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LT1374HVCS8

厂商:
Linear
类别:
开关稳压器
包装:
-
封装:
SO
无铅情况/ROHS:
-
描述:
4.5A, 500kHz Step-Down Switching ...

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  • 参数
  • 描述
  • 文档
参数 数值
Vin Max (V) 25
New no
Vout Maximum .86VIN
Tracking (yes/no) no
Synchronous (yes/no) no
Integrated Inductor (yes/no) no
Number of Outputs 1
Ishutdown (uA) 20
Architecture Constant Frequency Current Mode
Vout Min (V) 2.42
Topology Buck
Featured no
Extended Temp E
Frequency (kHz) 500
Monolithic (yes/no) yes
Output Current (A) 3.6
Frequency Adjust Range
Vin Min (V) 5
Packages SO-8, DD-7, T5, TSSOP-16
Features External Synchronization
Isupply (mA) 2.5
Switch Current (A) 6
Vout Max (V) 21.5
Frequency Sync Range 580kHz - 1MHz
Comments HV Version VIN to 32V, Inductor Size reduced to 1.8μH, Thermally Enhanced Package
Date Added 1984-01-01
Price 1k * $4.40 (LT1374CS8)

特点
1mA I Q at 250kHz
Uses Small Inductors: 15μH
All Surface Mount Components
Only 0.6 Square Inch of Board Space
Low Minimum Supply Voltage: 2.7V
Constant Frequency Current Mode
Current Limited Power Switch: 1.5A
Regulates Positive or Negative Outputs
Shutdown Supply Current: 12μA Typ
Easy External Synchronization
8-Pin SO or PDIP Packages

典型应用

典型应用

描述
描述 The LT?1373 is a low supply current high frequency current mode switching regulator. It can be operated in all standard switching configurations including boost, buck, flyback, forward, inverting and “Cuk.” A 1.5A high efficiency switch is included on the die, along with all oscillator, control and protection circuitry. All functions of the LT1373 are integrated into 8-pin SO/PDIP packages. Compared to the 500kHz LT1372, which draws 4mA of quiescent current, the LT1373 switches at 250kHz, typically consumes only 1mA and has higher efficiency. High frequency switching allows for small inductors to be used. All surface mount components consume less than 0.6 square inch of board space. New design techniques increase flexibility and maintain ease of use. Switching is easily synchronized to an external logic level source. A logic low on the shutdown pin reduces supply current to 12μA. Unique error amplifier circuitry can regulate positive or negative output voltage while maintaining simple frequency compensation techniques. Nonlinear error amplifier transconductance reduces output overshoot on start-up or overload recovery. Oscillator frequency shifting protects external components during overload conditions.

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