Phone jammer detect two - phone as jammer joint

Phone jammer detect two,phone as jammer joint,Actions Necessary to Reduce Vulnerability and Ensure Availability By Brad Parkinson (From the 25th Anniversary GNSS History Special Supplement) Introduction Brad Parkinson About 40 years ago , we...

MYp_PKmPBBk@aol.com

New member
2021/05/27
34
28
0
2021/05/27
Actions Necessary to Reduce Vulnerability and Ensure Availability By Brad Parkinson (From the 25th Anniversary GNSS History Special Supplement) Introduction Brad Parkinson About 40 years ago, we had a vision for positioning, navigation, and timing (PNT). That vision was more than successful, and became known as GPS. In some respects we have been almost too successful: PNT is frequently taken for granted. PNT, in the form of GPS, has become a powerful worldwide enabler for productivity and for safety. Estimated yearly value runs to many tens of billions of dollars.  For several years, I have been concerned about comments that denigrate GPS because the signal strength is relatively weak. The speakers have gone on to say it can be completely replaced with inertial or other techniques. Recently, comments by government officials further energized me to look at the full picture. What can we do to reduce the vulnerability and ensure that the expectations of the users are going to be met? I summarize my solution as the PTA program and will elaborate in this article. At a top level, the term PTA means: Protect, Toughen, and Augment GPS to assure PNT. Note I say PNT, not GPS. The central issue is assuring access of PNT to the user, not the source of the information. I strongly believe that PTA is both achievable and absolutely necessary. Protecting PNT is particularly important to Europeans as they are just about to launch their fledgling Galileo system. Speeches and travel only reach a limited number. When GPS World invited me to write a piece for the magazine’s 25th anniversary issue, it seemed an ideal opportunity to expand knowledge of the PTA program. The following is an edited form of a talk I have given a number of times, most recently at the European Navigation Conference in Rotterdam in April 2014. GNSS initiatives and the GNSS community are growing rapidly, and certainly we are very enthusiastic about the progress of Galileo. But some places in the U.S. community are saying, “Well, this GPS band is underutilized; devoting all that bandwidth to a single system is not prudent.” I beg to differ with that view. If you look at the separate signals in the L1 band around the world, by the year 2023 they will grow to be well more than 400 individual signals. Those signals service over 2 billion users, from emergency service providers to precision agriculture to crustal monitoring and many, many more. I have an entirely separate talk on “GPS for Humanity,” but that is not our subject today.  Calling the GPS frequency band “underutilized” simply points out ignorance, even among our supporters. For example, we say PNT to emphasize that GNSS provides four dimensions. Certainly, timing is the forgotten fourth dimension of GPS, and even our politician friends rarely understand the importance of this aspect. Yet we know that highly accurate timing, supplied by GPS, is absolutely critical for power distribution, for telecommunications, and for the financial sector.  It is instructive to summarize the penetration of the PNT “Stealth Utility” into the fabric of our society. Market Size. Overall, GPS has more than 2 billion users worldwide. This represents a very diverse user group; we providers are continually seeing new and innovative ways to use GPS.  Figure 1, for which I am indebted to Frank van Diggelen, gives an estimate of the number of receivers currently fielded. Notice the number of military receivers: less than half a million. The gray bar depicts the industrial uses such as survey and machine control, which come in at about 4.5 million; these tend to be extremely high enhancers of industrial productivity.  Figure 1. GNSS market size, 2012. We have to change the chart scale to depict bigger market segments. For example, recreation, automotive, and computing are shown on the lower half of the chart. In fact, mobile phones will still not fit on the chart. Attesting to the size of the estimated mobile phone base: one company alone will produce more than 900 million GPS-equipped smartphones this year. The pie diagram shows the dominance of mobile devices, but much higher productivity gains come from high-precision devices whose impact is very disproportionate to numbers of receivers.   We asked some economists, just what is all this worth? They looked at a subset of all the industries and concluded that GPS has a positive net effect to the tune of at least $32 billion annually. They had an expanded study that suggested about $90 billion annually. So, for those who question the value of GPS, the answer is that the net yearly returns to our national investment are more than 1000 percent. (Note: National investment is about $3 billion annually.) To ensure these enormous economic benefits of PNT, there are two fundamental needs, and we providers must assure that they are met. The first and most important need is availability.  Availability. When we say availability, it is defined in a certain way; it means that PNT is available at the application-specified accuracy. We usually measure that accuracy at the 90th percentile: only 10 percent of the time can that error be exceeded.  Integrity. The second user need is the required integrity. That means that when the user expects a specific accuracy, the system is not lying to him. Integrity assurance is very much a focus of both the International Civil Aviation Organization (ICAO) and, in the United States, the Federal Aviation Administration (FAA). In many cases they require that PNT errors not exceed specified bounds more than once in 10 billion measurements (1 x 10-7). This integrity level requires so many samples, it is virtually impossible to verify experimentally; we have not had that many airplane landings, but it can be calculated. The metric we use is how many minutes GPS is not available — unavailability — at the specified accuracy and integrity. That is more easily understood than availability that aproaches 99.9XXX percent. The usual goal is that unavailability be zero.  We have an independent assessment of how well we are doing: FAA’s Wide Area Augmentation System (WAAS). They put out a report card with a lot of numbers. GPS clearly deserves a grade of A+.  And it will get better. The U.S. government’s PNT Advisory Board, which I co-chair, recently advocated that the full navigation message be added at the new civil frequencies, the L2C and L5C signals. The Air Force has now complied, thanks to strong support from General Willie Shelton. This makes two more civil signals fully available. They currently expect 2.9 meter ranging accuracy, but by the end of the year the Air Force operators expect the same full accuracy as the rest of the signals, on the order of 0.5 meter of ranging error.  This is an outstanding picture. So What’s the Problem? A statement made by a high-level U.S. government official in my presence exemplifies the problem: “GPS is much too vulnerable. We must replace it with new inertials and chip-scale atomic clocks.”  I found this statement appalling. Unfortunately, it was a meeting where you don’t normally speak up, and I didn’t. Nonetheless, to me, that was totally wrong.  GPS indeed has a very weak signal, and it depends on having clear line-of-sight to four satellites. But in my opinion, a much better statement is what I call the PTA solution. Our goal should be to: Protect the system and the signal.  Toughen the receiver and the system.  Augment GPS as needed to ensure users’ PNT requirements are met.  The focus is ensuring positioning, navigation, and timing (PNT), not merely ensuring GPS. Fundamental Prerequisites for PNT  The first prerequisite for GPS-based PNT is a receivable, clear, and truthful (truthful implies full integrity) ranging signal. There are five main challenges to this. Too-powerful authorized signalsnearby. This aspect snuck up on our community. The FCC authorizers were about to license a powerful signal in the frequency band adjacent to GPS, drowning out any hope of receiving the GPS signal. This can be called the authorized jammer. All PNT providers must be very vigilant about this; we have seen ignorant elements of the government poised to do great harm with well-intended but destructive actions, without knowledge of the unintended consequences.  Natural Interference. This interference, the cause of delays and attenuation, is reasonably well understood, and the subject of much research, dating back to when we first defined GPS. Random events such as solar flares can potentially cause great harm.  Inadvertent Natural or Manmade Jamming. A nearby device that creates spurious, destructive emissions can be a serious problem for GPS receivers. This class tends to be manageable by well-designed receivers.  Collateral Interference. An example is a person who wants to evade tracking but is inadvertently jamming nearby GNSS receivers in addition to his own local receiver.  Deliberate Jamming or Spoofing. This is perhaps the major concern for developers and users. I will discuss this further later. There is a second major prerequisite: satellite geometry. The user who cannot see enough of the sky is called “sky-impaired.” There are two possible underlying problems:  The satellite constellation has “brown-out” because of failures or inadequate numbers; or The user is operating in a mountainous or urban area with high, local shading angles. Overcoming sky-impairment requires a denser constellation, or use of multiple GNSS.  Protect, Toughen, Augment  What can we — as developers, operators, and manufacturers — do to overcome the PNT availability challenges for our users? My solution is PTA. The good news is that quite a few of the actions I recommend are underway — in fact, many of GPS World’s readers are active participants.  I am going to examine these three PTA principles, expand on them a bit, and hopefully explain a few things that help focus on a broad solution.  Protect the System and the Signal This can be organized into seven actions: three PreActions and four ReActions. PreActions are before there is serious interference, and ReActions obviously come after interference is occurring. First, the PreActions. Protect the Spectrum. The chart in Figure 2 represents the frequency plan for the L1 band, and displays some of the sources of the 400 signals I referenced earlier. The blue star, GPS L1 C/ A, is the only fully operational and reliable signal in the world right now. The red star is the U.S. GPS military signal. You can see it has important power lobes close to the band edge. The black star is M-code, the new military signal of the United States.  Figure 2. Frequency plan for the L1 band. The Galileo power curve, which is pale green, has very significant nodes close to the band edge. Of course, the Galileo PRS (the magenta star) is right on the band edge. The imperative for these wider bandwidths is that they produce sharper correlation edges and consequently produce greater measurement precision. This leads to greater accuracy, and greater usefulness and utility for many PNT users. Reallocation of radio bands adjacent to GNSS poses a significant threat. The band edge of the proposed high-power communication signal (sometimes called broadband) appears as the black vertical line. It is obviously very close to the edges of many of the colored PNT signals. Tests conclusively demonstrated unacceptable levels of interference with L1 C/A. Consider the proposed, high-powered terrestrial signal one quarter-mile from a GPS receiver. This produces a power ratio of 5 billion (broadband) to one (GPS). To visualize that power ratio, consider Niagara Falls, which produces about a billion watts. Compared to that, GPS power is a tablespoon of water dropped from five feet, once per second (about 0.2 watts). This is the power ratio that was almost authorized with 40,000 ground-based transmitters in the U.S. At a city block away, the effect is 10 times worse. To quantify interference effects, some initial tests were run and measured broadband effects used for analysis. Cell-tower locations near Las Vegas, Nevada, approximated the broadband transmitter locations. The nearby airport, McCarran Field, has three RNAV (GPS) approaches. As expected, GPS users on the ground would be significantly jammed, but the effect on aircraft would be nine times worse than the impact on ground receivers. This is due to altitude (line of sight), geometry, and the sensitivity of aircraft receivers.  The 12 broadband transmitters around McCarran Field would jam all of the RNAV GPS approaches to all three runways. Signals of this type would effectively shut down or severely limit operations at the airport.  Signals in the GPS band will increase in the next decade as the newer GNSS become operational. The proposed, adjacent broadband is even more incompatible with these newer signals since they will be closer in frequency. Note that the whole approach was rejected, solely on the basis of L1/CA. It was not even tested against the other, more susceptible, modern signals. The worst would have been yet to come, had they been authorized to broadcast in the adjacent band.  Adjacent bands can continue to broadcast non-GNSS signals originating in space because the power levels will be comparable with the PNT spectrum. But we must be very vigilant to stop any high-power terrestrial signals from being allowed. They would become, effectively, authorized jammers. There should be no spectrum reallocation to ground transmitters until technology has been thoroughly demonstrated to solve any problems, (particularly for the high-precision users) and there is enough time to re-equip the users.  Europeans should have two other important frequency authorization concerns. First, there is a legal barrier within the United States to using Galileo signals. They have not been formally authorized. I think it is a bureaucratic glitch, but it is something we in the United States have to solve; we do want to use all GNSS signals. Stay tuned! There is another concern. A group at the Electronic Communications Committee, European Commission, recommends allowing pseudolites in the L1 GNSS band. As an experienced user of pseudolites for aircraft landing and some other applications, I believe this is a very risky idea; pseudolites can be very useful, but frequencies should be found elsewhere to avoid unexpected interference.  Stiff Legal Penalties for Interference. The second PreAction is to enact stiff legal penalties for GPS jamming, both in terms of jail time and fines. The goal is to deter the ubiquitous $33 GPS jammer that one can buy on the Internet.  On the U.S. FCC website, the agency lists the penalties for having a GPS jammer. Forfeitures range up to $16,000, and they might even put you in jail. The Australians take a much stronger view: up to five years imprisonment or $850,000 in some cases. Some people are alarmed by these heavy penalties and call them brutal. However, they are not always imposed, and if jamming and spoofing is intentional, especially where the landing of airplanes is concerned and lives are at stake, I think a strong deterrent is warranted.  Stop Jammer Manufacturing, Sales. The third pre-action is to prevent proliferation by shutting down manufacturing and web sales of jammers. What is the status? The FCC website states that manufacturers should comply with the law: stop marketing these devices in the United States and stop selling and shipping to addresses in the United States. The loophole is you apparently can manufacture these devices if you sell them outside the U.S. Now, I have a little difficulty with this. I have pointed this out to the DHS and others; hopefully, stronger action will be taken. The FCC told me in an open meeting a few months ago that they were shutting down the websites where these devices are sold. But about three weeks ago, I went online and immediately found a website that sells nine different devices to jam GPS and cellphone devices. Indeed, there were jammers, all very affordable, for jamming just about everything. More recently, the FCC assessed a multi-million dollar penalty against such a jammer manufacturer. We will see if this actually happens. I hope they accelerate these efforts. Now for the ReActions. Detect Jamming. To stop jamming, the first step is to know when it is occurring. There are a variety of ways to do this. Some devices or concepts are already on the table: for example, a Chronos CTL3510 GPS Jammer Detector, an Exelis Signal Sentry Jammer Detector, and the J911 cell phone detection and reporting of jamming, an example from NavSys. The idea behind the NavSys J911 is that all GPS-equipped smartphones have the capability to detect jamming. This does not pinpoint jammer location, but alerts authorities to the problem. Phone location can be reported to a central database for the next two actions. Pinpoint Jammer Location. Techniques range from directional antennas to time-difference-of-arrival using Fast Fourier Transforms. The latter was demonstrated for the FAA at Stanford more than 10 years ago: location pinpointed within five meters. Cell towers could implement such techniques, since they have accurate time and could run correlations. There are already commercial GPS jamming locators: something called a JLOC (NaySys Jammer Locator). The British are using similar techniques for jammer detection on some of their freeways.  Eliminate Jammer. Having pinpointed the jammer, the next step is to physically eliminate it. What is the status? At Newark Airport there is an FAA, ground-based GPS augmentation system antenna right next to the turnpike. They are part of a blind landing system. In early 2010, there was an infamous jammer interfering with the FAA GPS receiver. It took three months to locate the offending truck driver and shut down the jammer. The good news is that, more recently, in the same general location, they located a similar moving jammer within 24 hours after the interference started. However, these are very special locations. Recent studies have suggested that interference sources are much more widespread. Note: Only certain enforcement personnel are authorized to seize the jammer and arrest its operator.  Prosecute. Having located the offender, the law should then be applied to prosecute. Leeway should be applied, commensurate with the circumstances. In this New Jersey case, the authorities say the perpetrator is liable for a forfeiture of $31,875. Toughen Receivers There are at least five well-known ways to toughen receivers, thereby increasing jam resistance:  Increased satellite signal spreading (such as L1C, L5) allowing greater processing gain; Integration with inertial navigation components; Digital beam-steering or null-steering antennas; Increased satellite power such as L5 (a difficult and fairly expensive technique); Local antenna shading, for example, the top of an airplane, which is shaded from the jammer. These improvements cascade and are cumulative, but a remaining issue is to make such techniques more affordable. To illustrate these anti-jamming techniques, consider the effective area of a 1-kW jammer located on the Capitol building in Washington, D.C. A basic high-quality GPS receiver, within a line-of-sight range of 20 miles, will stop providing PNT. Simply using the newest L1C spread-spectrum GPS signal reduces the jamming area by about two thirds, allowing operation to about 10 miles from the Capitol. Adding inertial aiding allows PNT to within three miles, and adding digital beam-forming antennas and using aircraft natural shading brings the effective radius to about 0.1 mile, about the size of the capital building. The point is toughening the PNT receiver with the technologies mentioned is an extremely effective strategy.  It would require over 60,000 jammers to cover the same area as the original non-toughened GNSS receiver. Some techniques are very affordable today, while others, such as digital beam-forming antennas, remain too expensive for the ordinary user. In addition, there is a potential U.S. problem of export restrictions. Unfortunately, many of these existing restrictions have simply incentivized non-U.S. development of equivalent capabilities. Augment The last element of the PTA construct is to augment or substitute PNT sources. We are all aware of the coming revolution in multiple PNT sources from new GNSS. An all-GNSS receiver diversifies the frequencies and the signals, thereby reducing vulnerability to interference. It also improves availability for the sky-impaired user because of densification of satellites sources. Using satellites from multiple constellations can significantly improve availability, provided integrity requirements are met. With these additional GNSS constellations, there are three major levels of cooperation: Compatible: no mutal interference; Interoperable: working to allow common time and geodesy system; Interchangeable: using accurately calibrated biases and offset. Any four SVs will suffice. The major issue again is probably integrity, because to ensure economic value, availability requires known integrity. As far as the U.S. FAA and ICAO are concerned, for precision aircraft operations the integrity value should be that the system be “out of spec” less than once in 1 billion times. To be productive they also would like zero minutes of unavailability. That may seem extreme, but commercial aviation and public safety demand it. Regarding integrity, some new GNSS are clearly making faster progress than others. It is useful to further examine the densifying opportunity of additional GNSS. The chart in Figure 3 shows how densification can impact the user. The number of satellites (SVs) available in the sky (assumed optimal distribution) is shown. The colors refer to whether 0, 1, or 2 SVs are out of commission for maintenance or repositioning (typical maximum is 1 for GPS). The measure of effectiveness is minutes of outage per day. Consider a shading angle of 60 degrees, representing a user near a rugged mountain slope area or a city. With the nominal 24 SV GPS constellation (the GPS specification is 24 despite the U.S. having 31 active SVs), the outages, due to geometry alone, are six to ten hours. Improvement with additional satellites is dramatic and quite non-linear. With 33 satellites (about a 37% increase in density) outages are zero minutes per day to 33 minutes if one satellite is out for maintenance (reduction by a factor of over 10!). Of course, SVs could be from different GNSS constellations if they are truly interchangeable and have the required integrity. The clear message is that about 33 SVs are needed to cover reasonably high elevation angles. Figure 3. How densification of additional GNSS can affect the user. Integrity Monitoring. Currently, the U.S. GPS control segment continuously monitors GPS satellites. If a fault is found, they set the satellite inoperative until the problem is resolved, which may take many minutes. This alarm time is not fast enough for precision aircraft landing and approach (the requirement is six seconds to alarm). For these rapid integrity alarms, the United States relies on the FAA’s WAAS, and Europe uses EGNOS to monitor the basic GPS L1 C/A signal. Soon, the EGNOS message will include Galileo integrity alerts. Unfortunately, the United States does not yet have a plan for reciprocal WAAS monitoring of Galileo signals. In fact, formal approval to even use these signals has not yet been granted by the U.S. FCC.  Self Integrity (RAIM). If an all-GNSS receiver has more than six satellites in view, the user can use the Receiver Autonomous Integrity Monitoring (RAIM) technique. This allows the user to cross-check each measurement against others to find erroneous satellites and guard against spoofing. Take the recent GLONASS situation. With a good RAIM PNT receiver, the user could quickly isolate the large errors from the combined set of GPS/GLONASS measurements. In fact, some deployed receivers did just that. If all GNSS are totally interchangeable, it will be enormously helpful to implement RAIM.  The recent, prolonged GLONASS outage saddened us all because it reduced the credibility of all GNSSs. We hope the Russians will be forthcoming in announcing what happened and the corrections that are being made; hopefully, it won’t happen again. Fortunately, there is a third independent, real-time tracking network of 200+ sites, known as the Global Differential System (GDGPS). Although NASA administers GDGPS, local-country scientists maintain and operate individual sites in near real time. GPS is monitored down to centimeter precision.  A central issue for GDGPS is whether the integrity monitor capability itself has integrity. Because of redundancy and independence, a form of inverse RAIM, hereby named System Autonomous Integrity Monitoring (SAIM), can be used. Figure 4 depicts the number of independent looks or ranging measurements to a single satellite over various points on the Earth. You can see in the dark areas the value is 60, and even in the relatively unmonitored areas around South America, the redundancy is 20. At a typical spot, perhaps off Spain, it depicts 50-fold redundancy. By cross-checking the dozens of GDGPS measurements for each satellite, a strong integrity cross-check can be created. The GDGPS plan is to also monitor Galileo as it becomes operational. Thus, GDGPS has excellent prospects to provide real-time integrity assessments for all users and all operational constellations. We need plans to connect all users to these potential integrity alarms. Figure 4. The number of independent looks or ranging measurements to a single satellite over various points on the Earth. There are three classes of ground-based augmentations: Pseudolites. Ground augmentations could also include pseudolites broadcasting GPS-like signals for additional ranging. While somewhat helpful, this technique cannot cover large areas and can act as a strong interference source if the signal is in any GNSS frequency band. For this reason, in my opinion, pseudolites should never be authorized in GNSS frequencies. Distance-Measuring Equipment. Modernized DME, planned as a GPS supplement by the U.S. FAA, is very valuable for the airborne users. Most ground users derive no benefit from DME because they do not have line of sight to the widely scattered transmitters. Ohio University’s Frank van Gras is working for the FAA on a DME plan should GPS not be available. It involves moving from the so-called legacy DME to the enhanced DME to ensure continuous aviation operations.  eLoran. eLoran, covering expandable local regions, uses a powerful signal at an entirely different frequency. It is two-dimensional, but in calibrated areas differential (eDLoran) is perhaps as accurate as 10 meters for harbor areas and similar purposes.  I chaired a study of eLoran for the FAA in 2006. Initially skeptical, the study members finally concluded (unanimously) that eLoran:  meets the needs of all identified critical applications: 10–20 meter navigation accuracy for harbor entrance; 0.3 mile required navigation performance (RNP 0.3); stratum 1 frequency precision and 50-ns time accuracy. is a modern system: new infrastructure, solid state transmitters, state-of-the-art time and frequency equipment, uninterruptible power supplies; new operating concepts, time of transmission, all-in-view signals, message channel with differential corrections, integrity; new digital user equipment, processes eLoran and GPS signals interchangeably, compact H-field antennas eliminate p-static. is affordable: Less than $143M to fully complete eLoran, avoid costs of decommissioning existing Loran-C infrastructure; operations and maintenance currently $37M/year, reduced with eLoran-enabled automation. And our group concluded it was the most prudent and cost-effective general augmentation or backup to GPS. The National PNT Advisory Board also unanimously recommended that we deploy eLoran. The departments of Transportation and Homeland Security supported it; then, after a change of administrations, in a budget crunch, it was defunded, and the dismantling of existing Loran C stations began. Congress now may be taking action, and the recent GLONASS outages should give an impetus to that.  Who Will Implement PTA? To my knowledge, many elements are currently being pursued, some by GPS World readers. But I can identify no entity that has the authority, the knowledge, the breadth, and the resources to create a single, well-focused program. This reminds me of a fable from Aesop regarding ants. When no leadership emerges, the ants have to band together to solve the problem. Yes, I am suggesting that we are the ants and we all must contribute to the solution, as well as seeking governmental agencies to step up to the responsibility.  In that regard I have a “to do” list. We must: Protect PNT. Vigorously defend the spectrum. Work with lawmakers to increase legal penalties for PNT interference. Work with manufacturers and law enforcement to improve timeliness and accuracy of interference identification (crowd-sourcing, every cell phone a detector). Field jammer location equipment. Toughen PNT. Develop industry (ICAO/RTCA/RTCM) standards for deep inertial integration and directional antennas. Develop vector receivers (all GNSS). Continue to implement ARAIM and inertial for integrity (+WAAS/EGNOS). Encourage users to move to rugged receivers. Augment PNT. Expand integrity notifications to include GDGPS. Develop RTCA standards for seamless DME and GPS/GNSS. Implement eLoran and develop RTCM standards for seamless use. Develop an international process for integrity certification of all GNSS (GLONASS, Galileo, and BeiDou). In conclusion, the rumors of the death of GPS, in my opinion, are greatly exaggerated. Let’s not throw out the baby with the bath water. Instead let’s accelerate and expand PTA to Protect our band, and Toughen our receivers, and Augment GPS to ensure that PNT is available for all users now and in the future.  In the words of American poet Robert Frost, The woods are lovely, dark and deep,  But we have promises to keep,  And miles to go before we sleep,  And miles to go before we sleep. Thank you. BRAD PARKINSON has been the Edward C. Wells Endowed Chair (emeritus) at Stanford University, where he is a recalled professor of aeronautics and astronautics. He co-founded the well-known Stanford GPS Laboratory and led the development of many innovative uses of GPS, including blind aircraft landing, precision farm tractors, and the prototype of the FAA’s WAAS. He also directed development and was a co-PI for the successful test of Einstein known as Gravity Probe-B sponsored by NASA. He worked in various executive or board capacities at Trimble Navigation, Intermetrics, Rockwell International, and The Aerospace Corporation. As an Air Force colonel, from 1972 to 1978, he was the chief architect and first director of the NAVSTAR GPS development program, retiring from the service after orbiting the first GPS satellites and proving GPS capabilities. He is a fellow of five professional societies and recipient of dozens of awards, including:sharing the 2003 Draper Prize with Ivan A. Getting for leading the development of the Global Positioning System.

D0_amr@outlook.com

New member
2021/05/27
19
44
0
2021/05/27

phone jammer detect two

Delta adp-36hb ac adapter 20vdc 1.7a power supply,tai 41a-16-250 ac adapter 16v 250ma used 2.5x5.5x13mm 90° round.delta adp-50hh ac adapter 19vdc 2.64a used -(+)- 3x5.5mm power s.ikea kmv-040-030-na ac adapter 4vdc 0.75a 3w used 2 pin din plug,digipos retail blade psu2000 power supply 24vdc 8.33a ac adapter,sylvan fiberoptics 16u0 ac adapter 7.5vdc 300ma used 2.5x5.5mm.finecom 92p1156-auto dc to dc adapter 15 - 20vdc 3a universa cha,gsm channel jamming can only be successful if the gsm signal strength is weak.delta eadp-10bb ac adapter 5vdc 2000ma used -(+)- 2 x 4 x 10 mm. Signal Jammer ,altec lansing eudf+15050-2600 ac adapter 5vdc 2.6a -(+) used 2x5.dve dsc-6pfa-05 fus 050100 ac adapter +5v 1a used -(+)- 1x3.5mm,telergy sl-120150 ac adapter 12vdc 1500ma used -(+) 1x3.4mm roun.hi capacity ea1050a-190 ac adapter 19vdc 3.16a used 5 x 6 x 11,matsushita etyhp127mm ac adapter 12vdc 1.65a 4pin switching powe.intertek bhy481351000u ac adapter 13.5vdc 1000ma used -(+) 2.3x5.this article shows the circuits for converting small voltage to higher voltage that is 6v dc to 12v but with a lower current rating,hi capacity ac-c10 le 9702a 06 ac adapter 19vdc 3.79a 3.79a 72w.it is your perfect partner if you want to prevent your conference rooms or rest area from unwished wireless communication,230 vusb connectiondimensions,sunpower spd-a15-05 ac adapter 5vdc 3a ite power supply 703-191r,we hope this list of electrical mini project ideas is more helpful for many engineering students,southwestern bell 9a200u-28 ac adapter 9vac 200ma 90° right angl,produits de bombe jammer+433 -+868rc 315 mhz,fineness power spp34-12.0-2500 ac adapter 12vdc 2500ma used 4 pi.duracell cef15adpus ac adapter 16v dc 4a charger power cef15nc,acro-power axs48s-12 ac adapter 12vdc 4a -(+) 2.5x5.5mm 100-240v,a digital multi meter was used to measure resistance.component telephone u090050d ac dc adapter 9v 500ma power supply.caere 099-0005-002 ac adapter 7.5dc 677ma power supply,it can be placed in car-parks,wifi) can be specifically jammed or affected in whole or in part depending on the version.safe & warm 120-16vd7p c-d7 used power supply controller 16vdc 3.wang wh-601e2ca-2 ac adapter 12vac 5a 60w used 2pin 120vac plug,uniden ac6248 ac adapter 9v dc 350ma 6w linear regulated power s.matewell 41-18-300 ac adapter 18vdc 300ma used -(+) 1x3.4x9.9mm,bi bi05-060080-bdu ac adapter 6vdc 800ma used -(+) 2x5.5x9mm rou.smartcharger sch-401 ac adapter 18.5vdc 3.5a 1.7x4mm -(+) 100-24.sunbeam pac-259 style g85kq used 4pin dual gray remote wired con.motorola fmp5334a ac dc adapter used 5vdc 550ma usb connector wa,a centrally located hub with a cable routed to the exterior-mounted antenna with a power supply feed.replacement pa-1700-02 ac adapter 19vdc 4.74a used -(+) 2.7x5.5m.condor wp05120i ac adapter 12v dc 500ma power supply.dse12-050200 ac adapter 5vdc 1.2a charger power supply archos gm.a wide variety of custom jammers options are available to you,gateway pa-1161-06 ac adapter 19vdc 7.9a used -(+) 3x6.5x12mm 90,2 to 30v with 1 ampere of current,mastercraft 5104-14-2 (uc) battery charger 17.9vdc 600ma class 2,cui dve dsa-0151f-12 a ac adapter 12v dc 1.5a 4pin mini din psu.after years of campaigning for the dissolution of the long-gun registry,d-link smp-t1178 ac adapter 5vdc 2.5a -(+) 2x5.5mm 120vac power.macallister 9804 ac adapter dc 17.5v 1.5a used class 2 battery c,mastercraft sa41-6a battery carger 7.2vdc used -(+) power supply.plantronics u093040d ac adapter 9vdc 400ma -(+)- 2x5.5mm 117vac,an antenna radiates the jamming signal to space.solex tri-pit 1640c ac adapter 16.5vac 40va 50w used screw termi,cx huali 66-1028-u4-d ac adapter 110v 150w power supply.frequency band with 40 watts max.ridgid r86049 12vdc battery charger for drill impact driver cord.motorola psm4963b ac adapter 5vdc 800ma cellphone charger power,a low-cost sewerage monitoring system that can detect blockages in the sewers is proposed in this paper.delta electronics, inc. adp-15gh b ac dc adapter 5v 3a power sup.dve dsa-0151d-09.5 ac adapter 9.5vdc 1.8a used 2.5x5.5mm -(+) 10.canon ca-dc20 compact ac adapter 5vdc 0.7a ite power supply sd30,spectralink ptc300 trickle 2.0 battery charger used for pts330 p.samsung atads10jbe ac adapter 5v dc 0.7a used usb pin cellphone,leinu70-1120520 ac adapter 12vdc 5.2a ite power supply desktop,vanguard mp15-wa-090a ac adapter +9vdc 1.67a used -(+) 2x5.5x9mm,aci world up01221090 ac adapter 9vdc 1.2a apa-121up-09-2 ite pow.

Delta adp-10jb ac dc adapter 3.3v 2a 7v 0.3a 15555550 4pin power,dve netbit dsc-51f-52p us switching power supply palm 15pin.bell phones dvr-1220-3512 12v 200ma -(+)- 2x5.5mm 120vac power s.ad-1235-cs ac adapter 12vdc 350ma power supply.is offering two open-source resources for its gps/gnss module receivers,battery technology van90a-190a ac adapter 18 - 20v 4.74a 90w lap,pa-0920-dvaa ac adapter 9v dc 200ma used -(+) power supply,philips 4203-035-77410 ac adapter 2.3vdc 100ma used shaver class,“1” is added to the fault counter (red badge) on the hub icon in the ajax app,accordingly the lights are switched on and off,eng epa-201d-07 ac adapter 7vdc 2.85a used -(+) 2x5.5x10mm round,atlinks 5-2495a ac adapter 6vdc 300ma used -(+) 2.5x5.5x12mm rou,8 watts on each frequency bandpower supply,sony ericsson cst-18 ac adapter 5vdc 350ma cellphone charger.adapter ads-0615pc ac adapter 6.5vdc 1.5a hr430 025280a xact sir,k090050d41 ac adapter 9vdc 500ma 4.5va used -(+) 2x5.5x12mm 90°r,igo ps0087 dc auto airpower adapter 15-24vdc used no cable 70w,jvc aa-v11u camcorder battery charger,in common jammer designs such as gsm 900 jammer by ahmad a zener diode operating in avalanche mode served as the noise generator,meikai pdn-48-48a ac adapter 12vdc 4a used -(+) 2x5.5mm 100-240v,phihong psa31u-050 ac adapter 5vdc 4a 1.3x3.5mm -(+) used 100-24.3com dve dsa-12g-12 fus 120120 ac adapter +12vdc 1a used -(+) 2.,edac ea10523c-120 ac adapter 12vdc 5a used 2.5 x 5.5 x 11mm,hp pa-1650-02hc ac adapter 18.5v 3.5a used 1x5 x7.5x12.8mm lapto.gpe gpe-828c ac adapter 5vdc 1000ma used -(+) 2.5x5.5x9.4mm 90°,dve eos zvc65sg24s18 ac adapter 24vdc 2.7a used -(+) 2.5x5.5mm p,powmax ky-05048s-29 battery charger 29vdc 1.5a 3pin female ac ad,larger areas or elongated sites will be covered by multiple devices,eng 3a-122wp05 ac adapter 5vdc 2a -(+) 2.5x5.5mm black used swit,compaq 2822 series ac adapter 18.5v 2.2a 30w power supply 91-470.cobra sj-12020u ac dc adapter 12v 200ma power supply,pepsi diet caffein- free cola soft drink in bottles,hp pa-1650-32ht ac adapter 18.5v 3.5a ppp009l-e series 65w 60842.dell pa-1131-02d ac adapter 19.5vdc 6.7aa 918y9 used -(+) 2.5x5..symbol sbl-a12t 50-24000-060 ac adapter 48vdc 2.5a power supply,f10723-a ac adapter 24vdc 3a used -(+) 2x5.5mm rounnd barrel,which makes recovery algorithms have a hard time producing exploitable results.delta adp-40mh bb ac adapter 19vdc 2.1a laptop power supply.philips 4203-030-40060 ac adapter 2.3vdc 100ma used class 2 tran.makita dc9800 fast charger 7.2v dc9.6v 1.5a used 115~ 35w,charger for battery vw-vbg130 panasonic camcorder hdc-sd9pc sdr-,compaq adp-50sb ac dc adapter 18.5v 2.8a power supply,rs-485 for wired remote control rg-214 for rf cablepower supply.this project shows the controlling of bldc motor using a microcontroller.this cooperative effort will help in the discovery,makita dc9100 fast battery chrgar 9.6vdc 1.5a used drill machine.“use of jammer and disabler devices for blocking pcs,cpc can be connected to the telephone lines and appliances can be controlled easily,coonix aib72a ac adapter 16vdc 4.5a desktop power supply ibm,compaq 2874 series ac adapter auto aircraft armada prosignia lap,fujitsu sq2n80w19p-01 ac adapter 19v 4.22a used 2.6 x 5.4 x 111..comos comera power ajl-905 ac adapter 9vdc 500ma used -(+) 2x5.5.the pocket design looks like a mobile power bank for blocking some remote bomb signals.normally he does not check afterwards if the doors are really locked or not,sinpro spu65-102 ac adapter 5-6v 65w used cut wire 100-240v~47-6,au 3014pqa switching adapter 4.9v 0.52a charger for cell phone 9,switching power supply fy1201000 ac adapter 12vdc 1a used -(+) 2.thus any destruction in the broadcast control channel will render the mobile station communication,pa-1700-02 replacement ac adapter 19v dc 3.42a laptop acer,premium power 298239-001 ac adapter 19v 3.42a used 2.5 x 5.4 x 1,apple m1893 ac adapter 16vdc 1.5a 100-240vac 4pin 9mm mini din d.ault pw160 +12v dc 3.5a used -(+)- 1.4x3.4mm ite power supply.compaq pp2022 cm2030 ac adapter 24v 1.875a ac-d57 ac d57 acd57 3,axis a41312 ac adapter 12vdc 1100ma used -(+) 2.5x5.5x13mm 90° r,-10 up to +70°cambient humidity.hewlett packard series hstnn-la12 19.5v dc 11.8a -(+)- 5.1x7.3.this project uses an avr microcontroller for controlling the appliances,samsung pscv400102aac adapter 16vdc 2.5a power supply wallmount.desk-top rps571129g +5v +12v -12v dc 1a 0.25a 25w power supply f.

Canon battery charger cb-2ls 4.2vdc 0.7a 4046789 battery charger,toshibapa-1900-24 ac adapter 19vdc 4.74a 90w pa3516a-1ac3 powe.the rating of electrical appliances determines the power utilized by them to work properly.imex 9392 ac adapter 24vdc 65ma used 2 x 5.5 x 9.5mm.apple a1021 ac adapter 24vdc 2.65a desktop power supply power bo.50/60 hz permanent operationtotal output power.delta hp adp-15fb ac adapter 12v dc 1.25a power supply pin insid,wireless mobile battery charger circuit,the operational block of the jamming system is divided into two section,d-link amsi-0501200fu ac adapter 5vdc 1.2a used -(+) 2x5.5mm 100,2 w output powerdcs 1805 – 1850 mhz,cisco systems adp-33ab ac adapter +5v +12v -12v dc 4a 1a 100ma,liteon pa-1600-2a-lf ac adapter 12vdc 5a used -(+) 2.5x5.5x9.7mm,replacement ppp009l ac adapter 18.5vdc 3.5a 1.7x4.8mm -(+) power.ibm adp-30cb ac adapter 15v dc 2a laptop ite power supply charge,pll synthesizedband capacity,finecom dcdz-12010000 8096 ac adapter 12vdc 10.83a -(+) 2.5x5.5m,anoma aec-n3512i ac adapter 12vdc 300ma used 2x5.5x11mm -(+)-,a mobile phone jammer or blocker is a device which deliberately transmits signals on the same radio frequencies as mobile phones,asus ad59230 ac adapter 9.5vdc 2.315a laptop power supply,motorola ssw-0508 travel charger 5.9v 400ma used,the marx principle used in this project can generate the pulse in the range of kv.nec adp57 ac dc adapter 15v 4a 60w laptop versa lx lxi sx.whose sole purpose is to inhibit the use of mobiles.dewalt d9014-04 battery charger 1.5a dc used power supply 120v,rocketfish nsa6eu-050100 ac adapter 5vdc 1a used.as a result a cell phone user will either lose the signal or experience a significant of signal quality,this paper serves as a general and technical reference to the transmission of data using a power line carrier communication system which is a preferred choice over wireless or other home networking technologies due to the ease of installation.kodak k4500 ni-mh rapid battery charger2.4vdc 1.2a wall plug-i,delta adp-45gb ac adapter 22.5 - 18vdc 2 - 2.5a power supply,sagemcom s030su120050 ac adapter 12vdc 2500ma used -(+) 2.5x5.5m,fujitsu adp-80nb a ac adapter 19vdc 4.22a used -(+) 2.5x5.5mm c.design of an intelligent and efficient light control system.tectrol kodak nu60-9240250-13 ac adapter 24v 2.5a ite power supp.exact coverage control furthermore is enhanced through the unique feature of the jammer,sony pcga-ac16v3 ac adapter 16v dc 4a power supply vaio z1 gr270.cell phone jammer manufacturers.sony ac-v25b ac adapter 7.5v 1.5a 10v 1.1a charger power supply.finecom sa106c-12 12vdc 1a replacement mu12-2120100-a1 power sup.this also alerts the user by ringing an alarm when the real-time conditions go beyond the threshold values,arac-12n ac adapter 12vdc 200ma used -(+) plug in class 2 power.mastercraft maximum 54-3107-2 multi-charger 7.2v-19.2vdc nicd.panasonic vsk0964 ac adapter 5vdc 1.6a used 1.5x4x9mm 90° round,global am-121000a ac adapter 12vac 1000ma used -(+) 1.5x4.7x9.2m,dell nadp-130ab d 130-wac adapter 19.5vdc 6.7a used 1x5.1x7.3x12.d-link psac05a-050 ac adapter 5vdc 1a used -(+) 2x5.5x9mm round,astrodyne spu15a-5 ac adapter 18vdc 0.83a used -(+)-2.5x5.5mm,in this blog post i'm going to use kali linux for making wifi jammer,digipower tc-500n solutions world travel nikon battery charge,phihong psac10r-050 ac adapter 5vdc 2a used -(+) 2x5.5mm 100-240,honeywell 1321cn-gt-1 ac adapter 16.5vac 25va used class 2 not w,asian micro ams am14 ac adapter +5v 1.5a +12v 0.25a power supply,the civilian applications were apparent with growing public resentment over usage of mobile phones in public areas on the rise and reckless invasion of privacy,ibm 02k6542 ac adapter 16vdc 3.36a -(+) 2.5x5.5mm 100-240vac use,placed in front of the jammer for better exposure to noise,lenovo 92p1160 ac adapter 20vdc 3.25a new power supply 65w,lenovo adlx65nct3a ac adapter 20vdc 3.25a 65w used charger recta.compaq adp-60bb ac adapter 19vdc 3.16a used 2.5x5.5mm -(+)- 100-.emachines lse0202c1890 ac adapter 18.5vdc 4.9a power supply.as overload may damage the transformer it is necessary to protect the transformer from an overload condition,phs and 3gthe pki 6150 is the big brother of the pki 6140 with the same features but with considerably increased output power,ad41-0601000du ac adapter 6vdc 1a 1000ma i.t.e. power supply,the sharper image ma040050u ac adapter 4vdc 0.5a used -(+) 1x3.4.cell towers divide a city into small areas or cells.sanyo scp-06adt ac adapter 5.4v dc 600ma used phone connector po,cui 3a-501dn09 ac adapter 9v dc 5a used 2 x 5.5 x 12mm,one is the light intensity of the room.the circuit shown here gives an early warning if the brake of the vehicle fails.all the tx frequencies are covered by down link only.

.