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  • Опубликовано: 21 ноя 2024

Комментарии • 378

  • @ninjaneer0
    @ninjaneer0 6 лет назад +12

    Potentially my favorite tutorial you've done! As a student, this was a difficult subject for me because it felt like every answer led to more questions. You've done a great job here at building the understanding of all the design aspects and seemingly mystic industry standards in this video. Excellent job, big thumbs up!

  • @consciousart1
    @consciousart1 2 года назад +7

    What a wonderdul world, someone records such a useful video and serves it free of charge

  • @EmilHarder
    @EmilHarder 6 лет назад +36

    Definitely your best kind of videos.
    Your are excellent at educating with demonstrations, without skipping the theories.
    Thanks!

    • @landynkaden2071
      @landynkaden2071 3 года назад

      You probably dont care at all but does anybody know a way to get back into an Instagram account?
      I was stupid forgot my account password. I appreciate any assistance you can offer me

    • @bowenmarco5028
      @bowenmarco5028 3 года назад

      @Landyn Kaden instablaster :)

    • @landynkaden2071
      @landynkaden2071 3 года назад

      @Bowen Marco thanks for your reply. I got to the site thru google and I'm trying it out now.
      Takes quite some time so I will reply here later with my results.

    • @landynkaden2071
      @landynkaden2071 3 года назад

      @Bowen Marco it did the trick and I now got access to my account again. I am so happy!
      Thanks so much you really help me out!

    • @bowenmarco5028
      @bowenmarco5028 3 года назад

      @Landyn Kaden You are welcome :D

  • @boryskrupa5102
    @boryskrupa5102 Год назад +1

    You have amazing ease of passing knowledge. If you cannot explain it to a 6 year old kid, you don't understand it - so you do not only understand it but you just feel it!

  • @DeadCatX2
    @DeadCatX2 2 года назад +2

    This video is a criminally underrated and wonderful demonstration in purely practical terms on how bypassing works

  • @abhishekchaturvedi779
    @abhishekchaturvedi779 6 лет назад +11

    Awesome demonstration with low ripple and spike reduction. I have been an engineer for many years, but I have never ‘actually’ scoped out these thing with multiple capacitors, but rather just assumed theory and calculated numbers. Great video!

  • @RobertFeranec
    @RobertFeranec 6 лет назад +122

    @Dave, what a fantastic video! I watched all 33 minutes and 34 seconds. Thank you for this video. PS: When you have this setup, please, could you try to add a ferrite bead into the circuit, just to see if there will be visible difference before and after the bead?

    • @zhitailiu3876
      @zhitailiu3876 5 лет назад +13

      I always feel difficult when using FBs. From the power delivery view point, we need the power supply to deliver the current as fast as possible to satisfy the nsec, or even hundreds of psec rising/falling time. However, the ferrite beads slow down the current by acting as higher impedance in some high frequency domain. FBs simply dissipate certain amount of high frequency energy. If this high frequency content is exactly what the system needs, say your processor, we'd better not using FBs in this frequency domain. Choosing the right frequency seems to be the most important thing! But I also found FBs useful when designing a board using a given external AC/DC adapter, sometimes you have no ideas or no choice what kinds of switching noises would inject input your power system, leave the FB pads there on your board seems to be a good practice.

    • @kodedude
      @kodedude 4 года назад +4

      @@zhitailiu3876 Could not have said it better.

    • @stevephillips7462
      @stevephillips7462 4 года назад +2

      @@kodedude What if you routed to the capacitors first, to supply the high frequency switching power demands locally, but ran the ferrite to the power rail - thus creating a high frequency high impedance disallowing the full effect of the noise to get on the power rail?

  • @JYelton
    @JYelton 6 лет назад +63

    Super helpful! I miss these sorts of videos.

  • @johnjuhasz4977
    @johnjuhasz4977 2 года назад

    Hands down the best demonstration I've seen on why bypass capacitors are needed.

  • @Sailingon
    @Sailingon 6 лет назад

    Never had much of an education and at 54 I'm now really enjoying learning why some of my day projects had problems and now inspired to get designing some more projects

  • @shkhamd
    @shkhamd 6 лет назад +1

    This is priceless.
    Always heard about loop current, EMI radiation regarding FCC and all that sort of stuff, but never seen it like this much detailed.

  • @NurchOK
    @NurchOK 4 года назад

    I've never had the bypass capacitors explained this clearly before. Thanks. This really shed some light on the topic.

  • @RobinsTools
    @RobinsTools 6 лет назад +3

    So much energy and research went into this absolutely great video! Thanks Dave!

  • @JFirn86Q
    @JFirn86Q 6 лет назад

    I think I just learned more in this 30 minutes than multiple months in university... thank you very much Dave. I could tell that was a lot of effort, and these videos are super helpful.

    • @EEVblog
      @EEVblog  6 лет назад

      Glad to hear. Might look like a lot of effort, but not really, pretty simple demo in the end.

    • @JFirn86Q
      @JFirn86Q Год назад

      @hardstyle905 Thankfully I'm not any longer. This is 5 years ago! Universities don't visualize what a bypass capacitor does like this, instead they make you write down the various math of capacitors in a hurried mater during lectures - and it's up to you to decipher your notes later and apply that to an application. I never said Universities are worthless or anything by the way, just that this visualization helped more than several lectures at the time.

    • @JFirn86Q
      @JFirn86Q Год назад

      ​@hardstyle905 I think Universities are trying to put more importance on that lately, which is a great thing. We had that as well, but it was always an afterthought or just 1 hour a week, where you had a very rigid syllabus of something - where a big report was due after it. I remember a lot of it was "connect this to that, go to oscilloscope and put in these settings, now print this screen, etc" instead of exploration and curiosity, or even understanding what was being done (often it was a scenario with the TA running around trying to fix the problems arising such as components being dead or something from the physical abuse of undergrads).

  • @dhpbear2
    @dhpbear2 6 лет назад +6

    This is such a great video! I've never seen this done before. How little change in ripple when the bulk cap was connected at the bench supply! (16:11)
    It would also be interesting to see what the output at the power-supply looks like when moving the bulk cap around.

  • @mattb6001
    @mattb6001 6 лет назад +8

    Great stuff Dave! This should be very helpful as we are having some grounding (and most likely EMI) issues with our boards at work. We have some 5V stuff going on but the main culprits are the 48V solenoids being driven at various duty cycles. The PWM frequency is ~1.7kHz. We already have planned updates for better grounding on the boards, but it looks like we might be adding some additional capacitors as well. Just don't want to get too carried away and drive up cost as the 48V coils are power hungry.

  • @billybbob18
    @billybbob18 6 месяцев назад

    Why doesn't this video have more views?! This has got to be the best capacitor tutorial I've seen. Before thiss I had no clue how important bypass cap are for digital noise decoupling. Coming from Arduino with a breadboard and basic electronics knowledge, I had no clue about how bad breadboards are for until I tried running a TFT @ 80MHz SPI clock. Your videos are a Bobby dazzler!

  • @andrewwhite1793
    @andrewwhite1793 6 лет назад +22

    As Dave says, at High Frequencies the current returns in the ground-plane under the trace. A good way to think if this is that the trace and the ground-plane are two windings on a transformer. As current flows in one direction in the trace, an equal current flows in the other direction in the ground-plane. The trace and ground are magnetically coupled.
    It can be shown by experiment that the current will even go through a resistor in the ground-plane under the trace rather than a short-circuit away from the trace.. Weird huh... Putting a nice big slot in the ground-plane makes the return current go all the way around the slot. The fields in the conductors don't cancel and radiate really well!

    • @521cjb
      @521cjb 2 года назад +2

      Slot antennas are built on that principle.

  • @BunkerSquirrel
    @BunkerSquirrel 4 года назад +1

    I would have killed to have a "Practical Application of Fundamental Circuits" that did stuff like this in school.
    At least we have you filling in the gaps in our education. Thanks Mate!

  • @peckelhaze6934
    @peckelhaze6934 6 лет назад

    This video is fantastic. To know what the bypass capacitor is for is one thing, to see its effect is something else. Brilliant.

  • @jonathanpalmer155
    @jonathanpalmer155 4 года назад

    That should be a included in every electronics theory course - very well explained and demonstrated.

  • @serggorod1423
    @serggorod1423 2 года назад

    1Курс университета в одном ролике с практикой.
    2 курс "2 vs 4 layer board".
    Отличное пособие.
    Не смог оторваться до конца!

  • @p_mouse8676
    @p_mouse8676 6 лет назад +3

    Good video Dave. Only thing I am missing in this story is (noise) decoupling with ferrites. Which is also an excellent and proven way to get rid of switching noise.

  • @mofasa2
    @mofasa2 6 лет назад +6

    I love this topic - Such a clear connection between theory to practise. Really well explained Dave. Cheers mate!

  • @NetworkXIII
    @NetworkXIII 6 лет назад

    Great video Dave, I loved it. As usual, you cut right through the BS and explained the concept better than any textbook ever could.

  • @spidermcgavenport8767
    @spidermcgavenport8767 6 лет назад

    I though this process was called squelching the signal or a version of a shunt... thank you for these videos so much more than what I have ever expected.

  • @karkoon6364
    @karkoon6364 6 лет назад +4

    Awesome video as always Dave! Always wondered how those small components did their magic. Thank you so much!

  • @regal_7877
    @regal_7877 3 года назад

    Wow I didn't know bypass capacitors made such a big difference. I always knew and sort of had a rough "feeling" for how much is enough from a circuit to circuit basis, but I never imagined they made this much of a difference.

  • @andrewpalm2103
    @andrewpalm2103 6 лет назад

    Man, I just love these hands-on (probes-on?) demos. Thanks, Dave!

  • @andersjohansen82
    @andersjohansen82 6 лет назад +1

    Awesome video.
    This explains decoupling in a much more tangible and easy way than my years attending electrical engineering classes. I would enjoy a continuation of the series with a practical PCB example - perhaps designing a PCB and then measuring it the same way you did in this video before mounting decoupling and then measuring EMI impact as you add caps.

  • @Shadowcruise99
    @Shadowcruise99 6 лет назад

    Best practical demonstration of bypass capacitors, I've ever seen. *Thanks so much!*

  • @MeeBilt
    @MeeBilt 2 года назад

    Great stuff! Next time a rookie claims that bypass and bulk capacitors are not needed I'll direct them to this video 😁
    I remember when I reviewed a design (in the 90's I think) and commented on the lack of bypass capacitors the designer came back after a couple of days with a new revision where all the capacitors where placed in the corner of the PCB - because it was too difficult to move all the ICs to fit the caps next to the power supply pins 😂🤦‍♂
    - "do it again - and do it properly this time"....

  • @MatthewSmith-wh5dr
    @MatthewSmith-wh5dr 6 лет назад

    Awesome video. Spent all day soldering 0805 100nF caps on my circuit boards. Nice to be reassured that it's worth it!

  • @alexishoyos4588
    @alexishoyos4588 6 лет назад

    Wow, I was just looking up bypass capacitors effect and saw your previous video about it and they were really helpful on understanding why certain capacitors are used and understanding their use.

  • @PilotPlater
    @PilotPlater 6 лет назад +4

    I'm surprised at the difference between the SMD and thru hole cap, that's great! Definitely proves the importance of PCB layout best practices. A few mm can get ya

    • @EEVblog
      @EEVblog  6 лет назад +3

      Yep, a few mm at hundreds of megs can be everything.

    • @Mythricia1988
      @Mythricia1988 6 лет назад +1

      I was expecting the SMD cap to do much better, but not THAT much better. Even at my low freq hobby level stuff, I might have to bite the bullet and start thinking about using some SMD components eventually... I guess it's not so bad if you have a decent hot air station and get some long shelf life solder paste.

    • @andrewwhite1793
      @andrewwhite1793 6 лет назад +1

      SMD is not too difficult. A good illuminated magnifier is more worthwhile than a hot air station. SO8, SC70 and 0402 packages can be done with a reasonably fine tip iron. There are lots of good videos on RUclips showing how.
      Bigger chips, and those with ground pads or pads completely underneath need hot air.
      Standard solder is Ok, but some thin solder helps more than a tiny tip iron. I do a few SMDs most days at work with a soldering iron although I have access to a hot-air station if I need it. Good Luck.

    • @NetworkXIII
      @NetworkXIII 6 лет назад

      Lead inductance is the enemy here, the less the better.

  • @AlfredoMazzinghi
    @AlfredoMazzinghi 6 лет назад +1

    This is probably the best series about bypass capacitors that I have ever seen. Keep it up! I'm really enjoying your experiments! :)

  • @jkbrown5496
    @jkbrown5496 6 лет назад +1

    Not long ago, I found a video that explained power factor correction well and the use of the caps for correction. Basically, the cap sink/sources in-rush currents for the inductive transitions, in this case to avoid pumping the power grid. I realized then that the bypass caps could in fact be for similar purpose. Nice to see that confirmed. I see they both dampen the pumping of the lines but also flipped to the other perspective they provide instantaneous current for digital pins which are not as forgiving of lags as motor windings are.

  • @ggeimer
    @ggeimer 2 года назад

    I examined a wire wrap board that had all the bypass capacitor wired together in a parallel daisy chain with only one set of wires connecting all the capacitors to another daisy chain of IC’s. If i were to cut one wire all the capacitors would have been removed from the circuit.
    I had another instance where a sales clerk thought he could help me save money by replacing all of my bypass capacitors with a single equivalent capacitor. I thanked him, but I told him it was for the higher frequency transients.

  • @reble_uwu3405
    @reble_uwu3405 4 года назад

    Been noticing your videos have been the ones I’ve been watching more to learn about components. Threw in a FAT tap on that subscribe button. Thank you!

  • @JoaoAntonioCardoso
    @JoaoAntonioCardoso 6 лет назад

    Your videos come always with very rich and in-depth content, thanks for the effort!

  • @PersonaRandomNumbers
    @PersonaRandomNumbers 6 лет назад

    Great video, Dave! Had no idea what a crazy difference that packaging makes.

  • @walts555
    @walts555 6 лет назад

    Good demo! 100MHz-ish seems to come directly from DUT which typically oscillates at a higher frequency to divide down to the 1MHz output signal.

  • @dylankirdahy9591
    @dylankirdahy9591 6 лет назад +1

    This video is incredible! Really helpful for the board I'm designing right now. Love these sorts of really practical demonstrations

  • @dhpbear2
    @dhpbear2 6 лет назад

    I suggest you do a follow-up video to this one, regarding GROUNDING, using most of the set-up shown here.

  • @dardosordi
    @dardosordi 6 лет назад

    If there ever was a case for a star button (next to thumbs up button) this video is it. Top quality content Dave!

  • @FurEngel
    @FurEngel 6 лет назад +1

    A good example to visually test and see why you need bypass caps: programming serial memory (such as SPI). In my lab, I have found several parts that when it does a self-erase, the IC drops the VCC so low that it resets the board's micro. With a large bypass cap, it works just fine.

  • @wojciechbedzinski447
    @wojciechbedzinski447 6 лет назад +2

    Great and simple explanation, Dave! I'd like to propose some extension to your test setup - to add "termination resistor" in series with osc. output: same as for hi-speed lines to correct impedance matching.I suppose that it should be visible on scope too.

  • @Deluxmilk
    @Deluxmilk 5 лет назад

    It is a wonderful video, but I just have one question, why would someone dislike this video? I read David's PCB Design Tutorial before my job interview, and it helped me a lot. Thank you, David.

  • @TranscendentBen
    @TranscendentBen 4 года назад

    There's yet another thing to do. The traces between the capacitors (and the capacitor leads themselves, as Dave said) are effectively inductors, and together with the caps they make up tank circuits made of high Q components so they can ring (seen as the decaying sine wave signal on the scope) after high-speed transitions. The thing to add is yet another capacitor (0.1uF or so) in series with a 1 ohm resistor, and put THAT across the power and ground as well. It does a lot to damp out such ringing signals from the other bypass components. Having several of these around the board, much like the 0.1uF caps directly across the power rails, can do wonders for making quiet supply rails. Electrolytic caps have their own series resistance that helps do this, but they also have series inductance and such, and thus are an inconsistent help with this.
    This is similar to the series r-c snubbers that are used across the secondary windings and diodes of linear (50-60Hz) power supplies, to stop the RF ping generated by the delayed turn-off of the usual 1n400x type rectifier diodes, activating the RF resonance of the secondary stray inductance and stray capacitance. It can even be useful with more modern high-speed rectifiers that don't have the forward storage and turn-off delay "feature." Everyone does this, right???
    I first read about that (doing this on PC boards) on the newsgroup sci.electronics.design, probably in the late 1990s or early 2000s. It's also discussed in later half of the book "High Speed Digital Design" where the authors spend time trying to optimize the values of the resistor and cap for maximum damping. I'm surprised I haven't heard of this more often in discussions of bypass capacitors.

  • @researchandbuild1751
    @researchandbuild1751 6 лет назад

    One of the best tutorials deminstration ive seen

  • @KevinTwiner
    @KevinTwiner 6 лет назад +13

    This was awesomeness, thanks Dave. Beautiful display, Iam just learning about basic things and I understood. Fascinating stuff my friend.

    • @EEVblog
      @EEVblog  6 лет назад +3

      Thanks.

    • @KevinTwiner
      @KevinTwiner 6 лет назад +1

      EEVblog very welcome

    • @TJackx0
      @TJackx0 20 дней назад +1

      Thanks for lesson, but can u show differens with regular elec. capasitor and sold capasitor?

  • @clems6989
    @clems6989 6 лет назад +16

    Alan w2aew done a similar demo on this as well.. great job !

  • @axslinger99
    @axslinger99 5 лет назад +4

    In school we called them, "de-glitching capacitors". They are also used to eliminate keyboard bounce.

    • @Alan96555
      @Alan96555 5 лет назад

      That its the same as anti bounce capacitor?

  • @budude2
    @budude2 6 лет назад +9

    "Radiating like buggery" -- I'll have to start using that in everyday conversations...

    • @EEVblog
      @EEVblog  6 лет назад +9

      I recommend only at fine dining upper class dinner parties.

    • @bostedtap8399
      @bostedtap8399 6 лет назад

      EEVblog , Country estates or Farms preferred.

  • @santopino2546
    @santopino2546 4 года назад

    Thanks Dave, needed some fresh information about this, too many years without electronics.

  • @PrinceWesterburg
    @PrinceWesterburg 4 года назад +1

    This video is essential viewing even for what I do, valve circuits for hifi and guitar, as it massively effects layout and design. Parasitics are a real issue in the design of hifi or recording gear - Nice one Dave! :D

  • @robertw1871
    @robertw1871 6 лет назад +7

    Thanks for this video, practical and well explained. Most engineers probably don’t even think about this much and just pepper the board with lots of jellybean caps because that’s what you’re supposed to do. Might be worthwhile going deeper into RFI with coverage for why a small resistor is added to the output of very fast slew rate signals like crystal oscillators, inductors for power pins of fast chips, and why super fast rise-times aren’t always a good thing. Big topic for sure, slew vs aperture and jitter, ground bounce... yikes maybe not... ; )

  • @nikthefix8918
    @nikthefix8918 Год назад

    What a great video!
    I ran into problems in designing a commercial product - a microphone preamp which would be inside a PC chassis and derive power from the ATX PSU. I sprinkled bypass caps everywhere and galvanically isolated the very noisy (and arguably crap) power supply via one of those encapsulated DC-DC converter modules (and a separate +/-24V pair for phantom power). The maximum allowed capitative load of the main DC-DC was quite low and could not deal with the amount my preamp presented so it kept failing. I concluded that over zealous bypassing although usually considered 'belts and braces' could have a drawback. I eventually found an uncomfortable sweet spot but would in future find a different way (like not putting a mic preamp in a computer). I'm sure more modern DC-DC devices with protection and slow start would mitigate the problem but this was a long time ago.

  • @srinivasaniyer3655
    @srinivasaniyer3655 4 года назад

    Great Video, Cutting the ground return plane as close to original track might help to force current return to much smaller path. This might help in reducing high frequency impedance and reduce loop path

  • @Fix_It_Again_Tony
    @Fix_It_Again_Tony 6 лет назад +5

    Awesome video, Dave. I really liked the approach of setting up the experiment and adding caps of different values in different locations. Adding the SA at the end to drive the point home was a nice touch.
    I would definitely like to see more experiment based videos to illustrate some of the why behind circuit design.

  • @agstechnicalsupport
    @agstechnicalsupport 2 года назад

    Really fantastic video on bypass capacitors, very instructive with a beautiful test set-up and experimentation.

  • @mcboomsauce7922
    @mcboomsauce7922 4 года назад +2

    This video is a tad “long format” for me
    But I applaud you
    Actually seeing a simple circuit
    And watching the shit go on a proper O scope
    Just....really is a good way for me to learn
    Thank you

  • @electronicsNmore
    @electronicsNmore 6 лет назад +9

    Excellent video Dave!

  • @jasonlevay4285
    @jasonlevay4285 6 лет назад

    Great demonstration Dave. Your efforts are much appreciated

  • @arvinbaba
    @arvinbaba 4 года назад

    You are killing yourself to teach something to us, I bow to you. and also i like to be in your super equipped laboratory.

  • @W4BIN
    @W4BIN 2 года назад

    Your two 100. Ω leaded non inductive MF resistors are reactive compared to lead-less resistors properly placed, according to my VNA. I very much enjoyed this demonstration. Ron W4BIN

  • @dotdissonance
    @dotdissonance 6 лет назад +2

    It's like Fundamental Fridays! Thanks for doing this!

  • @RPBCACUEAIIBH
    @RPBCACUEAIIBH 6 лет назад

    Yup! ...learned that the hard way quiet a while ago when I made a circuit, with a micro, and a servo, and the micro restarted whenever the servo needed to turn... :D

  • @azza-in_this_day_and_age
    @azza-in_this_day_and_age 6 лет назад

    this was great! moar practical applications in the future pliz =D you really make it look easy to operate the metering equipment what a freaking legend

  • @cypherf0x
    @cypherf0x 6 лет назад

    Dave, this is the best demonstration of bypass capacitors that I have ever seen. Even doing high-rel work I've not seen anything close. I'm saving this to show to our interns and any new hires. How about doing one for ferrite beads and other inductive methods as well?

  • @yanstev
    @yanstev 11 месяцев назад

    Great video. One nit-pick is that for the RF interference measurement, your set up is reading in the inductive field, which is different from the radiated field. Radiated field measurements should be done in the far field (rule of thumb is 10x your wavelength.) I get that your set up is rough to show potential effects, but you need to discriminate between radiated versus inductive interference requirements. No doubt that proper by-pass capacitors use can greatly reduce spikes and noise.

  • @shreddz
    @shreddz 6 лет назад

    'Chang' capacitor Dave?! Thats a bit how ya doin'!
    Great video, awesome to have a visual representation of the effects

    • @EEVblog
      @EEVblog  6 лет назад +5

      Only the finest crusty for this video.

  • @marczed5348
    @marczed5348 6 лет назад

    I did not finish watching but can't help myself: KILLER VIDEO! People need to know!

  • @K1ZEK
    @K1ZEK 4 года назад

    Great video. Enjoy activating the little gray cells.

  • @ChengduLittleA
    @ChengduLittleA 6 лет назад

    This is the clearest video on this topic!

  • @WacKEDmaN
    @WacKEDmaN 6 лет назад

    you went to too much effort making that setup Dave!...but i do appreciate it!...this has filled in the gaps in my knowledge of caps...i wish something like this was shown to me 20 years ago. its so much easier to understand than trying to visualise it in ya head!..the RF bit was quite interesting to see aswell..now i know i should be using caps, even on basic circuits to reduce the RF noise they generate

    • @EEVblog
      @EEVblog  6 лет назад +1

      Not much effort, just some tape on a board and rummaging for an oscillator.

  • @brucewoods9377
    @brucewoods9377 6 лет назад

    This is a great demo. Makes heaps of sense and easy to follow. 👍👍👍

  • @stuartmcconnachie
    @stuartmcconnachie 6 лет назад +8

    @11:45 Ah, that often overlooked SI unit, the “whatnot”! Or is it “watt-not”? Presumably the power produced by an over unity device?

  • @gatzen
    @gatzen 6 лет назад

    I love this sort of technical content, keep up the good work.

  • @StigBSivertsen
    @StigBSivertsen 6 лет назад +2

    Really nice 😊😊😊
    Even I understood this and I don't have any knowledge about this at all. Please make more videos like this😊

  • @claudiohase296
    @claudiohase296 Год назад +1

    MUUUUITO BOMMMM !!!!!!! extremamente didático ! Parabéns pelo experimento !

  • @nameis6895
    @nameis6895 6 лет назад +6

    Welcome back to real electronics Dave :)

  • @afi6061
    @afi6061 5 лет назад

    Great video! Really love the visual nature of it and the explanation! 👍

  • @GoldSrc_
    @GoldSrc_ 6 лет назад +7

    This video is glorious, thanks Dave, best video I've seen about this subject.

  • @PETATNISSEN
    @PETATNISSEN 6 лет назад

    Great stuff! I learn a lot from these videos. And get inspired to do similar tests on my own bench.

  • @bostedtap8399
    @bostedtap8399 6 лет назад

    Truly excellent tutorial, and my brain didn't complain at all. Treat yourself to an ice-cream Mr Jones.

    • @EEVblog
      @EEVblog  6 лет назад

      Don't mind if I do!

  • @KB1UIF
    @KB1UIF 4 года назад

    Great video and practical demonstration, Dave !!

  • @DLSDKING
    @DLSDKING 6 лет назад

    Love the way you say Bond wire at 18:20

    • @EEVblog
      @EEVblog  6 лет назад

      Bond. Wire Bond.

  • @oscaradrianfloresflores8285
    @oscaradrianfloresflores8285 4 года назад

    OMG thank you so much you made my day! your videos are perfect for this quarantine. Thank you so much!

  • @585585MC
    @585585MC 4 года назад

    This is one of the best videos in absolute.

  • @bakupcpu
    @bakupcpu 6 лет назад

    Love learning new stuff! And this is just what I needed! Thanks Awesome video

  • @caulktel
    @caulktel 6 лет назад

    Great video Dave and very timely for me, thanks.

  • @BrekMartin
    @BrekMartin 6 лет назад +2

    Cool. So if you switched a transistor so there was some decent current, maybe a thermal camera would show it.

    • @EEVblog
      @EEVblog  6 лет назад

      Wouldn't work for transient noise though, just not enough energy in that to heat up a wire to show it thermally.

    • @BrekMartin
      @BrekMartin 6 лет назад +1

      Not wire, the current flow through the copper foil.

  • @johnbedell2376
    @johnbedell2376 4 года назад

    EXCELLENT demonstration!
    Thank you very much!

  • @goodjihad
    @goodjihad 6 лет назад +2

    Would this be why the bypass caps on the back of a CPU pcb are important? If you knock one off - you are likely to kill the digital output?

    • @Mythricia1988
      @Mythricia1988 6 лет назад +5

      Knocking one off is unlikely to actually have any effect on normal use - as with most serious electronics, they are over-engineered to a pretty significant extent. That is to say, it would probably still work just fine. If you started overclocking and putting the system on the edge of stability in it's normal operation however, then it might matter. Or it might not.
      But no, there is always an excess of bypass capacitance near GPU's and CPU's, losing one is unlikely to cause a problem. That said it's not actually guaranteed that they are bypass capacitors - they could be serving some other purpose, and you don't really know for certain.

    • @andrewwhite1793
      @andrewwhite1793 6 лет назад +1

      In general, as the capacitance reduces and the noise increases. If there is too little capacitance, large noise spikes can be mistaken as extra pulses. This can introduce bit errors in the CPU or maybe an extra clock pulse causing a bus to get out of sync...and the system crashes.
      Maybe if you are unlucky enough to have all the other capacitors at their minimum tolerance it may fail.
      Large value ceramic capacitors vary capacitance with temperature, so it might then work OK at room temperature but fall over when it is very hot or cold.

    • @EEVblog
      @EEVblog  6 лет назад +1

      Yes, they are bypass caps, and very important for high speed stuff like modern processors and FPGA's.
      Taking off one usually won't result in a problem, but it might lower the margins or operations. They usually use multiple ones in parallel just to be sure.

    • @goodjihad
      @goodjihad 6 лет назад

      EEVblog thank you Dave and the other peeps who replied! Great explanations. Love your work Dave!

  • @sorin.n
    @sorin.n 6 лет назад +2

    A video full of information! I Love it!

  • @Voteformiles10
    @Voteformiles10 6 лет назад

    Best video in a while. Thanks Dave!

  • @pkplexing
    @pkplexing 6 лет назад +3

    A nice demonstration there, Thanks :)

  • @samjones1954
    @samjones1954 6 лет назад +1

    good video, however we have a different philosophy. When I took Electronics Engineering we where told that a "BYPASS" Cap is not there to store energy. That is the job of a Filter Cap. A Filter Cap is the large Electrolyte that you call a low frequency bypass. The small "BYPASS" Caps are to short high frequency signals to ground.

    • @EEVblog
      @EEVblog  6 лет назад +3

      It's a matter of semantics and point of view, but the "bypass" cap does indeed store and supply energy. I think I mentioned this in the video in an overlay

  • @dhpbear2
    @dhpbear2 6 лет назад +1

    14:16 - Would a truly accurate impedance-match (the load AND the copper tape!) reduce the ringing as well?

    • @WurstPeterl
      @WurstPeterl 4 года назад

      David Perkins Yes. Trace impedance matching is commonly done for example in measuring equipment.