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AH49F 데이터 시트보기 (PDF) - Diodes Incorporated.

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AH49F
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Diodes Incorporated. Diodes
AH49F Datasheet PDF : 12 Pages
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AH49F
Transferring Characteristics (@VCC = 5V)
When there is no external magnetic field (B=0Gauss), the quiescent output voltage is one-half the supply voltage in general.
For TO-92S and U-DFN2020-6 packages, if a South magnetic pole approaches the part marking surface (the side with part marking ID) of the Hall
effect sensor, the circuit will drive the output voltage higher. In contrary, a North magnetic pole will drive the output voltage lower. The variations of
voltage level up or down from the quiescent output voltage (the null voltage) are symmetrical and is proportional to the magnetic flux density. In
the SC59 the die is placed underneath the lead frame and therefore when a magnet pole approaches the SC59 part marking surface, the direction
of the magnetic field in to the die is reversed compared to TO-92S. This results in a reverse response to the magnetic flux density in SC59
package compared with TO-92S and U-DFN2020-6 packages. (i.e. if the reverse magnetic pole approaches the part marking surface of SC59, the
output is the same as TO-92S package.) The largest magnetic sensitivity is obtained with a supply voltage of 8V, but at the cost of increased
supply current and a slight loss of output symmetry. So, it is not recommended to work in such condition unless the output voltage magnitude is a
main issue. The output signal can be capacitively coupled to a next-level amplifier for further amplifying if the changing frequency of the magnetic
field is high.
V
4.0V
Typical
Output
Voltage
2.5V
-800 -400
1.0V
0
400
B (Gauss)
800
Transfer Characteristic
South Pole
North Pole
Magnetic Characteristic (For TO-92S)
Magnetic Characteristic (For SC59)
Magnetic Characteristic (For U-DFN2020-6)
AH49F
Document number: DS36518 Rev. 2 - 2
4 of 12
www.diodes.com
June 2014
© Diodes Incorporated

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