A6130

Features: ` Highly accurate 5 V, 100 mA guaranteed output`Low dropout voltage, typically 380 mV at 100 mA`Low quiescent current, typically 155 A`Standby mode, maximum current 340 A (with 100 A load on OUTPUT)`Unregulated DC input can withstand -20 V reverse battery and +60 V power transients`Fully...

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A6130 Picture
SeekIC No. : 004260441 Detail

A6130: Features: ` Highly accurate 5 V, 100 mA guaranteed output`Low dropout voltage, typically 380 mV at 100 mA`Low quiescent current, typically 155 A`Standby mode, maximum current 340 A (with 100 A load ...

floor Price/Ceiling Price

Part Number:
A6130
Supply Ability:
5000

Price Break

  • Qty
  • 1~5000
  • Unit Price
  • Negotiable
  • Processing time
  • 15 Days
Total Cost: $ 0.00

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Upload time: 2024/4/28

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Product Details

Description



Features:

` Highly accurate 5 V, 100 mA guaranteed output
`Low dropout voltage, typically 380 mV at 100 mA
`Low quiescent current, typically 155 A
`Standby mode, maximum current 340 A (with 100 A load on OUTPUT)
`Unregulated DC input can withstand -20 V reverse battery and +60 V power transients
`Fully operational for unregulated DC input voltage up to 26 V and regulated output voltage down to 3.0 V
`Reset output guaranteed for regulated output voltage down to 1.2 V
`No reverse output current
`Very low temperature coefficient for the regulated output
`Current limiting
`Comparator for voltage monitoring, voltage reference 1.17V
`±2.2% voltage reference accuracy at +25°C
`±4.2% voltage reference accuracy from -40 to +85°C
`Programmable reset voltage monitoring
`Programmable power on reset (POR) delay
`Watchdog with programmable time windows guarantees a minimum time and a maximum time between software clearing of the watchdog
`Time base accuracy ±10%
`System enable output offers added security
`TTL/CMOS compatible
`-40 to +85°C temperature range
`DIP8 and SO8 packages




Application

·Industrial electronics
·Cellular telephones
·Security systems
·Battery powered products
·High efficiency linear power supplies
·Automotive electronics



Pinout

  Connection Diagram


Specifications

Parameter Symbol Conditions
Continuous voltage at INPUT
to VSS
VINPUT -0.3 to + 30 V
Transients on INPUT for
t < 100 ms and duty cycle 1%
VTRANS up to + 60 V
Reverse supply voltage on INPUT VREV - 20 V
Max. voltage at any signal pin VMAX OUTPUT + 0.3 V
Min. voltage at any signal pin VMIN VSS 0.3 V
Storage temperature TSTO -65 to + 150 °C
Electrostatic discharge max. to    
MIL-STD-883C method 3015 VSmax 1000 V
Max. soldering conditions TSmax 250 °C x 10 s

Stresses above these listed maximum ratings may cause permanent damage to the device. Exposure beyondspecified operating conditions may affect device reliabilityor cause malfunction.




Description

The A6130 offers a high level of integration by combining voltage regulation, voltage monitoring and software monitoring in an 8 lead package. The voltage regulator has a low dropout voltage (typ. 380 mV at 100 mA) and a low quiescent current (155 A). The quiescent current increases only slightly in dropout prolonging battery life. Built-in protection includes a positive transient absorber for up to 60 V (load dump) and the ability to survive an unregulated input voltage of -20 V (reverse battery). The input may be connected to ground or a reverse voltage without reverse current flow from the output to the input. A comparator monitors the voltage applied at the VIN input comparing it with an internal 1.17 V reference. The power-on reset function is initialized after VIN reaches 1.17 V and takes the reset output inactive after TPOR depending of external resistance. The reset output goes active low when the VIN voltage is less than 1.17 V. The RES and EN outputs are guaranteed to be in a correct state for a regulated regulated output voltage as low as 1.2 V. The watchdog function monitors software cycle time and execution. If software clears the watchdog too quickly (incorrect cycle time) or too slowly (incorrect execution) it will cause the system to be reset. The system enable output prevents critical control functions being activated until software has successfully cleared the watchdog three times. Such a security could be used to prevent motor controls being energized on repeated resets of a faulty system.




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