background top icon
background center wave icon
background filled rhombus icon
background two lines icon
background stroke rhombus icon

Scaricare "The Surprising Truth About the Higgs Boson "Discovery" at CERN"

input logo icon
Copertina audio
Aspetta un po', stiamo preparando i link per visualizzare e scaricare facilmente il video senza pubblicità.
console placeholder icon
Indice
|

Indice

0:00
God Particle Found!
1:18
What are "particles" really?
3:19
Why heavy particles are not stable
5:17
How do we make a Higgs using lighter particles?
6:48
Why the Higgs is so difficult to detect
8:35
How we really "detect" the Higgs
10:56
Most interesting part of the video
11:08
Special offer from Brilliant
12:26
How the Higgs was made at the LHC
Tag video
|

Tag video

particle physics
Higgs boson
Particle accelerator
LHC
large hadron collider
how was the higgs discovered
how are particles discovered
how was the higgs particle measured
higgs particle
what is the higgs particle
quantum mechanics
quantum physics
how the higgs boson was found
finding the higgs boson
was the higgs ever really seen
was the higgs ever observed
was the higgs ever measured
what is the higgs boson
the god particle
god particle discovery
higgsboson
lhc
Hai già installato UDL Helper Puoi scaricare video in un clic!
Installato
per
Google Chrome

Descrizione:

Go to https://brilliant.org/ to get a 30-day free trial + the first 200 people will get 20% off their annual subscription. TALK TO ME on Patreon: https://www.patreon.com/arvinash REFERENCES How Higgs gives mass: https://www.youtube.com/watch?v=R7dsACYTTXE Why the universe is LAZY: https://www.youtube.com/watch?v=pvPxCtrXT1c How Higgs was Discovered: https://home.cern/science/physics/higgs-boson/how Paper on implications of Higgs discovery: https://tinyurl.com/ykw786pp CHAPTERS 0:00 "God Particle Found!" 1:18 What are "particles" really? 3:19 Why heavy particles are not stable 5:17 How do we make a Higgs using lighter particles? 6:48 Why the Higgs is so difficult to detect 8:35 How we really "detect" the Higgs 10:56 Most interesting part of the video 11:08 Special offer from Brilliant 12:26 How the Higgs was made at the LHC SUMMARY In 2012, the Higgs boson (the God Particle) was discovered. It's responsible for giving mass to fundamental particles. But the scientists never measured the particle. So how can scientists claim a discovery without ever having seen or measured it? What is a measurement anyway? The Standard Model shows that all fundamental particles that we know of are an excitation in their own field. Since the Higgs particle has a mass of 125 GeV, you must add 125 GeV worth of energy in the Higgs Field to form a Higgs particle. This is a very high energy level, equivalent to the rest mass of about 244,000 electrons. Making a Higgs is not easy because heavy particles are not stable. They decay to lower mass particles, because the universe intrinsically favors lower mass/energy particles over higher mass particles. The Higgs particle being heavy is unstable and tends to decay into lighter particles. But mass is only part of the energy of the particle. The combination of rest mass and kinetic energy of ligher particles can add up to the mass of a heavy particle like the Higgs. This is the principle behind particle accelerators like the Large Hadron Collider at CERN in Geneva. The LHC actually accelerates protons to do this because it’s a bit easier than electrona since a proton is much heavier at around 1 GeV, so it needs less kinetic energy to create the Higgs particle. How do you detect the Higgs once it is made? You cannot detect it directly for two reasons. First, two protons collide with the same energy, but in opposite directions. The combined momentum is roughly zero. This means that the created Higgs boson will be roughly stationary in the particle beam. It’s difficult to detect something that doesn’t move because the detectors only picks up particles that fly away from the collision. Secondly, Its lifetime is incredibly short. It decays almost instantly. Thirdly, the Higgs is not a charged particle. Since we generally rely on some electromagnetic interaction to physically detect a particle, it’s not clear how you would detect it even if it could reach the detector. If all that is true, what did we actually “discover” if no one ever measured a Higgs? You don’t need to measure it to know that it’s there. Essentially, if you smash two protons together and get an event where the sum of the decay products adds up to the mass of the Higgs, then we can reasonably conclude that the event likely created a Higgs particle. But you might ask, what if the event created random interactions which just happened to yield a decay products equal to the Higgs mass? Yes, that could happen. But if you have many multiple measurements over a long period of time, then you can eliminate the possibility of just random interactions. And in the case of the 2012 announcement, this spike achieved 5 sigma significance, which is the gold standard in particle physics, for determining that a new particle was detected. It is thus as statistically significant discovery. And it turns out that in there are many other particles, that we also never actually directly measure, because of similar limitations. For example, the quarks and gluons that make up protons and neutrons, cannot because of the nature of the strong force, ever be directly detected. Yet, scientists still claim we discovered them. They can make this claim because the procedure of their discovery is similar to that of the Higgs. How is the Higgs Boson produced? The most prominent process used at the Large hadron collider is the gluon fusion process. First, two high energy gluons can be produced by smashing two high energy protons. These can, in some cases, turn into top quarks, and fuse together via a triangle loop. This loop represents top quark, and anti-top quark creation and annihilation. The energy of this annihilation can create a Higgs boson. This Higgs particle of course, as I stated earlier, almost instantly decays. So, what does it decay into? The Higgs decays to form very heavy bottom/anti-bottom quarks, which annihilates into two high energy photons. And the energy of these photons adds up to the mass of the Higgs. The photons is what we actually detect.

Stiamo preparando le opzioni di download

popular icon
Diffusi
hd icon
Video HD
audio icon
Solo audio
total icon
Tutti i formati
* - Se il video viene riprodotto in una nuova scheda, passa ad essa, quindi fai clic con il tasto destro del mouse sul video e seleziona "Salva video con nome..."
** - Link destinato alla riproduzione online su lettori specializzati

Domande sul download di video

mobile menu iconCome posso scaricare il video "The Surprising Truth About the Higgs Boson "Discovery" at CERN"?mobile menu icon

  • Il sito http://unidownloader.com/ è il modo migliore per scaricare un video o un brano audio in modo separato se si vuole fare senza installare programmi ed estensioni. L'estensione UDL Helper è un comodo pulsante che viene inserito in maniera organica nei siti YouTube, Instagram e OK.ru per scaricare velocemente i contenuti. UDL Client (per Windows) - la soluzione più potente che supporta più di 900 siti web, social network e siti di video hosting, nonché qualsiasi qualità video disponibile nella sorgente. UDL Lite è un modo comodo per accedere a un sito web dal proprio dispositivo mobile. Con il suo aiuto è possibile scaricare facilmente i video direttamente sul proprio smartphone.

mobile menu iconQuale formato video "The Surprising Truth About the Higgs Boson "Discovery" at CERN" devo scegliere?mobile menu icon

  • I formati di qualità migliore sono FullHD (1080p), 2K (1440p), 4K (2160p) e 8K (4320p). Più alta è la risoluzione dello schermo, più alta dovrebbe essere la qualità del video. Tuttavia, ci sono altri fattori da considerare: la velocità di download, lo spazio libero e le prestazioni del dispositivo durante la riproduzione.

mobile menu iconPerché il computer si blocca quando si carica il video "The Surprising Truth About the Higgs Boson "Discovery" at CERN"?mobile menu icon

  • Il browser/computer non dovrebbe bloccarsi completamente! Se ciò accade, si prega di segnalarlo con un link al video. A volte i video non possono essere scaricati direttamente in un formato adatto, quindi abbiamo aggiunto la possibilità di convertire il file nel formato desiderato. In alcuni casi, questo processo può utilizzare attivamente le risorse del computer.

mobile menu iconCome faccio a scaricare un video "The Surprising Truth About the Higgs Boson "Discovery" at CERN" sul mio telefono?mobile menu icon

  • È possibile scaricare il video sul proprio smartphone utilizzando il sito web UDL Lite o l'applicazione pwa. È anche possibile inviare un link per il download tramite codice QR utilizzando l'estensione UDL Helper.

mobile menu iconCome posso scaricare una traccia audio (musica) in MP3 "The Surprising Truth About the Higgs Boson "Discovery" at CERN"?mobile menu icon

  • Il modo più conveniente è utilizzare UDL Client, che supporta la conversione dei video in formato MP3. In alcuni casi, gli MP3 possono essere scaricati anche tramite l'estensione UDL Helper.

mobile menu iconCome salvare una immagine da un video "The Surprising Truth About the Higgs Boson "Discovery" at CERN"?mobile menu icon

  • Questa funzione è disponibile nell'estensione UDL Helper. Assicurati che l'opzione "Visualizza pulsante per salvare lo screenshot dal video" sia selezionata nelle impostazioni. Nell'angolo in basso a destra del player, a sinistra dell'icona "Impostazioni", dovrebbe comparire l'icona di una macchina fotografica. Facendo clic su di essa, la immagine corrente del video verrà salvata sul computer in formato JPEG.

mobile menu iconQuanto costa tutto ciò?mobile menu icon

  • Per niente. I nostri servizi sono assolutamente gratuiti per tutti gli utenti. Non ci sono abbonamenti PRO, né restrizioni sul numero o sulla lunghezza massima dei video scaricati.