WMSIC Electronic Components

BOURNS MF-R050-2

ModelMF-R050-2
PackageThrough-hole
BrandBOURNS
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

20 specifications

Core information

Product name
BOURNS MF-R050-2
Type
BOURNS
Unit
Electronic Component
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
Electronic Component
Electronic Component
BOURNS
Electronic Component
MF-R050-2
Electronic Component
1
Package
Through-hole
Electronic Component
Resettable Fuse
Electronic Component
0.406g
Electronic Component
1
Electronic Component
BM0264772793
Operating Temperature
40℃~+85℃
Voltage Rating(Vmax)
60V
Power(Pd)
750mW
Current(Imax)
40A
Electronic Component
Electronic Component
Electronic Component
3000

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

MF-R050-2 产品概述

一、产品简介

MF-R050-2 是 BOURNS 出品的一款径向插件型自恢复聚合物过流保护器(PTC Resettable Fuse,又称 PPTC)。该元件在正常工作电流下呈现低阻值,当电路发生过流或短路时,器件温升使其阻值迅速上升,从而限制通过电流,保护下游电路;当故障解除并冷却后,器件能够自动恢复低阻态,重复使用,适合需要可重复保护的电源与信号线路。

主要参数(按出厂标注):

  • 耐压(Vmax):60 V
  • 最大电流(Imax):40 A
  • 保持电流(Ihold):500 mA
  • 跳闸电流(Itrip):1 A
  • 功耗(Pd):750 mW
  • 初始态阻值(Rmin):0.410 Ω(410 mΩ)
  • 跳断后阻值(R1max):1.17 Ω
  • 工作温度:-40 ℃ ~ +85 ℃
  • 封装形式:径向插件(Through-hole / Radial)

二、核心特性与工作原理

MF-R050-2 的工作原理基于聚合物正温度系数材料(PTC):在额定保持电流以下,材料温度低,呈低阻抗状态,电路正常通电;一旦电流超过跳闸电流,器件内部温度上升导致材料阻抗大幅增加,限制电流,防止器件或电路元件受损。故障清除并冷却后,阻值恢复到初始低值,实现自恢复保护。

该器件的显著特征包括:

  • 双态保护:低阻态供电,过流时自动升阻限流;
  • 自恢复:无需更换,可在多次过流事件后继续工作;
  • 插件封装:便于手工或波峰/通孔焊接装配,适合各种 PCB 设计和维修场景;
  • 宽温度范围:-40℃~+85℃,适应广泛环境。

三、典型应用场景

MF-R050-2 适用于需要重复性过流保护且允许短时间过载的系统,例如:

  • 便携式设备与充电器的输入/输出线路保护;
  • USB、串口、以太网等外设供电端口防护;
  • 电池管理系统(BMS)及电池包保护(配合同类电路设计使用);
  • 工业控制与仪表电源保护;
  • 小型直流电机或执行器的过流保护(需注意电机启动电流);

在对浪涌电流或启动电流有较大需求的场合,应结合电路特性慎重选型或增加限流/滤波元件。

四、典型电气与安装注意事项

  • 保持电流(Ihold)500 mA:器件在该电流下能长期保持低阻态,不会触发升阻保护;
  • 跳闸电流(Itrip)1 A:当电流超过该值时,器件会在一定时间内升温并进入高阻态以限制电流;
  • 初始阻值 0.410 Ω:器件在低阻态下对电路的压降可通过 I × R 计算;
  • 跳断后阻值可达 1.17 Ω:在保护态时明显提高阻抗,显著降低通过电流;
  • 功耗 750 mW:反映器件在特定条件下的额定耗散能力,选型时应考虑工作环境与散热条件;
  • 最大电流 40 A:该值通常指短时承受的浪涌能力或器件结构极限,非连续导通工作电流,应结合 Ihold/Itrip 参数理解与使用。

安装建议:

  • 采用径向插件焊接时,留出足够的 PCB 通风散热空间,避免器件长时间受外部热源影响;
  • 避免与高温元件紧贴安装,防止误动作或延迟复位;
  • 若环境温度较高,应根据厂商温度对电流特性的说明进行热降额(derating);
  • 在高浪涌场合,可考虑与电感、限流电阻或热熔断器配合使用以提高系统可靠性。

五、选型与设计注意点

  • 确定 Ihold 与 Itrip:依据电路正常工作电流选择 Ihold 略高于正常最大工作电流,而 Itrip 应低于会损坏电路元件的临界电流;
  • 考虑启动/突发电流:如电路存在短时高浪涌(例如电机或电容充电),需确保该浪涌不会触发器件反复跳闸,或采用并联/并用其他保护策略;
  • 温度影响:环境温度升高会降低器件的保持电流能力,设计时应预留裕量并在必要时做温度试验验证;
  • PCB 布局:将 PPTC 放置在靠近被保护元件或电源接口处,且保持足够的绝缘和机械固定。

六、可靠性与维护建议

BOURNS 作为知名电子被动元件制造商,在元件一致性和批次稳定性方面具有保障。为了保证长期可靠性,建议:

  • 在设计验证阶段进行热循环与过流测试,观察复位时间与阻值变化;
  • 对关键产品做实际工作环境下的长期老化试验,评估温漂与重复跳闸后的特性变化;
  • 在维修场景中,检测器件外观(有无膨胀、烧焦迹象)及电阻值,必要时更换为同型号新件。

总结:MF-R050-2 为一款适用于广泛直流供电与接口保护的径向自恢复保险元件,其 60V 高压等级、500 mA 的保持电流和 1 A 的跳闸电流组合,使其在中低功率电路中既能提供有效保护,又便于生产与维护。在选型与应用时应充分考虑环境温度、突发电流及 PCB 布局,以发挥其最佳保护效果。

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