DatasheetQ Logo
Electronic component search and free download site. Transistors,MosFET ,Diode,Integrated circuits

MAX471 Ver la hoja de datos (PDF) - Maxim Integrated

Número de pieza
componentes Descripción
Fabricante
MAX471 Datasheet PDF : 12 Pages
1 2 3 4 5 6 7 8 9 10 Next Last
Precision, High-Side
Current-Sense Amplifiers
Peak Sense Current
The MAX471’s maximum sense current is 3ARMS. For
power-up, fault conditions, or other infrequent events,
larger peak currents are allowed, provided they are
short—that is, within a safe operating region, as shown
in Figure 5.
Table 1 shows suggested component values and indi-
cates the resulting scale factors for various applications
required to sense currents from 100mA to 10A.
Higher or lower sense-current circuits can also be built.
Select components and calculate circuit errors using
the guidelines and formulas in the following section.
50
45
40
TA = +25°C
35
Small DIP
Outline
fuse
fuse
time
time
30
25
20
15
10
5
0
10µ
100µ
1m
10m
PULSE WIDTH (sec)
DIP safe
operating region
Small Outline safe
operating region
Figure 5. MAX471 Pulse Current Safe Operation for 10,000
Pulses and Fuse Time for Continuous Current. Pulse tests done
with 250mW average power dissipation.
MAX472
RSENSE, RG1, and RG2 are externally connected on
the MAX472. VCC can be connected to either the
load/charge or power-source/battery side of the sense
resistor. Connect VCC to the load/charge side of
RSENSE if you want to include the MAX472 current drain
in the measured current.
Suggested Component Values
for Various Applications
The general circuit of Figure 4 is useful in a wide variety
of applications. It can be used for high-current applica-
tions (greater than 3A), and also for those where the full-
scale load current is less than the 3A of the MAX471.
RSENSE
Choose RSENSE based on the following criteria:
a) Voltage Loss: A high RSENSE value will cause the
power-source voltage to degrade through IR loss.
For least voltage loss, use the lowest RSENSE value.
b) Accuracy: A high RSENSE value allows lower
currents to be measured more accurately. This is
because offsets become less significant when the
sense voltage is larger.
c) Efficiency and Power Dissipation: At high current
levels, the I2R losses in RSENSE may be significant.
Take this into consideration when choosing the
resistor value and power dissipation (wattage) rat-
ing. Also, if the sense resistor is allowed to heat up
excessively, its value may drift.
d) Inductance: If there is a large high-frequency com-
ponent to ISENSE, you will want to keep inductance
low. Wire-wound resistors have the highest induc-
tance, while metal film is somewhat better. Low-
inductance metal-film resistors are available. Instead
of being spiral wrapped around a core, as in metal-
film or wire-wound resistors, these are a straight
band of metal. They are made in values under 1.
e) Cost: If the cost of RSENSE becomes an issue, you
may want to use an alternative solution, as shown in
Figure 6. This solution uses the PC board traces to
create a sense resistor. Because of the inaccuracies
of the copper “resistor,” you will need to adjust the
full-scale current value with a potentiometer. Also,
the resistance temperature coefficient of copper is
fairly high (approximately 0.4%/°C), so systems that
experience a wide temperature variance should take
this into account.
Table 1. Suggested Component Values for the MAX472
FULL-SCALE
LOAD
CURRENT,
ISENSE (A)
0.1
1
5
10
CURRENT-
SENSE
RESISTOR,
RSENSE
(m)
500
50
10
5
GAIN-SETTING
RESISTORS,
RG1 = RG2
()
200
200
100
50
OUTPUT
RESISTOR,
ROUT
(k)
10
10
5
2
FULL-SCALE
OUTPUT
VOLTAGE,
VOUT (V)
2.5
2.5
2.5
2
SCALE
FACTOR,
VOUT/ISENSE
(V/A)
25
2.5
0.5
0.2
TYPICAL ERROR AT X%
OF FULL LOAD (%)
1%
10%
100%
14
2.5
0.9
14
2.5
0.9
13
2.0
1.1
12
2.0
1.6
_______________________________________________________________________________________ 9

Share Link: 

datasheetq.com  [ Privacy Policy ]Request Datasheet ] [ Contact Us ]