Electronic Components Datasheet Search
  English  ▼
ALLDATASHEET.NET

X  

LMK02000 Datasheet(PDF) 3 Page - Texas Instruments

Click here to check the latest version.
Part # LMK02000
Description  selecting amplifiers, adcs, and clocks for high-performance signal paths
Download  14 Pages
Scroll/Zoom Zoom In 100%  Zoom Out
Manufacturer  TI1 [Texas Instruments]
Direct Link  http://www.ti.com
Logo TI1 - Texas Instruments

LMK02000 Datasheet(HTML) 3 Page - Texas Instruments

  LMK02000 Datasheet HTML 1Page - Texas Instruments LMK02000 Datasheet HTML 2Page - Texas Instruments LMK02000 Datasheet HTML 3Page - Texas Instruments LMK02000 Datasheet HTML 4Page - Texas Instruments LMK02000 Datasheet HTML 5Page - Texas Instruments LMK02000 Datasheet HTML 6Page - Texas Instruments LMK02000 Datasheet HTML 7Page - Texas Instruments LMK02000 Datasheet HTML 8Page - Texas Instruments LMK02000 Datasheet HTML 9Page - Texas Instruments Next Button
Zoom Inzoom in Zoom Outzoom out
 3 / 14 page
background image
2
SIGNAL PATH
designer
Selecting Amplifiers, ADCs, and Clocks for High-Performance Signal Paths
Ignoring the filter, the noise of the overall cascaded
path shown is given by Frii’s equation:
Where FLNA = noise factor of LNA
FDRIVER = noise factor of driver stage
FADC = noise factor of ADC
GLNA = Gain of LNA
GDRIVER = Gain of driver stage
The noise of the ADC driver is divided by the gain
of the LNA and consequently, it is best to select the
lowest-noise LNA available and take as much gain
as possible at this first stage. Since the noise of the
driver is divided by the LNA gain, it becomes less
critical to the overall noise performance. In fact, the
further along the signal path, the less critical the
noise performance of each stage becomes.
The building block after the LNA is the ADC-driver
stage. In a system that responds down to signals at
0 Hz, a DC-coupled amplifier is the only choice,
while in an AC-coupled system, a transformer can
also be used. However, transformers are limited in
their frequency range of operation and can have poor
differential output balance, which is important when
driving
differential-input
ADCs.
When providing gain, transformers
also multiply the source impedance
driving the ADC by the transformer
turns ratio squared. This reduces
the pole frequency formed with the
ADC-input
capacitance,
thereby
reducing system bandwidth. Even
though amplifiers can add more
noise than a transformer, they have
better gain flatness and can provide
a range of desired gains by setting
external resistors. The gain of a trans-
former is limited by achievable turns
ratios. Amplifiers have lower output
impedance which is not significantly
affected by the choice of gain.
The signal path between each stage may be single-
ended or differential, depending on the initial
signal source. For a source with a single-ended
output, a “single-to-diff stage” can be used to create
differential-drive signals. Differential signal paths
are higher performance, but the drawbacks include
an increase in the number of components, board
area, cost, and complexity of the filter.
Types of Data Acquisition Systems
Sampled-data systems can be split into two main
types. The simplest is the baseband system also
known as the “1st-Nyquist-zone” system. The second
is the more complex under-sampled system, often
referred to as bandpass, narrow band, sub-sampled, or
Intermediate
Frequency
(IF)-sampled
system.
Baseband-system signal paths are generally DC-
coupled while IF-bandpass signal paths tend to be
AC-coupled. In a conventional 1st-Nyquist-zone
system, the ADC samples the input at sample rate,
fS, which is at least twice the highest signal frequency,
fH, present at the ADC input (Figure 2a).
To avoid aliasing of input frequencies above fS/2
back down into the 1st Nyquist zone as shown in
Figure 2b, the ADC input is normally band-limited
to the 1st Nyquist zone by a low-pass channel filter.
Frequency
fs
fs/2
3f s/2
2f s
1st Nyquist Zone
2nd Nyquist Zone
3rd Nyquist Zone
4th Nyquist Zone
Input
Signal
Input
Image
Input
Image
Input
Image
Input
Image
5th Nyquist Zone
fH
Wanted signal
band
ADC Dynamic
Range
fs
fs/2
3f s/2
2f s
1st Nyquist Zone
2nd Nyquist Zone
3rd Nyquist Zone
4th Nyquist Zone
Frequency
Input
Signal
Input
Image
Input
Image
5th Nyquist Zone
Input Signal ‘Aliased’
by Spur Image
Unwanted Input
Signal Spur
Input
Image
Input
Image
Spur
Image
Spur
Image
Spur
Image
Wanted signal
band
ADC Dynamic
Range
fH
FCASCADE
FLNA
FDRIVER - 1
GLNA
FADC - 1
GLNA x GDRIVER
+
=
+
Figure 2a. 1st Nyquist baseband sampling where (fs>2fH)
Figure 2b. 1st Nyquist sampling with no ADC input filter showing input
spur >fs/2 aliasing back into 1st Nyquist zone to interfere with input< fs/2
SignalPathDesigner.indd 2
SignalPathDesigner.indd 2
9/5/07 3:24:30 PM
9/5/07 3:24:30 PM


Similar Part No. - LMK02000

ManufacturerPart #DatasheetDescription
logo
National Semiconductor ...
LMK02000 NSC-LMK02000 Datasheet
444Kb / 20P
   Precision Clock Conditioner with Integrated PLL
logo
Texas Instruments
LMK02000 TI1-LMK02000 Datasheet
814Kb / 24P
[Old version datasheet]   Precision Clock Conditioner
logo
National Semiconductor ...
LMK02000ISQ NSC-LMK02000ISQ Datasheet
444Kb / 20P
   Precision Clock Conditioner with Integrated PLL
logo
Texas Instruments
LMK02000ISQ/NOPB TI1-LMK02000ISQ/NOPB Datasheet
814Kb / 24P
[Old version datasheet]   Precision Clock Conditioner
logo
National Semiconductor ...
LMK02000ISQX NSC-LMK02000ISQX Datasheet
444Kb / 20P
   Precision Clock Conditioner with Integrated PLL
More results

Similar Description - LMK02000

ManufacturerPart #DatasheetDescription
logo
Maxim Integrated Produc...
DS3104DK MAXIM-DS3104DK Datasheet
1Mb / 35P
   Careful Layout for Analog Signal Paths
Rev: 112007
DS3106DK MAXIM-DS3106DK Datasheet
1Mb / 32P
   Careful Layout for Analog Signal Paths
Rev: 012208
logo
Analog Devices
CN-0109 AD-CN-0109 Datasheet
121Kb / 3P
   Low Jitter Sampling Clock Generator for High Performance ADCs
REV. 0
ADSP-21060 AD-ADSP-21060 Datasheet
811Kb / 64P
   High performance signal processor for communications graphics and imaging applications
Rev. F
logo
Texas Instruments
LM107 TI-LM107 Datasheet
54Kb / 4P
[Old version datasheet]   HIGH-PERFORMANCE OPERATIONAL AMPLIFIERS
logo
Motorola, Inc
MC1748 MOTOROLA-MC1748 Datasheet
842Kb / 4P
   HIGH PERFORMANCE OPERATIONAL AMPLIFIERS
logo
ON Semiconductor
MC33272A ONSEMI-MC33272A Datasheet
287Kb / 12P
   HIGH PERFORMANCE OPERATIONAL AMPLIFIERS
1996 REV 0
MC33282 ONSEMI-MC33282 Datasheet
248Kb / 12P
   HIGH PERFORMANCE OPERATIONAL AMPLIFIERS
REV 0
logo
Burr-Brown (TI)
OPA134 BURR-BROWN-OPA134_08 Datasheet
432Kb / 14P
   High Performance AUDIO OPERATIONAL AMPLIFIERS
logo
Analog Devices
AD547 AD-AD547_15 Datasheet
382Kb / 12P
   High Performance, BiFET Operational Amplifiers
REV. B
More results


Html Pages

1 2 3 4 5 6 7 8 9 10 11 12 13 14


Datasheet Download

Go To PDF Page


Link URL




Privacy Policy
ALLDATASHEET.NET
Does ALLDATASHEET help your business so far?  [ DONATE ] 

About Alldatasheet   |   Advertisement   |   Contact us   |   Privacy Policy   |   Link Exchange   |   Manufacturer List
All Rights Reserved©Alldatasheet.com


Mirror Sites
English : Alldatasheet.com  |   English : Alldatasheet.net  |   Chinese : Alldatasheetcn.com  |   German : Alldatasheetde.com  |   Japanese : Alldatasheet.jp
Russian : Alldatasheetru.com  |   Korean : Alldatasheet.co.kr  |   Spanish : Alldatasheet.es  |   French : Alldatasheet.fr  |   Italian : Alldatasheetit.com
Portuguese : Alldatasheetpt.com  |   Polish : Alldatasheet.pl  |   Vietnamese : Alldatasheet.vn
Indian : Alldatasheet.in  |   Mexican : Alldatasheet.com.mx  |   British : Alldatasheet.co.uk  |   New Zealand : Alldatasheet.co.nz
Family Site : ic2ic.com  |   icmetro.com