How strong would a magnetic field have to be to kill you?
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It's probably small enough to be negligible, but it should be there.
I imagine that the difference in force exerted on your feet vs. your head is significant, in raw Newton's rather than as a percentage. The r^2 is basically constant across the length of your body, compared to M, but it's not actually constant, and when M is so large, I imagine even small changes in r^2 lead to (relative to our scale) large changes in F. Is my intuition wrong?
- Dizziness/vertigo/headache: AC: typical thresholds is 2T/s for 1 s. DC mechanism: differential susceptibility of vestibular structures (46 T2/m perceived 1% g)
- Acidic/metallic taste: provoked presumably by electrolytic reactions due to eddy currents in the tongue, effect felt by 15% of test subjects @3T. Threshold dB/dt2.3 T/s (e.g. shaking head @ 0.6 Hz in a 0.5 T fringe field). May be contrasted by opening the mouth.
- Magnetophosphenes: perceived flickering lights caused by electrical stimulation of the retina/optical nerve. (0.2 mV). Threshold dB/dt 2T/s for 50 mS (max. sensitivity 20 Hz)
(source in my other comment)
From this, you can get all kinds of interesting phenomena: phosphenes, temporary “lesions”, and even facilitation of some behaviors.
[0]: https://www.fda.gov/news-events/press-announcements/fda-perm...
TMS is fairly common tool for neuroscience research and its effects depend on where, when, and how it is applied, as well as the quirks of each person’s own anatomy. This paper has a table of some studies reporting “beneficial” effects, mostly on perception and memory: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4083569/ There are many more studies showing that TMS (transiently) impairs performance too.
We don’t totally understand how it works—-or what’s normally required for many of these behaviors—-so it’s hard to give a grand unified theory of how it acts, but it definitely does something to brain circuits. That said, the FDA approved TMS treatments for depression and a few other indications, and it’s also used as a tool for neurosurgical planning.
They took an MRI of my brain. They found where one part of my brain resided in the MRI images. I performed reaction tests -- press this button for green circle, press that button for blue circle, abort pressing button if the icon gets crossed out (the crossing out was delayed) Then they strapped the magnet to my head (not touching but very close AFAIR) Then do all the tests again
AFAIR they showed that part of the brain did affect your ability to abort an action. I think they knew this anyway because of behavior of people with brain injuries. So I guessed they learned the magnet scrambled that part of the brain?
It was extremely boring doing these tests. I don't remember much about it except that the magnet made unreasonably loud popping sounds.
I am assured that the human brain is so incredibly complex that it is almost impossible to understand it ... but experiments like this make me worry that Evolution just knocked most of it up in Perl over a weekend...
An inability to abort an action when facts change ? What if there was a test for that. Would we stop people standing for office? Be set free from some crimes?
I demand to see the source code for human brains ! It needs a proper security audit.
(relevant XKCD reference to be looked up later)
On a longer timescale (minutes to days), there is a clinical symptom called "perseveration" whereby people can't let go of previously held beliefs in the face of changing information. It is common in, e.g., patients with schizophrenia.
oh - the highly repetitive response common in autism.
Are there gradients of perseveration? This is absolutely fascinating - a brain based answer to why people do many behaviours - from sitting in the corner mumbling one word over and over, to various forms of self sabotage ("always picking the wrong man")
(And I might say heartening - as the father of an ASD child, it can seem hopeless, but just being armed with some knowledge of where the behaviours come from might allow some hope)
A low level part of my brain definitely took over control of my hands, based on interpretation of visual signals. That was 6 years ago and I still think about it every few days.
Tests like this are intended to prove or refine information derived from clues from damaged subjects. You can learn a lot of things about complex systems like the brain by studying their failure modes, but you have to be careful of inferring causation from correlation and other such fallacies — for instance here they could have been trying to rule out the behaviour being a secondary symptom (the correct response actually being controlled elsewhere normally, but that is blocked by the damage rather than the damage having affected it more directly), or testing to see if multiple areas are directly involved in the behaviour rather than it being as simple as that one area seeming to control the veto, or just ruling out a pre-existing condition in the initial subjects unrelated to the subsequent damage.
Does this depend on frequency?
https://www.youtube.com/watch?v=KlJsVqc0ywM
That said, assuming 16 T cancels gravity, I imagine being imaged in a MRI machine at 7 T horizontal magnetic field would probably feel like a net gravity vector at an angle, i.e. lying on a steep slope of arcsin(7/16) = 0.452 radians, which is pretty steep.
When all electrons are paired (and the spin fields cancel), all that is left is that Lorentz force and you get diamagnetism. Otherwise, you generally get paramagnetism (attractive because of the net dipole created by net spin).
See the Stern Gerlach experiment: https://en.wikipedia.org/wiki/Stern%E2%80%93Gerlach_experime...
That is the 1800's classical explanation of electric charge, which is not consistent with experiments, nor does it line up with magnetism, which is inherently quantum.
1. Even in your classical description, what you just described (following field lines) does not require there to be a gradient. If there is a gradient, yes, the forces will follow it. But there is still a force in a static infinite applied field, and potential energies still change as things move.
2. Diamagnetism is a quantum property, not a classical one. It exists due to the polarity of spins in an electron pair (although frankly, this explanation is weak and magnetism is one of the less understood subjects in physics). Even if a macroscopic field has a gradient, it will look like a static field at the scale of an atom, at which scale diamagnetic forces exist.
1. Yes, a gradient is required. If the energy of the diamagnetic material does not change, there cannot be a force, as this will violate conservation of energy. You are proposing a perpetual motion machine of the first kind.
2. The quantum nature of diamagnetism doesn't matter in the slightest to the argument being made, so why are you bringing this up?
Potential energy changes when moving parallel to any field force, regardless of whether that field is static or has some gradient.
Diamagnetism works by inducing dipoles in the medium, and a dipole placed in a constant field experiences no net force. It may experience a torque if it is not aligned with the field, but in the case of diamagnetism the induced dipoles are naturally aligned, and so there is neither force nor torque.
https://www.auntminnie.com/index.aspx?sec=ser&sub=def&pag=di...
Yeah, but a gas cylinder or a hammer flying across the room is way cooler.
When a crisis occurs in the MRI department (a collapse, arrest, drug reaction etc) someone better man the door, or even better, lock it.
Every emergency seemingly has someone helpfully attempt to take something into the magnet. A wheelchair, oxygen cylinder, defibrillator, stethoscope, or most often, scissors.
It says at: https://www.hospitalmanagement.net/features/feature51496/
"Gas cylinders are a particular risk in the MRI environment. Such cylinders can weigh from 30lb to 150lb when full. Ferromagnetic gas cylinders are especially dangerous in a magnetic environment, where they can be uncontrollably accelerated. Potential hazards include gas-propulsive missile impaction, explosion and fire. If the cylinder regulator valve is damaged on initial impact, the cylinder may propel away from the magnet, only to return for a second impact."
The trap is that they are pretty much never ‘off’, they are magnetic when not scanning.
This issue may be reduced with technology such as the Philips Blue Seal thing where you can remove (reduce?) the field at the flick of a switch. However things like this where the danger goes from being ‘always’ to ‘sometimes’ can actually increase accidents. It’ll be an interesting space to watch.
https://www.medgadget.com/2018/09/philips-helium-free-mri-sy...
I was with my wife in the MRI room, when it was done I handed her her shoes--and felt the magnet pulling on them. I have no idea how there was metal in there, she specifically picked them because they were soft at all points. The pull wasn't strong (had I let go they would have gone to the floor, not to the magnet) but it definitely was there.
From that second article it sounds like manufacturers should be required to put on the label whether a garment was MRI safe or not.
It’s surprising what is conductive or magnetic. Many garments now include silver or other anti-microbial materials. I’ve encountered clothing with electronics inside or with metal in the labelling.
Burns are the most common accident in MRI and in someone sedated or under anaesthesia you will cause massive harm. It’s all scary, so I change everyone.
‘MRI safe’ is a risky claim to make, as something safe on one scanner is unsafe on another.
You mean like this? https://youtu.be/6BBx8BwLhqg
https://indico.bnl.gov/event/609/contributions/15418/attachm...
There's some great stuff in there! Like calculating a 3% increase in systolic blood pressure due to magnetic drag at 8T.
One of the main takeaways is that DC fields are most likely to kill you because of a fast-moving screwdriver that someone left nearby.
By contrast, AC fields --- or moving in non-uniform DC fields --- can be more dangerous.
Apart from mechanical (flying screwdrivers) or electrical (fires in the bus-bars) hazards, he indicated that the most common hazard occurred when technicians put their head into/near a very high-field magnet: This affects parts of the "inner ear" vestibular system and therefore causes dizziness/vertigo. In short: They could fall over!
This is not surprising that CERN is that knowledgable about extreme magnetic fields given how hard it is to deviate the beams.
I suspect that critical field would be somewhere near 1000 Tesla, as the critical temperature is well above 2000k. (The theory is that memories are stored in a topological superconductor which would denature well before the critical temperature was reached)
This type of reversion to infancy is the stuff of nightmares.
http://www.ect.org/dr-camerons-casualties/
e.g. using a tape loop to encourage people to forget who their parents are.
Ethics is important.
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This was a plot point in one of my favorite sci-fi books [0]. I thought it was totally made up for the book.
[0] https://www.goodreads.com/book/show/33413556-the-gone-world
A decade later he won the Nobel prize for discovering how to create graphene using scotch tape: https://www.improbable.com/2010/10/05/geim-becomes-first-nob.... As far as I know he remains the only person to win both prizes.
An interesting side note is that neither piece of research was what his lab was supposed to be working on. He established a tradition of Friday Night wacky experiments on stuff that had nothing to do with his lab's official business, in areas of science that they knew little about.
Wow, if I was a scientist this would definitely be my new life goal. I love the comments on the levitation page under "Why did you use a frog?"
It is just a hackneyed updating of the myth of Rolnak of the three stones, only with a sharpened stick taking the place of fire.
I guess some crafters of tale care more about the money than coherence in the tale.
Once I almost had a magnet snatch my bunch of lab keys out of my hand, having forgotten the cardinal rule to "leave all magnetic materials at the desk before you approach the magnet with your sample tube"...
Heard a joke about the children of NMR staffers having atypical sex ratio, but that was just student humour. I think :)
The magnetic field of a magnetar could kill a human from 1,000KM away.
The interesting thing is that some of these studies (biology p-values keep in mind, though) did show an effect of somewhat realistic microwaves. What's the catch? That doesn't mean this effect poses any risk beyond possibly existing at all.
Changes in fields induce currents, you can stop your heart or cause seizures with enough currents in the wrong places.
Field from a magnet falls off with the inverse cube of distance... so "I was somewhere near an insanely powerful magnet" isn't really saying much.
In an MRI you're probably more likely to see effects of heating from the excitation RF-- which is multiple kilowatts of UHF for 1.5T magnets, and scales with the field strength.
Isn't this exactly what happens in an MRI machine?
The Earth-Moon L1 point is ~63 km from the Moon. Let's say me and my gear weigh 200 lbs, and the Moon's gravity acceleration is 1.62 m/s^2. 63 km * 200 lbs * 1.62 m/s^2 gives a potential energy of only 2,213 kcal. The human body is only 18-26% efficient [0] at converting food into energy, so we're probably looking at around 10-13,000 calories. Depending on what you're eating, that's 4-10 lbs of food.
Obviously, I'm ignoring the time it would take to climb that far, but in terms of energy, it seems reasonable that a human could carry enough good with them, unless I'm gravely misunderstanding something.
I'm guess that assuming "potential energy" means "the energy needed to move X pounds to Y height at Z gravity" is incorrect.
[0] https://physics.stackexchange.com/questions/46788/how-effici...
Some basic research and napkin math to show people they have nothing to fear might be useful, although I'm not sure how far you'd get in a discussion with people that firmly believe in such nonsense.
I'm also kind of curious what the lethal dose of neutrinos would be. I know humanity will be burned to a crisp by an exploding sun before a neutrino overdose would ever become a problem, but if there's a theoretical deadly dose I'd be interested to know it.
Would it in anyway disable your hand?
https://blogs.scientificamerican.com/observations/we-have-no... (Scientific American)
Yet the capitalist industry pushes it into all the cities now, so we’ll be surrounded by It on every city block. The skin is the only reason the cells inside humans and pets are safe from all this EM radiation. Here are a few references:
https://www.nature.com/articles/s41370-021-00297-6 (Nature Magazine 2020)
https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6765906/ (National Institutes of Health)
This is not the case for insects, though, as their epithelial cels do not form such a protective barrier. I would not be surprised if cellphone towers, wifi and other radiomagnetic waves are killing off the insects around cities. Their skin doesn’t actually block all those waves!
PS: I am not an expert, but is the 5G for cellphone mini towers the same as the 5G for wifi networks? Because we have been around those for a decade now.
EDIT: Why all the downvotes? This is relevant basic information that not everyone here knows, with references to mainstream publications that go more in depth for anyone who is interested.
https://en.wikipedia.org/wiki/Electromagnetic_radiation
As usual - if you don’t like something, simply disagree on the substance. I am happy to be corrected on anything I may have misstated.
Oh, and as for your references: both non-opinion pieces (Scientific American blog post is an opinion) explicitly state that no adverse effects were noticed. Didn't you read them or did you expect nobody would call out your bullshit?
I said that these may be harmful to insects, that the same mechanism isn’t present.
For example: https://phys.org/news/2020-09-mobile-insects-german.html
Here is a direct quote:
Of the 83 studies deemed scientifically relevant, 72 showed that radiation had a negative effect on bees, wasps and flies.
These effects ranged from a reduced ability to navigate due to the disturbance of magnetic fields to damage to genetic material and larvae.
Get it now?
Different materials absorb different wavelengths, light absorbed by the upper layer of skin, or that pass right through us never get a chance to damage anything.
Nah. "5G" in Wi-Fi refers to transmitting around 5 GHz instead of the usual 2.4 GHz. "5G" in mobile refers to the fifth generation of cellular networks, which can run at a whole range of frequencies.