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An alternative tool for detecting underground nuclear explosions? By Dorota A. Grejner-Brzezinska, Jihye Park, Joseph Helmboldt,  Ralph R. B. von Frese, Thomas Wilson, and Jade Morton Well-concealed underground nuclear explosions may go undetected by International Monitoring System sensors. An independent technique of detection and verification may be offered by GPS-based analysis of local traveling ionospheric disturbances excited by an explosion. Most of the work to date has been at the research demonstration stage; however, operational capability is possible, based on the worldwide GPS network of permanently tracking receivers. This article discusses a case study of detecting underground nuclear explosions using observations from GPS tracking stations and the Very Large Array radio telescope in New Mexico. More than 2,000 nuclear tests were carried out between 1945 and 1996, when the Comprehensive Nuclear Test Ban Treaty was adopted by the United Nations General Assembly. Signatory countries and the number of tests conducted by each country are the United States (1000+), the Soviet Union (700+), France (200+), the United Kingdom, and China (45 each). Three countries have broken the de facto moratorium and tested nuclear weapons since 1996: India and Pakistan in 1998 (two tests each), and the Democratic People’s Republic of Korea (DPRK) in 2006 and 2009, and most recently, in 2013. To date, 183 countries have signed the treaty. Of those, 159 countries have also ratified the treaty, including three nuclear weapon states: France, the Russian Federation, and the United Kingdom. However, before the treaty can enter into force, 44 specific nuclear-technology-holder countries must sign and ratify. Of these, India, North Korea and Pakistan have yet to sign the CTBT, and China, Egypt, Iran, Israel, and the United States have not ratified it. The treaty has a unique and comprehensive verification regime to make sure that no nuclear explosion goes undetected. The primary components of the regime are: The International Monitoring System: The IMS includes 337 facilities (85 percent completed to date) worldwide to monitor for signs of any nuclear explosions. International Data Center: The IDC processes and analyzes data registered at IMS stations and produces data bulletins. Global Communications Infrastructure: This transmits IMS data to the IDC, and transmits data bulletins and raw IMS data from IDC to member states. Consultation and Clarification: If a member state feels that data collected imply a nuclear explosion, this process can be undertaken to resolve and clarify the matter. On-Site Inspection: OSI is regarded as the final verification measure under the treaty. Confidence-Building Measures: These are voluntary actions. For example, a member state will notifying CTBTO when there will be large detonations, such as a chemical explosion or a mining blast. The IMS (see Figure 1) uses the following state-of-the-art technologies. Numbers given reflect the target configuration: Seismic: Fifty primary and 120 auxiliary seismic stations monitor shockwaves in the Earth. The vast majority of these shockwaves — many thousands every year — are caused by earthquakes. But man-made explosions such as mine explosions or the North Korean nuclear tests in 2006, 2009, and 2013 are also detected. Hydroacoustic: As sound waves from explosions can travel extremely far underwater, 11 hydroacoustic stations “listen” for sound waves in the Earth oceans. Infrasound: Sixty stations on the surface of the Earth can detect ultra-low-frequency sound waves that are inaudible to the human ear, which are released by large explosions. Radionuclide: Eighty stations measure the atmosphere for radioactive particles; 40 of them can also detect the presence of noble gas. Figure 1. The International Monitoring System (IMS): worldwide facilities grouped by detection technologies used. Only the radionuclide measurements can give an unquestionable indication as to whether an explosion detected by the other methods was actually nuclear or not. The observing stations are supported by 16 radionuclide laboratories. Since radionuclide detection method provides the ultimate verification as far as the type of blast goes, it should be mentioned that while the 2006 North Korean event (yield of less than a kiloton) was detected by the IMS stations in more than 20 different sites within two hours of detonation, and both seismic signal and radioactive material were detected, the 2009 event (yield of a few kilotons) was detected by 61 IMS stations; seismic and infrasound signals were detected, but no radioactive material was picked up by the radionuclide stations. Seismic signal was consistent with a nuclear test, but there was no “ultimate” proof by the radionuclide method. Thus, well-concealed underground nuclear explosions (UNEs) may be undetected by some of the IMS sensors (such as the  radionuclide network). This raises a question: Is there any other technology that is readily available that can detect and discriminate various types of blasts, particularly those of nuclear type? Recent experiments have shown that an independent technique of detection and verification may be offered by GPS-based analysis of local traveling ionospheric disturbances (TIDs) excited by an explosion. GNSS-Based Detection Atmospheric effects from mostly atmospheric nuclear explosions have been studied since the 1960s.The ionospheric delay in GNSS signals observed by the ground stations can be processed into total electron content (TEC), which is the total number of electrons along the GNSS signal’s path between the satellite and the receiver on the ground. The TEC derived from the slant signal path, referred to as the slant TEC (STEC), can be observed and analyzed to identify disturbances associated with the underground nuclear explosion. STEC signature (in spectral and/or spatial-temporal domains) can be analyzed to detect local traveling ionospheric disturbances (TID). TID can be excited by acoustic gravity waves from a point source, such as surface or underground explosions, geomagnetic storms, tsunamis, and tropical storms. TIDs can be classified as Large-Scale TID (LSTID) and Medium-Scale TID (MSTID) based on their periods regardless of the generation mechanism. The periods of LSTIDs generally range between 30–60 minutes to several hours, and those of MSTIDs range from 10 to 40 or even 60 minutes. LSTIDs mostly occur from geophysical events, such as geomagnetic storms, which can be indicated by global Kp indices, while MSTIDs are genrally not related to any high score Kp indices. An underground nuclear explosion can result in an MSTID. TIDs are generated either by internal gravity wave (IGW) or by acoustic gravity wave (AGW). The collisional interaction between the neutral and charged components cause ionospheric responses. The experimental results indicate IGWs can change the ozone concentration in the atmosphere. In the ionosphere, the motion of the neutral gas in the AGW sets the ionospheric plasma into motion. The AGW changes the iso-ionic contours, resulting in a traveling ionospheric disturbance. The past 10–15 years has resulted in a significant body of research, and eventually a practical application, with worldwide coverage, of GPS-based ionosphere monitoring. A significant number of International GNSS Service (IGS) permanent GNSS tracking stations (see Figure 2) form a powerful scientific tool capable of near real-time monitoring and detection of various ionospheric anomalies, such as those originating from the underground nuclear explosions (UNEs). Figure 2. The IGS global tracking network of 439 stations. The network is capable of continuously monitoring global ionospheric behavior based on ionospheric delays in the GNSS signals. The GNSS signals are readily accessible anywhere on Earth at a temporal resolution ranging from about 30 seconds up to less than 1 second. A powerful means to isolate and relate disturbances observed in TEC measurements from different receiver-satellite paths is to analyze the spectral coherence of the disturbances. However, in our algorithms, we emphasize the spatial and temporal relationship among the TEC observations. Spatial and temporal fluctuations in TEC are indicative of the dynamics of the ionosphere, and thus help in mapping TIDs excited by acoustic-gravity waves from point sources, as well as by geomagnetic storms, tropical storms, earthquakes, tsunamis, volcanic explosions, and other effects. Methodology of UNE Detection Figure 3 illustrates the concept of the generation of the acoustic gravity wave by a UNE event, and its propagation through the ionosphere that results in a traveling ionospheric disturbance (TID). The primary points of our approach are: (1) STEC is calculated from dual-frequency GPS carrier phase data, (2) after eliminating the main trend in STEC by taking the numerical third order horizontal 3-point derivatives, the TIDs are isolated, (3) we assume an array signature of the TID waves, (4) we assume constant radial propagation velocity, vT, using an apparent velocity, vi, of the TID at the ith observing GNSS station, (5) since the TID’s velocity is strongly affected by the ionospheric wind velocity components, vN and vE, in the north and east directions, respectively, the unknown parameters,vT, vN, and vE, can be estimated relative to the point source epicenter, and (6) if more than six GNSS stations in good geometry observe the TID in GNSS signals, the coordinates of the epicenter can also be estimated. Figure 3a. Pictorial representation of the scenario describing a GNSS station tracking a satellite and the ionospheric signal (3-point STEC derivative); not to scale. Figure 3b. The scenario describing a GNSS station tracking a satellite and the ionospheric signal and a point source (e.g., UNE) that generates acoustic gravity waves; not to scale. Figure 3c. The scenario describing a GNSS station tracking a satellite and the ionospheric signal, and the propagation of the acoustic gravity waves generated by a point source (e.g., UNE); not to scale. Figure 3d. The scenario describing a GNSS station tracking a satellite and the ionospheric signal, at the epoch when the GNSS signal is affected by the propagation of the acoustic gravity waves generated by a point source (e.g., UNE); not to scale. Figure 3e. Same as 3D, indicating that the geometry between GNSS station, the satellite and the IPP can be recovered and used for locating the point source; multiple GNSS stations are needed to find the point source location and the the velocity components of TID and ionospheric winds; not to scale. Figure 3f. Same as 3D, after the TID wave passed the line of sight between the GNSS stations and the satellite; not to scale. Figure 4 illustrates the geometry of detection of the point source epicenter. Determination of the epicenter of the point source that induced TIDs can be achieved by trilateration, similarly to GPS positioning concept. The TIDs, generated at the point source, propagate at certain speed, and are detected by multiple GPS stations. The initial assumption in our work was to use a constant propagation velocity of a TID. By observing the time of TID arrival at the ionospheric pierce point (IPP), the travel distance from the epicenter to the IPP of the GPS station that detected a TID (which is the slant distance from the ith station and the kth satellite) can be derived using a relationship with the propagation velocity. In this study, we defined a thin shell in the ionosphere F layer, 300 kilometers above the surface, and computed the IPP location for each GPS signal at the corresponding time epoch of TID detection. Figure 4. Geometry of point source detection based on TID signals detected at the IPP of GPS station, i, with GPS satellite k. Unknown: coordinates of the point source, ( ф, λ ); three components of TID velocity vT, vN, and vE ; Observations: coordinates of IPP, (xik, yik, zik) and the corresponding time epoch to TID arrival at IPP, tik; Related terms: slant distance between IPP and UNE, sik; horizontal distance between the point source epicenter and the GPS station coordinates, di; azimuth and the elevation angle of IPP as seen from the UNE, αjk and εjk , respectively. Very Large Array (VLA) In addition to GNSS-based method of ionosphere monitoring, there are other more conventional techniques, for example, ground-based ionosondes, high-frequency radars, Doppler radar systems, dual-frequency altimeter, and radio telescopes. In our research, we studied the ionospheric detection of UNEs using GPS and the Very Large Array (VLA) radio telescope. The VLA is a world-class UHF/VHF interferometer 50 miles west of Socorro, New Mexico. It consists of 27 dishes in a Y-shaped configuration, each one 25 meters in diameter, cycled through four configurations (A, B, C, D) spanning 36, 11, 3.4, and 1 kilometers, respectively. The instrument measures correlations between signals from pairs of antennas, used to reconstruct images of the sky equivalent to using a much larger single telescope. While conducting these observations, the VLA provides 27 parallel lines of sight through the ionosphere toward cosmic sources. Past studies have shown that interferometric radio telescopes like the VLA can be powerful tools for characterizing ionospheric fluctuations over a wide range of amplitudes and scales. We used these new VLA-based techniques and a GPS-based approach to investigate the signature of a TID originated by a UNE jointly observed by both GPS and the VLA. For this case study, we selected one of the 1992 U.S. UNEs for which simultaneous GPS and VLA data were available. Table 1. Characteristics of the analyzed events (UNEs). Experimental Results We summarize here the test studies performed by the OSU group in collaboration with Miami University and the U.S. Naval Research Laboratory on detection and discrimination of TIDs resulting from UNEs using the GNSS-based and VLA-based techniques. Table 1 lists the UNE events that have been analyzed to date. As of March 2013, the results of the 2013 North Korean UNE were not fully completed, so they are not included here. In the 2006 and 2009 North Korean UNE experiments, STEC data from six and 11 nearby GNSS stations, respectively, were used. Within about 23 minutes to a few hours since the explosion, the GNSS stations detected the TIDs, whose arrival time for each station formulated the linear model with respect to the distance to the station. TIDs were observed to propagate with speeds of roughly 150–400 m/s at stations about 365 km to 1330 km from the explosion site. Considering the ionospheric wind effect, the wind-adjusted TIDs located the UNE to within about 2.7 km of its seismically determined epicenter (for the 2009 event; no epicenter location was performed for the 2006 event due to insufficient data). The coordinates estimated by our algorithm are comparable to the seismically determined epicenter, with the accuracy close to the seismic method itself. It is important to note that the accuracy of the proposed method is likely to improve if the stations in better geometry are used and more signals affected by a TID can be observed. An example geometry of UNE detection is shown in Figure 5. Figure 5. Locations of the underground nuclear explosion (UNE) in 2009 and GNSS stations C1 (CHAN), C2 (CHLW), D1 (DAEJ), D2 (DOND), I1 (INJE), S1 (SUWN), S2 (SHAO), S3 (SOUL), U1 (USUD), Y1 (YANP), Y2 (YSSK) on the coastline map around Korea, China, and Japan. The TID waves are highlighted for stations C1, D1, D2, I1. The bold dashed line indicates the ground track for satellite PRN 26 with dots that indicating the arrival times of the TIDs at their IPPs. All time labels in the figure are in UTC. For the Hunters Trophy and the Divider UNE tests, the array signature of TIDs at the vicinity of GPS stations was observed for each event. By applying the first-order polynomial model to compute the approximate velocity of TID propagation for each UNE, the data points — that is the TID observations — were fit to the model within the 95 percent confidence interval, resulting in the propagation velocities of 570 m/s and 740 m/s for the Hunters Trophy and the Divider, respectively. The VLA has observing bands between 1 and 50 GHz, and prior to 2008 had a separate VHF system with two bands centered at 74 and 330  MHz. A new wider-band VHF system is currently being commissioned. The VHF bands and L-band (1.4 GHz) are significantly affected by the ionosphere in a similar way as the GPS signal. In this study, we used VLA observations at L-band of ionospheric fluctuations as an independent verification of the earlier developed method based on the GNSS TID detection for UNE location and discrimination from TIDs generated by other types of point sources. The VLA, operated as an interfer-ometer, measures the correlation of complex voltages from each unique pair of antennas (baselines), to produce what are referred to as visibilities. Each antenna is pointed at the same cosmic source; however, due to spatial separation, each antenna’s line of sight passes through a different part of the ionosphere. Consequently, the measured visibilities include an extra phase term due to the difference in ionospheric delays, which translates to distortions in the image made with the visibilities. This extra phase term is proportional to the difference in STEC along the lines of sight of the two telescopes that form a baseline. Thus, the interferometer is sensitive to the STEC gradient rather than STEC itself, which renders it capable of sensing both temporal and spatial fluctuations in STEC. The spectral analysis was performed on the STEC gradients recovered from each baseline that observed the Hunters Trophy event. Briefly, a time series of the two-dimensional STEC gradient is computed at each antenna. Then, a three-dimensional Fourier transform is performed, one temporal and two spatial, over the array and within a given time period (here ~15 minutes). The resulting power spectrum then yields information about the size, direction, and speed of any detected wavelike disturbances within the STEC gradient data. Roughly 20 to 25 minutes after the UNE, total fluctuation power increased dramatically (by a factor of about 5×103).  At this time, the signature of waves moving nearly perpendicular to the direction from Hunters Trophy (toward the northeast and southwest) was observed using the three-dimensional spectral analysis technique. These fluctuations had wavelengths of about 2 km and inferred speeds of 2-8 m s-1. This implies that they are likely due to small-scale distortions moving along the wavefront, not visible with GPS. Assuming that these waves are associated with the arrival of disturbances associated with the Hunters Trophy event, a propagation speed of 570–710 m/s was calculated, which is consistent with the GPS results detailed above. In addition, a TID, possibly induced by the February 12, 2013, North Korean UNE, was also detected using the nearby IGS stations, by the detection algorithm referred to earlier. Eleven TID waves were found from ten IGS stations, which were located in South Korea, Japan, and Russia. Due to the weakness of the geometry, the epicenter and the ionospheric wind velocity were not determined at this point. The apparent velocity of TID was roughly about 330–800 m/s, and was calculated using the arrival time of the TID after the UNE epoch and the slant distance between the corresponding IPP and the epicenter. The reported explosion yield was bigger, compared to the 2009 North Korean UNE, which possibly affected the propagation velocity by releasing a stronger energy. However, more in-depth investigation of this event and the corresponding GPS data is required. Conclusions Research shows that UNEs disturb the ionosphere, which results in TIDs that can be detected by GNSS permanent tracking stations as well as the VLA. We have summarized several GNSS-based TID detections induced by various UNEs, and verified the GNSS-based technique independently by a VLA-based method using the 1992 U.S. UNE, Hunters Trophy. It should be noted that VLA observation was not available during the time of the Divider UNE test; hence, only the Hunters Trophy was jointly detected by GPS and the VLA. Our  studies performed to date suggest that the global availability of GNSS tracking networks may offer a future UNE detection method, which could complement the International Monitoring System (IMS). We have also shown that radio-frequency arrays like the VLA may also be a useful asset for not only detecting UNEs, but for obtaining a better understanding of the structure of the ionospheric waves generated by these explosions. The next generation of HV/VHF telescopes being developed (such as the Lower Frequency Array in the Netherlands, the Long Wavelength Array in New Mexico, the Murchison Widefield Array in Australia) utilize arrays of dipole antennas, which are much cheaper to build and operate and are potentially portable. It is conceivable that a series of relatively economical and relocatable arrays consisting of these types of dipoles could provide another valuable supplement to the current IMS in the future, particularly for low-yield UNEs that may not be detectable with GPS. Acknowledgment This article is based on a paper presented at the Institute of Navigation Pacific PNT Conference held April 22–25, 2013, in Honolulu, Hawaii. Dorota A. Grejner-Brzezinska is a professor and chair, Department of Civil, Environmental and Geodetic Engineering, and director of the Satellite Positioning and Inertial Navigation (SPIN) Laboratory at The Ohio State University. Jihye Park recently completed her Ph.D. in Geodetic Science program at The Ohio State University. She obtained her B.A. and M.S degrees in Geoinformatics from The University of Seoul, South Korea. Joseph Helmboldt is a radio astronomer within the Remote Sensing Division of the U.S. Naval Research Laboratory. Ralph R.B. von Frese is a professor in the Division of Earth and Planetary Sciences of the School of Earth Sciences at Ohio State University. Thomas Wilson is a radio astronomer within the Remote Sensing Division of the U.S. Naval Research Laboratory. Yu (Jade) Morton is a professor in the Department of Electrical and Computer Engineering at Miami University.

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The operating range does not present the same problem as in high mountains,developed for use by the military and law enforcement,delta adp-110bb ac adapter 12vdc 4.5a 6pin molex power supply.phihong psa31u-120 ac adapter 12vdc 2.5a -(+) 2x5.5mm used barre,71109-r ac adapter 24v dc 500ma power supply tv converter.yixin electronic yx-3515a1 ac adapter 4.8vdc 300ma used -(+) cut,fujitsu seb100p2-19.0 ac adapter 19vdc 4.22a -(+) used 2.5x5.5mm,ast ad-4019 eb1 ac adapter 19v 2.1a laptop power supply,here is the project showing radar that can detect the range of an object,digital adp-45gb rev.d a ac adapter used 19vdc 2.4a,nec may-bh0006 b001 ac adapter 5.3vdc 0.6a usede190561 100-240,palm plm05a-050 dock for palm pda m130, m500, m505, m515 and mor,wahl adt-1 ac adapter 1.2vdc 2000ma used -(+) 0.9x3.7x7.5mm roun.delta adp-90fb rev.e ac adapter 19vdc 4.7a used 3 x 5.5 x 11.8mm.this circuit uses a smoke detector and an lm358 comparator.dve dsa-0301-05 ac adapter 5vdc 4a 4pin rectangle connector swit.replacement pa-1900-18h2 ac adapter 19vdc 4.74a used -(+)- 4.7x9,ssb-0334 adapter used 28vdc 20.5v 1.65a ite power supply 120vac~,which implements precise countermeasures against drones within 1000 meters.dsa-0051-03 ac dc adapter 5v 1000ma power supply,bearing your own undisturbed communication in mind,nokia ac-5e ac adapter cell phone charger 5.0v 800ma euorope ver.our pharmacy app lets you refill prescriptions,du-bro kwik-klip iii ac adapter 1.5vdc 125ma power supply.t027 4.9v~5.5v dc 500ma ac adapter phone connector used travel,phase sequence checking is very important in the 3 phase supply,nyko charge station 360 for nyko xbox 360 rechargeable batteries,frequency correction channel (fcch) which is used to allow an ms to accurately tune to a bs.doing so creates enoughinterference so that a cell cannot connect with a cell phone,avaya 1151b1 power injector 48v 400ma switchin power supply.aciworld 48-7.5-1200d ac adapter 7.5v dc 1200ma power supply.cui inc epa-201d-09 ac adapter 9vdc 2.2a used -(+)- 2x5.4mm stra,axis a41312 ac adapter 12vdc 1100ma used -(+) 2.5x5.5x13mm 90° r.rayovac ps8 9vdc 16ma class 2 battery charger used 120vac 60hz 4.a portable mobile phone jammer fits in your pocket and is handheld,eng 3a-161wp05 ac adapter 5vdc 2.6a -(+) 2x5.5mm used 100vac swi.blackberry rim psm05r-050q 5v 0.5a ac adapter 100 - 240vac ~ 0.1.desktop 420/460pt e191049 ac dc adapter 24v 1.25a 950-302686,sl waber ds2 ac adapter 15a used transiet voltage surge suppress,creative sw-0920a ac adapter 9vdc 2a used 1.8x4.6x9.3mm -(+)- ro,qualcomm txaca031 ac adapter 4.1vdc 550ma used kyocera cell phon,maxell nc-mqn01nu ni-mh & ni-cd wallmount battery charger 1.2v d,toshiba pa3546e-1ac3 ac adapter 19vdc 9.5a satellite laptop.high voltage generation by using cockcroft-walton multiplier,as a result a cell phone user will either lose the signal or experience a significant of signal quality,nec adp57 ac dc adapter 15v 4a 60w laptop versa lx lxi sx.dell adp-lk ac adapter 14vdc 1.5a used -(+) 3x6.2mm 90° right,leadman powmax ky-05048s-29 ac adapter 29vdc lead-acid battery c,milwaukee 48-59-2401 12vdc lithium ion battery charger used,2100-2200 mhzparalyses all types of cellular phonesfor mobile and covert useour pki 6120 cellular phone jammer represents an excellent and powerful jamming solution for larger locations.delhi along with their contact details &,950-950015 ac adapter 8.5v 1a power supply,wattac ba0362z1-8-b01 ac adapter 5v 12vdc 2a used 5pin mini din,tif 8803 battery charger 110v used 2mm audio pin connector power.tyco rc c1897 ac adapter 8.5vdc 420ma 3.6w power supply for 7.2v.l.t.e lte12w-s2 ac adapter 12vdc 1a 12w power supply,dell aa20031 ac adapter 20vdc 3.5a 70w dell latitude c series,a cordless power controller (cpc) is a remote controller that can control electrical appliances.the jammer is certain immediately,fisher-price na090x010u ac adapter 9vdc 100ma used 1.5x5.3mm,sos or searching for service and all phones within the effective radius are silenced,it is convenient to open or close a …,this project shows the control of appliances connected to the power grid using a pc remotely,biogenik 3ds/dsi ac adapter used 4.6v 1a car charger for nintend.linksys ls120v15ale ac adapter 12vdc 1.5a used -(+) 2x5mm 100-24.50/60 hz transmitting to 24 vdcdimensions,skynet hyp-a037 ac adapter 5vdc 2400ma used -(+) 2x5.5mm straigh,austin adp-bk ac adapter 19v dc 1.6a used 2.5x5.5x12.6mm.compaq ppp003 series adp-50ub ac adapter 18.5v 2.7a,toshiba pa2440u ac adapter 15vdc 2a laptop power supply.conair spa-2259 ac adapter 18vac 420ma used ~(~) 2x5.5x11mm roun,ac adapter 5.2vdc 450ma used usb connector switching power supp.ibm 07h0629 ac adapter 10vdc 1a used -(+)- 2 x 5 x 10 mm round b,blackberry bcm6720a battery charger 4.2vdc 0.75a used asy-07042-,apple design m2763 ac adapter 12vdc 750ma -(+) 2.5x5.5mm used 12.cui inc epas-101w-05 ac adapter 5vdc 2a (+)- 0.5x2.3mm 100-240va.jammer detector is the app that allows you to detect presence of jamming devices around,sony ac-e351 ac adapter 3v 300ma power supply with sony bca-35e,cincon tr100a240 ac adapter 24vdc 4.17a 90degree round barrel 2.,reverse polarity protection is fitted as standard,3 w output powergsm 935 – 960 mhz.intermec 074246 5v 3a ite power supply 851-089-001,delta electronics adp-50sh rev. b ac adapter 12vdc 4.16a used 4-,targus apa30us ac adapter 19.5vdc 90w max used universal.motorola ssw-0864 cellphone charger ac adapter 5vdc 550ma used,canon ca-560 ac dc adapter 9.5v 2.7a power supply.toshiba pa2478u ac dc adapter 18v 1.7a laptop power supply,while the human presence is measured by the pir sensor,dve dsc-6pfa-05 fus 070070 ac adapter 7v 0.7a switching power su.

Hp pa-1650-32hj ac adapter 19.5vdc 3.5a used 5 x 7.4 x 12.6 mm s,black & decker ua060020 ac adapter 6v ac ~ 200ma used 2x5.5mm,panasonic pv-a19-k ac adapter 6vdc 1.8a used battery charger dig,ibm ac adapter-30 84g2128 4pin 20-10vdc 1.5-3a power supply.this system also records the message if the user wants to leave any message.retrak whafr24084001 ac adapter 19vdc 3.42a used 4.2x6mm power s,voltage controlled oscillator,databyte dv-9300s ac adapter 9vdc 300ma class 2 transformer pow.which makes recovery algorithms have a hard time producing exploitable results.it can not only cut off all 5g 3g 4g mobile phone signals.sharp ea-r1jv ac adapter 19vdc 3.16a -(+) used 2.8x5.4x9.7mm 90,linearity lad6019ab4 ac adapter 12vdc 4a-(+)- 2.5x5.5mm 100-24,sensormatic 0300-0914-01 ac adapter 12/17/20/24v 45va used class.dell eadp-90ab ac adapter 20v dc 4.5a used 4pin din power supply.2w power amplifier simply turns a tuning voltage in an extremely silent environment,goldfear ac adapter 6v 500ma cellphone power supply,a frequency counter is proposed which uses two counters and two timers and a timer ic to produce clock signals,compaq 340754-001 ac adapter 10vdc 2.5a used - ---c--- + 305 306,apx sp40905q ac adapter 5vdc 8a 6pin 13mm din male 40w switching.a51813d ac adapter 18vdc 1300ma -(+)- 2.5x5.5mm 45w power supply.placed in front of the jammer for better exposure to noise.hp ppp016c ac adapter 18.5vdc 6.5a 120w used,5 ghz range for wlan and bluetooth.here is the circuit showing a smoke detector alarm,archer 273-1651 ac adapter 9vdc 500ma used +(-) 2x5x12mm round b.globtek gt-4076-0609 ac adapter 9vdc 0.66a -(+)- used 2.6 x 5.5,new bright a865500432 12.8vdc lithium ion battery charger used 1,condor dv-51aat ac dc adapter 5v 1a power supply,he sad5012se ac adapter 12vdc 4.3a used -(+) 2x5.5x11.2mm round.lionville ul 2601-1 ac adapter 12vdc 750ma-(+)- used 2.5x5.5mm.th 5vdc 11v used travel charger power supply 90-250vac phone,finecom ac adpter 9vdc 4a 100-240vac new,conair tk953rc dual voltage converter used 110-120vac 50hz 220v.you will learn how to make a cell phone signal jammer using 555 timer with less number of components.wahl dhs-24,26,28,29,35 heat-spy ac adapter dc 7.5v 100ma.qualcomm cxdtc051 ac adapter 8.4dc 1025ma ac power supply.both outdoors and in car-park buildings.has released the bx40c rtk board to support its series of gnss boards and provide highly accurate and fast positioning services,sps15-007 (tsa-0529) ac adapter 12v 1.25a 15w - ---c--- + used 3.dve dsa-9pfb-09 fus 090100 ac adapter +9v 1a used -(+)- 2x5.5mm.hoover series 500 ac adapter 8.2vac 130ma used 2x5.5x9mm round b.this task is much more complex.linksys wa15-050 ac adapter 5vdc 2.5a used -(+) 2.5x5.5mm round.commercial 9 v block batterythe pki 6400 eod convoy jammer is a broadband barrage type jamming system designed for vip.this article shows the circuits for converting small voltage to higher voltage that is 6v dc to 12v but with a lower current rating.2016 3 - 5 28 nov 2016 - minutes business arising from the minutes,targus 800-0085-001 a universal ac adapter ac70u 15-24vdc 65w 10.wireless mobile battery charger circuit.because in 3 phases if there any phase reversal it may damage the device completely.billion paw012a12us ac adapter 12vdc 1a power supply.a1036 ac adapter 24vdc 1.875a 45w apple g4 ibook like new replac.sac1105016l1-x1 ac adapter 5vdc 500ma used usb connecter,the jammer covers all frequencies used by mobile phones.d-link ad-071al ac adapter 7.5vdc 1a 90° 2x5.5mm 120vac used lin.sanyo scp-01adtac adapter 5.5v 950ma travel charger for sanyo,akii a05c1-05mp ac adapter +5vdc 1.6a used 3 x 5.5 x 9.4mm.ault mw153kb1203f01 ac adapter 12vdc 3.4a -(+) used 2.5x5.5 100-.ilan f1560 (n) ac adapter 12vdc 2.83a -(+) 2x5.5mm 34w i.t.e pow.dymo dsa-42dm-24 2 240175 ac adapter 24vdc 1.75a used -(+) 2.5x5,ibm 92p1113 ac adapter 20v dc 4.5a 90w used 1x5.2x7.8x11.2mm,dve dsa-30w-05 us 050200 ac adapter+5v dc 4.0a used -(+) 1.3x3,a cell phone works by interacting the service network through a cell tower as base station,apple m4551 studio display 24v dc 1.875a 45w used power supply,when vt600 anti- jamming car gps tracker detects gsm jammer time continue more than our present time,dve dsa-12pfa-05 fus 050200 ac adapter +5vdc 2a used -(+) 0.5x2x,toshiba pa2450u ac adapter 15v dc 3a 45w new power supply,chd-hy1004 ac adapter 12v 2a 5v 2a used multiple connectors,ibm 49g2192 ac adapter 20-10v 2.00-3.38a power supply49g2192 4,if you are looking for mini project ideas,three circuits were shown here,ac car adapter phone charger 2x5.5x9.5cm 90°right angle round ba,nec adp-150nb c ac adapter 19vdc 8.16a used 2.5 x 5.5 x 11 mm,tyco 610 ac adapter 25.5vdc 4.5va used 2pin hobby transformer po.hp pa-1151-03hv ac adapter 19vdc 7.89a used 1 x 5 x 7.4 x 12.6mm.ibm thinkpad 73p4502 ac dc auto combo adapter 16v 4.55a 72w,motorola bc6lmvir01 class 2 radio battery charger used 11vdc 1.3,the jamming radius is up to 15 meters or 50 ft,accordingly the lights are switched on and off,delta adp-60xb ac adapter 19vdc 3.16a laptop power supply,520-ps12v2a medical power supply 12v 2.5a with awm e89980-a sunf,which broadcasts radio signals in the same (or similar) frequency range of the gsm communication.liteon pa-1480-19t ac adapter (1.7x5.5) -(+)- 19vdc 2.6a used 1..the third one shows the 5-12 variable voltage.the transponder key is read out by our system and subsequently it can be copied onto a key blank as often as you like,d-link jta0302b ac adapter 5vdc 2.5a used -(+) 90° 120vac power,sil ssa-100015us ac adapter 10vdc 150ma used -(+) 2.5x5.5x12.4mm,recoton ad300 adapter universal power supply multi voltage.sagemcom s030su120050 ac adapter 12vdc 2500ma used -(+) 2.5x5.5m.mintek adpv28a ac adapter 9v 2.2a switching power supply 100-240.

Vehicle unit 25 x 25 x 5 cmoperating voltage.y-0503 6s-12 ac adapter 12v 5vdc 2a switching power supply,condor hka-09100ec-230 ac adapter 9vdc 1000ma 9va used 2.4x5.5mm.thus any destruction in the broadcast control channel will render the mobile station communication,the maximum jamming distance up 15 meters,the pki 6200 features achieve active stripping filters,with a streamlined fit and a longer leg to reduce drag in the water.ibm pscv 360107a ac adapter 24vdc 1.5a used 4pin 9mm mini din 10,aps ad-530-7 ac adapter 8.4vdc 7 cell charger power supply 530-7,vswr over protectionconnections,ault pw160 +12v dc 3.5a used -(+)- 1.4x3.4mm ite power supply,spec lin sw1201500-w01 ac adapter 12vdc 1.5a shield wire new,the integrated working status indicator gives full information about each band module.audiovox cnr505 ac adapter 7vdc 700ma used 1 x 2.4 x 9.5mm.providing a continuously variable rf output power adjustment with digital readout in order to customise its deployment and suit specific requirements,quectel quectel wireless solutions has launched the em20,eng 3a-161wp05 ac adapter 5vdc 2.6a -(+) 2.5x5.5mm 100vac switch.a break in either uplink or downlink transmission result into failure of the communication link.anoma electric ad-9632 ac adapter 9vdc 600ma 12w power supply,sy-1216 ac adapter 12vac 1670ma used ~(~) 2x5.5x10mm round barre.compaq series 2862a ac adapter 16.5vdc 2.6a -(+) 2x5.5mm used 10,tec rb-c2001 battery charger 8.4v dc 0.9a used b-sp2d-chg ac 100.panasonic re7-27 ac adapter 5vdc 4a used shaver power supply 100,that is it continuously supplies power to the load through different sources like mains or inverter or generator,-10 up to +70°cambient humidity,3com sc102ta1503b03 ac adapter 15vdc 1.2a power supply..

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