WMSIC Electronic Components

KUU KNTC0805/10KF3435

ModelKNTC0805/10KF3435
Package0805
BrandKUU
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
KUU KNTC0805/10KF3435
Type
KUU
Minimum package
4000 圆盘

Technical parameters

Power
100mW
Electronic Component
Electronic Component
Electronic Component
KUU
Electronic Component
KNTC0805/10KF3435
Electronic Component
1
Electronic Component
1.25mm
Package
0805
Electronic Component
NTCThermistor Resistor
Electronic Component
0.041g
Electronic Component
2mm
Electronic Component
10kΩ
Electronic Component
0.85mm
Electronic Component
1
B
±1%
Electronic Component
BM0264342994
Operating Temperature
40℃~+125℃

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

KNTC0805/10KF3435 产品概述

一、概述

KNTC0805/10KF3435 是 KUU 品牌的一款高精度贴片负温度系数热敏电阻(NTC),采用 0805(2.0 × 1.25 × 0.85 mm)封装,专为对温度测量精度和尺寸限制要求较高的便携与工业类电子设备设计。该器件电阻标称值为 10 kΩ,电阻精度 ±1%,B 值精度 ±1%,并通过校验(校验通过!),适合在宽温区间内提供稳定、可靠的温度检测。

二、主要参数(摘要)

  • 品牌:KUU
  • 型号:KNTC0805/10KF3435
  • 封装:0805(长度 2.00 mm,宽度 1.25 mm,高度 0.85 mm)
  • 标称电阻(25°C):10 kΩ
  • 电阻精度:±1%
  • B 值(25°C/50°C):3380 K(±1%)
  • B 值(25°C/85°C):3435 K(±1%)
  • 最大稳态电流(25°C):440 μA
  • 最大功率:100 mW
  • 耗散系数(热散逸常数):2 mW/°C
  • 热时间常数:5 s
  • 工作温度范围:-40°C 至 +125°C
  • 校验状态:校验通过

三、温度—电阻关系与典型计算

NTC 的温度响应可由 B 常数近似描述:
R(T) = R25 × exp[B × (1/T - 1/T25)],其中温度以开尔文 (K) 表示,T25 = 298.15 K。

示例计算(近似):

  • 在 50°C(323.15 K)使用 B(25/50)=3380 K: R50 ≈ 10 kΩ × exp[3380 × (1/323.15 - 1/298.15)] ≈ 4.17 kΩ
  • 在 85°C(358.15 K)使用 B(25/85)=3435 K: R85 ≈ 10 kΩ × exp[3435 × (1/358.15 - 1/298.15)] ≈ 1.46 kΩ

这些计算说明该器件在常用测温区间内阻值下降迅速,适合快速响应的测温电路与分流/桥式测量方案。

四、自加热与稳态电流说明

  • 标称最大稳态电流(25°C):440 μA。该数值通常给出以确保自加热对测量误差的影响在可控范围内。
  • 按 I_max = 440 μA,R = 10 kΩ 时,功耗 P = I^2 × R ≈ 1.94 mW。
  • 由耗散系数 2 mW/°C 估算,自加热引起的温升约 = P / (2 mW/°C) ≈ 0.97°C。
    因此在以低电流驱动或测量(尤其是高精度测温)时,建议保持测量电流远低于最大稳态电流以降低自发热引入的误差,或在设计时考虑上述温升补偿。

五、封装与安装建议

  • 0805 小封装便于高密度贴片装配,适配常见的 SMD 自动贴装与回流焊流程。
  • 由于器件尺寸小、热容量低,焊盘设计应兼顾机械强度与热传导:建议使用与 0805 封装配套的焊盘,避免过大铜箔导致焊接过程中热不均或器件受力。
  • 回流焊工艺应遵循元件对温度敏感性的通用建议,避免超过制造商给出的焊接峰值温度时间。
  • 测量时若追求最高精度,建议采用恒流源或交流激励/桥式测量并尽量减小测量电流,减少自加热影响。

六、应用场景

  • 移动设备与可穿戴设备的环境温度检测
  • 家电、白电温度控制与过热保护
  • 电源、充电器与电池系统温度监测
  • 工业传感节点与 PCB 上温度感知(如热耦补偿点)
  • 任意需要小尺寸、高稳定性、高精度温度检测的电子产品

七、选型与注意事项

  • 若系统对温度测量精度要求极高,应注意整体测量链的误差叠加:电阻公差、B 值公差(均为 ±1%)、AD 转换精度、噪声及自加热。
  • 对于需在极高环境功率或连续加热场景,评估实际功耗与耗散系数后确认是否需要隔热或更大封装。
  • 在 PCB 布局时避免将热源(如大电流走线、功率器件)直接放置在热敏电阻附近,除非该位置就是预期测温点。

总结:KNTC0805/10KF3435 在体积、精度与热响应之间取得良好平衡,适合对尺寸和测温精度有较高要求的消费电子与工业应用。校验通过且 ±1% 的电阻与 B 值公差,使其在精密测温场合具备较高的可重复性与可靠性。

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