WMSIC Electronic Components

cjiang FTC404030S2R2MGCA

ModelFTC404030S2R2MGCA
PackageSMD,4.1x4.1mm
Brandcjiang
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
cjiang FTC404030S2R2MGCA
Type
CJIANG
Minimum package
2000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
CJIANG
Electronic Component
FTC404030S2R2MGCA
Electronic Component
1
Package
SMD,4.1x4.1mm
Electronic Component
Power Inductor
Electronic Component
±20%
Electronic Component
0.58g
Inductor
2.2uH
Electronic Component
1
Electronic Component
BM0258760350
Current
9A
Resistor(DCR)
22mΩ
Electronic Component
Electronic Component
Electronic Component
2000
and Current(Isat)
10.5A

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

FTC404030S2R2MGCA 产品概述

FTC404030S2R2MGCA 是长江微电(cjiang)推出的一款表面贴装功率电感,尺寸为 4.1 × 4.1 mm,适用于高电流、紧凑型电源电路。其主要电气参数为额定电感 2.2 µH(±20%)、额定电流 9 A、饱和电流 Isat 10.5 A,直流电阻(DCR)为 22 mΩ。该器件面向移动电源管理、降压(buck)转换器、分布式电源和其他要求大电流的小体积外形的应用场景。

一、核心参数解析与工程意义

  • 电感值:2.2 µH,±20% 容差。实际使用中,电感范围在约 1.76 µH 到 2.64 µH 之间,需考虑容差对环路频率和纹波电流的影响。
  • 额定电流(Irated):9 A,表示在规定温升和环境条件下可持续通过的电流值。
  • 饱和电流(Isat):10.5 A,表示在该电流下电感会出现明显降感的临界点,短时冲击或峰值电流应控制在该值以下以避免磁芯饱和。
  • 直流电阻(DCR):22 mΩ。DCR 决定了 I²R 损耗,是热设计和效率估算的重要参数。举例:在连续 9 A 条件下的直流损耗 P = I²·DCR = 9² × 0.022 ≈ 1.78 W;该损耗对小体积器件会产生显著温升,必须在 PCB 布局与散热设计中予以考虑。

二、典型应用场景

  • 同步降压转换器(buck)、电源模块(PMIC)中的开关电感:适合高开关频率下的能量存储和滤波。
  • 输入/输出电源滤波器:在需要承受高直流偏置并兼顾体积的小型电源模块中。
  • 电机驱动的局部滤波或分布式电源:在需要较大连续电流的场合提供稳定电流通路。
  • 汽车电子与工业控制:对电感体积与电流密度有严格要求的应用(需根据温度和可靠性标准进一步验证)。

三、选型与设计注意事项

  • 电流裕量:额定电流 9 A 与饱和电流 10.5 A 的差值较小,建议在设计时为连续工作电流留出额外裕量(一般工程实践中连续电流控制在额定电流的 80–100% 内,峰值电流短时不超过 Isat)。若系统峰值/纹波电流较大,应选择更高 Isat 的器件或采取并联方案。
  • 损耗与热管理:如上所示,在 9 A 下 I²R 损耗约 1.78 W,仅 DCR 损耗就会导致显著发热。需通过以下方式控制温升:优化散热路径(铜箔面积、热 vias)、增加器件间距、必要时采用风冷或散热片。
  • 纹波电流与铁损:开关频率、峰值纹波电流和磁芯材料决定铁损大小。高频高纹波会增加损耗并影响电感有效值,应在电路仿真中同时考虑铜损和磁芯损耗。
  • PCB 布局:靠近开关器件放置,短回流回路,尽量减小环路面积;为降低温升,扩大电感焊盘及附近的散热铜皮,必要时在焊盘下方布置热 vias 至内层/底层散热层。

四、可靠性与测试建议

  • 测试项:测量 DCR、在直流偏置下的 L 值(B-H 曲线影响)、远高于工作频率的感值保持性、温升测试以及饱和特性(L vs I 曲线)。
  • 焊接与可靠性:遵循器件制造商的回流焊温度曲线,避免多次高温循环;进行热循环、振动、盐雾等可靠性筛选,尤其在汽车或工业领域需按相应标准验证。
  • 质量验收:到货时抽样测量 DCR 与感值、外观检验(焊盘、封装完整性)和 X 射线检查(如需)。

五、选型建议与替代考虑

  • 若系统对效率和温升要求较高,可考虑 DCR 更低或 Isat 更高的功率型电感,或采用多个电感并联分摊电流。
  • 在尺寸受限但需要更高饱和裕量的场景,可评估高度更高但饱和电流更大的封装。
  • 购买时请核对完整型号与最新 Datasheet,确认温度系数、频率响应和封装尺寸细节(例如厚度/高度)以配合 PCB 设计。

总结:FTC404030S2R2MGCA 提供了在小尺寸下较高直流电流能力的解决方案,适用于需要高电流密度且空间受限的电源系统。但由于 DCR 导致的 I²R 损耗不可忽视,工程时需重点关注热管理、纹波与饱和裕量,并在实际方案中进行仿真与样机验证。

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