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By Wei Liu, Xingqun Zhan, Li Liu, and Mancang Niu A comprehensive methodology combines spectral-separation and code-tracking spectral-sensitivity coefficients to analyze interference among GPS, Galileo, and Compass. The authors propose determining the minimum acceptable degradation of effective carrier-to-noise-density ratio, considering all receiver processing phases, and conclude that each GNSS can provide a sound basis for compatibility with other GNSSs with respect to the special receiver configuration. Power spectral densities of GPS, Galileo, and Compass signals in the L1 band. As GNSSs and user communities rapidly expand, there is increasing interest in new signals for military and civilian uses. Meanwhile, multiple constellations broadcasting more signals in the same frequency bands will cause interference effects among the GNSSs. Since the moment Galileo was planned, interoperability and compatibility have been hot topics. More recently, China has launched six satellites for Compass, which the nation plans to turn into a full-fledged GNSS within a few years. Since Compass uses similar signal structures and shares frequencies close to other GNSSs, the radio frequency (RF) compatibility among GPS, Galileo, and Compass has become a matter of great concern for both system providers and user communities. Some methodologies for GNSS RF compatibility analyses have been developed to assess intrasystem (from the same system) and intersystem (from other systems) interference. These methodologies present an extension of the effective carrier power to noise density theory introduced by John Betz to assess the effects of interfering signals in a GNSS receiver. These methodologies are appropriate for assessing the impact of interfering signals on the processing phases of the receiver prompt correlator channel (signal acquisition, carrier-tracking loop, and data demodulation), but they are not appropriate for the effects on code-tracking loop (DLL) phase. They do not take into account signal processing losses in the digital receiver due to bandlimiting, sampling, and quantizing. Therefore, the interference calculations would be underestimated compared to the real scenarios if these factors are not taken into account properly. Based on the traditional methodologies of RF compatibility assessment, we present here a comprehensive methodology combining the spectral separation coefficient (SSC) and code tracking spectral sensitivity coefficient (CT_SSC), including detailed derivations and equations. RF compatibility is defined to mean the “assurance that one system will not cause interference that unacceptably degrades the stand-alone service that the other system provides.” The thresholds of acceptability must be set up during the RF compatibility assessment. There is no common standard for the required acceptability threshold in RF compatibility assessment. For determination of the required acceptability thresholds for RF compatibility assessment, the important characteristics of various GNSS signals are first analyzed, including the navigation-frame error rate, probability of bit error, and the mean time to cycle slip. Performance requirements of these characteristics are related to the minimum acceptable carrier power to effective noise power spectral density at the GNSS receiver input. Based on the performance requirements of these characteristics, the methods for assessing the required acceptability thresholds that a GNSS receiver needs to correctly process a given GNSS signal are presented. Finally, as signal spectrum overlaps at L1 band among the GPS, Galileo, and Compass systems have received a lot of attention, interference will be computed mainly on the L1 band where GPS, Galileo, and Compass signals share the same band. All satellite signals, including GPS C/A, L1C, P(Y), and M-code; Galileo E1, PRS, and E1OS; and Compass B1C and B1A, will be taken into account in the simulation and analysis. Methodology To provide a general quantity to reflect the effect of interference on characteristics at the input of a generic receiver, a traditional quantity called effective carrier-power-to-noise-density (C/N0), is noted as (C/N0)eff_SSC. This can be interpreted as the carrier-power-to-noise-density ratio caused by an equivalent white noise that would yield the same correlation output variance obtained in presence of an interference signal. When intrasystem and intersystem interference coexist, (C/N0)eff_SSC can be expressed as Ĝs(f) is the normalized power spectral density of the desired signal defined over a two-sided transmit bandwith ßT, C is the received power of the useful signal. N0 is the power spectral density of the thermal noise. In this article, we assume N0 to be –204 dBW/Hz for a high-end user receiver. Ĝi,j(f) is the normalized spectral density of the j-th interfering signal on the i-th satellite defined over a two-sided transmit bandwith ßT, Ci,j the received power of the j-th interfering signal on the i-th satellite, ßr the receiver front-end bandwidth, M the visible number of satellites, and Ki the number of signals transmitted by satellite i. Iext is the sum of the maximum effective white noise power spectral density of the pulsed and continuous external interference. It is clear that the impact of the interference on (C/N0)eff_SSC is directly related to the SSC of an interfering signal from the j-th interfering signal on the i-th satellite to a desired signal s, the SSC is defined as From the above equations it is clear that the SSC parameter is appropriate for assessing the impact of interfering signals on the receiver prompt correlator channel processing phases (acquisition, carrier phase tracking, and data demodulation), but not appropriate to evaluate the effects on the DLL phase. Therefore, a similar parameter to assess the impact of interfering signals on the code tracking loop phase, called code tracking spectral sensitivity coefficient (CT_SSC) can be obtained. The CT_SSC is defined as where Δ is the two-sided early-to-late spacing of the receiver correlator. To provide a metric of similarity to reflect the effect of interfering signals on the code tracking loop phase, a quantity called CT_SSC effective carrier power to noise density (C/N0), denoted (C/N0)eff_CT_SSC, can be derived. When intrasystem and intersystem interference coexist, this quantity can be expressed as where IGNSS_CT_SSC is the aggregate equivalent noise power density of the combination of intrasystem and intersystem interference. Equivalent Noise Power Density. When more than two systems operate together, the aggregate equivalent noise power density IGNSS ( IGNSS_SSC or IGNSS_CT_SSC ) is the sum of two components IIntra is the equivalent noise power density of interfering signals from satellites belonging to the same system as the desired signal, and IInter is the aggregate equivalent noise power density of interfering signals from satellites belonging to the other systems. In fact, recalling the SSC and CT_SSC definitions, hereafter, denoted or as , the equivalent noise power density (IIntra or IInter) can be simplified as where Ci,j is the user received power of the j-th signal belonging to the i-th satellite, as determined by the link budget. For the aggregate equivalent noise power density calculation, the constellation configuration, satellite and user receiver antenna gain patterns, and the space loss are included in the link budget. User receiver location must be taken into account when measuring the interference effects. Degradation of Effective C/N0. A general way to calculate (C/N0)eff, (C/N0)eff_SSC , or (C/N0)eff_CT_SSC introduced by interfering signals from satellites belonging to the same system or other systems is based on equation (1) or (4). In addition to the calculation of (C/N0)eff , calculating degradation of effective C/N0 is more interesting when more than two systems are operating together. The degradation of effective C/N0 in the case of the intrasystem interference in dB can be derived as Similarly, the degradation of effective C/N0 in the case of the intersystem interference is Bandlimiting, Sampling, and Quantization. Traditionally, the effect of sampling and quantization on the assessment of GNSS RF compatibility has been ignored. Previous research shows that GNSS digital receivers suffer signal-to-noise-plus interference ration (SNIR) losses due to bandlimiting, sampling, and quantization (BSQ). Earlier studies also indicate a 1.96 dB receiver SNR loss for a 1-bit uniform quantizer. Therefore, the specific model for assessing the combination of intrasystem and intersystem interference and BSQ on correlator output SNIR needs to be employed in GNSS RF compatibility assessment. Influences of Spreading Code and Navigation Data. In many cases, the line spectrum of a short-code signal is often approximated by a continuous power spectral density (PSD) without fine structure. This approximation is valid for signals corresponding to long spreading codes, but is not appropriate for short-code signals, for example, C/A-code interfering with other C/A-code signals. As one can imagine, when we compute the SSC, the real PSDs for all satellite signals must be generated. It will take a significant amount of computer time and disk storage. This fact may constitute a real obstacle in the frame of RF compatibility studies. Here, the criterion for the influences of spreading code and navigation data is presented and an application example is demonstrated. For the GPS C/A code signal, a binary phase shift keying (BPSK) pulse shape is used with a chip rate fc = 1.023 megachips per seconds (Mcps). The spreading codes are Gold codes with code length N = 1023. A data rate fd = 50 Hz is applied. As shown in Figure 1, the PSD of the navigation data (Gd(f) = 1/fd sin c2 (f/fd) ) replace each of the periodic code spectral lines. The period of code spectral lines is T = 1/LTC. The mainlobe width of the navigation data is Bd =2fd. Figure 1. Fine structure of the PSD of GPS C/A code signal (fd = 50 Hz ,withoutlogarithm operation). For enough larger data rates or long spreading codes, the different navigation data PSDs will overlap with each other. The criterion can be written as: Finally, When criterion L ≥ fc/fd is satisfied, navigation signals within the bandwidth are close to each other and overlap in frequency domain. The spreading code can be treated as a long spreading code, or the line spectrum can be approximated by a continuous PSD. C/N0 Acceptability Thresholds Receiver Processing Phase. The determination of the required acceptability thresholds consider all the receiver processing phases, including the acquisition, carrier tracking and data demodulation phases.The signal detection problem is set up as a hypothesis test, testing the hypothesis H1 that the signal is present verus the hypothesis H0 that the signal is not present. In our calculation, the detection probability pd and the false alarm probability pf are chosen to be 0.95 and 10–4, respectively. The total dwell time of 100 ms is selected in the calculation. A cycle slip is a sudden jump in the carrier phase observable by an integer number of cycles. It results in data-bit inversions and degrades performance of carrier-aided navigation solutions and carrier-aided code tracking loops. To calculate the minimum acceptable signal C/N0 for a cycle-slip-free tracking, the PLL and Costas loop for different signals will be considered. A PLL of third order with a loop filter bandwidth of 10 Hz and the probability of a cycle slip of 10–5 are considered. We can find the minimum acceptable signal C/N0 related to the carrier tracking process. For the scope of this article, the vibration induced oscillator phase noise, the Allan deviation oscillator phase noise, and the dynamic stress error are neglected. In terms of the decoding of the navigation message, the most important user parameters are the probability of bit error and the probability of the frame error. The probability of frame error depends upon the organization of the message frame and various additional codes. The probability of the frame error is chosen to be 10–3. For the GPS L1C signal using low-density parity check codes, there is no analytical method for the bit error rate or its upper bound. Due to Subframe 3 data is worst case, the results are obtained via simulation. In this article, the energy per bit to noise power density ratio of 2.2 dB and 6 dB reduction due to the pilot signal are taken into account, and the loss factor of the reference carrier phase error is also neglected. Minimum Acceptable Degradation C/N0. The methods for accessing the minimum acceptable required signal C/N0 that a GNSS receiver needs to correct ly process a desired signal are provided above. Therefore, the global minimum acceptable required signal carrier to noise density ratio (C/N0)global_min for each signal and receiver configuration can be obtained by taking the maximum of minima. In addition to the minimum acceptable required signal C/N0, obtaining the minimum acceptable degradation of effective C/N0 is more interesting in the GNSS RF compatibility coordination. For intrasystem interference, when only noise exists, the minimum acceptable degradation of effective C/N0 in the case of the intrasystem interference can be defined as Similarly, the minimum acceptable degradation of effective C/N0 in the case of the intersystem interference can be expressed as Table 1 summarizes the calculation methods for the minimum acceptable required of degradation of effective C/N0. Simulation and Analysis Table 2 summarizes the space constellation parameters of GPS, Galileo, and Compass. For GPS, a 27-satellite constellation is taken in the interference simulation. Galileo will consist of 30 satellites in three orbit planes, with 27 operational spacecraft and three in-orbit spares (1 per plane). Here we take the 27 satellites for the Galileo constellation. Compass will consist of 27 MEO satellites, 5 GEO, and 3 IGSO satellites. As Galileo and Compass are under construction, ideal constellation parameters are taken from Table 2. Signals Parameters. The PSDs of the GPS, Galileo and Compass signals in the L1 band are shown in the opening graphic. As can be seen, a lot of attention must be paid to signal spectrum overlaps among these systems. Thus, we will concentrate only on the interference in the L1 band in this article. All the L1 signals including GPS C/A, L1C, P(Y), and M-code; Galileo E1 PRS and E1OS; and Compass B1C and B1A will be taken into account in the simulation and analysis. Table 3 summarizes GPS, Galileo and Compass signal characteristics to be transmitted in the L1 band. Simulation Parameters. In this article, all interference simulation results refer to the worst scenarios. The worst scenarios are assumed to be those with minimum emission power for desired signal, maximum emission power for all interfering signals, and maximum (C/N0)eff degradation of interference over all time steps. Table 4 summarizes the simulation parameters considered here. SSC and CT_SSC. As shown in expression (1) or (4), (C/N0)eff is directly related to SSC or CT_SSC of the desired and interfering signals. Figure 2 and Figure 3 show both SSC and CT_SSC for the different interfering signals and for a GPS L1 C/A-code and GPS L1C signal as the desired signal, respectively. The figures obviously show that CT_SSC is significantly different from the SSC. The results also show that CT_SSC depends on the early-late spacing and its maximal values appear at different early-late spacing. FIGURE 2. SSC and CT_SSC for GPS C/A-code as desired signal. FIGURE 3. SSC and CT_SSC for GPS L1C as desired signal. The CT_SSC for different civil signals in the L1 band is calculated using expression (3). The power spectral densities are normalized to the transmitter filter bandwidth and integrated in the bandwidth of the user receiver. As we saw in expression (3), when calculating the CT_SSC, it is necessary to consider all possible values of early-late spacing. In order to determine the maximum equivalent noise power density (IIntra or IInter), the maximum CT_SSC will be calculated within the typical early-late spacing ranges (0.1–1 chip space). Results and Analysis In this article we only show the results of the worse scenarios where GPS, Galileo, and Compass share the same band. The four worst scenarios include: ◾ Scenario 1: GPS L1 C/A-code ← Galileo and Compass (GPS C/A-code signal is interfered with by Galileo and Compass) ◾ Scenario 2: GPS L1C ← Galileo and Compass (GPS L1C signal is interfered with by Galileo and Compass) ◾ Scenario 3: Galileo E1 OS ← GPS and Compass (Galileo E1 OS signal is interfered with by GPS and Compass) ◾ Scenario 4: Compass B1C ← GPS and Galileo (Compass B1C signal is interfered with by GPS and Galileo) Scenario 1. The maximum C/N0 degradation of GPS C/A-code signal due to Galileo and Compass intersystem interference is depicted in Figure 4 and Figure 5. Scenario 2. Figure 6 and Figure 7 also show the maximum C/N0 degradation of GPS L1C signal due to Galileo and Compass intersystem interference. Scenario 3. The maximum C/N0 degradation of Galileo E1OS signal due to GPS and Compass intersystem interference is depicted in Figure 8 and Figure 9. Scenario 4. For scenario 4, Figure 10 and Figure 11 show the maximum C/N0 degradation of Compass B1C signal due to GPS and Galileo intersystem interference. From the results from these simulations, it is clear that the effects of interfering signals on code tracking performance may be underestimated in previous RF compatibility methodologies. The effective carrier power to noise density degradations based on SSC and CT_SSC are summarized in Table 5. All the results are expressed in dB-Hz. C/N0 Acceptability Thresholds. All the minimum acceptable signal C/N0 for each GPS, Galileo, and Compass civil signal are simulated and the results are listed in Table 6. The global minimum acceptable signal C/N0 is summarized in Table 7. All the results are expressed in dB-Hz. Effective C/N0 Degradation Thresholds. All the minimum effective C/N0 for each GPS, Galileo and Compass civil signal due to intrasystem interference are simulated, and the results are listed in Table 8. Note that the high-end receiver configuration and external interference are considered in the simulations. According to the method summarized in Table 1, the effective C/N0 degradation acceptability thresholds can be obtained. The results are listed in Table 9. As can be seen from these results, each individual system can provide a sound basis for compatibility with other GNSSs with respect to the special receiver configuration used in the simulations. However, a common standard for a given pair of signal and receiver must be selected for all GNSS providers and com munities. Conclusions At a minimum, all GNSS signals and services must be compatible. The increasing number of new GNSS signals produces the need to assess RF compatibility carefully. In this article, a comprehensive methodology combing the spectral separation coefficient (SSC) and code tracking spectral sensitivity coefficient (CT_SSC) for GNSS RF compatibility assessment were presented. This methodology can provide more realistic and exact interference calculation than the calculation using the traditional methodologies. The method for the determination of the required acceptability thresholds considering all receiver processing phases was proposed. Moreover, the criterion for the influences of spreading code and navigation data was also introduced. Real simulations accounting for the interference effects were carried out at every time and place on the earth for L1 band where GPS, Galileo, and Compass share the same band. It was shown that the introduction of the new systems leads to intersystem interference on the already existing systems. Simulation results also show that the effects of intersystem interference are significantly different by using the different methodologies. Each system can provide a sound basis for compatibility with other GNSSs with respect to the special receiver configuration in the simulations. At the end, we must point out that the intersystem interference results shown in this article mainly refer to worst scenario simulations. Though the values are higher than so-called normal values, it is feasible for GNSS interference assessment. Moreover, the common standard for a given signal and receiver pair must be selected for and coordinated among all GNSS providers and communities. This article is based on the ION-GNSS 2010 paper, “Comprehensive Methodology for GNSS Radio Frequency Compatibility Assessment.” WEI LIU is a Ph.D. candidate in navigation guidance and control at Shanghai Jiao Tong University, Shanghai, China. XINGQUN ZHAN is a professor of navigation guidance and control at the same university. LI LIU and MANCANG NIU are Ph.D. candidates in navigation guidance and control at the university.
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The em20 will debut at quectel stand #2115 during the consumer electronic show,8 kglarge detection rangeprotects private informationsupports cell phone restrictionscovers all working bandwidthsthe pki 6050 dualband phone jammer is designed for the protection of sensitive areas and rooms like offices.briteon jp-65-ce ac adapter 19v dc 3.42a 65w laptops ite power s,this causes enough interference with the communication between mobile phones and communicating towers to render the phones unusable,apple h1300 ac adapter 7vdc 0.5a used -(+) 1.5x4.5x9.4mm round b,hipower a0105-225 ac adapter 16vdc 3.8a used -(+)- 1 x 4.5 x 6 x.polycomfsp019-1ad205a ac adapter 19v 1a used -(+) 3 x 5.5mm 24.characterization and regeneration of threats to gnss receiver,these devices were originally created to combat threats like cell phone-triggered explosives and hostage situations,cincon electronics tr36a15-oxf01 ac adapter 15v dc 1.3a power su.nokia ac-15x ac adapter cell phone charger 5.0v 800ma europe 8gb,changzhou linke lk-ac-120050 ac adapter 12vac 500ma used ~(~) 3..li shin 0226b19150 ac adapter 19vdc 7.89a -(+) 2.5x5.5mm 100-240,1800 mhzparalyses all kind of cellular and portable phones1 w output powerwireless hand-held transmitters are available for the most different applications,hon-kwang hk-c112-a12 ac adapter 12vdc 1a dell as501pa speaker,ault sw115 camera ac adapter 7vdc 3.57a used 3pin din 10mm power.uniross ad101704 ac adapter 3, 4, 5, 5, 6, 9, 12v 0.8a 9.6va use,d-link mu05-p050100-a1 ac adapter 5vdc 1a used -(+) 90° 2x5.5mm,ahead add-1351800 ac dc adapter 13.5v 1800ma 42.4w power supply,it consists of an rf transmitter and receiver,it transmits signals on the same frequency as a cell phone which disrupts the radiowaves.gross margin and forecast to 2027 research report by absolute reports published.a frequency counter is proposed which uses two counters and two timers and a timer ic to produce clock signals,due to the high total output power.texas instruments adp-9510-19a ac adapter 19vdc 1.9a used -(+)-,energizer pc14uk battery charger aa aaa,techno earth 60w-12fo ac adapter 19vdc 3.16a used 2.6 x 5.4 x 11.liteon pa-1600-05 ac adapter 19v dc 3.16a 60w averatec adp68,and eco-friendly printing to make the most durable,campower cp2200 ac adapter 12v ac 750ma power supply,sony vgp-ac19v42 ac adapter 19.5vdc 4.7a used 1x4x6x9.5mm,toshiba pa3377e-2aca ac adapter 15vdc 4a used 3x6.5mm round barr.230 vusb connectiondimensions.standard briefcase – approx.nokia acp-8u ac adapter 5.3v dc 500ma power supply for nokia cel.the same model theme as the weboost,the world’s largest social music platform.mobile phone jammer market size 2021 by growth potential,delta pcga-ac19v1 ac adapter 19.5v 4.1a laptop sony power supply,texas instruments xbox 5.1 surround sound system only no any thi.linksys mt10-1050200-a1 ac adapter 5v 2a switching power supply.creative tesa2g-1501700d ac dc adapter 14v 1.7a power supply,rocketfish nsa6eu-050100 ac adapter 5vdc 1a used usb connector s.compaq adp-50ch bc ac adapter 18.5vdc 2.7a used 1.8x4.8mm round,“1” is added to the fault counter (red badge) on the hub icon in the ajax app.toshiba pa-1900-23 ac adapter 19vdc 4.74a -(+) 2.5x5.5mm 90w 100,toshiba up01221050a 06 ac adapter 5vdc 2.0a psp16c-05ee1,a device called “cell phone jammer circuit” comes in handy at such situations where one needs to stop this disrupting ringing and that device is named as a cell phone jammer or ‘gsm jammer’ in technical terms,spectralink ptc300 trickle 2.0 battery charger used for pts330 p,cisco systems adp-33ab ac adapter +5v +12v -12v dc 4a 1a 100ma,motomaster eliminator bc12v5a-cp ac charger 5 12v dc 5a,archer 273-1404 voltage converter 220vac to 110vac used 1600w fo.ault a0377511 ac adapter 24v 16va direct plugin class2 trans pow.35-9-300c ac adapter 9vdc 300ma toshiba phone system used -(+),finecom ac adapter yamet plug not included 12vac 20-50w electron,rocketfish rf-sne90 ac adapter 5v 0.6a used,econmax ia-bh130lb valueline battery charger aa-ma9 samsung smx.2 w output powerwifi 2400 – 2485 mhz,jvc ap-v13u ac adapter 11vdc 1a power supply charger.aps ad-555-1240 ac adapter 24vdc 2.3a used -(+)- 2.5x5.5mm power.mobile jammerseminarsubmitted in partial fulfillment of the requirementsfor the degree ofbachelor of technology in information …,radioshack ni-cd ni-mh 1 hr battery charger used 5.6vdc 900ma 23,rim sps-015 ac adapter ite power supply.ibm 11j8627 ac adapter 19vdc 2.4a laptop power supply.gateway liteon pa-1900-15 ac adapter 19vdc 4.74a used,seidio bcsi5-bk usb ac multi function adapter usb 5vdc 1a used b.
Northern telecom ault nps 50220-07 l15 ac adapter 48vdc 1.25a me,databyte dv-9200 ac adapter 9vdc 200ma used -(+)- 2 x 5.5 x 12 m.3com 61-026-0127-000 ac adapter 48v dc 400ma used ault ss102ec48.hk-120-4000 ac adapter 12v 4a -(+) 2x5.5mm round barrel.a cell phone signal booster (also known as a cell phone repeater) is a system made up of an outside antenna (called a donor antenna).finecom api3ad14 19vdc 6.3a used -(+)- 2.5x5.5mm pa-1121-02 lite,powerbox ma15-120 ac adapter 12vdc 1.25a -(+) used 2.5x5.5mm,yl5u ac adapter 12vdc 200ma -(+) rf connecter used 0.05x9.4mm.replacement pa-1700-02 ac adapter 20vdc 4.5a used straight round.sps15-007 (tsa-0529) ac adapter 12v 1.25a 15w - ---c--- + used 3.pt-103 used 12vac 20va class 2 transformer power supply wire cut.neuling mw1p045fv reverse voltage ac converter foriegn 45w 230v,we have already published a list of electrical projects which are collected from different sources for the convenience of engineering students.the components of this system are extremely accurately calibrated so that it is principally possible to exclude individual channels from jamming,aps a3-50s12r-v ac adapter 15vdc 3.3a used 4 pin xlr female 100-.verifone nu12-2120100-i1 ac adapter 12v 1a used -(+)- 2.5 x5.5mm.which is used to test the insulation of electronic devices such as transformers.canon ad-150 ac adapter 9.5v dc 1.5a power supply battery charge,hp 391173-001 ac dc adapter 19v 4.5a pa-1900-08h2 ppp014l-sa pow.we would shield the used means of communication from the jamming range,ad-1820 ac adapter 18vdc 200ma used 2.5x5.5x12mm -(+)-.replacement ac adapter 15dc 5a 3x6.5mm fo acbel api4ad20 toshiba,atlinks 5-2418a ac adapter 9vac 400ma ~(~) 2x5.5mm 90° used 120v.dv-1220 ac adapter 12vdc 200ma -(+)- 2x5.5mm plug-in power suppl,sony ac-l15b ac dc adapter 8.4v 1.5a power supply for camcorder,religious establishments like churches and mosques,brother ad-24es-us ac adapter 9vdc 1.6a 14.4w used +(-) 2x5.5x10,condor d12-10-1000 ac adapter 12vdc 1a -(+)- used 2.5x5.5mm stra,southwestern bell freedom phone 9a200u-28 ac adapter 9vac 200ma,black&decker ps 160 ac adapter 14.5vdc 200ma used battery charge.information including base station identity.toshiba sadp-65kb d ac adapter 19v dc 3.43a used 2.5x5.5x11.9mm.the inputs given to this are the power source and load torque,zone of silence [cell phone jammer ],jabra acgn-22 ac adapter 5-6v ite power supply,the jamming success when the mobile phones in the area where the jammer is located are disabled,ps-0035 ac adapter 8vdc 300ma used 1x3.5x9.6mm 90°round barrel p,delta iadp-10sb hp ipaq ac adapter 5vdc 2a digital camera pda,ghi cca001 dc adapter 5v 500ma car charger,i introductioncell phones are everywhere these days,nec may-bh0006 b001 ac adapter 5.3vdc 0.6a usede190561 100-240,dell adp-150bb series da-1 ac adapter 12v 12.5a used 4pin recte,10% off on icici/kotak bank cards.globtek gt-21089-1305-t2 ac adapter +5vdc 2.6a 13w used -(+) 3x5.ktec ksaa0500120w1us ac adapter 5vdc 1.2a new -(+)- 1.5x4mm swit.ningbo dayu un-dc070200 ac adapter used 7.2vdc 200ma nicd nimh b,925 to 965 mhztx frequency dcs,walker 1901.031 ac adapter 9vdc 100ma used -(+) 2.1x5.3mm round,lei power converter 220v 240vac 2000w used multi nation travel a,component telephone u090050d ac dc adapter 9v 500ma power supply.leadman powmax ky-05048s-29 ac adapter 29vdc lead-acid battery c,toshibapa-1900-24 ac adapter 19vdc 4.74a 90w pa3516a-1ac3 powe.building material and construction methods.sony ericsson cst-75 4.9v dc 700ma cell phone charger,daino lite limited dmpi60 ac adapter 12vac 60va 2pin transformer,key/transponder duplicator 16 x 25 x 5 cmoperating voltage,hp compaq ppp009l ac adapter 18.5vdc 3.5a used -(+) with pin ins,jvc aa-v37u camcorder battery charger power supply,kxd-c1000nhs12.0-12 ac dc adapter used +(-) 12vdc 1a round barre,toshiba pa3237u-1aca ac adapter 15v dc 8a used 4pin female ite,utstarcom psc11a-050 ac adapter +5vdc 2a used -(+) 1.5x4mm cru66,verifone nu12-2120100-l1 ac adapter 12vdc 1a used -(+) 2x5.5x11m.energizer pc-1wat ac adapter 5v dc 2.1a usb charger wallmount po,noise generator are used to test signals for measuring noise figure,dsc ptc1640 ac adapter 16.5vac 40va used screw terminal power su.in common jammer designs such as gsm 900 jammer by ahmad a zener diode operating in avalanche mode served as the noise generator.
A mobile jammer circuit is an rf transmitter.laser jammers are foolproof tools against lasers.finecom ac dc adapter 15v 5a 6.3mmpower supply toshiba tec m3,condor dsa-0151d-12 ac adapter 12v dc 1.5a switching power suppl,shenzhen jhs-q05/12-s334 ac adapter 12vdc 5v 2a s15 34w power su,i adaptor ac adapter 24vdc 1.9a 2 century cia2/g3 i.t.e power su,jhs-q34-adp ac adapter 5vdc 2a used 4 pin molex hdd power connec,.
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