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AD515

更新时间: 2024-01-28 11:05:15
品牌 Logo 应用领域
亚德诺 - ADI 运算放大器
页数 文件大小 规格书
6页 208K
描述
Monolithic Precision, Low Power FET-Input Electrometer Op Amp

AD515 技术参数

是否无铅: 含铅是否Rohs认证: 不符合
生命周期:Obsolete零件包装代码:TO-99
包装说明:, CAN8,.2针数:8
Reach Compliance Code:not_compliantECCN代码:EAR99
HTS代码:8542.33.00.01风险等级:5.79
放大器类型:OPERATIONAL AMPLIFIER架构:VOLTAGE-FEEDBACK
25C 时的最大偏置电流 (IIB):7.5e-8 µA频率补偿:YES
最大输入失调电压:1000 µVJESD-30 代码:O-MBCY-W8
低-偏置:YES低-失调:NO
标称负供电电压 (Vsup):-15 V功能数量:1
端子数量:8最高工作温度:70 °C
最低工作温度:封装主体材料:METAL
封装等效代码:CAN8,.2封装形状:ROUND
封装形式:CYLINDRICAL电源:+-15 V
认证状态:Not Qualified最小摆率:0.3 V/us
子类别:Operational Amplifiers最大压摆率:1.5 mA
供电电压上限:18 V标称供电电压 (Vsup):15 V
温度等级:COMMERCIAL端子形式:WIRE
端子位置:BOTTOM标称均一增益带宽:350 kHz
最小电压增益:25000Base Number Matches:1

AD515 数据手册

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AD515A  
LAYOUT AND CONNECTIONS CONSIDERATIONS  
The design of very high impedance measurement systems in-  
troduces a new level of problems associated with the reduction  
of leakage paths and noise pickup.  
circuit; to minimize noise and leakage, they must be carried  
in rigid, shielded cables.  
4. Another important concern for achieving and maintaining  
low leakage currents is complete cleanliness of circuit boards  
and components. Completed assemblies should be washed  
thoroughly in a low residue solvent such as TMC Freon or  
high purity methanol, followed by a rinse with deionized  
water and nitrogen drying. If service is anticipated in a high  
contaminant or high humidity environment, a high dielectric  
conformal coating is recommended. All insulation materials  
except Kel-F or teflon will show rapid degradation of surface  
leakage at high humidities.  
1. A primary consideration in high impedance system designs is  
to attempt to place the measuring device as near to the signal  
source as possible. This will minimize current leakage paths,  
noise pickup and capacitive loading. The AD515A, with its  
combination of low offset voltage (normally eliminating the  
need for trimming), low quiescent current (minimal source  
heating, possible battery operation), internal compensation  
and small physical size lends itself to installation at the signal  
source or inside a probe. As a result of the high load capaci-  
tance rating, the AD515A can comfortably drive a long  
signal cable.  
2. The use of guarding techniques is essential to realizing the  
capability of the ultralow input currents of the AD515A.  
Guarding is achieved by applying a low impedance bootstrap  
potential to the outside of the insulation material surround-  
ing the high impedance signal line. This bootstrap potential  
is held at the same level as that of the high impedance line;  
therefore, there is no voltage drop across the insulation and,  
hence, no leakage. The guard will also act as a shield to  
reduce noise pickup and serves an additional function of  
reducing the effective capacitance to the input line. The case  
of the AD515A is brought out separately to Pin 8 so it can  
also be connected to the guard potential. This technique  
virtually eliminates potential leakage paths across the package  
insulation, provides a noise shield for the sensitive circuitry  
and reduces common-mode input capacitance to about 0.8  
pF. Figure 1 shows a proper printed circuit board layout for  
input guarding and connecting the case guard. Figures 2 and  
3 show guarding connections for typical inverting and  
noninverting applications. If Pin 8 is not used for guarding, it  
should be connected to ground or a power supply to reduce  
noise.  
Figure 2. Picoampere Current-to-Voltage Converter  
Inverting Configuration  
Figure 3. Very High Impedance Noninverting Amplifier  
INPUT PROTECTION  
The AD515A is guaranteed for a maximum safe input potential  
equal to the power supply potential.  
Many instrumentation situations, such as flame detectors in gas  
chromatographs, involve measurement of low level currents  
from high voltage sources. In such applications, a sensor fault  
condition may apply a very high potential to the input of the  
current-to-voltage converting amplifier. This possibility necessi-  
tates some form of input protection. Many electrometer type  
devices, especially CMOS designs, can require elaborate Zener  
protection schemes that often compromise overall performance.  
The AD515A requires input protection only if the source is not  
current limited and, as such, is similar to many JFET-input  
designs. The failure mode would be overheating from excess  
current rather than voltage breakdown. If the source is not  
current limited, all that is required is a resistor in series with the  
affected input terminal so that the maximum overload current is  
0.1 mA (for example, 1 Mfor a 100 V overload). This simple  
scheme will cause no significant reduction in performance and  
give complete overload protection. Figures 2 and 3 show proper  
connections.  
Figure 1. Board Layout for Guarding Inputs with Guarded  
TO-99 Package  
3. Printed circuit board layout and construction is critical for  
achieving the ultimate in low leakage performance that the  
AD515A can deliver. The best performance will be realized  
by using a teflon IC socket for the AD515A; at a minimum a  
teflon standoff should be used for the high impedance lead.  
If this is not feasible, the input guarding scheme shown in  
Figure 1 will minimize leakage as much as possible; the  
guard ring should be applied to both sides of the board. The  
guard ring is connected to a low impedance potential at the  
same level as the inputs. High impedance signal lines should  
not be extended for any unnecessary length on a printed  
REV. A  
–3–  

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