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AM402 датащи(PDF) 4 Page - Analog Microelectronics GmbH

номер детали AM402
подробное описание детали  CURRENT CONVERTER IC
PDF  8 Pages
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производитель  ANALOGMICRO [Analog Microelectronics GmbH]
домашняя страница  https://www.analog-micro.com
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AM402 датащи(HTML) 4 Page - Analog Microelectronics GmbH

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CURRENT CONVERTER IC
AM402
analog microelectronics
April 99
4/8
FUNCTIONAL DIAGRAMS
FUNCTIONAL DESCRIPTION
AM402 is a monolithically integrated current converter which has been specially developed for the proc-
essing of differential bridge signals. By varying a few external components, the output current can be set to
various values within a wide range. Only an external output transistor T1 and a diode D1 are needed (See
Figure 7 and Figure 8) in addition to the resistors R0 – R5 and the capacitor C1 (C2). The external transistor
decreases the power dissipation of the IC and the diode protects the transistor against reverse polarity. The
maximum power dissipation of the components must be taken into consideration when selecting the transis-
tor and diode. Typical values for the external components are given in the following Description of Appli-
cations.
AM402 can principally be used in the implementation of two- and three-wire systems for industrial applica-
tions. A schematic diagram illustrates a three-wire system in Figure 2. Here, the differential input voltage
(VIN) is shown as a variable resistor. The external reference point Ground is identical to the ground of the IC
(GND) and the supply voltage of the IC matches that of the system: VCC = VS. In two-wire configurations,
however (Figure 3), the ground of the IC (GND) is connected between resistors R5 and RL. In this instance,
the supply voltage of the IC (VCC) is dependent on the supply voltage of the system (VS ) and the value of the
load resistor (RL). It can be calculated using the equation:
V
I
IA
3
−Wire System
Ground
V
S
I
OUT
R
L
V
IN
Reference Voltage
R
IN
R
A
R
B
Figure 2
V
I
IA
2
−Wire System
V
S
I
OUT
R
L
Reference Voltage
Ground
V
IN
R
IN
R
A
R
B
Figure 3



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