Reverse Beacon Networks – PSK Reporter And WSPR

20m Worldwide Propagation (PSKReporter)

20m Worldwide Propagation (PSK Reporter)

Reverse Beacon Networks (RBNs) are good tools for evaluating propagation conditions on a real-time basis. A conventional Beacon Network consists of a set of beacon stations around the world which transmit on known frequencies, times and power levels. A station can then listen to the beacon frequency and determine if the associated band is open to the places in the world where the beacons are located. A Reverse Beacon Network takes this one step further – each time a station that is a member of a RBN hears another station, it logs the station heard’s call sign, signal level received, mode of operation, and other data to a RBN website on the internet. The RBN website collects this data from stations all over the world and stores the data in a database for later display and analysis. An example of an RBN website is PSK Reporter. The picture above shows information from the PSK Reporter website illustrating a nice opening on the 20m band between Europe and the United States which occurred  this afternoon. Each marker on the map shows a station which is participating in the RBN and the lines indicate a path over which one of the RBN stations heard another. The PSK Reporter example shown above is displaying information about stations which heard each other on all modes including digital, CW, SSB and others.

AB1OC Station Performance on 20m (PSKReporter)

AB1OC Station Performance On 20m (PSK Reporter)

Programs like Ham Radio Deluxe/DM780, FLdigi, JT65HF, CW Skimmer, and others can act as RBN clients for PSK Reporter. You can use one of these clients along with the PSK Reporter website to do a real-time evaluation of your station’s performance and current band conditions. For example, the picture above shows the results of a 45 minute digital operating session from my station using our yagis pointed towards Europe. Using techniques like this, you can get a good idea of the real-time propagation conditions as well as how well your station is performing towards various parts of the world.  If you use a digital mode program as the client for PSK Reporter, you should check your setup options to see how you can enable it to report stations that you hear to the PSK Reporter website.

Any station which is setup for digital mode operation already has everything needed to use RBNs. Your don’t need a lot of power for RBN operation. An omnidirectional antenna works best as it will transmit and hear equally well in all directions but most any antenna will allow you to evaluate your station’s performance and propagation conditions. If you have directional antennas such as yagi’s that you can point, you can still make worldwide measurements by operating for periods of 5 minutes in a given direction followed by rotating your antennas about 45 degrees. After about 45 minutes or so, you will have operated in all directions and the results for your call sign on the RBN website you are working with should give you a good picture of your signal coverage worldwide. Also note that fixed antennas like Dipoles, Inverted-Vs, etc. work just fine for RBN use as well. The results from the RBN website will tell you where you are being heard around the world. In the case of fixed antennas, the results will reflect a combination of the directional coverage of the antenna that you used for the measurements and the prevailing band conditions.

Worldwide 20m Propagation Reported By WSPRNet

Worldwide 20m Propagation Reported By WSPRnet

Another very useful RBN tool for evaluating propagation conditions and station performance in WSPR. WSPR uses the JT65 family of protocols in combination with the WSPRNet website to allow real-time measurements of band conditions and station performance using very low power levels (typically 1w or less). The picture above shows worldwide conditions on 20m from the WSPRnet website late in the afternoon.

AB1OC Station Performance on 20m Measured via WSPR

AB1OC Station Performance On 20m Measured Via WSPR

There are a substantial number of WSPR enabled stations worldwide and any which hear a WSPR transmission from your station will report it to the WSPRnet website. As you can see from the picture above, the WSPR transmissions both sent from and heard by my WSPR station can be displayed on the WSPRnet website. This is an example of the actual performance of my station on 20m late this afternoon. You can let WSPR run at low power levels on an extended basis to enable continuous updates on the performance of your station and prevailing band conditions. If you decide to do this, it is important to properly monitor your station’s correct operation per your licensing authority’s control operator requirements.

WSPR Application On 20m

WSPR Client Application On 20m

WSPR uses a Client Application which controls your transceiver’s sending and receiving of WSPR beacon transmissions. The results are then reported to the WSPRnet website. Each transmission sequence by all WSPR stations in the world takes place on a narrow range of frequencies on each band and all stations are synchronized precisely to start and end their transmission and reception cycles on exact 2 minute intervals This synchronization along with other techniques implemented in the JT65 protocols used by WSPR allows signals sent at very low power levels (often less than 1w) to be received and decoded over long distances. In the picture above, each block of colored lines represents the WSPR transmissions heard by my station on the 20m band during a 2 minute cycle. As you can see, there was quite a bit of activity in the WSPR segment of the 20m band at the time I made the measurements. You can find the latest WSPR client software along with information on how to setup and configure the program for your transceiver on the WSJT website.

I encourage our readers to give PSK Reporter and WSPR a try. They are a very useful tool and its fun to see how your station is performing in real-time.

– Fred (AB1OC)

Digital Contesting – AB1QB Enters The 2013 ARRL RTTY Roundup

AB1QB Contesting

AB1QB Contesting

I worked the 2013 ARRL RTTY Roundup contest this weekend for the first time with the new station and the difference from last year was amazing! I also got to use my new Flex-3000 Software Defined Radio for the contest. Band conditions were very good (the sun spot numbers were high) and 10 meters was open. I entered the contest in the Single Operator High Power category, which did not allow me to use a spotting network.

Software Defined Radio

Flex-3000 Software Defined Radio

This was the first time I tried to “Run” during a contest. That is to find a spot in the digital sub-band that nobody is using and call CQ (as opposed to “Search and Pounce”, which is to tune across a sub-band looking for stations to work). “Running” allows you to work QSOs at a much higher rate. Using our two Yagi’s and 500 watts of power from our the amplifier,  I was never “lonely” – I always had a constant stream of callers answering my CQs and sometimes several at once.

Multipliers for this contest were individual US States, Canadian Provinces, and DX Countries. To calculate your score, you multiply the total multipliers by the number of QSOs that you made. I had 111 multipliers for the contest and 759 QSOs. My total score before log checking is 84,249 (the final scores for the contest will be posted here in the near future). Below are some statistics for the QSOs that I made during the contest by area of the world and by band.

RTTY Contest Stats

AB1QB Contest QSO Statistics

Most of the US and Canadian multipliers were easy to get, but it is usually the closest (or most remote) states that are the most difficult – and I did not get Vermont or North Dakota. Saturday evening, I pointed the Yagis toward Europe and worked stations from many different European countries on 40 meters. Sunday toward the end of the contest, I was running on 20 meters with the antennas pointed West working W6s and W7s and I started seeing JA stations calling me. Before we upgraded our station, the only QSOs with JA’s in my log were made during our DXpedition to Bora Bora Island. I moved the antennas around toward Japan and worked approximately 20 Japanese stations and started completing calls with other DX stations in Asia including South Korea, Indonesia, and New Zealand.
RTTY QSO In Contest

RTTY QSO During The Contest

All in all this was a very enjoyable experience. Planned improvements for the next contest (CQ WPX RTTY) will be to work more hours (this time I took time off to sleep, working about 20.5 hours of the 30 hour contest period) and include trying to search out more DX stations. Also, we will be trying contest oriented logging software (we are considering WriteLog and the N1MM Logger). I have been using Ham Radio Deluxe because its well suited for Digital Operating and chasing awards. But logging software designed specifically for contesting will do a better job of keeping track of multipliers and duplicate contacts as the contest progresses. (Generally multiple QSOs with the same station on the same band do not count – and  also wastes precious time for you as well as the other station).

If you work contests, please complete our poll and tell us what logging software you use. This will help me to choose which contest logging software to try for the next contest.

– Anita (AB1QB)

APRS Station Part 2 – Dedicated Antenna and Always-On PC

APRS Station Setup

APRS Station

We have had our APRS Station operating for a while now and it has been performing well. We decided to install a dedicated antenna on our tower that is a bit better matched to supporting our APRS Station. We choose a Diamond X50NA antenna and installed it on our tower at the 70 ft level using a vertical antenna bracket. The Diamond X50NA antenna has a broader vertical pattern than out existing repeater access antenna (a Diamond X300NA). The Diamond X50NA antenna is installed 19″ from the tower leg to minimize any interactions with the tower structure on the 2m band.

APRS Antenna On Tower

APRS Antenna On Tower

I also decided to move our APRSISCE/32 Software which controls our APRS Station to our home server which is always on.

Home Server

Home Server

The APRSISCE/32 software implements an iGate function (sending APRS packets to internet-based APRS servers) so it performs a critical role as part of our APRS Station’s operation. The following is a time-lapse video which shows about 6 minutes of the APRSISCE/32 software’s operation. The yellow lines show the paths taken by packets through various APRS Digipeaters on their way to the internet via our iGate. The circle on the map in the video is about 180 mi (290 km) in diameter. As you can see in the video, we are handing packets from New Hampshire, USA as well as from several surrounding states in New England. It is interesting to see the paths that some APRS packets follow as they find their way to the internet via our iGate node. It is quite apparent when there is an improvement in 2m propagation as we begin to see packets arriving from much greater distances.

The connection between our APRS transceiver (a Kenwood D-710A) and our home server is implemented via an RS-232 over TCP/IP device from StarTech. This device allows us to run the RS-232 control connection from the APRS transceiver to our home server over the wired Ethernet LAN installed in our home.

RS2323 Over TCP/IP Device

RS232 Over TCP/IP Device

With these steps, our APRS Station is complete. We are currently iGate’ing about 7,500 packets per month to the internet. You can see some real-time information on the performance of our station by clicking here.

– Fred (AB1OC)

APRS Station Part 1 – Station Radio And Software

.We recently became interested in the Automatic Packet Reporting System that is used over Amateur Radio. This system is primarily used on the 2m Band. it can report position, weather, emergency information, telemetry, and other data over a shared RF channel. The traffic on the Amateur Radio APRS network originates from a variety of sources including mobile VHF radios (FM and DSTAR), HTs, Weather Stations, Personal Computers, and more recently, smartphones. APRS uses a combination of the Internet and the 2m (and 70cm) radio bands to transport position and other information over RF to gateway ports to the Internet. The data is consolidated and displayed on sites like aprs.fi.

APRS Station

We decided to set up a station in our shack so that we could learn about APRS and its applications. We selected a Kenwood TM-D710A Transceiver for our radio. Kenwood is a leader in APRS technology and they incorporate the necessary AX.25 Terminal Network Control (TNC) in several of their radios including the TM-D710A. We added an AvMap G6 GPS to the base radio to provide a local display of the information that is received over the air. We also made use of our Diamond X300NA antenna to test our station. This antenna is up about 50 ft and provides a decent level of gain (6.5 dB) for APRS work. While this antenna has a fairly low pattern designed for repeater access work, it turned out to perform well during the initial testing of our station.

Diamond XA300NA Antenna

Diamond X300NA Antenna

The first step in getting the station on the air was to program the TM-D710A as an APRS Digipeater. A Digipeater listens to the shared APRS radio channel (the 2m APRS frequency in the United States is on 144.390 MHz FM). When an AX.25 APRS packet is heard, the Digipeater’s TNC decodes the packet, displays it on the local radio (and an attached display or PC if available), and then decides whether to retransmit the pack so that other stations further away from the source can also receive it. APRS has used a number of protocols for Digipeating since its inception. The current protocol is called WIDEn-N. The WIDEn-N protocol uses a Time To Live mechanism to ensure that packets are only propagated a limited number of hops before they are discarded. It also provides tracing so that the source of a packet and the route that it has taken can be determined. Kenwood has a good document that explains APRS Digipeating and how to set up the TM-D710A to operate as a Digipeater. The following picture shows our station operating in Digipeater mode and provides an example of packets as they are received and displayed. The AvMap G6 GPS is a nice accessory for an APRS station as it displays the received APRS packet information on a map display. In a mobile setup, the AvMap can also provide “dead reckoning” navigation based on a station that is also mobile. The AvMap will calculate an intercept path based on its location and a target station accounting for the speed and direction that both stations are moving in.

APRS Station List Display

Station List Display

APRS packets contain a good bit of information about the station originating the packet. In addition to the GPS coordinates where the packet originated, packets may contain telemetry or other information from the originator. The picture below shows a packet from a weather station connected to a transceiver. As you can see, the current weather conditions at the source are contained in the packet and can be displayed on the Kenwood TM-D710A.

APRS Weather Station

APRS Weather Station

The APRS system also provides for the transmission of short messages and eMail to and from radios and client devices such as PCs or smartphones. The following picture shows an example of a short message sent to our APRS base station from one of our iPhones. APRS provides for Secondary Station Identifiers (SSIDs) which allow multiple devices owned or operated by a single call sign to be separately identified. In our case, we have the set up of the following devices so far:

  • AB1OC-10 – our base station
  • AB1OC-7 – an APRS HT
  • AB1OC-9 – Fred’s iPhone running an OpenAPRS client (search for “OpenAPRS” in the iTunes Store)
  • AB1QB-9 – Anita’s iPhone running the OpenAPRS client
APRS Message Reception

Message Reception

Portable Station

To complete our system, we also purchased a Kenwood TM-D72A HT. This unit also has a built-in AX.25 TNC and a GPS making it an ideal tactical station for emergency and other public service work.

APRS HT

APRS HT

Adding iGate Capability

The second step in setting up our station was to create an APRS Internet Gateway or iGate. An iGate is a radio node that is attached to an Internet-connected computer for the purpose of getting packets on and off the Internet. In most APRS networks, an iGate node is the last step in the radio path between an APRS client device like a mobile radio and the Internet. Once the packets find their way to an iGate, the iGate is responsible for routing the packets using the Automatic Packet Reporting System-Internet Service protocols to an APRS-IS tier 2 server. The Tier 2 Servers are typically deployed regionally and handle the process of distributing the worldwide load of APRS packets to the iGates. The packet processing and routing of the Tier 2 Servers are coordinated by a set of Tier 1 APRS-IS Servers. This two-level structure is required to efficiently and reliably handle the massive load of packets that are routed worldwide. Other non-radio-oriented services which use APRS protocols such as Citizen Weather Observer Program (CWOP) and OpenAPRS can also interface with the APRS-IS Servers.

iGate Clients

There are several APRS clients that provide iGate functionality. We selected the APRSISCE/32 software provided by KJ4ERJ to implement our iGate. We chose APRSISCE/32 because it has an active developer and support community, is feature-rich, provides a good user interface including nice map displays, and is compatible with the Windows 7 platforms that we use. Other popular choices include UIView, WinAPRS, and several other programs. APRSISCE/32 has a good Wiki that explains the program and how to set it up. The Wiki plus the APRSISCE Yahoo Group were all we needed to get our iGate up and running. There is also a user manual for the software that is available here.

APRS Path - Northern New Hampshire

APRS Path Shown in APRSISCE/32 – Northern New Hampshire

The APRSISCE/32 Software combines packet information received by the APRS base radio with packets routed over the internet from the APRS-IS servers and combines this information on a map display. APRSISCE/32 can also interface with the CWOP servers to obtain and display weather station information as well. The software includes iGate functionality which will intercept packets on the RF side of the network and route them to the Internet. It can also selectively route packets on the Internet portion of the network over the air. Obviously, one must be careful to be selective about routing APRS-IS Internet packets over the air as a single poorly configured iGate can completely overload a regional APRS network! In our case, we choose to route position information from our two iPhones (AB1OC-9, and AB1QB-9) to the RF side of our iGate. In the future, we plan to route packets from our Weather Station on CWOP once the necessary filtering is available in APRSISCE/32. APRSISCE/32 can show the RF paths to our iGate in real time as packets are routed from RF clients to the Internet. The picture above shows the RF path taken from a station in Northern New Hampshire to our Station and its associated iGate. The picture below shows the path from a station on Cape Cod, MA to our iGate.

APRS Path - Cape Cod, MA

APRS Path Shown in APRSISCE/32 – Cape Cod, MA

The APRS system is quite adaptable. It can find a path to the Internet based on the availability of Digipeaters, iGates, and the current RF propagation conditions. This behavior makes APRS a perfect tool for coordinating emergency operations and it is used as part of RACES and ARES activities.

APRS Applications

There are a number of interesting applications that are built on the APRS platform. One of these measures VHF propagation in real-time. Measurements are based on the paths that stations and Digipeaters use to propagate APRS packets. This information is available in map form here.

2m Propagation in the Northeastern USA

2m Propagation in the Northeastern USA

APRS.fi Website

Another useful site is the aprs.fi site. This site provides maps and route displays for mobiles, weather stations, Digipeaters, etc. The picture below shows an example of a mobile unit’s route display as it moves through our area.

Route Display

APRS fi Route Display

APRS fi can also provide detailed information about the packet traffic associated with a given station. An example of this information is shown for our APRS iGate/Digipeater below.

Snapshot for AB1OC-10

APRS fi Details for AB1OC-10

At this point, we have completed the first phase of our station and it is fully operational. Next, we will be installing a dedicated antenna for our station on our tower.  We will also move our iGate software to an always-on PC. We plan to provide a future post on these upgrades.

– Fred, AB1OC

First Tower Part 21 – Antennas On The Tower (Final Odds and Ends)

Finished Tower - Another View

Up the Tower

We completed all of the integration steps for our new antenna system recently and finally got everything on the air. I guess it’s safe to say a big project like this is never truly “all done” but we have all of the important work completed.

I spent some time weatherproofing all of the cables as they enter and exit the conduits to the shack. The conduits are constructed to allow water and condensation to drain into the ground so the goal here was to keep the water entering the conduits to a minimum. I also spent some time to make the cabling at the base of the tower a little neater and to ensure that things were securely fastened. I also weatherproofed several connectors at the tower and shack end of the feedlines and antennas.

Finished Tower Base

Finished Tower Base

We also installed a 1:2 UNUN on our 160m Inverted-L antenna. The antenna has an impedance of approximately 25 ohms at resonance which makes the SWR a little high and limits the antenna’s 2:1 SWR bandwidth.

160m Inverted-L With UNUN

160m Inverted-L With UNUN

We secured a 1:2 UNUN from Balun Designs to better match our 160m antenna to the 50-ohm feedline. As you can see from the picture below, the UNUN worked out quite well and the resulting 2:1 SWR bandwidth of our 160m Inverted-L is about 60 kHz at the base of the antenna.

160m Inverted-L SWR

160m Inverted-L SWR

Our final antenna farm consists of the following antennas:

The next project was to re-cable our antenna switching consoles to fully accommodate the new antennas including the 2m and 70cm Yagis as well the two feedlines to the 4 over 4 array of SteppIR DB36 Yagis. Our current antenna switching system consists of a manual array of switches that can route up to 8 antennas to any of four radios. This is done via two stages of switching. The first selects which antennas are assigned to which radios.

Antenna Switching Consoles

Stage 1 – Antenna Switching Consoles

The second stage consists of a switch at each radio which selects among the assigned antennas.

Antenna Switching At Radios

Stage 2 – Antenna Switching At Radios

This system, in conjunction with a set of ArraySolutions FilterMax III Switchable Bandpass Filters, allows both Anita and I to operate simultaneously of different bands or to operate in SO2R or Multi-Multi modes. We can use our Custom Feedline Breakout System to route our two SteppIR DB36 Yagis to different feedlines so that we can each use of the two HF Yagis simultaneously.

Bandpass Filters

Bandpass Filters

Our tower gets quite a workout when Anita and I are both operating simultaneously!

The switching for 2m and 70cm is much simpler. Our shack has one radio (an Icom IC-9100) setup for these bands, and we use two UHF Antenna Switches in our console to select between our M2 Systems Yagis on these bands or a Diamond X300NA repeater antenna on a 45 ft mast.

Diamond 300-XA Antenna On Mast

Diamond X300NA Antenna On Mast

With the re-cabling of the antenna switching complete, we got our new 2m and 70cm Yagis on the air and fully tested the associated preamp and sequencer systems. This setup works very well with our Icom IC-9100 radio. The preamps provide about 20 dB of gain, and the M2 Systems S2 Sequencers automatically switch them in and out when we key up the IC-9100. The added gain from the preamps helps with weak signal work on the 2m and 70cm bands. You can see the sequencers in operations in the following video of a 2m SSB QSO with N1RJX.

It is going to be fun doing weak signal work on 2m and 70cm, and we are planning to participate in some VHF contests in the future. I also want to try some EME work when the moon is on the horizon. Our antenna switching setup on these bands can accommodate more antennas, and I am planning to add antennas for Low-Earth satellites and possibly EME work in the future.

I also integrated our Green Heron Rotator Controllers with our computers and the Ham Radio Deluxe Software we use. This allows us to point our beams with a mouse click. You can see the point-and-shoot rotator operation in action in the following video, which captures a QSO between PY7DJ in Brazil and 5H3CMG in Tanzania on 20m. Note how the signals come out of the noise as the 4-over-4 array of SteppIR DB36 Yagi antennas swing in the direction of the participating stations. You are hearing PY7DJ off the side of the array, but he is still quite strong. 5H3CMG indicated in an earlier QSO that he was using a low dipole and 100W. The strength of his signal is an indication of the performance of our antenna system.

We also cleaned up the supports for our 80m loop. It is important to have a setup that keeps constant tension on the support ropes when the anchoring trees move in the wind. We used the same setup that has worked well on our OCF Dipole for some time. This setup consists of a pulley attached to a tree and a rubber tarp anchor, which maintains constant tension on the support line as the anchoring tree sways in the wind.

Wire Antenna Anchor

Wire Antenna Anchor

Given that I had the ladders out to do this, I also took the opportunity to adjust the supports for our other antennas and do our annual antenna checkout and maintenance routine prior to the onset of winter.

At this point, we are looking forward to enjoying operating our new station! The work to date has been really rewarding, and we have learned a tremendous amount from everyone who has helped us. I guess some would say that all of this equipment would not be something they would want to have in their back yard but to a dedicated Amateur Radio operator, a tower and a stack of Yagis is truly a thing of beauty! I sometimes look up at the tower and stare at all the gear up there. Each item has a story and many good memories about the journey to get to this point.

Up The Tower At Sunset

Up The Tower At Sunset

So what comes next for our station? We plan to add a computer-controlled automated operating setup from microHAM, and we will most likely install it sometime this winter. We are also planning to set up our SteppIR BigIR Vertical in a new location and add a receive antenna system for the low bands. We are also considering antennas for Satellite operations, EME, … My next project is going to be to learn Morse Code and become active on CW.

Completed Tower And Antennas

Completed Tower And Antennas

You can read more about our tower project via the articles which follow:

– Fred, AB1OC