WR Series, Wireless Charging Coils

Results:
26
Manufacturer
Series
Inductance
DC Resistance (DCR)
Size / Dimension
Type
Q @ Freq
Operating Temperature
Tolerance
Function
Current - Saturation (Isat)
Frequency - Self Resonant
Current Rating (Amps)
Results remaining26
Applied Filters:
WR
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ImageProduct DetailPriceAvailabilityECAD ModelCurrent Rating (Amps)Operating TemperatureToleranceQ @ FreqSeriesFunctionTypeInductanceDC Resistance (DCR)Current - Saturation (Isat)Frequency - Self ResonantSize / Dimension
WR483265-15F5-G
RX 1 COIL 1 LYR 13.3UH
1+
$7.6056
5+
$7.1831
10+
$6.7606
Quantity
2 Available
Can ship immediately
Ships from: HK
PCB Symbol, Footprint & 3D Model
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WR
Receiver
1 Coil, 1 Layer
13.3µH
200mOhm
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1.89" L x 1.27" W x 0.04" H (48.2mm x 32.2mm x 1.2mm)
WR202010-18M8-ID
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
±5%
-
WR
Receiver
1 Coil, 2 Layer
11µH
350mOhm
-
-
0.79" Dia x 0.03" H (20.0mm x 0.8mm)
WR202020-18M8-G
RX 1 COIL, 1 LYR 9.9UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
-
-
WR
Receiver
1 Coil, 1 Layer
9.9µH
520mOhm
-
-
0.79" Dia x 0.02" H (20.0mm x 0.6mm)
WR151580-48F2-G
RX 1 COIL 4 LYR 27.1UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
-
-
WR
Receiver
1 Coil, 4 Layer
27.1µH
500mOhm
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-
0.59" Dia x 0.10" H (15.0mm x 2.6mm)
WR303050-15F5-G
RX 1 COIL 2 LYR 12.3UH
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Quantity
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PCB Symbol, Footprint & 3D Model
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-
-
-
WR
Receiver
1 Coil, 2 Layer
12.3µH
410mOhm
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1.18" L x 1.16" W x 0.03" H (30.0mm x 29.6mm x 1.0mm)
WR524825-17M6-NF-G
RX 1 COIL, 1 LYR 16.8UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
-
-
WR
Receiver
1 Coil, 1 Layer
16.8µH
750mOhm
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2.05" L x 1.89" W x 0.02" H (52.0mm x 48.0mm x 0.5mm)
WR221230-36M8-G
RX 1 COIL 2 LYR 27.9UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
-
-
WR
Receiver
1 Coil, 2 Layer
27.9µH
1.21Ohm Max
-
-
-
WR121210-27M8-ID
RX 1 COIL 1 LYR 8.32UH
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PCB Symbol, Footprint & 3D Model
-
-
±5%
-
WR
Receiver
1 Coil, 1 Layer
8.32µH
950mOhm
-
-
0.47" Dia x 0.01" H (12.0mm x 0.3mm)
WR111180-49F5-G
RX 1 COIL 3 LYR 31.8UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
±5%
-
WR
Receiver
1 Coil, 3 Layer
31.8µH
1.34Ohm
-
-
0.43" Dia x 0.07" H (11.0mm x 1.7mm)
WR202010-18M8-SM
RX 1 COIL 2 LYR 10.68UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
±5%
-
WR
Receiver
1 Coil, 2 Layer
10.68µH
350mOhm
-
-
0.79" Dia x 0.03" H (20.0mm x 0.8mm)
WR282840-37K2-LR3
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Quantity
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PCB Symbol, Footprint & 3D Model
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-
WR
Receiver
1 Coil, 1 Layer
46µH
1.25Ohm
-
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-
WR-383250-17M2-G
RX 1 COIL 1 LYR BIFILAR 11.1UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-30°C ~ 70°C
±5%
-
WR
Receiver
1 Coil, 1 Layer, Bifilar
11.1µH
270mOhm Max
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1.50" L x 1.26" W x 0.04" H (38.1mm x 32.0mm x 1.0mm)
WR424245-13K2-G
RX 1 COIL, 1 LYR 11.9UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
-
-
WR
Receiver
1 Coil, 1 Layer
11.9µH
220mOhm
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-
1.65" L x 1.65" W x 0.04" H (42.0mm x 42.0mm x 0.9mm)
WR111180-36F5-B1
RX 1 COIL 2 LYR 16.6UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
-
-
WR
Receiver
1 Coil, 2 Layer
16.6µH
1Ohm
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-
0.43" Dia x 0.06" H (11.0mm x 1.5mm)
WR222230-26M8-G
RX 1 COIL 2 LYR 27UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
-
-
WR
Receiver
1 Coil, 2 Layer
27µH
1.1Ohm Max
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-
0.87" Dia x 0.03" H (22.0mm x 0.9mm)
WR303050-12F5-ID
RX 1 COIL 1 LYR 8.23UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
±5%
-
WR
Receiver
1 Coil, 1 Layer
8.23µH
260mOhm
-
-
1.18" L x 1.17" W x 0.03" H (30.0mm x 29.6mm x 0.9mm)
WR483265-13F5-G
RX 1 COIL, 1 LYR 10.1UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
-
-
WR
Receiver
1 Coil, 1 Layer
10.1µH
270mOhm
-
-
1.90" L x 1.27" W x 0.05" H (48.2mm x 32.2mm x 1.3mm)
WR444030-16F3-G
RX 1 COIL 1 LYR 19UH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
-
-
WR
Receiver
1 Coil, 1 Layer
19µH
700mOhm
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-
1.71" L x 1.56" W x 0.02" H (43.5mm x 39.5mm x 0.6mm)
WR464650-10K2-FS3
RX 1 COIL, 1 LYR 7.3UH
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PCB Symbol, Footprint & 3D Model
-
-
-
-
WR
Receiver
1 Coil, 1 Layer
7.3µH
70mOhm
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1.81" L x 1.81" W x 0.12" H (46.0mm x 46.0mm x 3.0mm)
WR555540-16K2-FS2
RX 1 COIL 2 LYR 15.8UH
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PCB Symbol, Footprint & 3D Model
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98 @ 100kHz
WR
Receiver
1 Coil, 2 Layer
15.8µH
100mOhm
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2.13" L x 2.13" W x 0.09" H (54.0mm x 54.0mm x 2.4mm)

About  Wireless Charging Coils

Wireless charging coils are key components in the technology of inductive power transfer, which enables the wireless transfer of energy from a transmitting coil to a receiving coil. These coils generate an alternating electromagnetic field that facilitates the transfer of energy to other coils positioned parallel and in close proximity. The primary application of wireless charging coils is to charge batteries or power electronic devices without the need for physical connections. When energy is transferred from the transmitting coil to the receiving coil, it can be used to charge the battery or directly power the device. Wireless charging coils come in different designs, serving various purposes. Some coils are specifically designed to function as receivers, while others are designed as transmitters. There are also dual-purpose coils that can act as both transmitters and receivers. These coils may consist of a single coil or multiple coils with multiple layers of windings, depending on the specific requirements of the wireless charging system. To ensure compatibility and optimal performance, wireless charging coils are rated based on several key parameters. These parameters include the inductance of the coil, which determines its ability to store and transfer energy efficiently. The self-resonant frequency indicates the frequency at which the coil naturally vibrates electrically. The saturation current represents the maximum current that the coil can handle before its magnetic properties become compromised. Lastly, the Q factor, or quality factor, measures the efficiency of the coil's energy transfer at a given frequency. By considering these important parameters, engineers can select the appropriate wireless charging coils for their specific applications, ensuring efficient and reliable wireless power transfer. In summary, wireless charging coils are crucial components in wireless power transfer systems. They generate electromagnetic fields to facilitate the inductive transfer of energy between coils, enabling wireless charging of batteries and powering electronic devices. By considering factors such as inductance, self-resonant frequency, saturation current, and Q factor, engineers can design efficient and effective wireless charging systems.