WMSIC Electronic Components

TI TL432BQDBZR

ModelTL432BQDBZR
PackageSOT-23-3
BrandTI
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

20 specifications

Core information

Product name
TI(Texas Instruments) TL432BQDBZR
Type
TI
Unit
Electronic Component
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
Electronic Component
Electronic Component
TI(Texas Instruments)
Electronic Component
TL432BQDBZR
Electronic Component
1
Package
SOT-23-3
Electronic Component
Voltage Reference IC
Electronic Component
±0.5%
Electronic Component
0.05g
Electronic Component
1
Electronic Component
BM0226996804
Operating Temperature
40℃~+125℃
Operating Voltage
2.495V~36V
Electronic Component
34ppm/℃
Output Voltage
2.495V~36V
Output Current
100mA

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

TL432BQDBZR 产品概述

TL432BQDBZR(TI,SOT-23-3 封装)是一款并联(并称:可调式并联电压基准/分流稳压)电压基准芯片,专为需要精确参考电压和小体积电路设计而优化。该器件具有高精度(±0.5%)、宽输出电压范围以及较大的分流能力(最高100 mA),适用于参考源、基准/比较电路、闭环精密稳压与电源监控等应用场景。

一、主要性能与规格概览

  • 输出类型:可调(可通过外接分压电阻设定输出电压)
  • 输出/工作电压范围:2.495 V ~ 36 V(参考端基准电压 2.495 V)
  • 最大输出电流(分流能力):100 mA
  • 精度:±0.5%(基准电压初始精度)
  • 电压基准类型:并联型(分流/参照)
  • 最小阴极电流以保证调节:700 µA(在此以下可能无法保持规定的参考精度)
  • 工作温度范围:-40 ℃ ~ +125 ℃
  • 封装:SOT-23-3,适合空间受限的表贴应用
  • 品牌:TI(德州仪器)

二、典型功能与应用场景

  • 精密可调参考电源:为AD/DA、比较器及采样电路提供稳定基准电压。
  • 分流稳压(小功率稳压):在小电流、低成本场合替代复杂线性稳压器。
  • 电源监测与欠压/过压检测:与外部分压器配合形成阈值检测电路。
  • 精密基准源用于精度测量仪器、传感器供电或校准电路。
  • 通用电路内参考/调节节点:工业控制、电池管理(作为参考/基准而非主稳压器)等。

三、设计要点与电气考量

  • 基准电压与设定公式:典型设定方式与 TL431 类似,输出电压由外部分压电阻 R1(上)与 R2(下)确定:
    Vout ≈ Vref × (1 + R1/R2) + Iref × R1
    其中 Vref 为 2.495 V,Iref 为参考引脚偏置电流(通常很小,但在高阻值分压器下需考虑其影响)。
  • 工作电流要求:器件要求阴极(分流)电流不低于 700 µA 才能保证在标称精度内稳定工作。实际设计中建议预留一定裕量(如 1 mA 或以上)以确保温度和老化条件下仍处于稳态区域。
  • 功耗与散热:作为并联器件,TL432BQ 在较高电压差和大分流电流时会产生较大功耗。设计时应计算:Pd = V_KA × I_K(器件两端电压乘以流过器件的电流),并确保在目标环境温度与 PCB 布局下不会超过器件功耗限制。SOT-23-3 封装热阻较大,必要时需采用铜箔加宽或散热路径优化。
  • 稳定性与旁路:在某些应用中,在参考端或输出端并联小电容可改善瞬态响应与抑制环路振荡,但具体值与布局需根据电路实际测试调整。

四、典型应用电路建议

  • 基本可调参考:使用 R1、R2 构成反馈分压,保证分压器阻值不过高以降低 Iref 的影响并维持分流电流大于最小调节电流。
  • 用作分流稳压:在较大输入电压与负载电流变化时,通过前端限流电阻使器件处于安全且稳定的分流区,计算并验证最大耗散与器件温升。
  • 监测/比较:配合电阻分压和比较器或 MCU ADC 输入,作为可靠的阈值参考。

五、封装与装配注意

  • SOT-23-3 封装利于表贴自动化生产,但热散能力有限。建议在 PCB 设计时增加焊盘铜层、加宽地平面或增加热通孔,以提升散热性能。
  • 引脚走线要尽量短,尤其是参考(REF)与外部分压电阻连接,以减少噪声耦合和寄生阻抗对精度的影响。

六、选型与使用建议

  • 若系统需要低压差、高效率的主稳压功能,应优先考虑低压差线性稳压器或开关方案;TL432BQ 更适合作为精密参考或小功率分流稳压。
  • 在高温或高功耗工况下,详细核算功耗并验证 PCB 散热能力,避免长期工作在热应力区。
  • 设计分压阻值时兼顾功耗与参考稳定性:阻值太大易受 Iref 影响,阻值太小则增加静态功耗。

总结:TL432BQDBZR 将高精度(±0.5%)、宽电压范围与较大分流能力集成于小型 SOT-23-3 封装,适合在受限空间内为精密电路提供稳定、可调的基准或分流稳压。设计时关注最小阴极电流要求、功耗与散热、以及外部分压网络的选择即可发挥其最佳性能。

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