参数资料
型号: AD627BRZ
厂商: Analog Devices Inc
文件页数: 13/25页
文件大小: 0K
描述: IC AMP INST R-R 25MA 8SOIC
产品培训模块: Power Line Monitoring
Instrumentation Amplifiers Performance
标准包装: 98
放大器类型: 仪表
电路数: 1
输出类型: 满摆幅
转换速率: 0.06 V/µs
-3db带宽: 80kHz
电流 - 输入偏压: 2nA
电压 - 输入偏移: 25µV
电流 - 电源: 60µA
电流 - 输出 / 通道: 25mA
电压 - 电源,单路/双路(±): 2.2 V ~ 36 V,±1.1 V ~ 18 V
工作温度: -40°C ~ 85°C
安装类型: 表面贴装
封装/外壳: 8-SOIC(0.154",3.90mm 宽)
供应商设备封装: 8-SO
包装: 管件
产品目录页面: 771 (CN2011-ZH PDF)
Data Sheet
AD627
Rev. E | Page 19 of 24
ERRORS DUE TO AC CMRR
In Table 9, the error due to common-mode rejection results
from the common-mode voltage from the bridge 2.5 V. The
ac error due to less than ideal common-mode rejection cannot
be calculated without knowing the size of the ac common-mode
voltage (usually interference from 50 Hz/60 Hz mains frequencies).
A mismatch of 0.1% between the four gain setting resistors
determines the low frequency CMRR of a two-op-amp
instrumentation amplifier. The plot in Figure 43 shows the
practical results of resistor mismatch at ambient temperature.
The CMRR of the circuit in Figure 42 (Gain = +11) was
measured using four resistors with a mismatch of nearly 0.1%
(R1 = 9999.5 , R2 = 999.76 , R3 = 1000.2 , R4 = 9997.7 ).
As expected, the CMRR at dc was measured at about 84 dB
(calculated value is 85 dB). However, as frequency increases,
CMRR quickly degrades. For example, a 200 mV p-p harmonic
of the mains frequency at 180 Hz would result in an output
voltage of about 800 V. To put this in context, a 12-bit data
acquisition system, with an input range of 0 V to 2.5 V, has an
LSB weighting of 610 V.
By contrast, the AD627 uses precision laser trimming of internal
resistors, along with patented CMR trimming, to yield a higher
dc CMRR and a wider bandwidth over which the CMRR is flat
VOUT
+5V
VIN–
VIN+
–5V
R1
9999.5
R2
999.76
R3
1000.2
R4
9997.7
1/2
OP296
A1
A2
1/2
OP296
00782-
040
Figure 42. 0.1% Resistor Mismatch Example
FREQUENCY (Hz)
CM
RR
(
d
B)
120
1
110
100
90
80
70
60
50
40
30
20
10
100
1k
10k
100k
00782-
041
Figure 43. CMRR over Frequency of Discrete In-Amp in Figure 42
GROUND RETURNS FOR INPUT BIAS CURRENTS
Input bias currents are dc currents that must flow to bias the
input transistors of an amplifier. They are usually transistor base
currents. When amplifying floating input sources, such as
transformers or ac-coupled sources, there must be a direct dc
path into each input so that the bias current can flow. Figure 44,
Figure 45, and Figure 46 show how to provide a bias current
path for the cases of, respectively, transformer coupling, a
thermocouple application, and capacitive ac-coupling.
In dc-coupled resistive bridge applications, providing this path
is generally not necessary because the bias current simply flows
from the bridge supply through the bridge and into the amplifier.
However, if the impedance that the two inputs see are large, and
differ by a large amount (>10 k), the offset current of the input
stage causes dc errors compatible with the input offset voltage of
the amplifier.
VOUT
TO POWER
SUPPLY
GROUND
RG
–VS
+VS
AD627
7
4
5
8
3
6
1
2
REFERENCE
+INPUT
–INPUT
LOAD
00782-
042
Figure 44. Ground Returns for Bias Currents with Transformer Coupled Inputs
VOUT
TO POWER
SUPPLY
GROUND
RG
–VS
+VS
AD627
7
4
5
8
3
6
1
2
REFERENCE
+INPUT
–INPUT
LOAD
00782-
043
Figure 45. Ground Returns for Bias Currents with Thermocouple Inputs
VOUT
TO POWER
SUPPLY
GROUND
RG
–VS
+VS
AD627
7
4
5
8
3
6
1
2
REFERENCE
+INPUT
–INPUT
100k
LOAD
00782-
044
Figure 46. Ground Returns for Bias Currents with AC-Coupled Inputs
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