From: "Saved by Internet Explorer 11" Subject: Grounding of Mixes Signal Systems Date: Mon, 15 Jun 2015 18:44:50 -0700 MIME-Version: 1.0 Content-Type: multipart/related; type="text/html"; boundary="----=_NextPart_000_0000_01D0A79B.5C6E5B10" X-MimeOLE: Produced By Microsoft MimeOLE V6.1.7601.17609 This is a multi-part message in MIME format. ------=_NextPart_000_0000_01D0A79B.5C6E5B10 Content-Type: text/html; charset="iso-8859-1" Content-Transfer-Encoding: quoted-printable Content-Location: file://C:\Users\DM Fraser\Documents\Schematics\New Web Site\Manufacturing and Design\Grounding, Interconnection and Wiring\Grounding\split-gnd-plane.html =20 =20 =20 Grounding of=20 Mixes Signal Systems=20

Henry Ott=20 Consultants

Electromagnetic Compatibility Consulting = and=20 Training

Grounding of Mixed = Signal=20 PCBs


A question that I hear often is:  How do I prevent digital = logic=20 ground currents from contaminating my low level analog circuitry?  = This is=20 a good question without a simple answer.  Most A/D converter = manufacturer's=20 data books and application notes provide little if any useful = information on the=20 subject.  If they do provide information, it is usually only = applicable to=20 a simple system containing only one A/D converter.

Some people suggest splitting the ground plane in order to isolate = the digital ground currents from the analog ground currents.  Although = the=20 split plane approach can be made to work, it has many potential problems especially in large complicated systems.  Can you list some of = these problems?  One of the major ones is that you can not route a trace = over=20 the split in the plane (see Tech Tip Slots in Ground Planes).  It is always better to have only a = single reference plane for a system.

If you do split the ground plane and run traces across the split = (left hand=20 figure below), there will be no return path near the trace and the = current will=20 have to flow in a big loop.  Current flowing in big loops produce = radiation=20 and high ground  inductance.    If you must split = the ground=20 plane and run traces across the split,  you should do it as shown = in the=20 right hand figure below.  By connecting the planes together at one = point (a=20 bridge) and routing all the traces so that they cross at this bridge = point, you=20 will have provided a return path for the current directly underneath = each of the=20 traces (hence a very small loop area).

High frequency digital ground = return currents=20 want to return directly underneath the signal trace.  This is the = lowest=20 impedance (lowest inductance) path.  The digital ground currents = have no=20 desire to flow through the analog portion of the ground plane and = corrupt your=20 analog signal.  Why then do we need to split the ground to prevent = the=20 digital current from doing something that it does not want to do = anyhow?  Therefore, I prefer the approach of using only one ground plane and=20 partitioning the PCB into digital and analog routing=20 sections.  Analog signals can then  be routed only in the = analog=20 section of the board (on any layer), and digital signals can  be = routed=20 only in the digital section of the board (on any layer).  What = causes=20 problems is when a digital signal is routed in the analog section of the = board,=20 or visa versa.

A PCB with a single ground plane, partitioned = into analog=20 and digital sections, and discipline in routing = the=20 signals can usually solve an otherwise difficult layout problem, without creating the additional problems caused by  a split ground = plane.  If=20 the layout is done properly, the digital ground currents will remain in = the=20 digital section of the board and will not interfere with the analog signals.  The routing, however, must be checked carefully to = assure that=20 the above mentioned routing restrictions are adhered to one = hundred=20 percent!   The key to a successful mixed signal PCB = layout,=20 therefore, is proper partitioning and routing discipline, = not a=20 split ground plane.

Many A/D converter manufacturers, while suggesting the use of split = ground=20 planes, state the following in their data sheets or application = notes: =20 "The AGND and DGND pins must be connected together externally to the = same low=20 impedance ground plane with minimum lead length.  Any extra = external=20 impedance in the DGND connection will couple more digital noise into the = analog=20 circuit through the stray capacitance internal to the IC."  Their=20 recommendation is to connect both the AGND and the DGND pins of the A/D=20 converter to the analog ground plane.  This approach has the = potential of=20 creating a number of additional problems.  Can you list some of = these=20 problems?  What do you connect the ground side of the digital power = decoupling capacitor to?  The analog plane or the digital plane? =

A much better way to satisfy the requirement of connecting AGND and = DGND pins=20 together through a low impedance, and not create additional problems in = the=20 process, is to use only one ground plane to begin with.

The key to determining the optimum board layout is to think, how = and where=20 do the return currents flow?

If you are still skeptical about using a single ground plane on your = mixed=20 signal boards I suggest you do the following experiment.  Layout = the board=20 with a split ground plane, but provide means for connecting the two = planes=20 together every 1/2 inch with jumpers or zero ohm resistors.  Route = the=20 board properly, with no digital traces (on any layer) over the analog = plane and=20 no analog traces (on any layer) over the digital plane. Build the board = and test=20 it's  functionality and EMC performance.  Connect the planes = together=20 and test the board again for functionality and EMC performance.  I = think=20 that you will find that in almost all cases, both the functional = performance and=20 the EMC performance of the board will be better with the single ground=20 plane.  If you do the experiment  send me an e-mail letting me = know of=20 your results.

It is almost always better to have only a single = reference plane for a system!

Analog ground plane noise voltages should be kept smaller than the minimum  analog signal level of concern.  In the case of an = A/D (or=20 D/A) converter the smallest resolvable signal voltage level [least = significant=20 bit (LSB)] is a function of the number of the bits and the full scale = reference voltage of the A/D converter. The smaller the reference voltage and the = larger the number of bits, the smaller the minimum resolvable signal voltage = will be.=20 The following table shows the resolution versus the number of bits for = an A/D=20 converter using a one volt reference.  These resolution levels can = be=20 scaled for other reference voltages by multiplying the resolution by the = appropriate factor.  For example, if the converter uses a 5 volt = reference=20 then multiply the resolution numbers in the table by five. =
 
 

Number of Bits Resolution (LSB)
8 4 mV
10 1 mV
12 240 uV
14 60 uV
16 15 uV
20 1 uV
24
0.06 uV (60 = nV)

 

The use of a single solid ground plane  properly partitioned and = routed=20 (as discussed above) is usually adequate for most low to moderate = resolution A/D=20 converters (8, 10, or 12 bit).  For higher resolution systems (14 = bits and=20 up) even more ground noise voltage isolation may be required for = adequate=20 performance.  These converters have resolution voltages in the tens = of=20 microvolts, or less, level.  In this case you might want to divide = your=20 board into separate isolated analog and digital ground plane regions, = each=20 solidly connected to the digital ground plane under each of the A/D = converters=20 as shown in the figure. This approach will provide additional ground = noise=20 isolation for the high resolution A/D converters while still maintaining = a=20 single ground plane for the system.

Notice that even in this case, the ground plane is not split --  = it is=20 all connected together.  Also remember that no traces, on any = layer, can=20 cross over the isolating slots in the ground plane. =
 
 
 

Summary

=A9 2000/2003 Henry W. = Ott           &nbs= p;            = ;            =             &= nbsp;           Henry Ott Consultants,  48 Baker Road  Livingston,  = NJ  07039  (973) 992-1793

Bibliography

Ott, = H. W.,=20 Partitioning and Layout of a Mixed Signal PCB, Printed Circuit = Design, June=20 2001.=20


Correspondence



Return=20 to top of page.=20

Return to = HOC home=20 page.


Henry Ott Consultants
48 Baker Road Livingston, NJ 07039
Phone: 973-992-1793,   FAX: = 973-533-1442

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