WMSIC Electronic Components

BHFUSE BSMD1812-150-16V BSMD1812

ModelBSMD1812-150-16V
Package1812
BrandBHFUSE
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
BHFUSE BSMD1812-150-16V
Type
BHFUSE
Minimum package
1500 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
BHFUSE
Electronic Component
BSMD1812-150-16V
Electronic Component
1
Electronic Component
3.41mm
Package
1812
Electronic Component
Resettable Fuse
Electronic Component
0.1g
Electronic Component
4.73mm
Electronic Component
1.3mm
Electronic Component
1
Electronic Component
500ms
Electronic Component
BM0264819691
Operating Temperature
40℃~+85℃
Voltage Rating(Vmax)
16V
Power(Pd)
1W

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

BSMD1812-150-16V自恢复保险丝产品概述

一、产品核心定位

BSMD1812-150-16V是佰宏(BHFUSE)推出的1812封装聚合物自恢复保险丝,属于过流保护核心器件。其核心作用是在电路出现过流(短路、过载等)时快速切断电流,故障排除后自动恢复导通,无需人工更换,适用于16V及以下低电压电路的过流防护,可替代传统一次性保险丝,同时兼顾小型化、低损耗和宽温适应性。

二、关键电性能参数详解

该器件的电性能参数明确匹配低电压电路需求,核心参数及实际意义如下:

  • 耐压(Vmax):16V:限定器件可安全工作的最高电压,仅适用于16V及以下直流/交流电路,超过此电压可能导致击穿失效。
  • 保持电流(Ihold):1.5A:电路正常工作时,电流≤1.5A(需考虑环境温度降额)可长期稳定导通,是选型的核心依据(需确保正常工作电流不超过此值)。
  • 跳闸电流(Itrip):3A:当电路电流≥3A时,器件会在规定时间内动作(跳断),切断过流路径,避免负载或电路损坏。
  • 最大电流(Imax):100A:可承受的瞬间最大浪涌电流(如开机冲击、静电放电),但持续超过此电流会永久损坏器件。
  • 初始态阻值(Rmin):40mΩ:正常导通时的低阻值,大幅减少电路压降和功耗,适合对效率要求较高的低电压电路(如USB充电、电池保护)。
  • 跳断后阻值(R1max):160mΩ:过流动作后阻值显著上升,有效限制故障电流,故障排除后温度下降,阻值自动恢复至低阻态。
  • 动作时间:500ms:从电流达到跳闸电流到器件完全跳断的时间,属于慢断型设计,可有效抗日常电路浪涌(如设备启动瞬间的大电流)。
  • 工作温度:-40℃~+85℃:宽温度范围覆盖工业、汽车、消费电子等多数应用场景,适应极端环境温度变化。

三、封装与物理特性

  • 封装类型:1812(贴片封装):英制尺寸,对应公制4.73mm×3.41mm×1.3mm,适配SMT自动化生产,无需额外插件空间。
  • 物理尺寸:长4.73mm×宽3.41mm×高1.3mm:小型化设计,可嵌入紧凑型PCB(如智能手机、小型电源模块),不占用额外布局空间。
  • 封装可靠性: 采用聚合物PTC材料+贴片封装结构,耐回流焊温度(常规260℃左右),焊接过程无失效风险,长期使用稳定性高。

四、典型应用场景

结合参数特性,该器件主要应用于以下场景:

  1. 移动电子设备:智能手机、平板电脑、智能手表的电池保护电路(16V以下,电流适配1.5A左右的电池输出)。
  2. USB充电与电源模块:USB接口、5V/12V小型DC-DC转换器的过流保护(低阻值减少压降,适配USB5V标准)。
  3. 汽车电子附件:车载充电器、氛围灯、小型传感器的过流防护(宽温-40~85℃符合汽车级环境要求)。
  4. 工业控制回路:低电压(12V/24V)控制板、传感器节点的过流保护(宽温适应工业现场温度变化)。
  5. 智能家居设备:智能插座、智能门锁、环境传感器的过流防护(小型化适配设备紧凑设计)。

五、核心优势解析

  1. 可重复使用,降低维护成本:故障排除后自动恢复导通,无需更换器件,减少设备 downtime 和维护工作量。
  2. 低损耗,提升电路效率:40mΩ初始阻值大幅减少正常工作时的压降(如1.5A电流下,压降仅0.06V),适合低电压电路(如5V系统)。
  3. 宽温适应性强:-40~85℃覆盖绝大多数应用场景,无需额外降额或替换器件应对温度变化。
  4. 小型化贴片封装:1812尺寸节省PCB空间,适配当前电子设备的轻薄化趋势。
  5. 动作特性明确,易匹配电路:Ihold/Itrip比例2:1,动作时间500ms,便于电路设计时匹配负载电流和浪涌需求(如避免误动作)。

六、选型与使用注意事项

  1. 选型核心:Ihold降额:正常工作电流需≤Ihold(1.5A),且需根据环境温度降额(如+85℃时Ihold约为常温的80%,需查 datasheet 降额曲线)。
  2. 电压匹配:工作电压≤16V:禁止在超过16V的电路中使用,否则可能导致器件击穿。
  3. 散热考虑:Pd=1W,若工作电流接近Ihold,需增加PCB焊盘面积(如加宽焊盘),避免局部过热影响寿命。
  4. 浪涌耐受:避免持续过流:Imax=100A仅为瞬间耐受,持续超过100A会永久损坏器件。
  5. 恢复条件:故障排除后恢复:跳断后需确认故障(如短路解除),且器件温度降至环境温度,才会自动恢复导通。

该器件凭借可靠的过流保护性能、低损耗设计和宽温适应性,成为低电压电路过流防护的高性价比选择,广泛适配消费电子、汽车、工业等领域的紧凑型电路设计。

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