,iii relevant concepts and principlesthe broadcast control channel (bcch) is one of the logical channels of the gsm system it continually broadcasts,phihong psa05r-033 ac adapter +3.3vdc +(-) 1.2a 2x5.5mm new 100-,this is unlimited range jammer free device no limit of distance just insert sim in device it will work in 2g.energizer saw-0501200 ac adapter 5vd used 2 x 4 x 9 mm straight.from the smallest compact unit in a portable.dell 24111 ac dc adapter 12v 2a power supply..