Showing posts with label APRS. Show all posts
Showing posts with label APRS. Show all posts

Friday, April 24, 2026

Information about the ZS1I DMR Repeater now also available on APRS


Image:  APRS activity in the Western- and Southern Cape

Here is another upgrade to the ZS Link Network and specifically to the ZS1I DMR Repeater located in Mossel Bay.  As with many other systems the DMR Repeater is now also listed on APRS and provide information about the repeater.  Below follow more information on how to setup APRS and the DMR Repeater firmware WSPD.

Click on image for larger view.  (ZS1I-D)

APRS in WSPD Dashoard for ZS1I

WPSD (W0CHP-Radio) offers full APRSGateway support, allowing for advanced APRS data sharing with specific digital modes (DMR, YSF) and enabling Position updates to be sent directly from your hotspot/repeater to mapping systems like aprs.fi. 

For setting up your specific station (using ZS1I as the example):

1. Configuration in WPSD

  • Locate APRS Settings: Navigate to the Configuration -> APRS screen in your WPSD dashboard.

  • Station Setup: Enter your callsign, e.g., ZS1I, in the APRS callsign menu. Ensure you add the appropriate dash number if required (e.g., ZS1I-1 or ZS1I-10 for hotspot instances).

  • Enable Position: Ensure My Position Set is set to a proper GPS source (usually "GPS" or "Radio" if your radio provides it).

  • Map Settings: Input your Latitude and Longitude to ensure your position is sent to the network. 

2. Operating with Digital Modes (DMR Example)

If you are trying to transmit APRS data from your handheld to the WPSD dashboard to appear on a map:

  • DMR Settings (Anytone): In your radio's Digital APRS settings, define a D-APRS channel, set the APRS report type to "Digital," and set the APRS RX to checked.

  • Digital APRS Channel: Set your digital APRS channel to 1 and ensure your radio is configured to send GPS positions. 

3. Verification

  • WPSD Dashboard: Monitor the "Live Caller" or "Local RF Activity" screen on your dashboard to see packets arriving.

  • aprs.fi: Check your station on aprs.fi to verify that the beacon data sent via the DMR/YSF network has been parsed correctly.

Note: WPSD allows for full APRS support, including D-Star (via ircDDBGateway), YSF, and DMR.

 

Click on images for larger view.

ZS1I DMR Repeater now also connected to the APRS-ZA Server (ZS1I - Yellow Arrow)

A big thank you to Hennie van Rensburg ZS6CEY for allowing me to use the server.  As can be seen this server is rather busy.  See the images above.

 

Setting up the APRSGateway in WSPD - Go to Admin - Advanced - APRSGateway.  Enter the details as shown in the above images and add your APRS Server Password. That's it you should be up and running.

Click on images for larger view.

ZS1I DMR Repeater now also listed on Aprs.fi web-site

Click HERE to view the APRS information in near real time. Many thanks to Aprs.fi for hosting the ZS1I DMR Repeater information. (ZS1I-D)

 


Click on images for larger view.

Finally:   It is wonderful how one can nowadays integrate a wide variety of equipment and software to leverage internet-linked networking, understanding specific digital modes (DMR, D-STAR, System Fusion), using Hotspots / MMDVM Repeaters for flexible access, and optimizing software settings for clear communication. Digital radio provides high voice quality, data transmission (GPS, text), and global connectivity without high power and large band width..

Tuesday, December 2, 2025

APRS Activity increasing in the Southern Cape, South Africa


Above Image:  OSCAR 44 (also called Navy-OSCAR 44, PCSat-1, Prototype Communications SATellite and NO-44) is an American amateur radio satellite for packet radio. It was built by Bob Bruninga at the U.S. Naval Academy.

What is APRS?  No APRS is not new in amateur radio.  APRS was developed in the late 1980s by Bob Bruninga, call sign WB4APR, a senior research engineer at the United States Naval Academy.

 

APRS, or Automatic Packet Reporting System, is an amateur radio-based system for real-time digital communication of information like GPS coordinates, weather data, and text messages. It transmits data packets over radio frequencies, allowing users to display real-time information, such as object locations on a map, and is widely used for emergency communications and asset tracking. 

How it works

  • APRS uses packet radio technology to send digital information over specific frequencies.

  • A GPS receiver is often combined with a radio modem to automatically transmit a station's location, a process known as tracking.

  • Data packets can include callsign, GPS coordinates, altitude, weather telemetry, status messages, and short text messages.

  • Other users can receive these packets and display the information, typically on a map, allowing for shared situational awareness.

  • Information can also be relayed through the internet via APRS-IS (Internet System) gateways, enabling global access to local data.

What it's used for

  • Emergency Communications: Quickly sharing tactical information, such as weather alerts or the location of emergency personnel, during a disaster.

  • Tracking: Monitoring the real-time movement of vehicles, such as in a rally or search and rescue operation.

  • Asset Tracking: Locating mobile stations or other assets on a map.

  • Information Exchange: Sending short messages, announcements, or weather station data to other operators.

Above is just a short explanation in a nutshell what APRS entails.  Many radio amateurs think APRS is all about tracking vehicles and objects.   APRS is far more that watching objects on a map.

Want to know more about APRS and it's History.  Click HERE

APRS Activity increasing in the Southern Cape, South Africa

APRS is not new in the Southern Cape / Garden Route Area.  I will in a future article provide more information on the history of APRS in this area and what roll it played during "Exercise Double Barrel."

There is definitely an increase and renewed interest in APRS in the Southern Cape.

Herewith a list of all the ZS1 APRS stations as displayed by aprs.fi.  Click HERE

Stations active on 2 December 2025 at 15h00 SAST:


Click on images for larger view.

Further reading:

How to configure APRS Reporting in South Africa

How to configure a radio for APRS location and data reporting in South Africa

Monday, June 2, 2025

Down Memory Lane - Mossel Bay (Southern Cape) now has its own Private Weather- , Search & Rescue and Disaster Network installed - 1 December 2013

Image:  Western Cape APRS Image (Click on image for larger view.)

Mossel Bay now has its own Private Search & Rescue-, Weather- and Disaster Network/System installed and activated. The network will be expanded later to include various areas of the Southern Cape.

The Network/System is based on the Automatic Packet Reporting System (APRS) for real time tactical digital communications of information of immediate value in the local area of Mossel Bay. In addition, all such data is ingested into the APRS Internet System (APRS-IS) and distributed globally for ubiquitous and immediate access. Along with messages, alerts, announcements and bulletins, the most visible aspect of APRS is its map display. Object or information can be placed on the map, and it is distributed to all maps of all users in the local RF network or monitoring the area via the Internet or Search and Rescue Network. Any station, radio or object that has an attached GPS is automatically tracked. Other prominent map features are weather stations, alerts and objects and other map-related volunteer activities including Search and Rescue, Disaster Information and signal direction finding.

APRS (Automatic Packet Reporting System), is a digital communications protocol for exchanging information among a large number of stations covering a large (local) area, often referred to as "ey-pers". As a multi-user data network, it is quite different from conventional packet radio. Rather than using connected data streams where stations connect to each other and packets are acknowledged and retransmitted if lost, APRS operates entirely in an unconnected broadcast fashion, using unnumbered AX.25 frames. APRS packets are transmitted for all other stations to hear and use. Packet repeaters, called digipeaters, form the backbone of the APRS system, and use store and forward technology to retransmit packets. All stations operate on the same radio channel, and packets move through the network from digipeater to digipeater, propagating outward from their point of origin. All stations within radio range of each digipeater receive the packet. At each digipeater, the packet path is changed. The packet will only be repeated through a certain number of digipeaters -or hops- depending upon the all important "PATH" setting. Digipeaters keep track of the packets they forward for a period of time, thus preventing duplicate packets from being retransmitted. This keeps packets from circulating in endless loops inside the ad-hoc network. Eventually most packets are heard by an APRS Internet Gateway, called an IGate, and the packets are routed on to the Internet APRS backbone (where duplicate packets heard by other IGates are discarded) for display or analysis by other users connected to an APRS-IS server, or on a website designed for the purpose. While it would seem that using unconnected and unnumbered packets without acknowledgment and retransmission on a shared and sometimes congested channel would result in poor reliability due to a packet being lost, this is not the case due to the fact that the packets are transmitted (broadcast) to everyone, and multiplied many times over by each digipeater. This means that all digipeaters and stations in range get a copy, and then proceed to broadcast it to all other digipeaters and stations within their range. The end result is that packets are multiplied more than they are lost. Therefore, packets can sometimes be heard some distance from the originating station. Packets can be digipeated tens of kilometers or even hundreds of kilometers depending on the height and range of the digipeaters in the area. When a packet is transmitted, it is duplicated many times as it radiates out, taking all available paths simultaneously, until the number of "hops" allowed by the path setting is consumed. APRS contains a number of packet types including position/object/item, status, messages, queries, weather reports and telemetry. The position/object/item packets contain the latitude and longitude, and a symbol to be displayed on the map, and have many optional fields for altitude, course, speed, radiated power, antenna height above average terrain, antenna gain, and voice operating frequency. Positions of fixed stations are configured in the APRS software. Moving stations (portable or mobile) automatically derive their position information from a GPS receiver connected to the APRS equipment. The map display uses these fields to plot communication range of all participants and facilitate the ability to contact users during both routine and emergency situations. Each position/object/item packet can use any of several hundred different symbols. Position/objects/items can also contain weather information or can be any number of dozens of standardised weather symbols.

Each symbol on an APRS map can display many attributes discriminated either by colour or other technique. These attributes are:

    Moving or fixed
    Dead-Reckoned or old
    Message capable or not
    Station, object or item
    Own object/item or other station object/item
    Emergency, priority, or special

In its simplest implementation, APRS is used to transmit real-time data, information and reports of the exact location of a person or object via a data signal sent over amateur radio frequencies. In addition to real-time position reporting capabilities using attached Global Positioning System receivers, APRS is also capable of transmitting a wide variety of data, including weather reports, short text messages, radio direction finding bearings, telemetry data, short e-mail messages (send only) and storm forecasts. Once transmitted, these reports can be combined with a computer and mapping software to show the transmitted data superimposed with great precision upon a map display. While the map plotting is the most visible feature of APRS, the text messaging capabilities and local information distribution capabilities combined with the robust network should not be overlooked; Parts of South Africa has a network of APRS stations to allow text messaging between stations in the event of the failure of conventional communications.

APRS is not a vehicle tracking system. It is a two-way tactical real-time digital communications system between all assets in a network sharing information about everything going on in the local area. It means if something is happening now, or there is information that could be valuable to you, then it should show up on your APRS computer, cellphone and VHF radio in your vehicle.

  

Image: Southern Cape APRS Image. (Click on image for larger view.)


Enough of the technical detail....what does the Mossel Bay network look like and how does it function.  Currently I have setup a Internet Gateway (IGATE) and Digipeater (Digi) in Heiderand, Mossel Bay with the ID of ZS1I-10 . The Mossel Bay Internet Gateway (ZS1I-10) relay all South African APRS data (RF and Internet APRS Backbone) to and from the host server (APRS-ZA hosted by Hennie ZS6EY) in Johannesburg.


The Mossel Bay Igate and Digi consists of the following equipment:

1.  1 x Laptop Computer (Local Server)
2.  1 x Desktop Computer (Gateway and Digi computer)
3.  ZS1I Soundcard Interface
4.  1  x AEA Packratt PK232 Modem (HF + VHF Radio ports.)
5.  Uiview Software
6.  SARTrack Software
7.  1 x Radius Motorola VHF Radio (144.800 Mhz)
8.  1 x Kenwood HF Radio  (Connecting to HF Igates if the Internet is down.)

There are several websites that display information from APRS-IS in real time, the best being aprs.fi 



The maps shown above is embedded from aprs.fi. It shows a view of  the Mossel Bay Area. As it is a live map, what you will see will depend on when you are looking at it, but during the daytime there are usually at least a couple of mobiles driving around (shown by a red car symbol) whose positions are shown on the map. You can also see digipeaters and gateways, shown by a  black or green icon. The red dots on a vehicle's track are the waypoints that were transmitted by the radios in the vehicles. If you point at the dots with your mouse, a line will be drawn connecting the waypoint with the gateway that received it and sent the report to APRS-IS.

The symbol WX in a blue circle is a weather station. Click on these and you will see the latest weather report. Some of the weather stations are operated by radio amateurs, and may use RF to send their data to the system. Others are not. They use APRS but report over a separate network and are never transmitted on RF. When viewing coastal locations at aprs.fi you may also see the positions of ships, which are also reported via their own network.

Other symbols you may see on the map are generated by amateur APRS users using their client software. You might see a repeater, shown by a blue antenna tower symbol. Some amateur - perhaps a repeater group member - has taken the initiative to create that object.

To view APRS activity in the Southern Cape and other parts of South Africa do the following:

1.  Open your Internet Browser
3.  The Southern Cape APRS map will open.  It it does not open just type in ZS1I-10 in the Track Callsign in the search block.  Press enter and it should open the Mossel Bay Map.  You can zoom in and out as you like with the + and - slider of simply scroll with your mouse.
4.  To view detail of a station or object left click on the icon.  Further information will be provided.
5.  The following stations and objects can currently be viewed in the Southern Cape Area:

    ZS1I-10 - Mossel Bay Igate and Digipeater information
    FAMO - Mossel Bay Airport information
    FAGG/GRJ - George Airport information
    George Repeater information
    Stilbaai Repeater information
    Riversdale Repeater information
    ZS1I-5 - Android Cellphone Tracker for mobile tracking
    ZS1I Home
    ZS1I HUB
    ZS1RB-10 -  Igate George

There are many ways to get involved with APRS. You need a amateur radio license to transmit any information on APRS. However if you just want to follow (receive) stations and objects you can use APRS FI for this purpose.

There are several APRS software packages. For many years the most popular program for Windows PCs was one called UI-View. However, that program has not been developed for many years as its author G4IDE died a few years ago. It is time for something new and I chose a program called SARTrack. (Search and Rescue Radio Tracking) The International BETA version is now available, and it is FREE!  

Now with many different Maps (available off-line after initial download) including Topographical and satellite maps and Canada Toporama, all amateur radio APRS functions, and many extra SAR features, including an advanced Operations Log with 3 differerent displays.

SARTrack is based on an ‘un-docked’  window system, that is, all windows are separate,  and can be moved anywhere independently.  The primary reason for this design was to enable the use of multi-monitor systems, in particular the use of a video projector displaying the Map, while other windows could stay on the laptop screen.

A single small Main Menu window from which all primary windows can be started stays on-top at all times.
Each window has its own basic settings,  which means the User will not be subjected to a main window overloaded with settings and icons, which is unfortunately becoming very common.
For example, the Map window will have most settings needed for that window, while the SAR Log window will only have settings required for that window.

All effort has been made to made to keep the program as easy to use as possible, while only showing the user only what he or she needs to see.
When the original New Zealand version became an International version, intended for both Search and Rescue and Amateur Radio operators, an option was added in the main Setup to switch between SAR and HAM operation.

When SAR is selected, the SAR Log system becomes available, and various other settings in the program appear or disappear.
SARTrack now makes heavily use of OSM (OpenStreetMap) compatible Online servers for the Maps. These maps, based on a system of small Map Tiles, can then be saved for off-line use during SAR operations in the field. This off-line use saving of Tiles is not allowed when using Google Maps or other commercial Map systems.

As of February 2013 SARTrack has the following basic features:

- A primary Map window for all OSM-compatible  and Local Maps, with many Maps including Topographical maps for Canada and the USA, and Topographical maps for the rest of the world.
- Transparent Overlays are possible, and a User configurable file for OSM servers is included.
- A Google Map window which can be synched   with the primary map (but on-line only)
- A New Zealand Topographical off-line Map system (3 Gigabyte download required)
- A full APRS system, including an advanced APRS Message system, Stations, Objects, etc.
- Selectable overlays on the Maps, like Map outlines, Grid, Radio-Range, etc.
- Warning when Stations (Trackers) time out, and warnings when Priority beacons (from Trackers) are received.
- A Replay system, which makes it possible to replay an entire day of a SAR Operation, including the Tracks, Messages and the SAR Log, with a timer window showing when it all happened.
- The SAR Log can be exported in a delimited form.
- There are many more features in the program, to discover it all, download and install the software, if is free.

SARTrack is completely stand-alone, runs on Windows 2000 and higher, does not use any libraries,  does not use .NET, does not use the Windows Registry, does not load any things on Windows start-up.

Updates will be checked for once a day, only when SARTrack is started.
These where the original requirements when we started in 2006 and most are implemented:

  •     To be able to track up to many stations, and to display them on a topographical map.
  •     All Map data to be locally available on the laptop (no Internet required).
  •     Every station (tracker) to get a Tactical callsign, separate colour track, Icon, customizable Screen label.
  •     Screen Labels to show (selectable): Tactical callsign, Coordinates, Speed, Altitude, Course
  •     Screen Labels to change color if the station has timed out, or has send a Priority message.
  •     Warning systems to show stations loss of signal, and Priority Warning with screen and Audio signal and selectable Message.
  •     A Priority Icon to show on the map when priority signal received. Also automatic log entry.
  •     Event Log (Running Log) system, which enables the operators to enter Log entries with pull-down lists for all active stations. Automatic Log entry in case of Priority Signal received, or loss of signal, and when Icon Markers are added by the operators. The Log can be added to from multiple computers, both locally and remote. The Radio operator can enter Log entries which will then show up on the Controller PC, and any other PC's active on the search.
  •     Option to print out Log entries and messages on the local printer (on an entry-by-entry basis).
  •     Capability for operators to add special Marker Icons on the map, with detailed data attached to it, including documents and pictures.
  •     Capability to draw search areas on the map and share with other computers.
  •     Dual Screen capability, where the Map screen can be displayed on a separate monitor or video projector, while all operational displays are on the laptop screen.
  •     Capability to network several computers and share all data, so a radio operator can enter Log entries and view location of stations, and the operations team view the map and operate another laptop in the operations room.
  •     Capability to connect to an Igate server via the Internet, if available, to share all Tracking data with computers across South Africa.
  •     A messaging system which enable all computers to communicate encrypted text messages with each other, even if only connected by radio.
  •     A 'Text Message' system which enables Radio based computers to send one-line emails and TXT messages to mobile phones.
  •     All data, tracking information, events, log entries etc. to be stored immediately and permanently on all connected computers.
  •     Capability to re-play the entire Search on the screen.
  •     To print out the Log system and tracking maps at the end of the search.

Furthermore, the program must be

  •     Extremely easy to use, following all standard Windows conventions, such as dragging the Map by left-mouse down and drag, zooming in and out with the mouse-wheel, right-clicking on Icons on the screen and get a pop-up menu with all options, etc.
  •     As many functions as possible should be automated.
  •     No requirement to use the more advanced functions; the program should work and start tracking right after startup.

At the time of writing (Updated February 2013), most of the above functions have now been incorporated in the program, and the program is at Beta level.

The way Land Search and Rescue has worked, and it still working, is based on paper maps, the compass, and in later years, radios and even portable GPS units. Search teams take a topographical map with them, and on a regular basis need to stop, try to find their own position on the map, using compass, local features, and then radio his information back to the operations center. Lately, some teams carry portable GPS units with them, but they then have to try to extract the right digits and transmit these back to base over the hand held radio.

At the operations center, the radio operator writes this down, and passes it on to the controller, who then has to locate the position on their own paper map, and mark it. This system is extremely tedious, time consuming, clogs up the radio channel, and prone to error.

Now imagine a system where the location of all search teams shows up live on a computer screen, or a video projection, overlaid on a digital topographical map. Not only the team's current location, but with multi coloured tracks, an arrow in which direction the team travels, and a label with additional information like altitude, speed and the coordinates in either 'GPS' or SA Grid format. Not only the position of the teams in the terrain is clear, but also the relative position to each other can be seen with a single glance at the screen.

A search area can be drawn on the screen, and special Icons, with detailed information attached, can be added. It is immediately clear if areas have been covered, or missed in the search. If a team finds a person, or if they run into trouble themselves, they can trigger a Priority Message, which will cause an visual and audio alarm to go off, and a special Priority Icon will show up on the screen at that location. Other teams can then immediately be dispatched to that location, and directions can be given to them by the controller, who can see, live, where all teams are. If a team takes off in the wrong direction, or into the wrong valley, this can be immediately corrected by the controller. So, this system works exactly opposite as the current situation. It is not a question that the teams try to give their location to the controller.

The controller knows where the teams are, and he can tell the teams where they are, and where he/she wants them to go, which is the way it should be. As described on the Software page, many other features are available in the SARTrack program, all especially designed for SAR use. Other tracking systems There are other tracking systems available, based on a satellite link, or a cellular connection. These systems work well for the purpose for which they are designed. Systems designed to work over the cellular network, only work when you have cellular coverage. This is often not the case in many search areas, and especially not when teams disappear in dense forest of deep gullies or valleys. It is unsuitable for SAR use.

There are two basic satellite tracking systems. One uses a Geo-stationary satellite. This satellite is in a 40,000 Km orbit above the earth, at a 'fixed' position. Any object between the tracker and the satellite , including the person's head or body, will cause the signal to be blocked. The other system is the use of either the GlobalStar or Iridium networks. These satellites orbit the earth at several hundred kilometers. While the Tracker units currently available have certainly improved in size and weight, they are in our opinion still not suitable for use by a person walking bush with a backpack.

These units need to have a clear view of the sky to get proper connection to the satellite, any object like trees, and worse deep gullies will cause loss of signal. Even the head or body of the wearer will block the signal. Also, the cost of these systems is high. The Trackers are not cheap, and the operating costs can be high. In the APRS system as we are currently using it, all trackers transmit a location every 30 seconds. This would become very expensive if 15 teams with 15 satellite trackers would be in the field for days at the time. The SARTrack system use is free. Then there is the problem of the downlink.

Almost all satellite tracking systems advertised at the moment, are based on the signal being received somewhere in the world (and not necessarily in South Africa) by a satellite ground station. It then uses the Internet to get the data to a server, owned by the company who sells the trackers. Then, special software running on the user's computer logs onto this server, and then shows the received data on the screen... But only if the end-user has Internet access!

 If the forward field base has no Internet connection, the system cannot be used. Satellite trackers can be an excellent choice for vehicles, boats and aircraft, who generally have a clear view of the sky, can use a high-gain antenna and have the battery power to spare. The data will be forwarded to a permanent operations center with permanent Internet access. But for teams tramping in the bush, with often a forward field base also in the bush, these systems are, in our opinion, not suitable. Also, software especially designed with special features for Search and Rescue is not available.

The SARTrack system consists of a case with Trackers, a couple of small portable Digipeaters, and a laptop with a hand held radio attached to it. The whole system can be quickly set up in any remote location, and is completely independent of outside communication systems. If the portable repeaters can access a permanent repeater and get connection with the outside world, more options open up, but it is not required. Okay quite a mouth full but as can be seen this software is in my opinion well suited for a wide variety of uses in the Southern Cape.

In Summary: APRS provides situational awareness to all operators of everything that is going on in his local area, whether it be MSBWX Weather reporting, traveler info, Direction Finding, objects pointing to ECHOlink and IRLP, or Traffic reporting, Disaster-  and emergency response. All of this while providing not only instantaneous operator-to-operator keyboard messaging capability for special events, but also an always-on Voice Alert backchannel between mobiles in simplex range. Think of APRS as a signalling channel/news channel to reveal ALL resources and live activities that are in range of the operator at any instant in time.

I would like to invite radio amateurs in the Southern Cape to join the Mossel Bay APRS network on 144.800 Mhz FM and the general public to monitor Mossel Bay APRS activity on APRS.FI.

Updates to follow as and when the Mossel Bay APRS Network is extended and utilized this holiday season.

- MSBWX

Wednesday, October 4, 2023

Mossel Bay ZS1I GRHub Network Flowchart/Diagram now available


This is a project that I wanted to undertake several times in the past but I was always looking up to learning how to use a software program to compile such a flowchart.  My excuse of not having time was thrown out the window and I started yesterday (3 October 2023) to compile one of a few flowcharts / diagrams  I intend creating:

The ZS1I GRHub Network flowchart is now available for download by clicking HERE (Pdf)

I am busy with the ZS1I AREDN flowchart and will also make it available when finalized. 

The ZS - Link Network flowchart will take some time and the co-operation of all the roll-players involved.  I will compile a questionnaire and once I received it back, I will add the info to the flowchart.  I will soon correspond with the custodians of Repeaters, Links, Nodes, Networks that link to the GRHub Network.  By creating flowcharts I hope that users of the ZS - Link Network will have a better understanding of the working, outlay and size of the system. 

Sunday, August 28, 2022

UPDATE 1: APRS Southern Cape Area

Short update:  I have added the following Southern Cape Objects to the global APRS network.  Further objects will be added when necessary depending on the specific incident or happening.    Welcome back Thys ZS1TBP.  Great to see your "Truck" back on APRS.

Objects added:

  • Cape St Blaze Lighthouse, Mossel Bay - YAAC
  • Sea Buoy, Mossel Bay - YAAC

Local and visiting radio amateurs are welcome to use the APRS services in the Mossel Bay area. 

Click on images for larger view.



 



Saturday, August 27, 2022

Update APRS in the Southern Cape via Raspberry Pi, Direwolf and YAAC


 (Click on image for larger view.)

Previous posts in this regard refers.  Further information available HERE.

The past week and a half I again played around with APRS in the Mossel Bay area.  The following services/stations are now up and running.  Please note that I still need to connect the RF radio to the  ZS1I-10 Igate:

Local and visiting radio amateurs are welcome to use the APRS services in the Mossel Bay area.  I will later post more information and How to's to setup the different OS's (OS = Operating System)

Activity can be monitored on APRS fi and FindU

As stated I still need to update the RF part of the current system.  I am awaiting the arrival of a 2M VHF radio before setting up the RF side.  Updates to follow. 

Some more images:








(Click on images for larger view.)

Thursday, April 21, 2022

Amateur Radio Emergency Communications Re: Kwazulu Natal Flood ( 7 - 13 April 2022) By Johan ZS1I


Need I say anything about the flood damaged caused by the cut-off low system that hit Kwazulu Natal  recently.  The images available speak for itself.  This will go down in the history books as the most devastating flood in the history of South Africa, even bigger than the 1968 Port Elizabeth and East London floods and the 1981 Laingsburg Flood.  My deepest condolences go out to all those who lost loved one's as a result of this terrible event.  May you find peace and may all the happy memories of your loved one's bring you comfort at this sad time.

Before I express my opinion relating to emergency communications I would like to give my personal opinion as to the weather system that caused the Kwazulu Natal Flood. Firstly I am not a qualified Meteorologist but has been the administrator for SAWDIS, SAWOIS and several other platforms that presented weather observation information to the general public for several years.  Judging from the comments by the public,  government, schools and universities these platforms were very popular, informative and educational of nature.  Be as it may we need to look at the system that caused this devastating flood.

The SA Weather Service were spot-on with their prediction, warnings and media release that were issued despite what  certain people now proclaim.  I am of the opinion that the cut-off low was the cause of the heavy rainfall and consequent flooding.  It was not caused by a so called "Tropical Depression called ISSA" which "developed" after the heavy rain has already fallen.  Personally I do not believe that we can really talk about a Tropical Depression or even name the system Tropical Storm "ISSA."  More on this later.

Lets look at the timeline of the cut off low prediction and development as of the 7 April 2022 on-ward's:

  • SA Weather Service Media Release issued on the 7 April 2022: 

Media Release: Flooding expected in parts of South Africa this weekend (8-11 April 2022) with cold conditions as a cut-off low affects the country.


 

  • 10 April 2022: Frank Böttcher@bottcherscience reported:
  9 - 10 Morgen 174mm in 24 Std. in #SouthAfrica erwartet: #Heavy rain! #ICON #Weather #Model expected 174mm(!) within 24 hours until 10.04.2022 - 06:00 UTC near #SchweizerReneke (#SouthAfrica) (#DWD, #Extremwetter, #Unwetter).


  • ASKMeteo @ASKMeteo reported:

Apr 9

Wow 😳. Very heavy rainfall possible tomorrow. #StaySafe and be prepared and follow official weather warnings and advisories. @ReenvalSA

@_ArriveAlive

@afriwx

  • Predicted rainfall charts for 10 - 14 April 2022 provided by Afri WX on 10 April 2022:



 Note:  This prediction was done on the 10 April 2022 and is subject to change as the new prediction is issued.   

  • Real Time Eumetsat Image for the 10 April 2022 @ 10h00 SAST:

 


This 'comma shape' of the cloud bands is the main feature that signifies the 'cut-off' stage of the Cut-Off Low 10 April 2022  (Image courtesy of Eumetsat, 2022).  - SAWSAWC


 Now this is where it started to get very interesting.  The intensification of the cut-off low can clearly be seen.  The following comment says it all "Last 3 words: Accociated Aviation hazards: Had a TERRIBLE flight to JHB on Friday evening. Don't ever fly if there's a Cut Off Low. Worst flight of my life. Be warned"

  • Warnings issued by the SAWS on the 9 - 10 April 2022 iro Kwazulu Natal:



 


  • Eumetsat Image for the 11 April 2022 @ 06h15 SAST:


The Cut-off Low is still maintaining status quo for today (11 April 2022

 


  • Orange level 5 warning: Rain: KZN: 11 April 2022  - SAWS


  • Orange level 8 warning: Rain: KZN: 11 - 12 April 2022




  • MEDIA RELEASE: (12 April 2022) Extreme rainfall and widespread flooding overnight: KwaZulu-Natal and parts of Eastern Cape 





  •  SAWS Rainfall and Alerts (12-13 April 2022).


  • Yellow level 2 warning: Rain: Eastern Cape: 13 April 2022

  • On the 12 April 2022 at 09h30 I first noticed the Mid Latitude Cyclone as per satellite image.   

As this is not a tropical cyclone or tropical depression as stated by Meteo France not much notice was taken of it as it is not an uncommon or rare event.  These do pop up from time to  time along the  South African coast. More on this later.  Here is the satellite image of the 12 April 2022.


Mid Latitude cyclone visible just offshore with outer flow bands over areas of Kwazulu Natal.  The mid-latitude cyclone is a synoptic scale low pressure system that has cyclonic (clockwise in Southern hemisphere) flow.   Here is the NOAA19 images around 20h00 on the 12 April 2022.



The image underneath display such a system that was observed just to the south of Cape Town on the 10 May 2010 and what a mid-latitude cyclone is:


 

Here are some more examples of a mid-latitude cyclone event that was observed by me during the period 4 - 9 January 2014 that occurred as a result of a cut-off low.  Articles written about this event can be found HERE and HERE.




  • Here is also some information on "What is a cut-off low?"

It is interesting to see that the media and certain social media weather platforms agreed with Meteo France while our own Weather Service did not issue any media statement in this regard.  Here are some comments relating to the so called "Tropical Depression and Storm ISSA".  


  • I asked the following question and expressed my opinion iro "ISSA"

Garden Route Hub Network @ZaZs1i

Apr 13

Replying to

@VoxWeatherZa

and

@SAWeather_

Is this really a Sub Tropical Storm or Tropical Depression? If so then things do not add up. The cut-off low caused the damage in KZN not the now called "Tropical Depression" #ISSA. I do not agree with the "Tropical Storm" naming. Be as it may not for me to decide.

If this is classified as a Sub Tropical Storm or Tropical Depression, does this mean that this specific event is re-writing the weather history books or that this is now classified as a new area where we can expect Tropical Depressions, Tropical Storms, Cyclones in future?

Needless to say that no answer was received as rightfully predicted by many as nobody wanted to put their job on the line.  The question still remain unanswered.  Personally I think that a mistake was made to classify the reminiscences of the cut-off low as  a tropical depression and issue the name #ISSA to it.  If it was not a mistake then all future such storms will have to be classified as a tropical /depression storm and be named accordingly.  Be as it may thankfully no further serious damaged was caused.

 

The above  Eumetsat Satellite Image reflect the reminiscences of the cut-off low system.  Not much left of  Meteo France's  Tropical Depression "ISSA".

 


  • Now why mention Amateur Radio Emergency Communications in the Title of this post? 
Is it time for Amateur Radio and Amateur Radio Emergency Communications in South Africa  to harness technology to assist with real time on the ground early observations to the authorities,  public and communities?

Good emergency management before, during and after severe storms depends on access to real-time weather warnings and observations.  The SA Weather Service is the sole entity that can issue such warnings but what about weather and disaster observations?

The examples (in the links below) from Mossel Bay shows how radio amateurs and HAMNET (emergency division of the South African Radio League) members, as well as the general public, can play an important role in reporting real-time weather and disaster information – and offer a key public information service during emergencies and natural disasters. It also illustrates how members of the public, using their own equipment, can contribute positively to disseminating critical information when and where it is needed most.

The poor quality of public information available during severe weather events and disasters necessitate the need for a country wide public weather and disaster information service, and especially an early warning system of rising water levels, strong winds, heavy rain etc. With the support of  radio amateurs (known as radio hams) and the general public there is a need to established a Weather and Disaster Information Service by radio amateurs to provide up to the minute weather reports, weather maps, photographs, satellite images, and relevant information iro disasters in South Africa.

This approach of harnessing amateur radio for local disaster risk management should caught on quickly as radio amateurs have the means and ability to spread information/data even if the Internet, cell phone networks or landlines are down in the effected area or province. It must be spread around the country via Amateur Radio, Internet, WhatsApp, Telegram and other Social Media that is in operation at the time, during the event or disaster.

It is important that information must be exchanged effectively by using the Internet, commercial entities and amateur radio which ever is operational at the time.  Like we say in amateur radio  "If all else fails amateur radio will not"   With 500 MTN cell towers going offline during the KZN Flood it is important that radio amateurs get involved in providing communications during disasters.  Read the article HERE.


AMATEUR (HAM) RADIO IS THE ONLY FAIL SAFE COMMUNICATION SYSTEM IN THE WORLD!

This two-way information flow via Amateur Radio helps to promote and improve scientific methodologies as well as helping to interpret weather and disaster observations at grass roots level. The ‘high-tech’ element of amateur radio can rely on Winlink, or the APRS RF global system. This is a combination of networks and terrestrial and satellite links that move weather-related information around the world. In South Africa, many areas lack the necessary infrastructure and knowledge to benefit from this global information.  This is where the ‘low-tech’ side of amateur radio should step in where amateur radio operators receive and share important weather and disaster information linking isolated and marginalized communities around the country.  Yes, low-tech as we do not need high-tech to send observation information to local communities, however high tech can also be used if needed. 

Will the above suggestions at least be considered by radio amateurs? That's up to them to decide.  I have had my innings and with old age creeping up on me, now is the time for me to hand over the reigns to the younger amateur radio generation.  Who will be the first to "pick up the ball" in establishing a Weather and Disaster Information Service in South Africa?

Finally:  I do not like to talk about my "achievements" in amateur radio as it is not important to me to tell the world what I have done and achieved.  I am just another "spoke in the wheel".  Recently I was requested to share my knowledge and experience that might be of benefit to new and younger radio amateurs.  I will provide the links to some of my contributions to South Africa and the Garden Route District area.

1.  RADAR Western Cape 2010 Risk and Development Annual Review Publication (Page 68)  Click HERE

2.  Established the first ever AREDN Mesh Network in South Africa and put it to good use:

2.1  Amateur Radio Mesh Network Brought into Mix as Volunteers Assist in South African Fire Disaster - ARRL

2.2  AREDN Group in South Africa Responds to Fire Disaster - AREDN USA

2.3  Radio amateurs give wireless support behind the scenes - Mossel Bay Advertiser

3.  SA Weather and Disaster Observation Service  Click HERE

4.  Mossel Bay Weather Observation, South Africa  Click HERE

5.  Knysna Fires After Action Report   Click HERE

6.  The Laingsburg Flood  25 January 1981  (Article for Schools)  Click HERE 

7.  Herold/George Fire  After Action Report  Click HERE 

8.  Commemoration and Amateur Radio Involvement:  Knysna Fires 7 June 2017  Click HERE

9.  Radio Ham Saves Lives (Dalkiri - 2005 Rescue story)  Click HERE

 

  • Herewith some images of the damage caused in KZN as a result of a severe weather system: (Click on images for larger view.)

  







 







 


Article written and compiled by  Johan ZS1I,  Mossel Bay

Resources,Images and Thanks:

SA Weather Service
Frank Böttcher@bottcherscience
Twitter
Western Cape Government -RADAR
University of Cape Town  - RADAR
SAWSAWC
Vox Weather
Afri Weather
Eumetsat  
NOAA19
Thys ZS1TBP
MeteoSat
Meteo France
MyBroadband
Amateur Radio 101 Telegram Group
MTN
WhatsApp
HAMNET  SA
HAMNET KZN
South African Radio League 
AREDN
Mossel Bay Advertiser
Brazilian Navy (Capt. Pamplona)
Dalkiri Website
Disaster Management
All Radio Amateurs that provided photos and information
All the private photographers and news media out there, to many to mention all.
 

Closure of this ZS Link Network Blog - 29 April 2026

This will be the final posting on the ZS Link Network Blog. This blog will no longer be updated but will remain available for research an...