WMSIC Electronic Components

PSA MCS20FC-R47MHC MCS20FC

ModelMCS20FC-R47MHC
PackageSMD
BrandPSA
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

19 specifications

Core information

Product name
PSA MCS20FC-R47MHC
Type
PSA
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
PSA
Electronic Component
MCS20FC-R47MHC
Electronic Component
1
Package
SMD
Electronic Component
Power Inductor
Electronic Component
±20%
Electronic Component
0.048g
Inductor
470nH
Electronic Component
1
Electronic Component
BM0259581197
Current
4.05A
Resistor(DCR)
23mΩ
Electronic Component
Electronic Component
Electronic Component
3000
and Current(Isat)
5.3A

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

MCS20FC-R47MHC 产品概述

一、产品简介

MCS20FC-R47MHC 是 PSA(信昌电陶)系列的一款表面贴装功率电感,标准型 0806 封装,额定电感值 470 nH,公差 ±20%。该器件面向中小功率开关电源与电源滤波应用,具有较低的直流电阻(DCR)23 mΩ 和较高的额定电流能力,额定电流(Irated)为 4.05 A,饱和电流(Isat)为 5.3 A。小尺寸、高电流与较低损耗的组合,使其适用于空间受限且需较大输出电流的电源模块和转换器。

二、电气参数要点

  • 电感值:470 nH,公差 ±20%,适用于降压、升压以及滤波场合的中低频电感需求。
  • 额定电流(Irated):4.05 A,指允许在额定温升条件下长期通过的连续电流值。
  • 饱和电流(Isat):5.3 A,指在该电流附近电感量显著下降(趋近饱和)的临界值,应避免长期工作在此以上区域。
  • 直流电阻(DCR):23 mΩ,较低的 DCR 有利于减小铜损和压降。
  • 封装:SMD,0806,适配高密度 PCB 组装工艺。

三、性能与热管理(含计算示例)

  • 铜损(近似):P_loss ≈ I^2 × DCR。
    • 在额定电流 4.05 A 时,P_loss ≈ 4.05^2 × 0.023 Ω ≈ 0.38 W,直流压降约 0.093 V。
    • 在饱和电流 5.3 A 时,P_loss ≈ 5.3^2 × 0.023 Ω ≈ 0.65 W,直流压降约 0.122 V。
  • 温升与散热:由于功率损耗在器件上转化为热量,建议在设计时为电感提供良好的散热路径(合理铜箔面积、避免密集热源包围),并按电路工作电流做适当的电流降额。
  • 直流偏置效应:在高直流偏置时,电感值会下降(电感随通过电流增加而减小),特别在接近饱和电流时下降更明显。设计时应考虑此偏置效应对滤波/储能能力的影响。

四、典型应用场景

  • 开关稳压器(buck/boost)输出电感或能量储存元件;
  • 电源输入/输出滤波(降低开关噪声与纹波);
  • LED 驱动、便携设备电源模块、通讯设备电源管理;
  • 工业与消费类电子的点对点电源、模块化电源解决方案。

五、选型与设计建议

  • 工作电流选择:为保证长期可靠性与温升控制,建议连续工作电流在额定电流以下,通常取额定电流的 70%–90% 作为安全设计值,若环境温度较高或散热受限应进一步降额。
  • 纹波电流考虑:开关电源中的交流纹波电流会增加综合损耗,需按纹波 RMS 值叠加判断总损耗与温升。
  • 电感值容差影响:±20% 的容差意味着设计时需考虑最差(-20%)或最好(+20%)情况下的滤波/稳压性能,必要时可选择更高精度系列。
  • DCR 与效率:DCR 越低,直流损耗越小;对高效率系统要求较高时,可优先选取 DCR 更低或更大体积的型号。

六、布局与焊接注意点

  • 放置位置:电感应尽量靠近开关器件或输出电容,缩短高频环路,减少 EMI。
  • 走线与铜箔:为降低寄生电阻与改善散热,可在封装两侧增加过孔和铜平面;避免在电感附近布置敏感模拟信号线以减少磁耦合干扰。
  • 焊接工艺:采用常规回流焊工艺;注意焊接温度曲线符合器件制造商推荐的焊接规范,以免因过热影响磁芯性能或粘结材料。

七、可靠性与储存

  • 储存环境:避免潮湿、高温与强磁场环境;长期储存需参考厂商的包装与防潮建议。
  • 常见失效模式:长期过载导致磁芯局部饱和、过高温升引起绕组绝缘退化或电阻变化、机械应力导致引脚/封装损伤。通过合理降额和良好散热设计可大幅降低风险。

八、小结

MCS20FC-R47MHC(470 nH,±20%,DCR 23 mΩ,Irated 4.05 A,Isat 5.3 A,0806 SMD)是一款适用于中小功率开关电源与滤波场合的功率电感。其优势在于小体积下提供较高的载流能力与较低的直流损耗,适合空间受限但需较大输出电流的应用。在设计中应关注直流偏置对电感值的影响、DCR 引起的铜损与温升,并在 PCB 布局与散热上采取相应措施以确保长期稳定工作。若对电感容差或 DCR 有更高要求,可咨询供应商获取更详尽的测试条件与替代型号建议。

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