Central Technologies

Central Technologies

Central Technologies offers high-quality inductive components and standard magnetics tailored for diverse applications in aerospace, automotive, aviation, medical, commercial, military sectors, and beyond. Our commitment to adhering to industry standards is evident in the expansion of our product portfolio to encompass over 500 distinct series of components. This extensive range enables Central Technologies to effectively rival leading manufacturers globally while meeting the varied needs of clients across industries.

Adjustable Inductors

Results:
79
Series
Inductance
Q @ Freq
Tolerance
Height
Size / Dimension
Package / Case
Mounting Type
Results remaining79
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Central Technologies
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ImageProduct DetailPriceAvailabilityECAD ModelMounting TypeSize / DimensionTolerancePackage / CaseHeightInductanceQ @ FreqSeries
CTE526HNAF-100299
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.394" L x 0.394" W (10.00mm x 10.00mm)
±3%
Radial
0.512" (13.00mm)
210 nH
80 @ 50MHz
CTE526HNF
CTE528SNASF-100073
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.299" L x 0.299" W (7.60mm x 7.60mm)
±4%
Radial
0.476" (12.10mm)
50 nH
80 @ 100MHz
CTE528F
CTE528DNASF-100081
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.299" L x 0.299" W (7.60mm x 7.60mm)
±6%
Radial
0.476" (12.10mm)
200 nH
70 @ 57MHz
CTE528F
CTCLNSF-T1023Z
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.413" L x 0.413" W (10.50mm x 10.50mm)
±10%
Radial
0.610" (15.50mm)
2.7 mH
80 @ 252kHz
CTCLNSF
CTE526HNAF-100295
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.394" L x 0.394" W (10.00mm x 10.00mm)
±3%
Radial
0.512" (13.00mm)
60 nH
90 @ 100MHz
CTE526HNF
CTCLNSF-T1032Z
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.413" L x 0.413" W (10.50mm x 10.50mm)
±10%
Radial
0.610" (15.50mm)
15 mH
70 @ 79.6kHz
CTCLNSF
CTE526HNAF-100309
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.394" L x 0.394" W (10.00mm x 10.00mm)
±3%
Radial
0.512" (13.00mm)
440 nH
100 @ 50MHz
CTE526HNAF-100318
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.394" L x 0.394" W (10.00mm x 10.00mm)
±3%
Radial
0.512" (13.00mm)
150 nH
CTE528DNASF-100079
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.299" L x 0.299" W (7.60mm x 7.60mm)
±6%
Radial
0.476" (12.10mm)
130 nH
CTE526HNAF-100308
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.394" L x 0.394" W (10.00mm x 10.00mm)
±3%
Radial
0.512" (13.00mm)
350 nH
100 @ 50MHz
CTRA1816F-722J
7.2 MH RFID ANTENNA COIL
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
0.689" L x 0.610" W (17.50mm x 15.50mm)
±5%
Nonstandard
0.150" (3.80mm)
7.2 mH
30 @ 125kHz
CTRA1816F-492J
4.91 MH RFID ANTENNA COIL
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
0.689" L x 0.610" W (17.50mm x 15.50mm)
±5%
Nonstandard
0.150" (3.80mm)
4.91 mH
CTRA1816F-472J
4.77 MH RFID ANTENNA COIL
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
0.689" L x 0.610" W (17.50mm x 15.50mm)
±5%
Nonstandard
0.150" (3.80mm)
28 @ 125kHz
CTE528DNF-100065
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.299" L x 0.299" W (7.60mm x 7.60mm)
±8%
Radial
0.476" (12.10mm)
130 nH
CTE526HNAF-100311
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.394" L x 0.394" W (10.00mm x 10.00mm)
±3%
Radial
0.512" (13.00mm)
50 nH
CTRA1816F-242J
2.47 MH RFID ANTENNA COIL
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
0.689" L x 0.610" W (17.50mm x 15.50mm)
±5%
Nonstandard
0.150" (3.80mm)
CTE528DNASF-100077
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.299" L x 0.299" W (7.60mm x 7.60mm)
±6%
Radial
0.476" (12.10mm)
80 nH
CTE528DNASF-100080
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.299" L x 0.299" W (7.60mm x 7.60mm)
±6%
Radial
0.476" (12.10mm)
160 nH
CTRA1816F-103J
10 MH RFID ANTENNA COIL
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
0.689" L x 0.610" W (17.50mm x 15.50mm)
±5%
Nonstandard
0.150" (3.80mm)
10 mH
25 @ 125kHz
CTE528DNF-100067
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
0.299" L x 0.299" W (7.60mm x 7.60mm)
±8%
Radial
0.476" (12.10mm)
210 nH

About  Adjustable Inductors

An inductor is an essential component in electrical circuits that exhibits the property of inductance. It is a passive two-terminal device that stores energy in a magnetic field when an electric current passes through it. This magnetic field is generated by a coil of wire wound around a core material, which can be made of various materials like iron, ferrite, or air. Adjustable inductors, also known as variable inductors, offer the flexibility to modify the inductance value by adjusting the position of a movable core within the coil. This core has the ability to influence the magnetic field and alter the lines of flux passing through the coil. By changing the core's position, the inductance of the coil can be increased or decreased accordingly, allowing for fine-tuning in circuit designs. The unit of inductance is the Henry (H), named after the physicist Joseph Henry. However, in practice, smaller units such as microhenries (μH) and nanohenries (nH) are more commonly used. These units represent fractions or multiples of a Henry, depending on the specific application requirements. Inductors are available in various mounting options to facilitate easy integration into different circuit designs. Surface mount technology (SMT) allows for direct placement and soldering of the inductor onto the surface of a printed circuit board (PCB). Through-hole mounting involves inserting the leads of the inductor into holes in the PCB and soldering them on the other side for secure attachment. The range of inductance values for adjustable inductors varies from 30 nanohenries (nH) to 2.5 millihenries (mH), covering a wide spectrum of applications. The appropriate inductance value is determined by the specific circuit requirements, such as desired frequency response, filtering characteristics, or energy storage capabilities. In summary, adjustable inductors provide designers with the ability to modify the inductance value by adjusting the position of a movable core. With mounting options including surface and through-hole, and a range of inductance values available, these components offer flexibility in circuit design and enable precise control over magnetic field storage in electrical systems.