NF15 Series, Inrush Current Limiters (ICL)

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17
Manufacturer
Series
R @ 25°C
R @ Current
Current - Steady State Max
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Lead Spacing
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NF15
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ImageProduct DetailPriceAvailabilityECAD ModelToleranceApproval AgencyGradeLead SpacingSeriesR @ 25°CCurrent - Steady State MaxR @ CurrentDiameterQualification
NF15AA0309M--
ICL 3 OHM 20% 6.1A 15MM
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Quantity
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±20%
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-
0.300" (7.62mm)
NF15
3 Ohms
6.1 A
110 mOhms
0.591" (15.00mm)
-
NF15AA0809M--
ICL 8 OHM 20% 4.2A 15MM
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±20%
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-
0.300" (7.62mm)
NF15
8 Ohms
4.2 A
240 mOhms
0.591" (15.00mm)
-
NF15AA0709M--
ICL 7 OHM 20% 4.3A 15MM
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±20%
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-
0.300" (7.62mm)
NF15
7 Ohms
4.3 A
220 mOhms
0.591" (15.00mm)
-
NF15AA0609M--
ICL 6 OHM 20% 4.7A 15MM
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PCB Symbol, Footprint & 3D Model
±20%
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-
0.300" (7.62mm)
NF15
6 Ohms
4.7 A
190 mOhms
0.591" (15.00mm)
-
NF15AA0509M--
ICL 5 OHM 20% 4.9A 15MM
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±20%
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-
0.300" (7.62mm)
NF15
5 Ohms
4.9 A
170 mOhms
0.591" (15.00mm)
-
NF15AA0470M--
ICL 47 OHM 20% 2.3A 15MM
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±20%
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-
0.300" (7.62mm)
NF15
47 Ohms
2.3 A
740 mOhms
0.591" (15.00mm)
-
NF15AA0409M--
ICL 4 OHM 20% 5.5A 15MM
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±20%
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-
0.300" (7.62mm)
NF15
4 Ohms
5.5 A
130 mOhms
0.591" (15.00mm)
-
NF15AA0400M--
ICL 40 OHM 20% 2.3A 15MM
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±20%
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-
0.300" (7.62mm)
NF15
40 Ohms
2.3 A
800 mOhms
0.591" (15.00mm)
-
NF15AA0330M--
ICL 33 OHM 20% 2.5A 15MM
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±20%
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-
0.300" (7.62mm)
NF15
33 Ohms
2.5 A
660 mOhms
0.591" (15.00mm)
-
NF15AA0100M--
ICL 10 OHM 20% 3.7A 15MM
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PCB Symbol, Footprint & 3D Model
±20%
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-
0.300" (7.62mm)
NF15
10 Ohms
3.7 A
300 mOhms
0.591" (15.00mm)
-
NF15AA0259M--
ICL 2.5 OHM 20% 6.6A 15MM
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PCB Symbol, Footprint & 3D Model
±20%
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-
0.300" (7.62mm)
NF15
2.5 Ohms
6.6 A
90 mOhms
0.591" (15.00mm)
-
NF15AA0250M--
ICL 25 OHM 20% 2.8A 15MM
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±20%
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-
0.300" (7.62mm)
NF15
25 Ohms
2.8 A
530 mOhms
0.591" (15.00mm)
-
NF15AA0200M--
ICL 20 OHM 20% 3.1A 15MM
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Quantity
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PCB Symbol, Footprint & 3D Model
±20%
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-
0.300" (7.62mm)
NF15
20 Ohms
3.1 A
430 mOhms
0.591" (15.00mm)
-
NF15AA0160M--
ICL 16 OHM 20% 3A 15MM
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Quantity
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PCB Symbol, Footprint & 3D Model
±20%
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-
0.300" (7.62mm)
NF15
16 Ohms
3 A
440 mOhms
0.591" (15.00mm)
-
NF15AA0159M--
ICL 1.5 OHM 20% 8.3A 15MM
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Quantity
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PCB Symbol, Footprint & 3D Model
±20%
-
-
0.300" (7.62mm)
NF15
1.5 Ohms
8.3 A
60 mOhms
0.591" (15.00mm)
-
NF15AA0139M--
ICL 1.3 OHM 20% 8.9A 15MM
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Quantity
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PCB Symbol, Footprint & 3D Model
±20%
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-
0.300" (7.62mm)
NF15
1.3 Ohms
8.9 A
50 mOhms
0.591" (15.00mm)
-
NF15AA0120M--
ICL 12 OHM 20% 3.5A 15MM
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Quantity
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PCB Symbol, Footprint & 3D Model
±20%
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-
0.300" (7.62mm)
NF15
12 Ohms
3.5 A
330 mOhms
0.591" (15.00mm)
-

About  Inrush Current Limiters (ICL)

Inrush Current Limiters (ICLs) are components designed to control and limit the initial surge of electric current that occurs when an electrical device is switched on. This surge, known as inrush current, can be significantly higher than the steady-state current required for normal operation. The primary function of ICLs is to protect the electrical circuit and its components from damage caused by the high inrush current. This surge can potentially overload sensitive devices such as power supplies, transformers, and motors, leading to malfunctions or even component failure. By limiting the inrush current, ICLs help ensure the safe and reliable operation of the devices they are installed in. ICLs achieve this by providing a controlled path for the initial surge of current to flow through. They have a specific resistance that regulates the flow of current during the startup phase of the device. This resistance gradually decreases as the current stabilizes, allowing normal operation to continue without any impedance. The specifications of ICLs can vary depending on the application. The steady-state maximum range of current that ICLs can handle typically falls within the range of 100 milliamperes (mA) to 80 Amperes (A). The resistance at current can range from 1 milliohm to 30.3 ohms. Additionally, ICLs come with different lead spacing options, ranging from 0.098 inches to 1.378 inches, to accommodate various circuit designs. Ultimately, Inrush Current Limiters play a critical role in circuit protection by mitigating the risk of overload and damage caused by inrush current. Their ability to control and limit the surge helps ensure the longevity and reliability of electrical devices and systems.