Adjustable Inductors

Image Part Number Description / PDF Quantity Rfq
WVL9FJ4R7K

WVL9FJ4R7K

Vishay / Dale

ADJUSTABLE INDUCTOR 4.7UH TH

0

WVL9FJ680K

WVL9FJ680K

Vishay / Dale

ADJUSTABLE INDUCTOR 68UH TH

0

WVL9FJ100K

WVL9FJ100K

Vishay / Dale

ADJUSTABLE INDUCTOR 10UH TH

0

WVL9FJ391K

WVL9FJ391K

Vishay / Dale

ADJUSTABLE INDUCTOR 390UH TH

0

WVL9FJ560K

WVL9FJ560K

Vishay / Dale

ADJUSTABLE INDUCTOR 56UH TH

0

WVL9EB561K

WVL9EB561K

Vishay / Dale

ADJUSTABLE INDUCTOR

0

WVL9FJ272K

WVL9FJ272K

Vishay / Dale

ADJUSTABLE INDUCTOR 2.7MH TH

0

WVL9FJ823K

WVL9FJ823K

Vishay / Dale

ADJUSTABLE INDUCTOR 82MH TH

0

WVL9FJ3R9K

WVL9FJ3R9K

Vishay / Dale

ADJUSTABLE INDUCTOR 3.9UH TH

0

WVL9FJ472K

WVL9FJ472K

Vishay / Dale

ADJUSTABLE INDUCTOR 4.7MH TH

0

WVL9FJ2R7K

WVL9FJ2R7K

Vishay / Dale

ADJUSTABLE INDUCTOR 2.7UH TH

0

WVL9FJ151K

WVL9FJ151K

Vishay / Dale

ADJUSTABLE INDUCTOR 150UH TH

0

WVL9FJ1R0K

WVL9FJ1R0K

Vishay / Dale

ADJUSTABLE INDUCTOR 1UH TH

0

WVL9FJ682K

WVL9FJ682K

Vishay / Dale

ADJUSTABLE INDUCTOR 6.8MH TH

0

WVL9EB2R2K

WVL9EB2R2K

Vishay / Dale

ADJUSTABLE INDUCTOR 2.2UH TH

0

WVL9FJ153K

WVL9FJ153K

Vishay / Dale

ADJUSTABLE INDUCTOR 15MH TH

0

WVL9FJ180K

WVL9FJ180K

Vishay / Dale

ADJUSTABLE INDUCTOR 18UH TH

0

WVL9FJR10J

WVL9FJR10J

Vishay / Dale

ADJUSTABLE INDUCTOR 100NH TH

0

WVL9FJ820K

WVL9FJ820K

Vishay / Dale

ADJUSTABLE INDUCTOR 82UH TH

0

WVL9EB1R2K

WVL9EB1R2K

Vishay / Dale

ADJUSTABLE INDUCTOR 1.2UH TH

0

Adjustable Inductors

1. Overview

Adjustable inductors are electromagnetic components with variable inductance values, enabling precise control of current and voltage in electronic circuits. Unlike fixed inductors, these components incorporate mechanical or electronic adjustment mechanisms to modify their magnetic properties. They play critical roles in RF tuning circuits, power supply regulation, and signal processing systems, offering flexibility in modern electronics such as communication devices, automotive electronics, and industrial control systems.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Variable InductorsMechanically adjustable magnetic coresRadio frequency tuning circuits
Digitally Controlled InductorsProgrammable inductance via IC interfacesSmart power supplies
Magnetically Adjustable InductorsExternal magnetic field controlIndustrial motor drives
Step-Tunable InductorsDiscrete inductance level selectionTelecom infrastructure equipment

3. Structure and Components

Typical adjustable inductors consist of: - Bobbin-wound copper coils with enamel insulation - Adjustable magnetic cores (ferrite, powdered iron, or amorphous alloys) - Mechanical adjustment mechanisms (screw actuators or rotary knobs) - Shielded enclosures for EMI reduction - Termination options (SMD pads or through-hole leads) The core movement mechanism enables inductance variation by altering magnetic flux paths, with precision tolerances down to 1%.

4. Key Technical Parameters

ParameterDescriptionImportance
Inductance RangeAdjustable value span (e.g., 1-100 H)Determines application flexibility
Q FactorQuality factor (50-300 typical range)Affects frequency selectivity
Rated CurrentMax DC/AC current capacityPrevents saturation failure
Temperature Stability 0.05%/ C typical driftEnsures performance consistency

5. Application Fields

Primary applications include: - Telecommunications: 5G base stations, software-defined radios - Automotive: EV charging systems, ADAS sensors - Industrial: Smart grid controllers, motor drives - Consumer Electronics: Wireless chargers, audio filters - Medical: MRI scanner gradient coils, implantable devices

6. Leading Manufacturers

ManufacturerProduct SeriesKey Features
CoilcraftX2XX Adjustable Inductors100 nH-10 H range, 18 GHz bandwidth
TDKEFM SeriesAutomotive-grade, AEC-Q200 compliant
Bourns434 SeriesPCB-mount, 1-100 MHz operation
API Delevan7000 SeriesHigh-precision ( 0.5%) military-grade

7. Selection Guidelines

Key considerations: - Required inductance range and adjustment resolution - Operating frequency vs. Q factor requirements - Current rating with safety derating margin - Environmental conditions (temperature, vibration) - Mounting compatibility (SMD vs. through-hole) Application Case: In RF filter design, select high-Q ( 150) inductors with sub-nH precision to meet 2.4 GHz ISM band requirements.

8. Industry Trends

Current development trends include: - Miniaturization through advanced magnetic materials - Integration with sensor networks for smart systems - Digital control interfaces (I2C/PWM compatibility) - Increased power density for EV applications - Enhanced temperature stability (-55 C to +155 C operation)

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