WMSIC Electronic Components

LOWPOWER LP4068HB5F

ModelLP4068HB5F
PackageSOT-23-5
BrandLOWPOWER
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
LOWPOWER LP4068HB5F
Type
LOWPOWER
Minimum package
3000 未知

Technical parameters

Electronic Component
Electronic Component
Electronic Component
LOWPOWER
Electronic Component
LP4068HB5F
Electronic Component
1
Package
SOT-23-5
Electronic Component
Battery Management
Electronic Component
0.038g
Electronic Component
1
Features
Programmable Current
Electronic Component
BM0229954621
Operating Temperature
20℃~+85℃
Operating Voltage
4.5V~7V
Battery Type
Battery
Battery
1
ICType
IC
Static Current(Iq)
190uA

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

LP4068HB5F 产品概述

一、产品简介
LP4068HB5F 是微源半导体(LOWPOWER)推出的一款用于单节锂离子电池的充电管理芯片。器件采用 SOT-23-5 小封装,输入电压范围宽(4.5V~7V),支持最高 800mA 的充电电流,充电截止电压为 4.20V,静态电流仅 190µA,工作温度范围 -20℃~+85℃,适合体积受限且要求低功耗的便携式电子产品。

二、主要性能参数(摘要)

  • 芯片类型:充电芯片(单节锂电)
  • 输入工作电压:4.5V ~ 7V
  • 最大充电电流:800mA(建议根据热耗与系统限制设定)
  • 充电饱和/终止电压:4.20V
  • 电池类型:单节锂离子电池(1S)
  • 工作温度:-20℃~+85℃
  • 静态电流(Iq):190µA(降低空闲功耗,延长系统待机时间)
  • 封装:SOT-23-5
  • 品牌:LOWPOWER(微源半导体)

三、典型功能与优势

  • 适配单节锂电:专为 1 节锂离子/锂聚合物电池设计,符合常见的 CC/CV 充电策略(恒流—恒压),终止电压为 4.20V,满足电池寿命与容量平衡。
  • 宽输入范围:4.5V~7V 的输入适配 USB(5V)及多种适配器电源,灵活性高。
  • 中等充电能力:最高 800mA 的充电能力适用于小型蓝牙设备、便携式传感器、可穿戴设备与手持终端等应用场景,在体积与充电速度之间取得平衡。
  • 低静态电流:190µA 的静态电流有利于电池在未充电时减少自身消耗,适合对待机功耗敏感的产品。
  • 小体积封装:SOT-23-5 便于空间受限的 PCB 布局与成本控制。

四、典型应用场景

  • 蓝牙音频、TWS 耳机充电盒(作为电池充电管理单元)
  • 可穿戴设备、手环、智能手表(单节电池充电)
  • 手持测量、便携传感器与小型 IoT 节点(通过 USB 或小型适配器充电)
  • 小型便携式医疗设备与遥控器等对尺寸与功耗有严格要求的装备

五、设计与布局建议

  • 输入/输出旁路电容:建议在芯片的 VIN 与 GND、BAT 与 GND 引脚附近放置低 ESR 的陶瓷电容(常见 1µF~10µF 范围),以抑制输入纹波与稳定控制环路。具体容值请参照设计规范与系统电源特性。
  • 充电电流设定:若器件通过外部电阻或内部设定口调整充电电流,务必设置不超过 800mA,并考虑导线、连接器与电池的热承受能力。
  • 熱量管理:在线性充电架构下,芯片的功耗近似等于 (VIN − VBAT) × ICHG。在 5V 输入、4.2V 电池和 800mA 充电时,功耗约为 (5.0 − 4.2) × 0.8 ≈ 0.64W,SOT-23-5 封装需要通过 PCB 铜箔散热、加大 GND 面和热铜铺设来降低芯片结温,避免热关断影响充电性能。
  • 布局要点:充电电流路径(VIN、CHG、BAT)应走短且宽的铜线,电池与电感器件(若有)使用粗短导线,GND 采用连续地或星形接地以降低噪声耦合。若使用外部电流检测电阻,建议采用 Kelvin 措施以保证测量精度。
  • EMI 与滤波:如系统对 EMI 有严格要求,可在输入端增加小阻容滤波,但需权衡滤波对充电稳定性的影响。

六、安全与可靠性考量

  • 充电截止与保护:4.20V 为充电饱和电压,设计时应确保电池在终止电压附近有合适的充电结束或涓流策略,以避免过充引发安全风险。
  • 温度管理:器件工作温度为 -20℃~+85℃,在高温环境下应注意温度升高对电池和充电效率的影响,必要时增加温度检测和降额控制。
  • 输入来源限制:选取合适的输入源(带过流/短路保护的适配器或 USB 端口),并在系统层面考虑电源电流限制以保护数据线与连接器。

七、选型与封装信息
LP4068HB5F 采用 SOT-23-5 封装,适合量产与手工焊接,便于成本控制与板级集成。选型时建议参考完整数据手册以确认引脚定义、典型应用图和完整电气特性。

八、结论与建议
LP4068HB5F 以其适中的充电电流(最高 800mA)、低静态电流(190µA)和宽输入电压范围,适合对体积、功耗和成本有要求的单节锂电池便携产品。设计时应重点关注热量管理与 PCB 散热布局,并严格控制充电电流与终止策略以保证电池寿命与系统安全。建议在最终设计前查阅厂家完整 datasheet 以获取详细的引脚功能、典型电路与限制条件。

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