数据搜索系统,热门电子元器件搜索
  Chinese  ▼
ALLDATASHEETCN.COM

X  

AD8237ARMZ-R7 数据表(PDF) 20 Page - Analog Devices

部件名 AD8237ARMZ-R7
功能描述  Micropower, Zero Drift, True Rail-to-Rail Instrumentation Amplifier
PDF  28 Pages
Scroll/Zoom Zoom In 100%  Zoom Out
制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

AD8237ARMZ-R7 数据表(HTML) 20 Page - Analog Devices

Back Button AD8237ARMZ-R7 Datasheet HTML 16Page - Analog Devices AD8237ARMZ-R7 Datasheet HTML 17Page - Analog Devices AD8237ARMZ-R7 Datasheet HTML 18Page - Analog Devices AD8237ARMZ-R7 Datasheet HTML 19Page - Analog Devices AD8237ARMZ-R7 Datasheet HTML 20Page - Analog Devices AD8237ARMZ-R7 Datasheet HTML 21Page - Analog Devices AD8237ARMZ-R7 Datasheet HTML 22Page - Analog Devices AD8237ARMZ-R7 Datasheet HTML 23Page - Analog Devices AD8237ARMZ-R7 Datasheet HTML 24Page - Analog Devices Next Button
Zoom Inzoom in Zoom Outzoom out
 20 / 28 page
background image
AD8237
Data Sheet
Rev. 0 | Page 20 of 28
THEORY OF OPERATION
+IN
–IN
gm1
I2
I1
I1 – I2
R2
R1
VOUT
FB
REF
AD8237
gm2
RFI
FILTER
TIA
+
+
RFI
FILTER
ALS
ALS
INTERNAL
IN-AMP
VCM =
VS
2
VCM =
VS
2
–IN
FB
TO gm2
TO gm1
+VS
–VS
+VS
–VS
RFI
FILTER
RFI
FILTER
+
+VS
–VS
+VS
–VS
Figure 65. Simplified Schematic
ARCHITECTURE
The AD8237 is based on an indirect current feedback topology
consisting of three amplifiers: two matched transconductance
amplifiers that convert voltage to current, and one transimpedance
amplifier, TIA, that converts current to voltage.
To understand how the AD8237 works, first consider only the
internal in-amp. Assume a positive differential voltage is applied
across the inputs of the transconductance amplifier, gm1. This input
voltage is converted into a differential current, I1, by the gm.
Initially, I2 is zero; therefore, I1 is fed into the TIA, causing the
output to increase. If there is feedback from the output of the TIA
to the negative terminal of gm2, and the positive terminal is held
constant, the increasing output of the TIA causes I2, as shown, to
increase. When it is assumed that the TIA has infinite gain, the
loop is satisfied when I2 equals I1. Because the gain of gm1 and gm2 are
matched, this means that the differential input voltage across gm1
appears across the inputs of gm2. This behavioral model is all that
is needed for proper operation of the AD8237, and the rest of the
circuit is for performance optimization.
The AD8237 employs a novel adaptive level shift (ALS) technique.
This switched capacitor method shifts the common-mode level of
the input signal to the optimal level for the in-amp while preserving
the differential signal. Once this is accomplished, additional
performance benefits can be achieved by using the internal in-amp to
compare +IN to FB and −IN to REF. This is only practical because
the signals emitting from the ALS blocks are all referred to the
same common-mode potential.
In traditional instrumentation amplifiers, the input common-
mode voltage can limit the available output swing, typically depicted
in a hexagon plot of the input common-mode vs. the output voltage.
Because of this limit, very few instrumentation amplifiers can
measure small signals near either supply rail. Using the indirect
current feedback topology and ALS, the AD8237 achieves a truly
rail-to-rail characteristic. This increases power efficiency in many
applications by allowing for power supply reduction.
The AD8237 includes an RFI filter to remove high frequency out-
of-band signals without affecting input impedance and CMRR over
frequency. Additionally, there is a bandwidth mode pin to adjust the
compensation. For gains greater than or equal to 10, the bandwidth
mode pin (BW) can be tied to +VS to change the compensation
and increase the gain bandwidth product of the amplifier to 1 MHz.
Otherwise, connect BW to −VS for a 200 kHz gain bandwidth
product.
SETTING THE GAIN
There are several ways to configure the AD8237. The transfer
function of the AD8237 in the configuration in Figure 65 is
VOUT = G(V+IN − V−IN) + VREF
where:
R1
R2
1 +
=
G
Table 7. Suggested Resistors for Various Gains (1% Resistors)
R1 (kΩ)
R2 (kΩ)
Gain
None
Short
1.00
49.9
49.9
2.00
20
80.6
5.03
10
90.9
10.09
5
95.3
20.06
2
97.6
49.8
1
100
101
1
200
201
1
499
500
1
1000
1001
Whereas the ratio of R2 to R1 sets the gain, the designer determines
the absolute value of the resistors. Larger values reduce power
consumption and output loading; smaller values limit the FB input
bias current and input impedance errors. If the parallel combination
of R1 and R2 is greater than about 30 kΩ, the resistors start to
contribute to the noise. For best output swing and linearity, keep
(R1 + R2) || RL ≥ 10 kΩ.



Html Pages

1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28


数据表 下载

Go To PDF Page


链接网址



ALLDATASHEET是否为您带来帮助?  [ DONATE ] 

关于 Alldatasheet   |   广告服务   |   联系我们   |   隐私政策   |   数据表链接    |   链接交换   |   制造商名单
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