link a/d converters and microcontrollers using long transmission lines

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Link A/D converters and Microcontrollers using Long Transmission Lines. John WU Precision Analog - Data Converter Applications Engineer [email protected]. Transmission Line Effect Considerations. Definition of the Highest Frequency Signal Transmission Line Model Reflection Concept - PowerPoint PPT Presentation

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Page 1: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Link A/D converters and Microcontrollers using

Long Transmission Lines

John WUPrecision Analog - Data Converter Applications Engineer

[email protected]

Page 2: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Transmission Line Effect Considerations

• Definition of the Highest Frequency Signal

• Transmission Line Model

• Reflection Concept

• Termination Topology

• Crosstalk Analysis

Page 3: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Application Example

Page 4: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Transmitted Data and Clock

Page 5: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Reflection on MSP430

Page 6: Link A/D converters and  Microcontrollers using  Long Transmission Lines

With Termination on MSP430

Page 7: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Reflection on ADS8326 EVM

Page 8: Link A/D converters and  Microcontrollers using  Long Transmission Lines

With Termination on ADS8326

?

Page 9: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Definition of the highest frequency signal

What is the highest frequency signal

in a 2.25MHz sample clock rate

ADC ?

Page 10: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Definition of the highest frequency signal

The highest frequency signal is determined by the signal rise or fall time

Page 11: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Rise Time vs. Bandwidth

The rise time and bandwidth are related by:

For example:

clock rate = 2.25 MHz,

trise CLK = 10 ns

trise Data = 2 ns

The highest frequency signal or bandwidth is:

= 175MHz

Page 12: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Rise Time Measurement

• The displayed Tr = 2ns (10-90%) on an oscilloscope • 3-dB bandwidth of a probe is 500MHz (Tr = 0.7ns)• 3-dB bandwidth of an oscilloscope input is 350MHz (Tr=1ns)

• What is the measured input signal Tr ?

Page 13: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Rise Time Degradation

• Tdisplayed2

= Tprobe2 + Tscope

2 + Tsignal2

• Tsignal2 = Tdisplayed

2 -Tprobe2 -Tscope

2

• Tsignal = SQRT(22 - 0.72 - 12 )=1.6ns!

• 1.6ns) = 220MHz

Page 14: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Critical Microstrip Length

What is the critical length of

a microstrip that must be considered as transmission line?

Page 15: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Rise Time vs. Propagation Delay

0

0.5

1

1.5

2

2.5

3

3.5

0 0.5 1 1.5 2

Rise Time (100%)

Vo

lta

ge

(V

)

Propagation time is 15% of Tr

Page 16: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Propagation Delay vs. Dielectric Constant

050

100150200250

0 1 2 3 4 5 6 7 8 9

Dielectric constant

Tp

d (

ps/

inch

)

Page 17: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Critical Microstrip Length

• Tr x 15% = 1.6ns x 15% = 226 ps

• = 1.5 inch

Page 18: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Transmission Line Model

Zo = V (Z)

I (Z) = sqrt (

L

C )

Page 19: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Characteristic Impedance of Twisted Pair Cable & Microstrip

Page 20: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Reflection Factor

If Z L >> Zo; Г = +1

If Z L << Zo; Г = -1

Zo

Z L

= ZL - Zo

ZL + Zo

Г

Page 21: Link A/D converters and  Microcontrollers using  Long Transmission Lines

S Parameters for Reflection

S11=b1

a1

S21=b2

a1

S22=b2

a2

S12=b1

a2

Page 22: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Reflection Analysis

Page 23: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Reflection Calculation

Load reflection factor

= 1 G - 100

1 G + 100= 1

Source reflection factor

= 20-100

20+100

= -0.8

Page 24: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Calculated vs. Measured Reflection

• Tr/7

Page 25: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Critical Length of a Transmission Line

What is the critical length of

a transmission line that must be terminated?

Page 26: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Rise Time vs. Propagation Delay

0

0.5

1

1.5

2

2.5

3

3.5

0 0.5 1 1.5 2

Rise Time (100%)

Vo

lta

ge

(V

)

Propagation time is 50% of Tr

Page 27: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Trace & Cable Terminations

• Source Termination

Rt + Rs = Zo

ReceiverRt

Zo = 50 Driver

Rs

Page 28: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Trace & Cable Terminations

• AC termination

AC Termination

Page 29: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Place of Terminations

Clock SourceClock Bus

Termination Resistor

Device 1 Device 2

Stub

Daisy Chain Routing with Stubs

Device PinBGA Ball

Page 30: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Short stubs create signal integrity problems

Stub Length=0.5”

Stub Length=0.25”

Reference: Altera

application note 224

Page 31: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Daisy Chain Routing without Stubs

Clock SourceClock Bus

Termination Resistor

Device PinBGA Ball

Device 1 Device 2

Page 32: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Star Routing

Clock Source

Termination Resistor

Device 1

Device 2

Clock Bus

Device PinBGA Ball

Device 3

Page 33: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Parallel Fly-By Termination

Receiver Device

(BGA Package)

R2

Zo = 50

Vcc

R1

Page 34: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Differential Pair (LVDS) Fly-By Termination

Receiver Device

(BGA Package)

100

Zo=50

Zo=50

Page 35: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Crosstalk Analysis

• Cross Talk occurs on PCB and twisted wire cable

Page 36: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Magnetic & Electric Fields of Parallel Transmission Line

VictimTrace

Aggressor Trace

Ground Plane

Magnetic Field

Aggressor Trace

VictimTrace

Electric Field

Ground Plane

Page 37: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Cross Talk Analysis

Page 38: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Cross Talk Analysis

Page 39: Link A/D converters and  Microcontrollers using  Long Transmission Lines

FEXT Measurement

Inductive or

Capacitive Coupling

?

Page 40: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Reduced FEXT Measurement

Page 41: Link A/D converters and  Microcontrollers using  Long Transmission Lines

NEXT Measurement

Page 42: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Reduced NEXT Measurement

Page 43: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Separated Data Wire

Page 44: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Cross Talk Reduced by Termination

X-

talk

Page 45: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Final Termination Solution

+ +

U3 BUF634

+ +

U1 BUF634

+ + U2 BUF634+ +

U4 BUF634

++

U5 BUF634

++U6 BUF634

R1 100

R2 100

R3 100

R4 100

R5 100

R6 100

C1 220p

C2 220p

C3 220p

ADS 8326

CLOCK

CS

CS

MSP 430

DATA

3 feet (1 meter) twisted pair cable

3 feet (1 meter) twisted pair cable

3 feet (1 meter) twisted pair cable

CLOCK

DATA

Page 46: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Conclusions

• The highest frequency signal is determined by switching time

• Transmission line model must be used when propagation delay time is greater than 15% of Tr

• Termination technique dramatically reduces reflection and crosstalk

Q&A

Page 47: Link A/D converters and  Microcontrollers using  Long Transmission Lines

Acknowledgement

Thanks Phil Lizzi for providing the “real life” transmission line application example

Reference:

1. “Managing Signal Quality” Mentor Graphics/Xilinx, 2005 http://www.xilinx.com/publications/xcellonline/xcell_53/xc_pdf/xc_mentor53.pdf

2. “High-Speed Board Layout Guideline” Altera application note 224, Sept. 2003