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| If you see a stranger... | When two particles collide Ahh, glee is in the air as Geneva's atom smasher set new record today ![]() Geneva atom smasher sets collision record - Yahoo! News CERN - the European Organization for Nuclear Research I am pretty certain this is a big deal, but I'm not quite sure why. Could someone please explain the point of particle collisions, and the practicle possibilites that now have everyone in an uproar. |
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| Moderator Join Date: May 2006 Location: Texas
Posts: 13,183
| Re: When two particles collide Well, part of the answer to your question is in the body of the news story itself: Quote:
As for the fears for micro black holes... those, from my understanding, exist all the time anyway, and most likely throughout the universe (including here on Earth), but are of such brief duration and the effects of them are so weak, that any "threat" is completely negligible. | |
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| At the end of reality | Re: When two particles collide Yeah, I just about an hour ago or so caught this on CNN. It really is big news. Of course, also imagine the energy that must've been released when they collided. It might not seem like all that much in the broad scheme of things, but proportionately, it would be equal to that of a supernova-and we all know what sort of effect an exploding star has on any other celestial bodies close enough to it. |
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| resident pedantissimo | Re: When two particles collide I suppose saying they do it to annoy me personally would be a touch egotistical? They've mucked up all the tram schedules this weekend, and I have a friend to see in St. Genis; we usually meet up in the CERN carpark, but they've chosen Easter weekend to close things down, and divert trams. And I can't even complain to my friendly local physicist; he's gone home to Scandinavia. Supernova or not, they've got the target area at a degree and a bit absolute, to keep the magnets superconducting; that doesn't speak for many ergs of energy escaping, Very intense indeed, but terribly small to be feeding all those megawatts into. One of the secondary holes going down through France to the tunnel is called "Alice" |
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| Bearly Believable Join Date: Aug 2007 Location: UK: ENGLAND:
Posts: 12,043
| Re: When two particles collide You know, I've only just realised that the Higgs Boson is called the God Particle because it's all to do with Mass.... (Yes, I can be really slow picking things up sometimes. ) |
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| If you see a stranger... | Re: When two particles collide I guess I need more tutelage about the Big Bang theory and what is likely to occur(or what all occured yesterday), exactly, and what it will mean for the future peoples of the world. Where does it go from here? Antimatter, what is it exactly? Higgs boson? |
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| Bearly Believable Join Date: Aug 2007 Location: UK: ENGLAND:
Posts: 12,043
| Re: When two particles collide Higgs Boson To greatly simplify things (if only so that I can understand it): Scientists are looking for a mechanism to explain mass (which we experience as weight, because we live in Earth's gravitational field). One proposed mechanism is the Higgs Field. Finding the associated Higgs boson would go a long way to showing that this idea is valid.From Wiki: Quote:
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| If you see a stranger... | Re: When two particles collide So a photon doesn't have mass. (How do we know? Gravity?) So the Higgs boson (a particle in thoery) would give mass to particles, such as the photon? How? And if it gives mass to photons, wouldn't the photon have mass? |
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| At the end of reality | Re: When two particles collide No, as far as I understand light, does NOT have mass. Therefore, light is somehow able to travel at the speeds it can and not shatter the laws of physics. But that's another story, I suppose. They're also trying to prove the existence of the fourth dimension in this way. The only way THAT can happen is first by measuring the amount of energy within the conductor or whatever this thing is. (Early morning for me and a little bit high on pain meds. Bear with me.) One part of the theory of relativity is that energy can NOT be created or destroyed-only transferred. So, the way to go about proving the fourth dimension is, they get these particles to collide, like they already did, and if the energy readings drop at all, then they figure that proves the fourth dimension, since such energy would have no way of escaping on our dimension out of wherever the particles collided. Another fun bit of info there. Now I guess we just have to sit back and wait until they crack the mysteries of time and find a way to jump into THAT stream. Michael Crighton's novel Timeline still comes to mind with that one, though..... |
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| At the end of reality | Re: When two particles collide No, actually, because I believe it would take far more to prove the theory of relativity wrong. I personally think it's wrong anyway, but I don't have a degree in quantum physics, so I really have no idea. I think it would take something earthshattering-and I do mean that almost literally-to prove the theory of relativity wrong-such as any object with mass travelling at full warp speed, or any creature or object going through time. Of course, I don't really understand the time barrier part-except that supposedly time controls all motion-but it's said that if an object's or creature's mass gains the faster it goes, and if said object or creature were to accelerate to warp speed, then its mass would equal that of the universe. I find that a little hard to believe but that's what the physicists are claiming, even now. Of course, they also claim that it is THEORETICALLY possible to travel lightyears upon lightyears away from any given destination instantaneously. How? Supposedly time and space are malleable, much like a sheet of cloth or, better yet, a sheet of paper. Now imagine the universe as a sheet of basic college-ruled writing paper. There's some considerable distance proportionately from one side to the other. But, fold that paper in half, and the distance between the two sides is down to as close to zero as it can be. Like I said, though, such travel is still only theoretical at this point..... Or am I merely making a fool of myself tonight? |
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| Senior Member Join Date: Apr 2007 Location: Cumbria
Posts: 1,603
| Re: When two particles collide Quote:
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| Reetou Diplomatic Corp Join Date: May 2001 Location: North-west UK
Posts: 3,797
| Re: When two particles collide I suppose it's worth noting that this week's experiment: a) will take days/months/years to analyse: there are literally billions of particles generated and maybe only a few will be "interesting" and they don't have any way of quickly finding the good ones amongst the ordinary ones b) they're still only operating at relatively low power (compared to maximum available) so we're unlikely to see the really rare stuff till they've done more at this level, powered it all down, done some more maintenance and finally started firing at maximum. |
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| Science fiction fantasy Join Date: Nov 2009 Location: Nepal
Posts: 130
| Re: When two particles collide So, folks have been throwing terms around like the Chef’s throw food at Beni-hana’s. Here is a fairly accurate description of the current understanding that most physicists agree upon. Now, what is not mentioned here is the crazy half-sister of the standard model: String theory. Essentially, the notion of string theory is that all of these particles – both mass-less, and massed, are composed of tiny vibrating bits of energy. The issue is that the “strings” would be so un-measurably small (Planck length = 1.616252 x 10−35 meters – about 10 to the power of 20 times smaller than the size of a proton) That we have no hope of “seeing” a string anytime soon. CERN - The Standard Model What physicists have “seen” are some of the missing pieces of the “standard model”. Here is a proposed example of the standard model puzzle: http://web.infn.it/superb/images/sto..._fermi_lab.jpg For example, with existing particle colliders, they have seen “anti-electrons" (AKA positrons), and plenty of others. Clues to the early Universe The Universe has changed a great deal in the 13.7 billion years since the Big Bang, but the basic building blocks of everything from microbes to galaxies were signed, sealed and delivered in the first few millionths of a second. This is when the fundamental quarks became locked up within the protons and neutrons that form atomic nuclei. And there they remain, stuck together by gluons, the carrier particles of the strong force. This force is so strong that experiments have not been able to prise individual quarks or gluons out of protons, neutrons or other composite particles. Primordial soup Suppose, however, that you could reverse the process. The current theory of the strong interaction predicts that at very high temperatures and very high densities, quarks and gluons should no longer be confined inside composite particles. Instead they should exist freely in a new state of matter known as ‘quark-gluon plasma’. Such a transition should occur when the temperature goes above a value around 2000 billion degrees - about 100 000 times hotter than the core of the Sun! For a few millionths of a second after the Big Bang the temperature of the Universe was indeed above this value, so the entire Universe would have been in a state of quark-gluon plasma – a hot, dense ‘soup’ of quarks and gluons. Then as the Universe cooled below the critical value, the soup condensed into composite particles, including the building blocks of atomic nuclei. The thing to realize here is that a particle accelerator such as the LHC only smashes tiny beams of particles together, like the nuclei of atoms. For the size of particles we are talking about, yes it is an immense amount of energy, but in terms of the size of everyday things, it’s easy to contain. From a published paper on the LHC: “The total energy stored in each beam is about 360 MJ.” The MJ stands for “Mega-Joules” in layman’s terms we can first see the relationship to something we are familiar with: the watt. A Watt is power. A Joule is Energy. A Joule is 1 Watt X 1 Second. Watts are units of Power, whereas Joules are units of Energy. Power is Energy in accordance to time: P = E/t. So One Watt of Power is equal to one Joule per second. P=E/t 1 Watt = 1 Joule/ 1 second The whole colliding process is over in about 85 micro-seconds. (85 millionths of a second). So the power released is roughly 360,000,000 J / .000085 s = 4 trillion watts. But, the beam is deflected by magnets within 89 micro-seconds of the initial collision, and travels through a 700 m long transfer line towards the graphite block located about 940 m downstream from the deflection magnets. Each beam hits a separate location on the graphite block, limiting the maximum temperature inside the graphite to about 700 0C. Each fundamental force has its own corresponding boson particle – the strong force is carried by the ‘gluon’, the electromagnetic force is carried by the ‘photon’, and the ‘W and Z bosons’ are responsible for the weak force. Although not yet found, the ‘graviton’ should be the corresponding force-carrying particle of gravity. When it comes to the minuscule scale of particles, the effect of gravity is so weak as to be negligible. Only when we have matter in bulk, such as in ourselves or in planets, does the effect of gravity dominate. So the Standard Model still works well despite its reluctant exclusion of one of the fundamental forces. Now, all of this crazy-making that has physicists in such a frenzy is to combine all four of the known forces The strong nuclear force (holds nuclei together) the weak nuclear force (holds atoms together), the electromagnetic force (carries all of the energy from place to place) and gravity (holds the universe together – sort of). There is a theory that combines the first three forces. The Standard Model includes the electromagnetic, strong and weak forces and all their carrier particles, and explains extremely well how these forces act on all the matter particles. However, the most familiar force in our everyday lives, gravity, is not part of the Standard Model. The following is one attempt at a “Unification theory” (AKA - Theory of Everything AKA - TOE): Loop quantum gravity - Wikipedia, the free encyclopedia Each fundamental force has its own corresponding boson particle – the strong force is carried by the ‘gluon’, the electromagnetic force is carried by the ‘photon’, and the ‘W and Z bosons’ are responsible for the weak force. Although not yet found, the ‘graviton’ should be the corresponding force-carrying particle of gravity. When it comes to the minuscule scale of particles, the effect of gravity is so weak as to be negligible. Only when we have matter in bulk, such as in ourselves or in planets, does the effect of gravity dominate. So the Standard Model still works well despite its reluctant exclusion of one of the fundamental forces. |
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| Wherever I Am, I'm There | Re: When two particles collide I think the Bear has hit upon the reason why we all (me included) find this all so difficult to understand. Living on the surface of the Earth, we always think of Mass as weight. We find it hard to think of it in any other way, but Relativity tells us that really it is a curvature of space-time. You must have seen those pictures of ball-bearings in a funnel simulating planets orbiting a star - only those are 3 dimensional and in reality Gravity works in 4 dimensions - or is it 9 dimensions? Or, is it the 21 dimensions that these super-strings inhabit? My brain just finds it difficult if not impossible to comprehend that many dimensions, but I can see that the Universe would look very, very different in so many more dimensions to what it does in 4 dimensions. |
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