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The MRI "Echo" - How it Works | MRI Physics Course Lecture 8 

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After a little detour, we are BACK to the main MRI Physics Explained lecture series! We’ll call this the beginning of the “intermediate” level of lectures focusing on MRI pulse sequences requested from you all by popular demand, and what better way to start than by taking an in-depth look into the Echo? What exactly is this “Echo”? How do we make our signal emerge after dephasing? Why am I incessantly yelling at the MRI machine and these lectures and hearing nothing back? These answers and more on the latest episode of MRI Physics Explained!
CHAPTERS
00:00-01:13 Intro
01:13-02:40 The Pulse Sequence Diagram
02:40-08:03 The Free Induction Decay
08:03-12:41 A 2nd RF Pulse
12:41-14:00 The “Echo”
14:00-16:56 Perspective from the Coils
16:56-18:40 A Real-World Example
18:40-20:24 Wrap-Up/Outro
Like these lectures and want more? Consider supporting the quest for truth in MRI Physics by donating at: www.buymeacoffee.com/lightsonrads
Want me to bring these lectures live to your practice or institution packed full of live demos and a lot of arm waving? Send an email to: lightsonradiology@proton.me
Questions or suggestions for future topics? Send an email or follow Dr. TE on:
Instagram at: lightsonradiology
Twitter: @DrTEMD
Song: JOXION & EXYT - Testify [Arcade Release] Music provided by NoCopyrightSounds Free Download/Stream: ncs.io/testify Watch: ncs.lnk.to/testifyAT/youtube
Song: Malik Bash - Ghosts [NCS Release] Music provided by NoCopyrightSounds Free Download/Stream: ncs.io/Ghosts Watch: ru-vid.com/video/%D0%B2%D0%B8%D0%B4%D0%B5%D0%BE--9Z5Nhsm7GA.html
#mri #radiology #physics #course #spin #echo #pulse #radiologytutorial #radiologycourse

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2 окт 2023

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Комментарии : 27   
@louisel1111
@louisel1111 8 месяцев назад
Hey Dr TE, I've just started MRI and this series has been so helpful! Love your animations and your humour :D
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 8 месяцев назад
Awesome to hear it's helping, check back later this week for a new episode!
@samgatin
@samgatin 2 месяца назад
Hello from Kazan, Russia! Big thanks for your videos!!!
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 2 месяца назад
Hello there and thanks for commenting! Cheers from the USA my friend!
@lucaya
@lucaya 3 месяца назад
Amazing!!! Best MRI lectures on RU-vid!
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 3 месяца назад
Too kind! Thanks so much for commenting and the support!
@lucaya
@lucaya 3 месяца назад
Your lectures are the best on RU-vid yet. Thanks a million!
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 3 месяца назад
Too kind! Thank you so much for watching and commenting!
@gissellev.18
@gissellev.18 4 месяца назад
You have made understanding MR Physics so easy! Your sense of humour is icing on the cake. Feeling confident taking the ARRT after watching your videos. Thank you so much!
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 4 месяца назад
So happy to hear they helped and thanks for putting up with all the bad jokes! Best of luck on your exam, you got this!
@Grazie_Senyor
@Grazie_Senyor 9 месяцев назад
You coming clutch on my studies bruh!
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 9 месяцев назад
Glad I could help!
@JojoJojo-er6li
@JojoJojo-er6li 5 месяцев назад
Extremely good content 🎉 thanks
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 5 месяцев назад
Thanks for commenting and watching!
@TAHA-TOUABA-RADIOGRAPHER
@TAHA-TOUABA-RADIOGRAPHER 8 месяцев назад
Thank you so much pro
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 8 месяцев назад
Thank you, new lecture coming soon!
@aakib_parray1470
@aakib_parray1470 9 месяцев назад
Waiting for new video on turbo fast echo sequence
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 9 месяцев назад
In the works my friend!
@RobertWilliamsserving
@RobertWilliamsserving 4 месяца назад
Thanks for this! I noticed at 6:23 in video you discussing spinning after RF pulse, wouldn't they be "wobbling" around a vector pointed in the y-xis? As opposed to circling all the way around like that? Sorry probably dumb question
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 4 месяца назад
No question is dumb, thanks for the commenting! It can be really hard to picture how this process plays out in 3D space but the axis of precession is the Z-axis. The net magnetizations in each voxel are vectors that can be oriented in any direction. At first, right after our initial RF pulse, they are aligned i.e. "in-phase", all precessing coherently about the z-axis, but naturally they begin pointing in different directions as time goes on and they became more and more disordered i.e. "dephased" but the axis of procession as a group remains the Z-axis. What is important when considering signal generation is how these vectors project into the XY-plane, as shown in the mentioned animation. Hope this helps!
@RobertWilliamsserving
@RobertWilliamsserving 4 месяца назад
Thank you!! What I needed was to go back to your earlier excellent videos on t1 and t2 decay contrast from about a year ago 😅
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 4 месяца назад
@@RobertWilliamsserving Awesome glad they helped!
@vohuynhminhtuanvng
@vohuynhminhtuanvng 3 месяца назад
Thanks so much. 🎉 I have some stuck with this kind of knowledge. I have been reading many lectures about MRI. Could I ask you some question, Mister? 1. Some of people said that: The flip angle is determined by proportion of spin state "up and down" after exciting pulse. Is that correct? 2. After 90 RF pulse, a number of spin up will be equal to spin down. The spins which is resonated will be in phase. It is explained by quantumn machenics. But it seems to confuse me. Maybe is there something force them to be in phase? Also I don't know why 180 RF pulse cause it too. Somewhere in the internet, they explained understandably in the vector frame that the fast spin will catch up the lag spin and despend on the direction you put 180 pulse in. But when i try to apply it into the picture of spin-state, it makes me impossible to understand. 3. About 180 RF pulse in spin echo, after 90 exciting pulse, the transverse magnetization will gain conherence a little bit then dephasing with T2* decay. When we do a series of another 180 RF pulse, we have some coherence peaks. However, they gradually descrease magnitude and when we connect these peaks, we have T2 Decay. What make these peaks become smaller and smaller after 180 RF pulses. 4. After 90 RF pulse, we add a RF 180F Pulse. Now the vector B1 maybe >180? Is that mean the more spin up state becomes spin down? Could you do me a favor? 😭 I stuck with these problems a few days.
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 3 месяца назад
Thanks for the comment and great questions my friend! I think you are getting at a really frustrating point in that yes all of the physics governing magnetic resonance imaging are indeed covered by the laws of quantum mechanics, but trying to visualize what is going on at the quantum level is near impossible and for good reason! If the position and spin are mere statistical quantities resolved at measurement, how can we truly know their precise number and position/orientation? I think at best we can say a statistical number of these spins will be more aligned with the magnetic field B0 than randomly, our RF pulse will imbue a statistically higher number of these spins with a coherent precessional frequency and flip angle to produce a signal and so forth. But I think the visuals we use to depict these in a classical sense still hold a great degree of truth of what's going on. As to question #3, what makes the peaks become smaller is the ever increasing disorder of the system that begins as soon as we apply our initial RF pulse. Think of it like friction in the real world, we will always have irrecoverable energy loses with any system we put energy into whether it be your car or an MRI machine (excluding semiconductors!). We actually talk about this in the Turbo-Fast Spin Echo here: ru-vid.com/video/%D0%B2%D0%B8%D0%B4%D0%B5%D0%BE-ZW7dw-zL9_M.html Hope this helps!
@vohuynhminhtuanvng
@vohuynhminhtuanvng 3 месяца назад
@@MRIPhysicsEXPLAINED I'm really grateful to you. Hope your channel would be well-known ❤️❤️❤️
@Blueyzachary
@Blueyzachary 7 месяцев назад
How the hell do I understand this now??
@MRIPhysicsEXPLAINED
@MRIPhysicsEXPLAINED 7 месяцев назад
I ask myself this daily when it comes to MRI Physics 😂