欧美成人免费电影,国产欧美一区二区三区精品酒店,精品国产a毛片,色网在线免费观看

參數資料
型號: AD8551AR-REEL7
廠商: ANALOG DEVICES INC
元件分類: 運動控制電子
英文描述: Zero-Drift, Single-Supply, Rail-to-Rail Input/Output Operational Amplifiers
中文描述: OP-AMP, 10 uV OFFSET-MAX, 1.5 MHz BAND WIDTH, PDSO8
封裝: MS-012AA, SOIC-8
文件頁數: 15/24頁
文件大小: 416K
代理商: AD8551AR-REEL7
AD8551/AD8552/AD8554
Rev. C | Page 15 of 24
+
A
B
B
B
C
M2
V
IN+
V
NB
C
M1
V
OA
–B
A
V
NA
Ф
B
Ф
A
A
A
V
OSA
Ф
B
Ф
A
V
OUT
V
IN–
0
Figure 50. Auto-Zero Phase of the AD855x
Amplification Phase
When the φB switches close and the φA switches open for the
amplification phase, this offset voltage remains on C
M1
and,
essentially, corrects any error from the nulling amplifier. The
voltage across C
M1
is designated as V
NA
. Furthermore, V
IN
is
designated as the potential difference between the two inputs to
the primary amplifier, or V
IN
= (V
IN+
V
IN
). Thus, the nulling
amplifier can be expressed as
[ ]
[ ]
(
t
V
V
A
t
V
OSA
IN
A
OA
]
[
)
[ ]
t
V
B
NA
A
=
(3)
+
A
B
B
B
C
M2
V
IN+
V
NB
C
M1
V
OA
–B
A
V
NA
Ф
B
Ф
A
A
A
V
OSA
Ф
B
Ф
A
V
OUT
V
IN–
0
Figure 51. Output Phase of the Amplifier
Because φA is now open and there is no place for C
M1
to
discharge, the voltage (V
NA
), at the present time (t), is equal to
the voltage at the output of the nulling amp (V
OA
) at the time
when φA was closed. If the period of the autocorrection switching
frequency is labeled t
S
, then the amplifier switches between
phases every 0.5 × t
S
. Therefore, in the amplification phase
[ ]
t
=
S
NA
NA
t
V
V
2
1
(4)
Substituting Equation 4 and Equation 2 into Equation 3 yields
[ ]
[ ]
[ ]
t
A
S
OSA
A
A
OSA
A
IN
A
OA
B
t
V
B
A
V
A
V
A
V
+
+
=
1
2
1
(5)
For the sake of simplification, assume that the autocorrection
frequency is much faster than any potential change in V
OSA
or
V
OSB
. This is a valid assumption because changes in offset
voltage are a function of temperature variation or long-term
wear time, both of which are much slower than the auto-zero
clock frequency of the AD855x. This effectively renders V
time invariant; therefore, Equation 5 can be rearranged and
rewritten as
[ ]
t
[ ]
t
(
)
A
OSA
A
A
OSA
+
A
A
IN
A
OA
B
V
B
A
V
1
B
A
V
A
V
+
+
=
1
(6)
or
[ ]
t
[ ]
t
+
+
=
A
OSA
B
IN
A
OA
V
1
V
A
V
(7)
From these equations, the auto-zeroing action becomes evident.
Note the V
OS
term is reduced by a 1 + B
A
factor. This shows how
the nulling amplifier has greatly reduced its own offset voltage
error even before correcting the primary amplifier. This results
in the primary amplifier output voltage becoming the voltage at
the output of the AD855x amplifier. It is equal to
[ ]
[ ]
(
)
OSB
IN
B
OUT
V
V
A
V
NB
B
V
B
+
+
=
(8)
In the amplification phase, V
OA
= V
NB
, so this can be rewritten as
[ ]
t
[ ]
t
[ ]
t
+
+
+
+
=
A
OSB
B
IN
A
B
OSB
B
IN
B
OUT
V
V
A
B
V
A
V
A
V
1
(9)
Combining terms,
[ ]
t
[ ]
(
)
OSA
B
A
OSA
A
A
1
B
B
B
IN
OUT
V
V
A
B
V
B
+
A
B
A
A
V
+
+
+
=
(10)
The AD855x architecture is optimized in such a way that
A
A
=
A
B
and
B
A
=
B
OS
B
and
B
A
>> 1
Also, the gain product of A
A
B
B
B
is much greater than A
B
B
. These
allow Equation 10 to be simplified to
[ ]
[ ]
A
A
A
IN
OUT
A
B
A
t
V
t
V
(
)
OSB
OSA
V
V
+
+
(11)
Most obvious is the gain product of both the primary and
nulling amplifiers. This A
A
B
B
A
term is what gives the AD855x its
extremely high open-loop gain. To understand how V
OSA
and
V
OSB
B
relate to the overall effective input offset voltage of the
complete amplifier, establish the generic amplifier equation of
(
EFF
OS
IN
OUT
V
V
k
V
,
)
+
×
=
(12)
where
k
is the open-loop gain of an amplifier and
V
OS, EFF
is its
effective offset voltage.
Putting Equation 12 into the form of Equation 11 gives
[ ]
[ ]
A
A
IN
OUT
B
A
V
V
A
A
EFF
OS
B
A
V
,
+
(13)
Thus, it is evident that
A
OSB
OSA
EFF
OS
B
V
V
V
+
,
(14)
The offset voltages of both the primary and nulling amplifiers
are reduced by the Gain Factor B
A
. This takes a typical input
offset voltage from several millivolts down to an effective input
offset voltage of submicrovolts. This autocorrection scheme is
the outstanding feature of the AD855x series that continues to
相關PDF資料
PDF描述
AD8551ARZ1 Zero-Drift, Single-Supply, Rail-to-Rail Input/Output Operational Amplifiers
AD8551ARZ-REEL Zero-Drift, Single-Supply, Rail-to-Rail Input/Output Operational Amplifiers
AD8551ARZ-REEL7 Zero-Drift, Single-Supply, Rail-to-Rail Input/Output Operational Amplifiers
AD8552AR-REEL Zero-Drift, Single-Supply, Rail-to-Rail Input/Output Operational Amplifiers
AD8552AR-REEL7 Zero-Drift, Single-Supply, Rail-to-Rail Input/Output Operational Amplifiers
相關代理商/技術參數
參數描述
AD8551ARZ 功能描述:IC OPAMP CHOPPER R-R 30MA 8SOIC RoHS:是 類別:集成電路 (IC) >> Linear - Amplifiers - Instrumentation 系列:- 產品培訓模塊:Differential Circuit Design Techniques for Communication Applications 標準包裝:1 系列:- 放大器類型:RF/IF 差分 電路數:1 輸出類型:差分 轉換速率:9800 V/µs 增益帶寬積:- -3db帶寬:2.9GHz 電流 - 輸入偏壓:3µA 電壓 - 輸入偏移:- 電流 - 電源:40mA 電流 - 輸出 / 通道:- 電壓 - 電源,單路/雙路(±):3 V ~ 3.6 V 工作溫度:-40°C ~ 85°C 安裝類型:表面貼裝 封裝/外殼:16-VQFN 裸露焊盤,CSP 供應商設備封裝:16-LFCSP-VQ 包裝:剪切帶 (CT) 產品目錄頁面:551 (CN2011-ZH PDF) 其它名稱:ADL5561ACPZ-R7CT
AD8551ARZ 制造商:Analog Devices 功能描述:IC OP-AMP 1.5MHZ 0.4V/S SOIC-8
AD8551ARZ1 制造商:AD 制造商全稱:Analog Devices 功能描述:Zero-Drift, Single-Supply, Rail-to-Rail Input/Output Operational Amplifiers
AD8551ARZ-REEL 功能描述:IC OPAMP CHOPPER R-R 30MA 8SOIC RoHS:是 類別:集成電路 (IC) >> Linear - Amplifiers - Instrumentation 系列:- 標準包裝:2,500 系列:- 放大器類型:通用 電路數:1 輸出類型:滿擺幅 轉換速率:0.11 V/µs 增益帶寬積:350kHz -3db帶寬:- 電流 - 輸入偏壓:4nA 電壓 - 輸入偏移:20µV 電流 - 電源:260µA 電流 - 輸出 / 通道:20mA 電壓 - 電源,單路/雙路(±):2.7 V ~ 36 V,±1.35 V ~ 18 V 工作溫度:-40°C ~ 85°C 安裝類型:表面貼裝 封裝/外殼:8-SOIC(0.154",3.90mm 寬) 供應商設備封裝:8-SO 包裝:帶卷 (TR)
AD8551ARZ-REEL7 功能描述:IC OPAMP CHOPPER R-R 30MA 8SOIC RoHS:是 類別:集成電路 (IC) >> Linear - Amplifiers - Instrumentation 系列:- 標準包裝:2,500 系列:- 放大器類型:通用 電路數:1 輸出類型:滿擺幅 轉換速率:0.11 V/µs 增益帶寬積:350kHz -3db帶寬:- 電流 - 輸入偏壓:4nA 電壓 - 輸入偏移:20µV 電流 - 電源:260µA 電流 - 輸出 / 通道:20mA 電壓 - 電源,單路/雙路(±):2.7 V ~ 36 V,±1.35 V ~ 18 V 工作溫度:-40°C ~ 85°C 安裝類型:表面貼裝 封裝/外殼:8-SOIC(0.154",3.90mm 寬) 供應商設備封裝:8-SO 包裝:帶卷 (TR)
主站蜘蛛池模板: 洪洞县| 康平县| 曲麻莱县| 吉木萨尔县| 平谷区| 高台县| 大英县| 辉南县| 墨脱县| 隆尧县| 台北市| 通海县| 永康市| 镶黄旗| 罗江县| 黎城县| 灌阳县| 石城县| 通州区| 游戏| 常山县| 清镇市| 漠河县| 渭南市| 孟村| 封开县| 罗江县| 石柱| 西贡区| 元谋县| 延安市| 增城市| 龙陵县| 汶上县| 娱乐| 冀州市| 拜城县| 新兴县| 吉木萨尔县| 秀山| 宁海县|