WMSIC Electronic Components

TA-I Technology RLM12FTCMR005

ModelRLM12FTCMR005
Package1206
BrandElectronic Component
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
RLM12FTCMR005
Type
TA-I Technology
Minimum package
5000 圆盘

Technical parameters

Power
1W
Electronic Component
Electronic Component
Electronic Component
Electronic Component
Electronic Component
RLM12FTCMR005
Electronic Component
1
Package
1206
Electronic Component
Current Sense Resistor / Shunt
Electronic Component
±1%
Electronic Component
0.03g
Electronic Component
5mΩ
Electronic Component
1
Electronic Component
BM0229254787
Electronic Component
SMD
Electronic Component
±100ppm/℃
Resistor Type
Current Sense Resistor
Electronic Component
Electronic Component

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

大毅科技RLM12FTCMR005 电流采样电阻产品概述

大毅科技推出的RLM12FTCMR005是一款专为中功率电流检测设计的高精度贴片采样电阻(分流器),凭借低阻值、高稳定度与紧凑封装,成为消费电子、工业控制、新能源等领域的常用选型之一。

一、产品定位与核心价值

作为电流采样环节的关键器件,RLM12FTCMR005的核心定位是**“平衡精度、功率与体积的通用型采样电阻”**——既满足中功率场景下的大电流检测需求,又通过高稳定参数减少环境变化对采样精度的影响,同时1206贴片封装适配自动化生产,降低客户集成成本。

二、关键参数与性能解析

RLM12FTCMR005的核心参数围绕“低阻、准度、稳定、功率”四大维度设计,具体如下:

1. 低阻值设计:适配大电流采样

阻值为5mΩ(毫欧级),是其核心优势之一:大电流场景下(如10A电流通过时,压降仅50mV),极小的压降不会干扰主电路工作,同时避免电阻自身功耗过高(I=10A时,功耗仅0.5W,远低于1W额定功率)。

2. 精度与温度稳定性

  • 精度:±1%(比常规±5%采样电阻精度提升4倍),可满足电量计算、电流闭环控制等对精度要求较高的场景;
  • 温度系数:±100ppm/℃(即温度每变化1℃,阻值漂移±0.01%),若环境温度变化100℃,总漂移仅±1%,确保宽温环境下(如-55℃~125℃)采样数据稳定。

3. 功率与封装适配

额定功率1W,在1206贴片封装(英制尺寸:3.2mm×1.6mm,公制3216)下实现较高功率密度,适合对体积敏感的小型化产品(如移动电源、小型变频器)。

三、封装与可靠性设计

RLM12FTCMR005采用1206贴片封装,具备以下可靠性优势:

1. 工艺与材质

采用大毅自研的高纯度合金电阻体,配合厚膜印刷与激光微调工艺,确保阻值一致性;电阻体与封装材料(陶瓷基底)的热匹配性好,减少温度循环下的应力损伤。

2. 焊接与环保

兼容无铅回流焊工艺,符合RoHS与REACH环保标准,适配全球市场需求;引脚设计为镀锡层,焊接牢固,耐机械应力(如振动、冲击)。

3. 长期可靠性

经过高温老化(125℃/1000h)、温度循环(-55℃~125℃/500次)等可靠性测试,阻值漂移控制在±0.5%以内,适合工业级长期运行场景。

四、典型应用场景

RLM12FTCMR005的参数特性使其适配多领域电流检测需求,典型场景包括:

1. 消费电子:快充与移动电源

  • 作用:检测输出电流,实现过流保护、电量计算;
  • 优势:5mΩ低阻适配10A左右快充电流,±1%精度确保电量显示准确,1206封装适配小型化产品设计。

2. 工业控制:电机驱动与变频器

  • 作用:检测电机绕组电流,实现闭环调速、过流保护;
  • 优势:±100ppm/℃温度系数适配工业环境(-20℃~85℃)的温度变化,1W功率满足中功率电机(如1-5kW)的电流检测。

3. 新能源:小型储能与电动工具

  • 作用:检测电池充放电电流,避免过充过放;
  • 优势:低阻减少电池损耗,稳定的温度特性适配户外温度变化(如电动工具的冬季/夏季使用)。

4. 电源模块:DC-DC与AC-DC电源

  • 作用:检测输出电流,实现过流保护与功率调节;
  • 优势:紧凑封装适配高密度电源模块设计,精度满足电源效率监测需求。

五、选型与应用注意事项

为确保RLM12FTCMR005的稳定运行,需注意以下要点:

1. 功率降额

实际应用功率建议不超过额定功率的80%(即0.8W),避免长期过热导致阻值漂移;若需应对峰值电流,需参考大毅提供的降额曲线(如峰值电流14A时,持续时间不超过10ms)。

2. 电流计算

最大持续电流I_max=√(P/R)=√(1W/5mΩ)≈14.1A,实际应用需结合散热条件(如PCB铜箔面积)适当降额。

3. 布线设计

采样电路布线需尽量短(减少寄生电感),且避免与大功率器件相邻(减少热干扰);建议在电阻两端并联小电容(100nF)滤除高频噪声。

4. 温度范围

工作温度范围通常为-55℃~125℃,若应用于极端温度场景(如航空航天),需咨询大毅确认特殊型号。

综上,大毅RLM12FTCMR005凭借低阻、高精度、高稳定与紧凑封装,成为中功率电流检测场景的高性价比选型,广泛适配消费电子、工业、新能源等领域的需求。

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