参数资料
型号: OP1177ARZ-REEL7
厂商: Analog Devices Inc
文件页数: 9/24页
文件大小: 0K
描述: IC OPAMP GP 1.3MHZ PREC LN 8SOIC
产品培训模块: Power Line Monitoring
Top Five Instrumentation Amplifier Problems
设计资源: Versatile High Precision Programmable Current Sources Using DACs, Op Amps, and MOSFET Transistors (CN0151)
How to Achieve High Precision Voltage Level Setting Using AD5541A/42A (CN0169)
标准包装: 1
放大器类型: 通用
电路数: 1
转换速率: 0.7 V/µs
增益带宽积: 1.3MHz
电流 - 输入偏压: 500pA
电压 - 输入偏移: 15µV
电流 - 电源: 400µA
电流 - 输出 / 通道: 10mA
电压 - 电源,单路/双路(±): 5 V ~ 36 V,±2.5 V ~ 18 V
工作温度: -40°C ~ 125°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: 标准包装
其它名称: OP1177ARZ-REEL7DKR
OP1177/OP2177/OP4177
Rev. G | Page 17 of 24
OP1177
6
7
2
3
4
V+
V–
VOUT
RS
+
400mV
CS
CL
0
26
27
-05
8
Figure 58. Snubber Network Configuration
Caution: The snubber technique cannot recover the loss of
bandwidth induced by large capacitive loads.
STRAY INPUT CAPACITANCE COMPENSATION
The effective input capacitance in an operational amplifier
circuit (Ct) consists of three components. These are the internal
differential capacitance between the input terminals, the internal
common-mode capacitance of each input to ground, and the
external capacitance including parasitic capacitance. In the
circuit in Figure 59, the closed-loop gain increases as the signal
frequency increases.
The transfer function of the circuit is
()
R1
sC
R1
R2
t
+
1
indicating a zero at
()
t
C
R2
R1
R2R1C
R1
R2
s
/
2
1
π
=
+
=
Depending on the value of R1 and R2, the cutoff frequency of
the closed-loop gain can be well below the crossover frequency.
In this case, the phase margin (ΦM) can be severely degraded,
resulting in excessive ringing or even oscillation.
A simple way to overcome this problem is to insert a capacitor
in the feedback path, as shown in Figure 60.
The resulting pole can be positioned to adjust the phase margin.
Setting Cf = (R1/R2) Ct achieves a phase margin of 90°.
R2
R1
V1
+
OP1177
2
3
VOUT
Ct
02
62
7-
0
59
6
7
4
V+
V–
Figure 59. Stray Input Capacitance
R2
R1
V1
+
OP1177
2
3
VOUT
Ct
Cf
02
62
7-
0
60
6
7
4
V+
V–
Figure 60. Compensation Using Feedback Capacitor
REDUCING ELECTROMAGNETIC INTERFERENCE
A number of methods can be utilized to reduce the effects of
EMI on amplifier circuits.
In one method, stray signals on either input are coupled to the
opposite input of the amplifier. The result is that the signal is
rejected according to the CMRR of the amplifier.
This is usually achieved by inserting a capacitor between the inputs
of the amplifier, as shown in Figure 61. However, this method can
also cause instability, depending on the value of capacitance.
R2
R1
V1
+
OP1177
2
3
VOUT
C
02
627
-06
1
6
7
4
V+
V–
Figure 61. EMI Reduction
Placing a resistor in series with the capacitor (see Figure 62)
increases the dc loop gain and reduces the output error. Positioning
the breakpoint (introduced by R-C) below the secondary pole of
the operational amplifier improves the phase margin and,
therefore, stability.
R can be chosen independently of C for a specific phase margin
according to the formula
()
+
=
R1
R2
jf
a
R2
R
2
1
where:
a is the open-loop gain of the amplifier.
f2 is the frequency at which the phase of a = ΦM 180°.
OP1177
2
3
R
C
R1
R2
VOUT
V1
+
02
62
7-
06
2
6
7
4
V+
V–
Figure 62. Compensation Using Input R-C Network
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