WMSIC Electronic Components

TMI TMI3257I

ModelTMI3257I
PackageSOT-563
BrandTMI
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
TMI TMI3257I
Type
TMI
Minimum package
5000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
TMI
Electronic Component
TMI3257I
Electronic Component
1
Package
SOT-563
Electronic Component
DC-DC Power Supply IC
Electronic Component
0.05g
Electronic Component
1
Type
Electronic Component
Synchronous
Electronic Component
Electronic Component
BM0228586183
Operating Temperature
40℃~+125℃
Operating Voltage
4.5V~18V
Switching Frequency
800kHz
Electronic Component
Electronic Component
Output Current
2A

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

TMI3257I 降压型开关稳压器 产品概述

一、产品简介

TMI3257I 是拓尔微(TMI)推出的一款高集成度降压型(Buck)开关稳压器。芯片采用降压拓扑,内置功率开关并支持同步整流,适合从 4.5V 到 18V 的输入电压范围向下转换,提供单通道可调输出、峰值输出电流可达 2A。器件工作频率为 800kHz,静态电流仅 350µA,工作温度范围为 -40°C 至 +125°C,封装为超小型 SOT-563,适合空间受限的便携和嵌入式系统。

二、主要特点

  1. 输入电压范围:4.5V ~ 18V,支持单节以上锂电池或工业总线供电。
  2. 输出能力:最高输出电流 2A,适合中等功耗负载。
  3. 开关频率:固定工作频率 800kHz,兼顾效率与外部元件小型化。
  4. 同步整流:内置同步整流 MOSFET,提高轻载与重载效率,减少外部肖特基损耗。
  5. 低静态电流:Iq = 350µA,有助于降低待机功耗,延长电池寿命。
  6. 可调输出:通过外部分压电阻设定所需输出电压,灵活适配多种系统电压需求。
  7. 工作温度:-40°C ~ +125°C,满足工业级应用环境要求。
  8. 封装:SOT-563,器件尺寸小,便于在空间受限的 PCB 上布局。

三、典型应用场景

  • 便携式设备电源(平板、便携终端、数据记录仪等)
  • 电池管理及电源前端(锂电池单串供电转换)
  • 工业控制与仪表(要求宽 Vin 与工业温度等级)
  • 通信与网络设备(板载电源、低功耗模块供电)
  • 物联网节点与传感器节点(追求小尺寸与低静态功耗)

四、设计注意事项

  1. 输入与输出滤波

    • 推荐在 VIN 引脚附近放置低 ESR 陶瓷电容(如 X7R/C0G),以抑制开关噪声与瞬态电流。输入侧电容应尽量靠近芯片 VIN 与 GND 引脚。
    • 输出电容选用多层陶瓷(MLCC)可以获得较低的纹波与更佳瞬态响应,必要时并联少量电解电容以提升 bulk 能力。
  2. 电感选型

    • 由于 800kHz 的工作频率,可选用低 DCR、高饱和电流的小体积功率电感。典型电感值通常在数百纳亨到几微亨之间(根据输出电压、输入电压与纹波电流目标计算),请依据目标纹波电流(例如 Io 的 20%~40%)进行计算和验证。
  3. 布局与接地

    • 将开关 SW 回路路径(芯片 SW 引脚、功率电感、输出电容)缩短到最小,减少电磁干扰与开关损耗。
    • 输入电容地和输出电容地应形成低阻抗的回流路径,强烈建议使用单点或短回路接地策略,避免敏感信号地与功率地混合。
    • VIN、GND 与 FB/EN 等控制引脚的走线尽量独立,FB 的分压电阻应靠近芯片反馈引脚布置。
  4. 热管理

    • 虽然器件集成度高,但在高输出电流与高 VIN 情况下会产生较大热量,建议在 PCB 下方或周边使用铜箔扩展散热区域,必要时添加多层通孔(thermal vias)增强导热。
    • 评估系统在最大工作条件下的结温,确保器件工作在安全的热范围内。
  5. 输出电压设置

    • TMI3257I 为可调输出结构,典型通过外部分压电阻设定输出电压。按照常见的参考结构:VOUT = Vref × (1 + Rtop/Rbottom),请参照芯片数据手册获取精确的参考电压 Vref 与反馈引脚要求。
  6. 保护与可靠性

    • 为保证系统可靠性,应在设计中考虑输入反向保护、浪涌抑制与输出短路检测策略。器件自身常见集成保护功能请以官方数据手册为准。

五、封装与引脚提示

TMI3257I 采用 SOT-563 超小封装,适合高密度 PCB 设计。SOT-563 封装尺寸小但对 PCB 焊盘与贴装精度要求高,建议严格按照厂方推荐的 PCB 封装脚位与回流工艺执行。具体引脚排列(如 VIN、GND、SW、FB、EN 等)和脚位功能请参照产品数据手册确认,避免因脚位误连导致损坏或性能异常。

六、结论

TMI3257I 是一款面向空间受限、需中等功率输出且注重效率与低静态功耗的单通道降压稳压器。凭借 800kHz 的开关频率与同步整流设计,能够在保持较高转换效率的同时,显著缩小外部无源元件尺寸。适用于便携设备、电池供电系统以及工业级电源设计,开发时建议严格按照数据手册进行元件选型与 PCB 布局,以获得最佳性能与可靠性。如需进一步电路参考、典型应用电路图或布局建议,请参阅 TMI 官方资料或联系供应商技术支持。

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