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WVL9FJ821K WVL9FJ821K 32820 Vishay Dale ADJUSTABLE INDUCTOR 820UH TH Radial, Vertical Cylinder
WVL9FJ682K WVL9FJ682K 38457 Vishay Dale ADJUSTABLE INDUCTOR 6.8MH TH Radial, Vertical Cylinder
WVL9FJR68J WVL9FJR68J 10692 Vishay Dale ADJUSTABLE INDUCTOR 680NH TH Radial, Vertical Cylinder
WVL9FJR15J WVL9FJR15J 33041 Vishay Dale ADJUSTABLE INDUCTOR 150NH TH Radial, Vertical Cylinder
WVL9FJ823K WVL9FJ823K 22764 Vishay Dale ADJUSTABLE INDUCTOR 82MH TH Radial, Vertical Cylinder
WVL9FJR56J WVL9FJR56J 15324 Vishay Dale ADJUSTABLE INDUCTOR 560NH TH Radial, Vertical Cylinder
WVL9FJ3R3K WVL9FJ3R3K 5621 Vishay Dale ADJUSTABLE INDUCTOR 3.3UH TH Radial, Vertical Cylinder
WVL9FJ680K WVL9FJ680K 30009 Vishay Dale ADJUSTABLE INDUCTOR 68UH TH Radial, Vertical Cylinder
WVL9FJ390KH WVL9FJ390KH 14296 Vishay Dale ADJUSTABLE INDUCTOR 39UH TH Radial, Horizontal Cylinder
WVL9FJ560K WVL9FJ560K 8409 Vishay Dale ADJUSTABLE INDUCTOR 56UH TH Radial, Vertical Cylinder
WVL9FJ470K WVL9FJ470K 32710 Vishay Dale ADJUSTABLE INDUCTOR 47UH TH Radial, Vertical Cylinder
WVL9FJ471K WVL9FJ471K 24978 Vishay Dale ADJUSTABLE INDUCTOR 470UH TH Radial, Vertical Cylinder
WVL9FJ3R9K WVL9FJ3R9K 17886 Vishay Dale ADJUSTABLE INDUCTOR 3.9UH TH Radial, Vertical Cylinder
WVL9FJ4R7K WVL9FJ4R7K 24031 Vishay Dale ADJUSTABLE INDUCTOR 4.7UH TH Radial, Vertical Cylinder
WVL9FJ472K WVL9FJ472K 12525 Vishay Dale ADJUSTABLE INDUCTOR 4.7MH TH Radial, Vertical Cylinder
WVL9FJ473K WVL9FJ473K 35589 Vishay Dale ADJUSTABLE INDUCTOR 47MH TH Radial, Vertical Cylinder
WVL9FJ5R6K WVL9FJ5R6K 32072 Vishay Dale ADJUSTABLE INDUCTOR 5.6UH TH Radial, Vertical Cylinder
WVL9FJ562K WVL9FJ562K 5766 Vishay Dale ADJUSTABLE INDUCTOR 5.6MH TH Radial, Vertical Cylinder
WVL9FJ470KH WVL9FJ470KH 20834 Vishay Dale ADJUSTABLE INDUCTOR 47UH TH Radial, Horizontal Cylinder
WVL9FJ6R8K WVL9FJ6R8K 39892 Vishay Dale ADJUSTABLE INDUCTOR 6.8UH TH Radial, Vertical Cylinder

Adjustable Inductors

An adjustable inductor is a passive component that can adjust the inductance value mechanically or electrically. Its core structure usually includes magnetic materials (such as ferrite cores) and movable adjustment devices. By changing the position of the core or the spacing between the coils, the inductance value can be dynamically adjusted. It is widely used in high-frequency circuits, power systems, and electronic equipment.

 

1. How do Adjustable Inductors Work?‌

1) Mechanically Adjustable Type

A ferrite core with a threaded structure is usually used. The magnetic resistance of the magnetic circuit is changed by rotating the core position inside the transformer, thereby achieving continuous adjustment of the inductance value. For example, the oscillation coil of a semiconductor radio adjusts the coupling distance between the coil and the core by rotating the magnetic cap.

 

2) ‌Magnetic Saturation Adjustment Type‌

The inductance is adjusted by changing the magnetic saturation state of the core material. For example, a linear coil uses the relative position of the permanent magnet and the coil to adjust the magnetic saturation characteristics to achieve nonlinear inductance compensation.

 

3) ‌Filling Medium Adjustment Type‌

Some designs use synthetic resin and other materials as core carriers, combined with surface roughening treatment to enhance mechanical fixing performance and ensure adjustment stability.

 

2. What are Adjustable Inductors Used for?

High-Frequency Circuit‌: used in the local oscillator circuit of radio equipment, frequency tuning is achieved by adjusting the inductance value and capacitance in real-time.

 

‌Power System‌: used as an inductor reactor to dynamically adjust the reactive power of the power grid and suppress harmonic interference.

‌Display Device‌: in the line scanning circuit of traditional TV sets, the linear distortion of the image is compensated by adjusting the magnetic core.

‌Resonant Circuit‌: combined with capacitors to form an LC filter circuit, filter specific frequency signals, and suppress noise.

 

3. What are the Technical Characteristics of Adjustable Inductors?

‌Adjustment Range‌: depends on the magnetic core material (such as ferrite and amorphous alloy) and mechanical structure design, some models can achieve several times the inductance change.

‌Frequency Response‌: in high-frequency applications, the influence of core loss and distributed capacitance on Q value needs to be considered, and low-loss magnetic core materials are usually selected.

‌Reliability Design‌: the precision adjustment mechanism needs to have dustproof and vibration-resistant characteristics, and industrial-grade products often use fully sealed packaging.

 

4. Selection Points for Adjustable Inductors

‌Current Capacity‌: the saturation current index needs to be evaluated to avoid a sudden drop in inductance due to core saturation.

‌Temperature Stability‌: The temperature coefficient of ferrite material directly affects the long-term stability of the inductance value.

‌Packaging Form‌: It is divided into plug-in type, SMD type and modular packaging to meet the needs of different installation scenarios.

 

5. Adjustable Inductors FAQs

1) ‌What is the difference between adjustable inductors and fixed inductors? ‌

‌Flexibility‌: Adjustable inductors support real-time adjustment to meet dynamic circuit requirements, while fixed inductance values are statically set;

‌Structural Complexity‌: Adjustable devices contain additional adjustment components and are usually more expensive.

 

2) ‌What issues should be paid attention to when using adjustable inductors? ‌

‌Mechanical Stability‌: Frequent adjustment may cause core wear or poor contact;

‌Temperature Influence‌: High temperature may change the magnetic permeability of the core material, and wide temperature specifications need to be selected;

‌Installation Method‌: Avoid external force vibration to cause inductance value drift.