WMSIC Electronic Components

MSKSEMI MC34063AG(MS) MC34063AG

ModelMC34063AG(MS)
PackageSOP-8
BrandMSKSEMI
Price Price on request Electronic component prices change quickly with market supply and demand. Please refer to the latest WMSIC quotation for current pricing.
Configuration
1 options
Configuration 25+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
MSKSEMI MC34063AG(MS)
Type
MSKSEMI
Minimum package
2500 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
MSKSEMI
Electronic Component
MC34063AG(MS)
Electronic Component
1
Package
SOP-8
Electronic Component
DC-DC Power Supply IC
Electronic Component
0.175g
Electronic Component
1
Features
Electronic Component
Synchronous
Electronic Component
Electronic Component
BM0265639633
Operating Temperature
0℃~+70℃@(TA)
Operating Voltage
3V~32V
Switching Frequency
33kHz
Electronic Component
Electronic Component
Output Current
1.2A

For datasheets, package documents, compatible-part guidance, or other technical resources, contact WMSIC customer service. Availability is confirmed case by case.

MC34063AG(MS) 开关型稳压芯片产品概述

一、产品定位与核心功能

MC34063AG(MS)是美森科(MSKSEMI)推出的一款反相式开关稳压芯片,核心定位为中小功率直流电压转换,支持降压、升压、反相三种拓扑结构——无需更换芯片即可实现不同电压转换需求,适合对成本控制和电路简洁性有要求的应用场景。不同于线性稳压芯片,它通过开关管通断+电感储能实现稳压,效率更高(通常70%-90%),更适配宽输入电压范围的直流电源转换。

二、主要电气参数特性

该芯片的核心参数覆盖多场景需求,关键特性如下:

  1. 宽输入电压范围:3V~32V,兼容常见电池(3.7V锂电池、1.5V×2干电池)、低压直流电源(12V车载、24V工业电源)等输入源;
  2. 拓扑灵活性:内置控制电路与功率开关管,通过外部电感、二极管、电阻可配置为降压(Buck)、升压(Boost)或反相(Inverting)输出,减少物料选型复杂度;
  3. 内置开关管:无需外置功率MOS管,简化电路设计,降低BOM成本,同时避免外置管的匹配问题;
  4. 固定开关频率:33kHz,属于中等开关频率,兼顾电感/电容选型难度(无需高频元件)与纹波控制;
  5. 输出电压可调:通过5脚(输出反馈)外接分压电阻,可灵活调整输出电压(如3.3V、5V、12V等),适配不同负载的供电需求;
  6. 工作温度范围:商业级0℃~+70℃,适合室内、普通办公/工业环境(非极端高温/低温场景);
  7. 非同步整流:采用传统肖特基二极管整流,成本更低,适合对效率要求不极致的中小功率应用。

三、封装与引脚配置

MC34063AG(MS)采用SOP-8贴片封装,体积小巧(约5mm×6mm),便于PCB布局。各引脚功能明确:

  • 1脚(Vcc):电源输入,接3V~32V直流电压;
  • 2脚(Switch Collector):内置开关管集电极,接电感/变压器一端;
  • 3脚(Switch Emitter):内置开关管发射极,接地;
  • 4脚(GND):电源地,与3脚共地;
  • 5脚(Vout Sense):输出电压反馈,通过分压电阻接输出端;
  • 6脚(Timing Capacitor):定时电容引脚,接100nF电容到地(设定33kHz开关频率);
  • 7脚(Current Limit):电流限制引脚,接电阻到地(设定过流保护阈值);
  • 8脚(Reference Input):基准电压输入,通常接0.1μF电容到地,稳定内部1.2V基准。

四、典型应用场景

基于参数与拓扑灵活性,该芯片常见应用包括:

  1. 电池供电设备:3.7V锂电池升压至5V(如小型蓝牙音箱、充电宝升压)、降压至3.3V(如MCU、传感器供电);
  2. 车载/工业低压转换:12V车载电源降压至5V(如手机车充、行车记录仪供电)、24V工业电源降压至12V(如PLC模块供电);
  3. 负电压输出:正输入(如5V)转换为负电压(如-5V),适配需要负电源的运放、ADC等电路;
  4. 中小功率负载驱动:小型LED背光驱动、微型电机控制电源(输出电流通常可达1A左右,需匹配电感/二极管)。

五、应用注意事项

为保证芯片稳定工作,需注意以下实用要点:

  1. 定时电容选型:6脚必须接100nF陶瓷电容(或电解电容),电容偏差会导致开关频率偏离33kHz,影响效率与纹波;
  2. 电流限制设置:7脚电阻计算公式为R=0.3V/I_limit(如I_limit=0.5A,则R=0.6Ω),需选功率电阻(避免发热);
  3. 电感选择:升压/降压拓扑需选合适电感(如升压选10μH100μH,降压选22μH47μH),注意电感饱和电流需大于最大输出电流;
  4. 输出滤波:输出端需并联10μF电解电容+0.1μF陶瓷电容,减少输出纹波(开关电源纹波通常50mV~200mV);
  5. 散热设计:大电流(>0.8A)下需在PCB上增加2脚、3脚的敷铜面积,或加小型散热片,避免芯片过热;
  6. 温度适配:仅适用于0℃+70℃环境,若需工业级(-40℃+85℃),需选择同系列工业级型号。

该芯片凭借“一芯多用、设计简单、成本可控”的特点,成为中小功率电压转换场景的经典选型之一。

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