WMSIC Electronic Components

BHFUSE BSMD1812L-500-16V BSMD1812L

ModelBSMD1812L-500-16V
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 BSMD1812L-500-16V
Type
BHFUSE
Minimum package
1500 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
BHFUSE
Electronic Component
BSMD1812L-500-16V
Electronic Component
1
Electronic Component
3.45mm
Package
1812
Electronic Component
Resettable Fuse
Electronic Component
0.114g
Electronic Component
4.8mm
Electronic Component
1.2mm
Electronic Component
1
Electronic Component
25s
Electronic Component
BM0257686109
Operating Temperature
40℃~+85℃
Voltage Rating(Vmax)
16V
Power(Pd)
1.5W

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

BSMD1812L-500-16V 产品概述

一、产品简介

BSMD1812L-500-16V 是佰宏(BHFUSE)推出的一款 1812 封装功率保护元件,适用于低压直流电源的过流保护。该器件以低初始阻值、明确的保持/跳闸电流和可控的跳断后阻值为特征,适合对电流限制和可复位保护有需求的消费电子、电源模块和电机驱动等场景。

二、主要参数

  • 最大耐压 (Vmax):16 V
  • 最大电流 (Imax):50 A(瞬态或短时能力,具体受热量与PCB布局影响)
  • 保持电流 (Ihold):5 A(器件在常温、额定条件下不动作的最大连续电流)
  • 跳闸电流 (Itrip):10 A(典型触发过流并进入高阻态的电流)
  • 消耗功率 (Pd):1.5 W(在稳定工作点时器件所允许的最大功耗)
  • 初始态阻值 (Rmin):1 mΩ(常温、未动作时典型导通阻抗)
  • 跳断后阻值 (R1max):15 mΩ(动作后稳态高阻态最大值)
  • 动作时间:25 s(在特定过流条件下达到跳闸状态所需时间)
  • 工作温度:-40 ℃ ~ +85 ℃
  • 外形尺寸:长度 4.8 mm × 宽度 3.45 mm × 高度 1.2 mm(1812 SMD 标准尺寸)
  • 品牌/封装:BHFUSE(佰宏),1812 SMD

三、性能亮点与工作机制

  • 低初始阻值(1 mΩ)保证通电时压降和发热最小,适合高电流路径。
  • 明确的保持电流与跳闸电流(5 A / 10 A)便于工程师进行电路保护选型,实现可靠的过载与短路防护。
  • 跳断后阻值上升(最高 15 mΩ)帮助限制故障电流,配合外部保护电路可有效保护后端元件。
  • 体积小(1812 SMD),便于自动化贴装与批量生产,同时兼顾热阻与机械强度。
  • 工作温度范围宽(-40 ~ +85 ℃),适合大多数工业与消费电子应用环境。

(注:该型号常用于可复位自恢复类保护场景,具体动作特性与复位能力请参照完整数据手册以确认。)

四、典型应用场景

  • USB、Type-C 电源线路的过流保护(在 5–12 V 低压系统中)
  • 锂电池与电池管理系统(BMS)输出口短路/过流保护(注意电压不得超过 16 V)
  • DC-DC 转换器输出保护、输入滤波与保护回路
  • 小型电机驱动与继电器驱动的短时过流限制
  • LED 驱动及照明电源保护

(注意:若用于汽车系统,需要评估瞬态高压及浪涌能量,汽车环境下推荐使用符合汽车级瞬态抑制要求的器件。)

五、设计与使用建议

  • 选型原则:保持电流 Ihold 应略高于正常工作电流,通常建议留 10%~30% 的裕量,以避免工作中发生误触发;同时确保跳闸电流与系统可承受的故障电流匹配。
  • 热管理:Pd 为 1.5 W,实际允许功耗受 PCB 散热、周围器件影响与环境温度限制,推荐在 PCB 布局中为该元件提供适当铜皮散热,同时远离高温元件。
  • 瞬态与冲击:Imax 表示短时能力,连续超过 Ihold 至 Itrip 之间的情况将导致器件在给定时间内动作(典型 25 s),设计时应考虑启动浪涌(如电机或电容充电)对误动作的影响。
  • 焊接与贴装:1812 SMD 兼容常见回流焊工艺,但具体回流曲线(峰值温度、保温时间)请以厂商资料为准,避免超出推荐曲线造成性能变化。
  • 环境与可靠性:长期工作温度接近上限时,器件的 Ihold/Itrip 特性会随温度漂移,应在系统级进行温度和寿命验证。

六、可靠性与包装

BHFUSE 的 SMD 产品通常以卷带(Tape & Reel)形式供货,便于 SMT 生产线使用。材料与生产过程符合 RoHS 要求(请在采购时确认具体合规性证书)。建议在干燥环境下储存,避免潮湿影响焊接质量。

七、选型提示与替代方案

  • 若系统电压或瞬态高于 16 V,应选择耐压更高型号或增加瞬态抑制器(TVS)并联保护。
  • 如需更高保持或更高短时冲击能力,可考虑更大封装或并联多只同型号器件(并联需考虑均流与热耦合)。
  • 在强振荡或高能短路环境中,建议与快速断路保护(熔断器、断路器)组合使用以提高系统可靠性。

总结:BSMD1812L-500-16V 在 1812 SMD 尺寸内提供明确的保持/跳闸电流与较低初始阻值,适用于多种低压直流电源的过流保护场景。为获得最佳表现,请结合 PCB 散热设计、实际使用电流与环境温度进行合理选型与验证。若需完整电气性能曲线、回流焊建议与寿命测试数据,请向佰宏索取详细数据手册。

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