WMSIC Electronic Components

CJ CJ6109A33GW

ModelCJ6109A33GW
PackageSOT-223
BrandCJ
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 26+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
CJ CJ6109A33GW
Type
CJ
Minimum package
2500 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
320mV@(1A)
Electronic Component
CJ
Electronic Component
CJ6109A33GW
Electronic Component
1
Package
SOT-223
Electronic Component
Linear Regulator(LDO)
Electronic Component
0.263g
Electronic Component
1
Electronic Component
BM0233653720
Operating Temperature
40℃~+125℃@(Tj)
Operating Voltage
6V
Output
Electronic Component
Output Voltage
3.3V
Output Current
1A
Output Type
Electronic Component

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

CJ6109A33GW 产品概述

一、产品简介

CJ6109A33GW 是江苏长电/长晶(CJ)推出的一款固定输出线性稳压器(LDO),输出电压为 3.3V,最大输出电流 1A。器件以低静态电流、良好的电源纹波抑制以及紧凑的 SOT-223 封装为特点,适用于对噪声与稳定性有一定要求的供电场合,如便携式设备、传感器模块及工业控制电路等。

主要参数(概要)

  • 输出类型:固定(3.3V)
  • 最大输入工作电压:6V(典型标称工作条件)
  • 最大输出电流:1A
  • 压差(Dropout):约 320mV @ 1A
  • 静态电流(Iq):约 70µA
  • PSRR(电源纹波抑制比):70dB @ 10kHz
  • 保护特性:过流保护
  • 工作结温:-40℃ ~ +125℃ (Tj)
  • 输出极性:正极,单路输出
  • 封装:SOT-223

二、关键特性与优势

  • 低静态电流:70µA 的静态电流使得该器件在待机或低功耗模式下对电池影响很小,适合电池供电或低功耗设计。
  • 优秀的 PSRR:在 10kHz 处约 70dB 的抑制能力,有助于抑制开关电源或数字电路带来的高频干扰,改善模拟前端与射频模块的噪声性能。
  • 低压差:约 320mV 在 1A 输出时的压差,使得在电池电压接近 3.3V 时仍能保持稳定输出(需留足安全裕量)。
  • 单片过流保护:内置过流限制可在负载异常时保护器件与负载,提升系统可靠性。
  • SOT-223 封装:体积小,同时具有较好的散热能力,便于手工和波峰/回流焊接。

三、典型应用场景

  • 电池供电的便携设备(MCU、传感器节点、蓝牙/LoRa 模块等)
  • 模拟前端与射频模块的低噪电源
  • 工业控制器与低功耗终端
  • 单板电源后级稳压,作为开关电源后的噪声清理级

四、输入/输出与外部元件建议

  • 输入电容:推荐在 VIN 端并联 1µF ~ 10µF 陶瓷(X5R/X7R)或电解电容,靠近器件引脚放置以减少寄生感抗。
  • 输出电容:为保证稳定与瞬态响应,建议在 VOUT 端使用 4.7µF ~ 22µF 的低 ESR 电容(陶瓷或钽电容),并靠近输出端进行布局。
  • 旁路与滤波:结合应用可在输入侧增加 0.1µF 陶瓷旁路,输出侧必要时加 RC 滤波以进一步降低噪声。
  • 引脚连接:尽量使用宽铜厚的电源走线并缩短入口路径,输入与地之间应有良好接地处理。

五、热设计与使用注意

线性稳压器的功耗等于 (Vin - Vout) × Iout。举例:

  • 当 Vin = 6V、Vout = 3.3V、Iout = 1A 时,功耗约为 2.7W。这类功耗在 SOT-223 小 PCB 上会导致器件过热并触发热限制或损伤。 因此在设计中应注意:
  • 减小 Vin 与 Vout 之间的压降(尽量让输入电压接近输出电压),或在前级使用开关降压模块降低功耗。
  • 在 PCB 上扩展散热铜面、使用多层铜与过孔通热以及合理的散热媒介以降低结壳热阻(θJA)。
  • 评估在最大工作电流与最高输入电压条件下的结温,确保不超过器件额定 Tj。

六、封装与布局建议

  • SOT-223 封装有利于热量通过散热大地(铜垫/焊盘)散出,建议在 PCB 底层配备较大铜箔并与器件底部焊盘通过过孔连接至内层或底层散热区。
  • 输入、输出电容应尽量靠近相应引脚放置,地回路短且宽,避免噪声耦合到敏感电路。
  • 在高电流路径上使用较宽的走线并避免走线过长,减少压降与热损耗。

七、可靠性与设计提示

  • 器件标称工作温度覆盖 -40℃ 至 +125℃(结温),在高温环境或高负载下需留有热裕度并考虑热退化效应。
  • 设计中应考虑启动/瞬态行为:较大的输出电容会影响启动时间,必要时在系统级做上电顺序控制。
  • 对于需要更高效率或更大功率的场合,建议采用开关降压转换器作为前端预稳压,再用 CJ6109A33GW 做后级低噪滤波稳压。

总结:CJ6109A33GW 是一款面向需要低噪、低静态电流且占板面积小的 3.3V 线性稳压器。合理的热设计与输入电压选择是实现稳定可靠工作的关键,适合多种便携与工业级应用中作为低噪、低复杂度的稳压方案。若需具体引脚图、典型电路或热阻数值,建议参阅器件数据手册以获得精确的引脚定义与电气特性曲线。

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