[time-nuts] Frequency subtraction with D-flip flops

Bob Camp lists at rtty.us
Tue Jul 2 00:49:43 UTC 2013


Hi

Flip flops are sampling devices. All samplers can / do act as mixers between the clock (sampling) frequency and the input (data) frequency. That's all that's going on. Look at it like a mixer and it all makes sense.

Bob

On Jun 24, 2013, at 8:13 PM, ed breya <eb at telight.com> wrote:

> I am revisiting that tracking generator reference I brought up here a while back, and trying to get my head around how a DFF can take the difference between two frequencies. I have studied and thought about the various topologies and conditions, and searched online for good explanations, but haven't found anything concise that applies to this simple case. During the last discussion on this matter, I learned that another DFF should follow the first, and be clocked the same, in order to reduce effects of metastability. For the actual application, I believe there are limits to the differencing process, so I'd like to check here to see if my thinking is right.
> 
> First, let's call fd the frequency of the D-input, and fc the clock, which produce a signal fo at the Q output of the first DFF.
> 
> 1. It seems to me that whenever fd and fc are within a factor of two of each other, either one can be viewed as sampling the other below the Nyquist rate, so an alias signal fo, the difference frequency, is produced. It doesn't matter which input frequency is higher.
> 
> 2. It seems to me that whenever fc is much higher than fd (fc>>fd), then it's clearly sampling above Nyquist frequency, so no aliasing occurs - just a delayed (by a fraction of a cycle of fc) version of fd shows up at the Q output, and fo=fd. If so, then this should be true all the way down to fc>2*fd.
> 
> 3. It seems to me that whenever fd is much higher than fc (fd>>fc), then it's clearly undersampling, so aliasing will occur, producing fo=fd-n*fc, where n is the highest integer that allows fd>n*fc. If so, then this should be true all the way down to fd>2*fc. For example, if fc is 200 kHz, and fd is 15.8833333 MHz, then n=79, and fo=83.3333 kHz. 79*0.2=15.8 MHz, so 15.883333-15.8=.08333 MHz. If fc=5 MHz, then n=3, and fo=883.3333 kHz. If fc=4 MHz, then n=3, and fo=3.883333 MHz.
> 
> Now onto the second DFF, which reduces the metastability effects of the first. Let's say that normally the Q output of the first goes to the D input of the second, the clocks of both are the same fc, and the Q output of the second is the "cleaned up" version of fo, delayed by a fraction of a cycle of fc.
> 
> 4. It seems to me that whenever fd is much higher than fc (fd>>fc), that fd could be used instead to trigger the second DFF, which would reduce the metastability of the first DFF somewhat, and also synchronize the output signal closer to the edges of fd - but with some metastability from that too.
> 
> 5. It seems to me that the fastest possible logic family should be used for minimum metastability, even if slower ones can clock easily at fc and fd. So, I'd prefer 74AC-type parts over HC, even at 15 MHz.
> 
> So, do I get it, or am I missing something? Please be nice.
> 
> Ed
> 
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