None of these are built yet. We are publishing them first so you can hold us to it. When each one is done it gets a proper write-up, with whatever went wrong left in.
Four big ones, then the smaller jobs behind them
Free text and position between boats, and between people in places with no cell service. Meshtastic or MeshCore.
Open Echo: a homemade driver board and a transducer we choose, so depth does not depend on a proprietary box.
The engine's gauges onto the network with Raspberry Pi parts instead of a commercial gateway.
Every sensor around us, crowdsourced, to say what the weather is doing right now and where it is heading.
An experiment: a free, private radio mesh between boats and people
Every node passes the message to the next. No tower, no provider, no account. A message from Boat A can reach the campfire by hopping across Boats B and C.
Talk to the rest of the anchorage, or to a friend over the hill, with no cell service, no internet provider and no account anywhere.
Straight answer: it is not filling a gap on this boat. We already have VHF, cell service and Starlink. This is an experiment, an interesting hobby, and a way to find out what it leads to. Still, a few reasons it is worth the afternoon:
LoRa is a radio modulation built for sending very small amounts of data a very long way on very little power. It runs in the licence-free band — around 915 MHz in the US — and it trades speed for range in a way no WiFi or Bluetooth radio does. Think text messages and a position dot, not photos and not voice.
The big one. Every node relays for every other node, so coverage grows as more people turn up and you are the infrastructure. It has polished phone apps and the widest choice of hardware. A message is rebroadcast by each node that hears it until it runs out of hops — by default three, with a maximum of seven.
The newer one. It floods once to find a route, then sends the rest of the conversation along the path it learned. It leans on dedicated repeaters, usually fixed up high, and ordinary hand-held nodes mostly listen rather than relay. Less congestion in a busy area, but somebody has to put the repeaters in place. Its community is smaller and younger.
We have not picked. It may come down to which one the people around us are already running, because a mesh with one node on it is just a very slow radio. That is the whole game: it only gets good when more people join in. The same participation argument as the crowdsourcing section. Links: Meshtastic and MeshCore.
The same radios work on land, which is where it gets interesting for everybody, not only sailors. Camping, hiking, hunting, a day on the beach, a work crew in a valley — anywhere there is no cell service. If everybody in the group carries a small node, they can text each other and see each other on a map, and a node on a hill or on a boat's mast carries the signal further for everyone.
A note on phones. A phone has no LoRa radio in it. The usual setup is a pocket-sized node with its own battery that pairs to the phone over Bluetooth, and the phone becomes the keyboard and screen. Some nodes have their own little screen and keyboard and need no phone at all.
Typical range between hand-helds in woods or between buildings is short, perhaps a mile or two. Higher ground and open water are much better. Those are rules of thumb, not promises, and they depend on the antenna, the terrain and how many other nodes are about.
Open Echo: owning the whole chain, from the ping to the pixel
No proprietary transducer, no proprietary box.
Sonar is the last genuinely closed thing on this boat. We decoded the fishfinder's output, which means we can read what the Axiom produces — but we are still asking a proprietary box to do the actual work. Switch the MFD off and there is no depth.
The answer is Open Echo: open-source sonar hardware, with schematics and board files published and raw echo data out the other end. A TUSS4470 driver board that will fire a real transducer and digitise what comes back.
The chain we want to own:
Open Echo's tested transducer list includes Raymarine CPT-S 50/200 kHz units, so the transducers already fitted to boats like this one are not the lock-in. The box is. Depth that doesn't depend on a display being powered is the point on a boat at anchor.
Putting the engine's gauges on the network without buying a gateway
Oil pressure, temperature, RPM and hours, logged and trended instead of glanced at. The engine itself →
The Ford Lehman 120 is a simple, mechanical diesel with analogue gauges. There is no engine computer to plug into. The commercial answer is a box that reads the old senders and puts the numbers onto NMEA 2000. Actisense makes one, the EMU-1, which currently sells for roughly $600 to $720 at US marine retailers, and other makers sell similar converters. It is good, sealed, tested equipment, and it costs what it costs because marine is a tiny market.
The plan is to do the same job with Raspberry Pi parts and do more with the result:
Instant local weather, from sensors that already exist
Watch a squall coming up the bay, because somebody five miles down it is already being hit by it.
A forecast tells you about this afternoon over a 30-mile grid square. It cannot tell you there is a squall line eight miles west of you right now, moving this way, with 40 knots in front of it. That is the information that matters when you are deciding whether to reef or run for cover, and almost nothing serves it to a boat.
But the data exists. Scattered across the water and shoreline around you there are hundreds of weather stations — on houses, on docks, on masts of other boats — many of them publishing live readings to public networks. Plus NOAA buoys, plus airport observations, plus live lightning data. And that is why crowdsourcing matters here more than anywhere: every extra boat that shares its masthead instrument is one more point on the map, and the picture gets sharper with each one.
Nowcasting rather than forecasting: not what the model thinks about tomorrow, but what is happening within twenty miles in the next hour. And offshore, where there are no stations, it inverts: boats become the network, sharing real observations with each other instead of all guessing from the same GRIB.
Smaller jobs behind the big four
Count every pump cycle and watch the trend. A bilge running a bit more often each week is a leak announcing itself months before you would otherwise notice. Cheap to build, and possibly the highest value sensor on the boat.
The monitoring side already watches the generator. The next step is acting on it — which needs a great deal more care than watching does.
Install, plumbing, power draw and the monitoring to go with it.
Rebedding, rebuilding and replacing. Unglamorous, necessary, and the thing that decides whether your bunk stays dry.
Hall-effect clamps on individual circuits, to find out what is actually drawing the power at three in the morning.