There are some classic fonts which appeared in one place and became almost iconic, yet never made it into the digital age. The font on the Commodore 64 keyboard for example, with its its slightly narrow letters. If you’ve been yearning to see it again then help is at hand, because [Levente Szabadkai] has traced it from photographs and made it available as a vector font in a variety of formats on GitHub.
As you might expect, it’s an uppercase font only, as the hardware never sported lower case letters. But it doesn’t stop there, because it also contains the various punctuation and other marks, all the PETSCII glyphs, and the function keys. There’s even a Commodore logo for that key down in the left hand corner, but we’re guessing you’ll have to assemble CLR HOME yourself. We can’t help noticing the cursor arrows are solid in contrast to the outlined ones on our 64 here, but we’re guessing there may be some minor differences between models.
So download the font, and make all your stuff look like a 1980s home computer keyboard. And in case you are wondering why you find so many keyboard fonts familiar, we’ve talked about the Gorton font in the past.
We’ve had a lot of flying hacks here over the years, and that includes just about any way to get airborne you can think of — but very few of those have been airships. Fewer still have been 27-foot thermal airships, like the one [Avery Flies] designed and put together recently.
A thermal airship, in case the name doesn’t give it away, is a dirigible hot air balloon. Like a hot air balloon, it gets its lift from the density difference between hot air and the regular atmosphere. Unlike a hot air balloon, it has control surfaces and an engine so it goes where you tell it to. The craft uses good-old-fashioned radio control, and except for the nylon envelope he spends the first 15 minutes of the video below designing and sewing up, the technology mostly comes from be from the world of R/C aircraft.
The big exception is of course the a propane burner used to generate heat, said propane being supplied by a pair of small green tanks such as you might use on a portable barbecue. Everything that moves is electric, though: there’s a 70 mm (about 2¾“) electric ducted fan acting to push the air up into the balloon so it keeps shape, and a great big brushless DC motor pushing an 18” (about 457 mm) prop for thrust. The steering servo is actually a repurposed winch servo from an R/C sailboat, rather than anything from the world of model aircraft. But it makes sense, as the meter-scale fabric rudder is more like a sail than the control surfaces of most R/C aircraft.
The camera in a typical mobile phone is now at a standard at which it can be considered a serious device rather than a toy, such has been the effort put in by the phone manufacturers. They are still held back in some ways by their lenses despite the same development effort being pointed in that direction, and there have been projects aiming to replace those lenses with better quality ones. A while back we covered [Evan Monsma]’s replacement of his broken iPhone camera lens with a C-mount item, and now he’s back with a much improved version.
The original was glued on with cyanoacrylate adhesive, and this had parted. It was time to upgrade the phone, so he had a new lens mount covering two of the cameras machined from solid brass and leaving an open view for the third and unmodified camera. This was fixed to the phone with epoxy, and with a set of 3D printed lens covers to protect them he’s ready to go. There’s even a tripod thread machined into the bottom of this thing. He shows us it in action with both C-mount and EF-mount lenses, the latter resulting in a very long effective focal length.
We like this project, but perhaps we’d give it an IR filter to remove the unwanted pink glow. If you’re interested, here’s the original version.
There’s one thing [Silent H] wants you to know before you watch his video about making biodiesel, embedded below: he started this project before he’d even heard of the Strait of Hormuz. No, he’s just independent-minded and wanted to try making his own fuel when diesel was– in retrospect– cheap as chips. That’s probably a good thing, because while [Silent] gets his pint of fuel at the end of the video, it’s not from algae; it’s from a backup crop of sunflowers.
As it turns out, he picked what was the perfect algae and the absolute worst algae for making biodiesel from: Chlorella Vulgaris. It’s perfect because it’s easy to grow, and easy to extract from the growth medium, as it sinks when it is ‘ripe’, and has a very high oil content. Of course [Silent] didn’t want to toss algae cakes into a steam powered canoe, he wanted diesel fuel for his vehicle. That’s where the project broke down: Chlorella Vulgaris cells are exceptionally tough, and if you can’t rupture the cell wall, you can’t can’t get out any appreciable oil. A few grams by solvent extraction is all he manages before switching to more tractable feedstock.
That feedstock is sunflowers, which give up their oil through the application of violent pressure. That is to say, he crushes the seeds in an oil press. Oil acquired, he goes on to transesterfy the stuff, extracting glycerine to produce biodiesel– a process ripe for hacking that you’d think we’d cover more often.
We have covered the algae growth side of things before, but that algae seemed to be destined for other uses than fuel.
We’ve seen the GeekMagic SmallTV line of devices before — these cheap gadgets combine a microcontroller and a display in a little plastic case that can be used to show the time or weather. Powered by either an ESP8266 or an ESP32, the things could easily pass for a hobby build if it wasn’t for their professionally produced enclosures. In fact, we wouldn’t be surprised if GeekMagic lifted the idea from an existing DIY project.
As you might expect we’ve seen several hacks for these devices already, which usually involves replacing the stock firmware. But this latest approach is unique in that you don’t need to mess with the stock software, nor do you need to break out the soldering iron. By leveraging a built-in photo viewer function of the SmallTV [Yongha Kim] shows how you can get the gadget to display pretty much whatever you want.
The trick here is that the image is being generated by a machine on the network, say your desktop or server, and being pushed over to the SmallTV over HTTP. In this example the image is being generated in Python with the Pillow library, and [Yongha] has it showing Claude and Codex usage data, but you could really approach this however you wish.
All you need to do is create a 240×240 image and shoot it over to the device, so you’re free to come up with whatever sort of visuals you’d like. It even supports GIF if you’d like to work animation into it. The content can of course be whatever information you’re interested in showing, and it can be generated by whatever programming language or tool you’re most comfortable with. It’s a fascinating proof of concept, and now that the method has been demonstrated we’re interested to see where the community can take it.
One of the problems with planetary science is that you generally cannot easily investigate the exact conditions in their interior, so you’re left to extrapolate what is happening inside them based on surface scans. One of the resulting questions is what ice giants like Neptune and Uranus in Earth’s solar system have exactly at their core. We do know that it is mostly rocks and ice, but what kind of ice you end up with at these intense pressures is a good question that [Alexis Forestier] et al. set out to answer, with their results published in a Physical Review Letter paper (ArXiv preprint).
It’s noteworthy that there isn’t just water ice at these planetary cores, with this study only investigating water ice specifically. In order to get the water to the pressures it would experience courtesy of ice giant gravity, a diamond anvil was used, with synchrotron x-ray diffraction allowing for the changes to the sample to be observed.
The phase diagram of water includes a number of phases beyond what us Earth-dwellers would call ‘ice’, with at higher pressures above about 80 GPa the formation of ice X, featuring a body-centered cubic (BCC) oxygen sublattice. Subsequent discovered phases were face-centered cubic (FCC) and now hexagonal close-packed (HCP) ice, all differing in the packing of the oxygen sublattice.
In addition to extreme pressures, temperatures also had to be increased by using the laser heating feature of the diamond anvil. At around 2,000K and over 200 GPa the HCP phase was found, with a mixed FCC-HCP phase at intermediate pressures.
Although not immediately providing answers to questions pertaining to the aforementioned ice giants, it gives planetary scientists yet another clue that they can use in future investigations, as well as provide more insight into this most fascinating phase of water that’s actually its own little galaxy of phases.
I started writing this from a commuter train passing at speed through the outskirts of London, and my headset had just broken. The flexible joint that attaches one earpiece to the headband has snapped, leaving the earpiece dangling on its cable. This is annoying on its own, but what is annoying me enough to write about it is that this isn’t the first time. This is only the latest in a succession of headsets I’ve taken on the road with me has broken, not because of rough treatment, but simply due to flimsy or bad design. What on earth can I do about this?
Failure Built-In
Failure inevitable: the whole headset relied on a tiny piece of plastic in the centre.
The most recent three have been a JVC whose rotating joint allowing the earpiece to lie at a slight angle with my ear has failed, a quite expensive Logitech whose ear sponges failed closely followed by its USB cable, and now an EPOS whose ball joint has failed.
I repaired the JVC and got a bit more life out of it and I’ll have a go at repairing this EPOS, but that’s hardly the point. I’m paying not inconsequential money and I’m getting good sound quality and electronics, but I’m not getting anywhere near the mechanical quality I need. I could buy a set of tough DJ headphones such as the Sennheiser HD25, but they don’t come with a microphone, they’re not a headset.
So if I can’t buy a decent headset without spending military grade money on one from an F16 fighter, what can I do to make my own? I’m an engineer, damnit!
At its most basic, a headset is a springy band that goes over the head, with an earpiece at its end. But a human head is not a cube with vertical parallel sides, it’s a complex shape and every one is different. So those earpieces have to have some “give” in them in order to fit comfortably against the ear. In the simplest case this is achieved by giving the earpiece a soft surround that moulds itself to the ear, but most headsets incorporate some articulation. The earpiece must rotate a little around a vertical line parallel with the ear, and also with a horizontal line at right angles to the axis of the ear. The EPOS managed both axes by means of a ball joint, while the JVC had a stirrup with pins to achieve the horizontal motion, and a circular joint — the part which broke — for the vertical. In both case the weak point was a thin part of the plastic moulding which broke, on the EPOS a short stalk for the ball in the ball joint, and in the JVC a similar stalk for the circular joint. Any design I come up with must avoid this type of weak point, and spread the load of an earpiece over considerably more material than my broken headset. Continue reading “A Headset Fit For A Hackaday Writer”→