WMSIC Electronic Components

BORN BMS2301

ModelBMS2301
PackageSOT-323
BrandBORN
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
BORN BMS2301
Type
BORN
Minimum package
3000 未知

Technical parameters

Electronic Component
Electronic Component
Electronic Component
BORN
Electronic Component
BMS2301
Electronic Component
1
Package
SOT-323
Electronic Component
1 P
Type
P
Electronic Component
MOSFET
Electronic Component
0.032g
Electronic Component
1
Electronic Component
BM0264692220
Power Dissipation(Pd)
290mW
Electronic Component
Electronic Component
Electronic Component
3000
Voltage(Vdss)
20V
Capacitor(Ciss)
640pF

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

BMS2301 产品概述

一、产品简介

BMS2301 是伯恩半导体(BORN)推出的一款小封装 P 沟道 MOSFET,额定漏源电压 Vdss = 20V,适用于低电压电源切换与电池管理场景。封装为 SOT-323(超小型),单片封装,面向空间受限的便携设备与电源管理电路。

二、主要电气参数

  • 类型:P 沟道 MOSFET
  • Vdss(漏源耐压):20V
  • 连续漏极电流 Id:1.4A
  • 导通电阻 RDS(on):210 mΩ @ Vgs = 1.8V(厂方资料亦常以 82 mΩ 描述,通常对应 Vgs = 4.5V 的测试条件,请按具体数据手册确认测试条件)
  • 栅极阈值电压 Vgs(th):约 1V(按绝对值表示)
  • 总栅极电荷 Qg:约 10 nC @ 4.5V
  • 输入电容 Ciss:640 pF;反向传输电容 Crss:82 pF;输出电容 Coss:120 pF
  • 功耗 Pd(器件耗散):290 mW(SOT-323 封装)

三、特点与优势

  • 小封装满足 PCB 面积受限的设计需求,适合移动设备、便携型模块。
  • 20V 额定电压适用于单节锂电池及常见低压电源轨(如 5V、12V 的局部控制)上的高侧开关或保护应用。
  • 低栅极电荷(10 nC)有利于较快开关与降低驱动功耗,配合简单驱动电路即可获得较好切换性能。
  • 在较高栅驱(如 -4.5V)条件下 RDS(on) 可降至较低值(厂商常以 82 mΩ 标称),在低栅压驱动(1.8V)下仍能保持可接受的导通电阻(约 210 mΩ)。

四、典型应用场景

  • 电池管理系统(BMS)中的高侧开关与电源隔离。
  • 便携式设备与移动终端的电源路径选择与负载开关。
  • 反向电流保护、简易功率路由、热插拔与电源故障保护。
  • 低功耗开关电路中以小电流为主的应用场景。

五、设计注意事项与布局建议

  • 作为 P 沟道高侧开关使用时,源极连接正电源,栅极需拉低以打开器件,注意 Vgs 极性与最大允许值。
  • 栅极电荷 Qg = 10 nC 在频繁切换或较高频率下会带来显著驱动电流需求,驱动器应能提供相应峰值电流以避免切换变慢。
  • Crss(82 pF)决定了米勒效应,对快速变换的开关边沿影响显著,设计时应考虑抑制振铃与控制上升/下降沿。
  • SOT-323 封装热阻较大,Pd = 290 mW 表明在连续大电流条件下器件易发热。建议在 PCB 上使用较大铜箔热沉、短丝迹并尽量增大焊盘面积以利散热。

六、热管理与可靠性

  • 在 RDS(on) = 210 mΩ 与 Id = 1.4A 条件下,理论导通损耗约 I^2·R ≈ 0.294W,已接近或略超 SOT-323 标称耗散 290 mW,长期运行可能导致过热或热失效。若需长期 1A 以上工作,建议确保良好 PCB 散热或选用更大功率器件。
  • 若能将 Vgs 驱至更高幅值(如 -4.5V),RDS(on) 降低至厂方标称的较小数值,可显著减少导通损耗并改善热裕度。
  • 设备应用于高温环境或连续高负载时,应做热仿真验证并加大散热措施。

七、封装与选型建议

  • 封装:SOT-323,适合小型化设计,但热能力受限。
  • 选型时优先确认目标系统的栅极驱动电压是否能达到厂方给出的低 RDS(on) 测试条件(例如 -4.5V),以及目标电流下的热裕度。
  • 若需要更高连续电流或更低压降,应考虑更大封装或更低 RDS(on) 的替代器件。

总结:BMS2301 适合用作低电压、高侧开关与电池管理中的轻载或瞬态负载控制器件。使用时需特别注意栅极驱动电压与封装热管理,以保证在目标工作点下具有足够的电气与热裕度。若需进一步电气模型、SOA 曲线或封装尺寸图,建议参考厂商完整数据手册或联系供应商获取详细资料。

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