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  • Tinkerer
    replied
    My guess is that the squiggle at the bottom of the Flyback is the reverse recovery of the diodes. If you try diodes of different recovery type, fast and hard or soft and slow, you will see a difference in the signal shape.

    Tinkerer

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  • moodz
    replied
    Originally posted by WM6 View Post
    At which point of your FE schematic do you take out here displayed signals?
    I apologize if I'm missing something.
    At C4 after output of diff amp .... I disconnect C4 from input to dspic as ADC input sample switching noise will cause interferance.

    Regards,

    moodz

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  • WM6
    replied
    Originally posted by moodz View Post
    Representative waveforms at the output of the diff amp.

    The pulse repetition frequency is quite high at 5.3 kHz however in this application the DSP code needs the high rate for adequate sensitivity.
    At which point of your FE schematic do you take out here displayed signals?
    I apologize if I'm missing something.

    Leave a comment:


  • WM6
    replied
    Originally posted by TryAgain View Post
    Hello Moodz
    Could you post pdf I cant get a response from the link or iaselect.ru
    Thanks
    Here you are:
    Attached Files

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  • TryAgain
    replied
    Hello Moodz
    Could you post pdf I cant get a response from the link or iaselect.ru
    Thanks

    Leave a comment:


  • moodz
    replied
    Maybe buy one off the shelf ?

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  • J_Player
    replied
    Originally posted by Monolith
    Why can we not sample before the signal is flat?

    Monolith
    It seems we can sample before the signal is flat as long as the coil is not saturated so as to obscure the target signal. (Qiaozhi is correct, I was not measuring from the pulse switch-off time. The sampling was started after 23 us). I suppose it is better to have a clean looking square wave as a matter of s/n ratio when sampling early as possible. According to Moodz, his target signal is stable and repeatable even in the area where the signal is oscillating.

    Best wishes,
    J_P

    Leave a comment:


  • Monolith
    replied
    Originally posted by J_Player View Post
    Yes, WM6,
    you are correct - it is 1.25 us. That was my error.

    In Moodz most recent tweaking session, I am referring to his first two photos which show the pulse stabilizing to fully flat at about 13 or 14 us. However, it seems to be nearly flat at 10 us, and hopefully flat enough to begin sampling targets at that time. Moodz final photos also show close up details of the first couple of us after the pulse is turned off. What is strange is that he found a usable target signal that could be sampled during the oscillations in the first us to identify the presence of his dollar coin.

    Hopefully I am reading the time units correctly.

    Best wishes,
    J_P
    Why can we not sample before the signal is flat?

    Monolith

    Leave a comment:


  • J_Player
    replied
    Originally posted by WM6
    It seems to me that marked time distance on your picture is 1.25us not 1.6us?

    And thanks for kind explanations, sometimes I am confused in technical English terms.
    Yes, WM6,
    you are correct - it is 1.25 us. That was my error.

    Originally posted by Qiaozhi
    Are you sure?
    It appears from the oscilloscope photos that the coil voltage takes at least a minimum of 22us to decay, and in some cases up to 25us. The decay time is measured from the moment the mosfet is switched off until the start of the main sample pulse.
    In Moodz most recent tweaking session, I am referring to his first two photos which show the pulse stabilizing to fully flat at about 13 or 14 us. However, it seems to be nearly flat at 10 us, and hopefully flat enough to begin sampling targets at that time. Moodz final photos also show close up details of the first couple of us after the pulse is turned off. What is strange is that he found a usable target signal that could be sampled during the oscillations in the first us to identify the presence of his dollar coin.

    Hopefully I am reading the time units correctly.

    Best wishes,
    J_P

    Leave a comment:


  • WM6
    replied
    Originally posted by J_Player View Post

    But we also see that the target signal is clear and stable, and can be easily recognized before 1 us has passed!
    It seems to me that marked time distance on your picture is 1.25us not 1.6us?

    And thanks for kind explanations, sometimes I am confused in technical English terms.

    Leave a comment:


  • Qiaozhi
    replied
    Originally posted by J_Player View Post
    Things are getting more interesting. It appears the coil voltage flattens out shortly after 10 us has elapsed.

    10 us is the magic number coil builders shoot for to start their target sampling. If you start sampling sooner than 10 us, you may be able to detect nearly invisible gold particles. Very early sampling can also cause problems with beach hunting where you begin to pick up salt water and wet sand. But we hear reports of some coil builders making very fast coils that allow them to start sampling at times approaching 6 us, which allows detection of very small gold nuggets that would otherwise not be detected (presumably they are not detecting tiny gold around salt water). These reports are from builders of analog PI detectors. The same principles will apply to digital sampling, But with digital sampling, we have an opportunity to look deeper than an analog circuit can efficiently.

    And now We see in the recent differential coil oscilloscope photos -- the coil signal has flattened after 10 us.
    But we also see that the target signal is clear and stable, and can be easily recognized before 1 us has passed!
    Are you sure?
    It appears from the oscilloscope photos that the coil voltage takes at least a minimum of 22us to decay, and in some cases up to 25us. The decay time is measured from the moment the mosfet is switched off until the start of the main sample pulse.

    Leave a comment:


  • J_Player
    replied
    Things are getting more interesting. It appears the coil voltage flattens out shortly after 10 us has elapsed.

    10 us is the magic number coil builders shoot for to start their target sampling. If you start sampling sooner than 10 us, you may be able to detect nearly invisible gold particles. Very early sampling can also cause problems with beach hunting where you begin to pick up salt water and wet sand. But we hear reports of some coil builders making very fast coils that allow them to start sampling at times approaching 6 us, which allows detection of very small gold nuggets that would otherwise not be detected (presumably they are not detecting tiny gold around salt water). These reports are from builders of analog PI detectors. The same principles will apply to digital sampling, But with digital sampling, we have an opportunity to look deeper than an analog circuit can efficiently.

    And now We see in the recent differential coil oscilloscope photos -- the coil signal has flattened after 10 us.
    But we also see that the target signal is clear and stable, and can be easily recognized before 1 us has passed!
    This seems to be especially easy to recognize when using digital sampling. Of course, I would prefer to see a sharp square wave without oscillations and inductive artifacts, but even with this noise, the target signal comes through before 1 us as a voltage differential and a time differential. We also see the wave shape has changed. Best of all, the target signal is stable. It looks like we hit pay dirt.

    Would it help to remove more of the noise?
    Maybe. I am not sure about this but I would think so.
    A big part of these artifacts come from details of the coil winding methods. We have some excellent tips on coil winding in the Geotech forums which address the basics that can improve any PI coil. BBSailor has given some of the best advice, along with others who show what worked in the field. See here for a very informative thread that tells many secrets for PI coils: http://www.geotech1.com/forums/showthread.php?t=11198
    Midway through the thread you will find some of the best information you have read in awhile for reducing capacitance and other tips for fast coils.
    Another great publication from BBSailor condenses most of his tips in one report here: http://www.geotech1.com/pages/metdet...s/FastCoil.pdf

    I am sure much of the work for improving the wave form in the differential coil design will need to be done on the circuit board. Hopefully some coil tips will make the electronic work easier and will allow reaching better performance at a low cost.

    The intriguing feature of this differential coil design is the digital sampling. If the sampling and signal processing was sophisticated enough, it may be able to provide some degree of target ID better than analogue designs have attained. I would not expect perfect target-ID because the size and shape of the targets have much to do with the wave form you will see. But then, we may be surprised at what we find after some field testing.
    Attached Files

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  • Mrand
    replied
    I found this old patent US 3,761,831 "Common Mode Rejection Means for differential circuits" http://www.freepatentsonline.com/3761831.pdf . Perhaps will be useable.
    Mrand

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  • Aziz
    replied
    Hi Moodz,

    you know, the input resistors before the diodes, should be 0.1% or better of tolerance. They should be hand matched to increase the CMRR. This is very important, if you have a high gain stage. The CMRR is usually very worse at high frequencies.

    I recommend to make simple CMRR measurements first. Balance out the input impedance and increase the CMRR.

    Aziz

    Leave a comment:


  • moodz
    replied
    Possible Explanation ....

    The inputs to the differential amplifier are fed off either side of the differential coil which will + and - with respect to the centre tap analogue ground.
    To investigate this I disconnected the negative input to the amp and connected it analogue ground. The amplifier was now only amplifying the signal at the + input side of the coil. I could see that the "huge" signal I am getting for the target is right at the base of the decay which is practically vertical voltage drop. The diff amp will try to amplify the difference at the inputs ... somewhat obvious. If the decay on one input is slight slower than the other there will be a relatively huge voltage differential this is what is being amplified ... a slight difference in the + and - decays caused by the target.
    How is this .... ??? ..... the collapsing magnetic field of the TX coil will cause an equal and opposite flyback in the two sides of the diff coil. However the collapsing magnetic field of a target will be opposed to the main field ... so it will induce a very small decrease of field in the one coil and a very small increase in field in the other coil thus producing an ever so slightly different rate of decay in the coils and a shift in balance which the diff amp detects.
    Because the waveforms at each input are falling at a huge dV/dt at this measure point it only takes a few nano seconds of shift to generate 10s of mv of difference between the two diff signals thus relatively small targets produce relatively huge ouputs. By varying the damping resistor in the way I had it connected I was effectively balancing the two coils which even a small coin would unbalance to produce a target response. If the two coils are each damped independantly the decays of each side may be balanced by varying one side to produce a balanced condition. This is what I inadvertantly achieved with my variable damper which had an offset resistance.

    The required circuitry now is a slow autobalance which keeps the two sides balanced whilst still allowing relatively fast target "unbalance" to occur.

    moodz.

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