Amorphous Nanocrystalline Annular Core
● High saturation magnetic flux density, which can effectively reduce the size and weight of the device. ● High permeability and low coercivity, which enhance efficiency and reduce copper losses. ● Low losses, which help lower transformer temperature. ● Stable temperature performance, enabling continuous operation from -45℃ to 130℃.
Amorphous Nanocrystalline Annular Core
● High saturation magnetic flux density, which can effectively reduce the size and weight of the device. ● High permeability and low coercivity, which enhance efficiency and reduce copper losses. ● Low losses, which help lower transformer temperature. ● Stable temperature performance, enabling continuous operation from -45℃ to 130℃.
Magnetic core with high saturation magnetic flux density
● High saturation magnetic flux density, which can effectively reduce the size and weight of the device. ● High permeability and low coercivity, which enhance efficiency and reduce copper losses. ● Low loss, which helps lower the transformer’s temperature. ● Stable temperature performance, enabling continuous operation from -45℃ to 130℃.
Amorphous Nanocrystalline Circular Magnetic Core
● High saturation magnetic flux density, which can effectively reduce the size and weight of the device. ● High permeability and low coercivity, which enhance efficiency and reduce copper losses. ● Low loss, which helps lower the transformer’s temperature. ● Stable temperature performance, enabling continuous operation from -45℃ to 130℃.
Amorphous Nanocrystalline Magnetic Ring
● High saturation magnetic flux density, which can effectively reduce the size and weight of the device. ● High permeability and low coercivity, which enhance efficiency and reduce copper losses. ● Low loss, which helps lower transformer temperature. ● Stable temperature performance, enabling continuous operation from -45℃ to 130℃.