BBC Sky at Night Magazine

MEASURING THE AURORA

Creating a homemade magnetomet­er allowed Stuart Green to keep a record of space weather, despite cloud and his southerly location

- ABOUT THE WRITER A composite materials engineer, Dr Stuart Green is a keen solar astronomer and space weather enthusiast

We can’t see the aurora in much of the UK, but we can hear it. Find out how…

E arth is bathed in a constant stream of energetic particles originatin­g at the Sun. This solar wind ebbs and flows, and occasional­ly explodes in a coronal mass ejection, throwing billions of tonnes of our star’s plasma into space, which impacts on Earth’s magnetosph­ere – our protective magnetic bubble. The result is bright and beautiful aurorae, the luminous splendour of which is our only visual confirmati­on of this Earth-Sun connection. For those fortunate enough to witness this spectacle, the lasting impression is one of awe at its magnificen­ce. For the rest of us, such events are lost save for the images available online, through which we can only experience the aurorae vicariousl­y.

A few years ago I was looking for a way to establish a degree of connectivi­ty with the Sun that was otherwise unavailabl­e to me in my lower latitude location in the UK. That’s when I thought about building a magnetomet­er. Not only does the solar wind create the aurora, but in the process of being deflected by our protective magnetosph­ere, it also imprints its signature upon our protective bubble. This is detectable at any point on our planet with a magnetomet­er, which picks up the magnetic signature as it fluctuates according to the strength, speed and magnetic orientatio­n of the passing plasma.

Magnetomet­ers can be purchased commercial­ly, of course, but my interest lay in building one for the fun of it and for the challenge. The basic scheme of the design is a highly sensitive magnetic sensor, an ultrasonic emitter, an ultrasonic-toaudio frequency converter and a computer with a sound card and Spectrum Lab audio spectrum analysis software for data logging.

A stable environmen­t

At the heart of this setup is the magnetic sensor. Called a fluxgate, these sensors can be extremely sensitive and are perfectly suited to measuring the tiny perturbati­ons in the local magnetic field caused by space weather. The particular sensor I used provides an output frequency that varies according to the strength of the magnetic field.

As well as responding to the magnetic field, the output frequency also changes with temperatur­e, so the sensor has to be located in a temperatur­estable environmen­t. My sensor is buried in my garden about 0.5m below the surface. It is also protected by a waterproof housing made from 40mm diameter plumbing pipe fitted with end caps sealed using suitable solvent.

The sensor is positioned almost perfectly level on a poured concrete base and points along Earth’s magnetic east-west direction. It’s also sited away from any stray magnetic fields that might be created by local electric cables and equipment. The fluxgate sensor’s power supply also has to be stable to avoid spurious readings, so mine is linked to a

linear voltage regulator that converts 9V DC from a mains transforme­r to a stable 5V DC supply.

When pointing east-west, the output from the fluxgate sensor is a train of +5V square wave pulses at a frequency in the range of 60-70kHz, which is significan­tly above the operating frequency of any standard computer sound card. So I turned to equipment intended for zoology and connected the output of the magnetic sensor to a bat detector with an ultrasonic transducer emitter.

Bat detectors are designed to convert ultrasonic bat calls into audio frequencie­s that we can hear. Commonly this is accomplish­ed by a process called heterodyni­ng, in which an internally generated, tuneable reference frequency is mixed with the varying ultrasonic input signal from the bat to create audible sound at a frequency equal to the difference between input and reference frequencie­s.

Frequency range

For the purposes of magnetomet­ry, this frequency difference should be tuned to a single audible tone that can be recorded with a standard computer sound card. I found 3-4kHz to be a suitable range. The other advantage of using a bat detector is that the audio output is of good fidelity, meaning that subsequent data analysis can be accomplish­ed at high resolution. For this project, I used a detector

with an internal crystal oscillator for precision and to minimise any frequency drift. This detector is usually powered by a set of batteries, but as that only provided a battery life of less than 24hrs, the batteries were swapped for another stabilised DC feed from the 9V mains transforme­r.

Gathering data

With the detector set up I was ready to log data, and for this I used free software called Spectrum Lab, written by Wolfgang Buescher (www.qsl. net/dl4yhf/spectra1.html). This enables the data stream to be displayed as a continuous chart as the day progresses. The software can also send measured frequency data to a computer hard drive at preselecte­d intervals, together with a time and date stamp, building up a database throughout an entire geomagneti­c event. Later, this database can be exported as a CSV file and copied into an Excel spreadshee­t for further analysis. Any time period between logged events can be selected; I use a onesecond cadence for high resolution work and a 150-second cadence for standard resolution work.

Analysing the data involves converting frequency to magnetic field strength (more accurately magnetic flux density in nano-Tesla) using conversion factors provided by the sensor manufactur­er, and then charting the result as a function of time.

As it turned out, my magnetomet­er needed a few refinement­s to make it more consistent with profession­al data, in particular better temperatur­e control of the bat detector. The output from the detector was being significan­tly impacted by small ambient temperatur­e fluctuatio­ns that were imprinting on the output frequency. It was only when the detector was placed in a temperatur­edefined environmen­t (inside a vacuum flask, inside a cool box fitted with a vivarium heater mat at a controlled temperatur­e) that the output met the profession­al readings.

The output from such a relatively simple device is remarkably consistent with data generated by profession­al geomagneti­c monitoring stations such as Eskdalemui­r, operated by the British Geological Survey, and its sensitivit­y and resolution certainly compete favourably for the hobbyist with the output from magnetomet­ers costing considerab­ly more.

Having establishe­d my homemade magnetomet­er I now have that connection with the cosmos that I was looking for, with data streaming into my PC constantly, capturing the ebb and flow of the solar wind and occasional coronal mass ejection that buffets our planet.

“I now have that connection with the cosmos that I was looking for, with data streaming into my PC constantly, capturing the ebb and flow of the solar wind"

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 ??  ?? Electrical pulses ~70kHz Magnetic sensor Ultrasonic emitter Sound waves ~70kHz Electrical pulses ~3.5kHz Ultrasonic to audio converter PC or laptop via soundcard Spectrum Lab Audio spectrum analysis software
The magnetomet­er is made up of a magnetic...
Electrical pulses ~70kHz Magnetic sensor Ultrasonic emitter Sound waves ~70kHz Electrical pulses ~3.5kHz Ultrasonic to audio converter PC or laptop via soundcard Spectrum Lab Audio spectrum analysis software The magnetomet­er is made up of a magnetic...
 ??  ?? Temperatur­e stability is vital, hence the magnetomet­er (left) is housed in a vaccuum flask (centre), which is kept inside cool box (right)
Temperatur­e stability is vital, hence the magnetomet­er (left) is housed in a vaccuum flask (centre), which is kept inside cool box (right)
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