WMSIC Electronic Components

BLUE ROCKET BR431M

ModelBR431M
PackageSOT-23
BrandBLUE ROCKET
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 24+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
BLUE ROCKET BR431M
Type
BLUE ROCKET
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
BLUE ROCKET
Electronic Component
BR431M
Electronic Component
1
Package
SOT-23
Electronic Component
Voltage Reference IC
Electronic Component
±0.4%;±0.8%
Electronic Component
0.03g
Electronic Component
1
Electronic Component
BM0233262420
Operating Temperature
40℃~+125℃
Output Voltage
2.5V~37V
Output Current
100mA
Output Type
Electronic Component
Static Current(Iq)
400uA
Electronic Component
Electronic Component

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

BR431M 产品概述

一、主要特性

BR431M 是 BLUE ROCKET 推出的高精度并联(并称:基准/可调型)稳压参考器件,采用 SOT-23 小封装,适用于精密参考、基准源与误差放大器等场合。主要参数如下:

  • 输出类型:可调(并联/分流式参考)
  • 可调输出电压范围:2.5V ~ 37V
  • 最大输出(分流)电流:100 mA
  • 精度等级:±0.4%(高精度等级)与 ±0.8%(标准等级)
  • 电压基准类型:并联(Shunt)
  • 静态电流(Iq):400 µA(典型)
  • 最小阴极电流用于调节:400 µA
  • 工作温度范围:-40 ℃ ~ +125 ℃
  • 封装:SOT-23

二、功能与工作原理简介

BR431M 与业界常见的可调精密基准(如 TL431 系列)工作方式相似,通过参考端(REF)与分压网络设定输出电压。器件在阴极—阳极间并联工作,当阴极电流达到最小调节电流后,内部误差放大器通过调整阴极—阳极电压,实现对 REF 端电压(典型≈2.5V)精确保持,从而得到可调输出(2.5V 起)。

三、电气特性与精度说明

BR431M 提供两档精度:±0.4%(高精度)与 ±0.8%(标准),适用于需要严格电压基准的系统。静态偏流(Iq)约 400µA,意味着在无外加分流时器件自身会消耗该电流;用于稳定调节的最小阴极电流也为 400µA,因此在设计分压网络时须保证器件在任何工况下都有足够的阴极电流以维持精度。

常用输出计算公式: VOUT = VREF × (1 + R1/R2) + IREF × R1 其中 VREF 约为 2.5V,IREF 为参考引脚电流(通常很小)。为保证稳态与快速响应,建议让分压器流过的电流远大于 IREF,同时使总阴极电流不低于 0.4 mA(推荐 1 mA 以上以提高裕量)。

四、典型应用与电路提示

  • 精密电压参考与基准源
  • 开关电源反馈与误差放大器
  • 电池管理与电压监控
  • LED 恒流驱动与小功率线性稳压

电路提示:

  • 在阴极与参考之间并联小电容(如 10 nF)可改善噪声与瞬态响应,但与负载电容搭配时需注意可能出现的振荡,必要时加串联电阻或按应用测试稳定性。
  • 作为并联稳压器使用时,必须在输入到器件间串联限流电阻或设计足够分流路径,以防止器件过热。SOT-23 封装对功耗敏感,尽量避免在器件上直接消耗大量功率。

五、热设计与功耗计算

器件功耗近似为 P = VKA × IK(VKA 为阴极—阳极电压,IK 为流过器件的电流)。例如在 12V 环境中若器件需分流 10 mA,则耗散 ≈ 12V × 10 mA = 120 mW。SOT-23 的实际允许耗散与 PCB 散热、环境温度有关,建议在高电压与大电流工况下外接功率电阻或采用外置功率晶体管分担热量。

六、封装与引脚(建议核对厂商引脚图)

BR431M 提供 SOT-23 三引脚小封装,便于表面贴装与空间受限的板级设计。常见引脚功能为 REF、阴极(K)、阳极(A),请以产品手册为准核对引脚顺序与封装尺寸。

七、选型与使用建议

  • 若系统对基准精度要求高,选用 ±0.4% 等级;一般应用可选 ±0.8%。
  • 保证分压器电流与最小调节电流之和大于 400µA,推荐总阴极偏流 ≥ 1mA 以保证稳定性与温度漂移性能。
  • 注意功耗与封装散热限制,在需要大电流输出(接近 100 mA)时应采用外部功率元件分担能量。
  • 在关键应用(如精密测量、采样参考)应做上电与负载变化下的稳定性测试,必要时加参考端旁路电容并优化分压阻值。

BR431M 在小尺寸封装中提供高精度与宽调压范围,适合对体积与精度双重要求的基准与分流稳压场合。实际设计请参考 BLUE ROCKET 官方资料与典型应用电路以获得最佳性能。

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