Magnetic induction power supply device
10923951 ยท 2021-02-16
Assignee
Inventors
Cpc classification
H02J7/00034
ELECTRICITY
H02J9/00
ELECTRICITY
H02M1/0006
ELECTRICITY
H02M1/32
ELECTRICITY
G05F1/14
PHYSICS
H02M7/12
ELECTRICITY
H02J50/80
ELECTRICITY
H02M7/06
ELECTRICITY
International classification
H02M7/06
ELECTRICITY
H02J9/00
ELECTRICITY
H02M7/12
ELECTRICITY
H02J3/36
ELECTRICITY
G05F1/14
PHYSICS
Abstract
Disclosed is a magnetic induction power supply device, which switches the unit coil having the smallest number of windings to a rectification unit at the initial operation, thereby preventing the parts damaged due to an excessive inrush voltage. The disclosed magnetic induction power supply device switches the unit coil having the smallest number of windings to the rectification unit when emergency power is applied from a first power supply unit or a second power supply unit. The second power supply unit can supply the power source induced in the unit coils to a sensing unit as the emergency power.
Claims
1. A magnetic induction power supply device, comprising: a current transformer attached to a power line to induce a voltage, and having a plurality of unit coils; a sensing unit configured to sense the voltage induced in the current transformer; a rectification unit configured to rectify the voltage induced in the current transformer; a switching unit configured to switch so that at least one among the plurality of unit coils is connected to the rectification unit based on the voltage sensed in the sensing unit; and a first power supply unit configured to supply emergency power to the sensing unit at an initial operation, wherein the sensing unit is configured to control the switching unit so that a unit coil having the smallest number of windings among the plurality of unit coils is connected to the rectification unit during a set time when the emergency power is supplied from the first power supply unit.
2. The magnetic induction power supply device of claim 1, wherein the first power supply unit is a battery.
3. The magnetic induction power supply device of claim 1, further comprising a second power supply unit configured to supply the emergency power to the sensing unit at the initial operation, wherein the second power supply unit configured to supply the power source induced from at least one among the plurality of unit coils to the sensing unit.
4. The magnetic induction power supply device of claim 3, wherein the second power supply unit is a rectification circuit composed of a plurality of diodes.
5. The magnetic induction power supply device of claim 3, wherein the second power supply unit configured to supply the emergency power, which has rectified the power source induced from at least one among the plurality of unit coils, to the sensing unit.
6. The magnetic induction power supply device of claim 1, wherein the switching unit configured to switch so that two or more among the plurality of unit coils are connected to the rectification unit when the voltage sensed in the sensing unit is lower than the minimum reference voltage.
7. The magnetic induction power supply device of claim 1, wherein the switching unit configured to switch so that the unit coil having the largest number of windings among the plurality of unit coils is connected to the rectification unit when the voltage sensed in the sensing unit is equal to or higher than the minimum reference voltage and is equal to or lower than the maximum reference voltage.
8. The magnetic induction power supply device of claim 1, wherein the switching unit configured to switch so that the unit coil having the smallest number of windings among the plurality of unit coils is connected to the rectification unit when the voltage sensed in the sensing unit exceeds the maximum reference voltage.
9. The magnetic induction power supply device of claim 1, wherein the current transformer comprises two or more unit coils having different number of windings from each other.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) Hereinafter, the most preferred embodiment of the present disclosure will be described with reference to the accompanying drawings so that those skilled in the art to which the present disclosure pertains can easily practice the technical spirit of the present disclosure. First, in adding reference numerals to the components in each drawing, it is to be noted that the same components are denoted by the same reference numerals even though they are illustrated in different drawings. In addition, in the following description of the present disclosure, a detailed description of known configurations or functions will be omitted when it is determined to obscure the subject matter of the present disclosure.
(6) Referring to
(7) The current transformer 110 is installed at a power line 200 through which a large-capacity of current flows to induce a voltage (or current, power) from the large-capacity of current flowing through the power line 200. The current transformer 110 is formed in a structure that can be detached from and attached to the power line 200, such as a clamp type. For example, the current transformer 110 divides a core 112 inside the current transformer 110 into two in order to be easily detached from and attached to the power line 200, thereby constituting an upper core and a lower core.
(8) A plurality of unit coils 114 are wound around the core 112. At this time, at least two unit coils among the plurality of unit coils 114 are wound to have different number of windings from each other.
(9) For example, the current transformer 110 is provided with the core 112, and a first unit coil 114a and a second unit coil 114b, which are configured to wind around the core 112, and to have different number of windings from each other. Herein, in order to easily explain the magnetic induction power supply device 100, although it has been described that the current transformer 110 includes the first unit coil 114a and the second unit coil 114b, it is not limited thereto and the current transformer 110 can also be configured to include three or more unit coils 114.
(10) The core 112 is configured to include the upper core and the lower core. At this time, at least one of the upper core and the lower core is formed with the first unit coil 114a and the second unit coil 114b.
(11) The first unit coil 114a is composed of a coil that winds around the core 112 in plural times. At this time, the surface of the first unit coil 114a can be coated with an insulating material.
(12) The second unit coil 114b is composed of a coil that winds in plural times. The second unit coil 114b can be wound at the position different from the first unit coil 114a, or can be wound at the same position to be overlapped. At this time, the surface of the second unit coil 114b can be coated with an insulating material.
(13) Meanwhile, the first unit coil 114a and the second unit coil 114b are formed to have a winding ratio of about 3:1. For example, when the first unit coil 114a is composed of a coil that winds around the core 112 150 times, the second unit coil 114b is composed of a coil that winds around the core 112 50 times.
(14) At this time, both ends of the first unit coil 114a and the second unit coil 114b are connected to the switching unit 130.
(15) The sensing unit 120 senses the voltage induced in the current transformer 110. At this time, the sensing unit 120 is connected in parallel with the rectification unit 140 to sense the voltage induced in the current transformer 110. The sensing unit 120 transmits the sensed voltage to the switching unit 130. Herein, the sensing unit 120 can also generate a switching signal based on the sensed voltage to transmit it to the switching unit 130.
(16) Meanwhile, referring to
(17) However, the rectification unit 140 illustrated in
(18) Therefore, the voltage value sensed in the sensing unit 120 means the value of the DC voltage converted in the rectification unit 140 from the AC voltage induced in the current transformer 110.
(19) On the other hand, although it has been illustrated in
(20) The switching unit 130 switches so that at least one among the plurality of unit coils 114 is connected in series to the rectification unit 140 based on whether the magnetic induction power supply device 100 is at the initial operation and the voltage sensed in the sensing unit 120.
(21) The switching unit 130 switches so that the unit coil 114 having the smallest number of windings among the plurality of unit coils 114 is connected in series to the rectification unit 140 during the set time (e.g., about 1 minute) at the initial operation of the magnetic induction power supply device 100.
(22) That is, as the voltage that is equal to or higher than the maximum reference voltage is induced in the current transformer 110 at the initial operation of the magnetic induction power supply device 100, the elements for constituting the magnetic induction power supply device 100 or the elements for constituting the load 300 may be damaged.
(23) Therefore, the switching unit 130 switches so that the unit coil 114 having the smallest number of windings among the plurality of unit coils 114 is connected in series to the rectification unit 140 during the set time at the initial operation, such that the voltage that is equal to or lower than the maximum reference voltage is applied to the rectification unit 140. At this time, when the voltage sensed in the sensing unit 120 is not present or the power of the magnetic induction power supply device 100 is turned off, the switching unit 130 can also set, as a default, to switch so that the unit coil 114 having the smallest number of windings is connected in series to the rectification unit 140.
(24) Therefore, the switching unit 130 maintains the voltage applied to the rectification unit 140 at the voltage, which is equal to or lower than the maximum reference voltage, thereby preventing the elements constituting the magnetic induction power supply device 100 and the load 300 from being damaged.
(25) The switching unit 130 switches so that at least one among the plurality of unit coils 114 is connected in series to the rectification unit 140 based on the voltage sensed in the sensing unit 120 after the set time has elapsed since the initial operation of the magnetic induction power supply device 100.
(26) At this time, the switching unit 130 switches so that the plurality of unit coils 114 are connected in series to the rectification unit 140 when the voltage sensed in the sensing unit 120 is lower than the minimum reference voltage, thereby applying all voltages induced in the current transformer 110 to the rectification unit 140. Herein, the switching unit 130 can also switch so that some unit coils 114 (i.e., two or more) among the plurality of unit coils 114 are connected in series to the rectification unit 140, thereby applying the voltage that is equal to or higher than the minimum reference voltage to the rectification unit 140.
(27) The switching unit 130 switches so that the unit coil 114 having the largest number of windings among the plurality of unit coils 114 is connected in series to the rectification unit 140 when the voltage sensed in the sensing unit 120 is equal to or higher than the minimum reference voltage and is equal to or lower than the maximum reference voltage, thereby applying the voltage induced in the unit coil 114 of the largest number of windings to the rectification unit 140.
(28) The switching unit 130 switches so that the unit coil 114 having the smallest number of windings among the plurality of unit coils 114 is connected in series to the rectification unit 140 when the voltage sensed in the sensing unit 120 exceeds the maximum reference voltage, thereby applying the voltage induced in the unit coil 114 of the smallest number of windings to the rectification unit 140.
(29) As illustrated in
(30) That is, the switching unit 130 can include a first input terminal 132a connected to one end of the first unit coil 114a, a second input terminal 132b connected to the other end of the first unit coil 114a, a third input terminal 132c connected to one end of the second unit coil 114b, and a fourth input terminal 132d connected to the other end of the second unit coil 114b.
(31) The switching unit 130 can include a first output terminal 134a and a second output terminal 134b connected to two connection lines, respectively, connected to the rectification unit 140.
(32) The switching unit 130 can include a first divert switch 136a for switching the first output terminal 134a to the first input terminal 132a or the third input terminal 132c, a second divert switch 136b for switching the second output terminal 134b to the second input terminal 132b or the fourth input terminal 132d, and a third divert switch 136c for switching the connection of the second input terminal 132b and the third input terminal 132c.
(33) The switching unit 130 switches the connection of the input terminal and the output terminal based on the voltage induced in the current transformer 110 or whether the magnetic induction power supply device 100 is at the initial operation to connect at least one of the first unit coil 114a and the second unit coil 114b of the current transformer 110 to the rectification unit 140 in series.
(34) Since the voltage that is lower than the voltage required in the load 300 is applied when the voltage induced in the current transformer 110 is lower than the minimum reference voltage, the voltages induced in the first unit coil 114a and the second unit coil 114b should be all applied to the rectification unit 140.
(35) Therefore, as illustrated in
(36) Therefore, the voltage induced in the coil configured by connecting the first unit coil 114a and the second unit coil 114b in series is applied to the rectification unit 140.
(37) Meanwhile, when the voltage induced in the current transformer 110 is equal to or higher than the minimum reference voltage and is equal to or lower than the maximum reference voltage, the voltage within the voltage range required in the load 300 is applied to the rectification unit 140.
(38) Therefore, as illustrated in
(39) On the other hand, when the voltage induced in the current transformer 110 exceeds the maximum reference voltage, the element constituting the rectification unit 140 can be damaged.
(40) Therefore, as illustrated in
(41) Meanwhile, referring to
(42) Therefore, the switching unit 130 switches so that the first divert switch 136a is connected to the third input terminal 132c and the first output terminal 134a, and switches so that the second divert switch 136b is connected to the fourth input terminal 132d and the second output terminal 134b during the set time at the initial operation of the magnetic induction power supply device 100, thereby applying the voltage induced in the second unit coil 114b having the relatively small number of windings to the rectification unit 140.
(43) Therefore, the switching unit 130 can apply the voltage within the setting range to the rectification unit 140 regardless of the voltage induced in the current transformer 110, thereby preventing the element from being damaged.
(44) The rectification unit 140 rectifies the voltage applied from the switching unit 130 through the connection lines to convert it into DC to supply it to the load 300. The rectification unit 140 can be composed of a full-wave rectification circuit or a half-wave rectification circuit composed of a plurality of diodes. The rectification unit 140 converts the voltage induced in at least one of the first unit coil 114a and the second unit coil 114b into DC according to the switching operation of the switching unit 130 to supply it to the load 300.
(45) Meanwhile, referring to
(46) That is, since the inrush voltage exceeding the maximum reference voltage can be applied at the initial operation (or re-operation) according to the power-recovery after the power outage of the power line 200, the magnetic induction power supply device 100 should control the switching unit 130 to the initial operation state (see
(47) However, since the magnetic induction power supply device 100 is operated by the voltage induced in the power line 200, there occurs the case that the magnetic induction power supply device 100 does not control the switching unit 130 to the initial operation state at the initial operation (or re-operation).
(48) That is, since the sensing unit 120 for controlling the switching unit 130 is disposed at the rear end of the rectification unit 140, the sensing unit 120 operates only when a voltage is induced in the current transformer 110.
(49) At this time, since the voltage induced in the current transformer 110 is applied to the sensing unit 120 through the switching unit 130 and the rectification unit 140, the inrush voltage is applied to the rectification unit 140 before a voltage is induced in the current transformer 110 to supply the power source to the sensing unit 120. Therefore, when the inrush voltage exceeding the maximum reference voltage is applied before the switching unit 130 is controlled to the initial operation state, the element constituting the rectification unit 140 can be damaged.
(50) Therefore, the magnetic induction power supply device 100 further includes the first power supply unit 150 for supplying the emergency power for controlling the switching unit 130 to the sensing unit 120.
(51) The first power supply unit 150 is composed of a battery, and supplies power to the switching unit 130 upon the power outage of the power line 200 to maintain the initial operation state. At this time, when the emergency power is supplied from the first power supply unit 150, the sensing unit 120 controls the switching unit 130 to the initial operation state. Therefore, the switching unit 130 switches so that the unit coil 114 having the relatively smallest number of windings among the plurality of unit coils 114 constituting the current transformer 110 is connected to the rectification unit 140 to maintain the initial operation state.
(52) At this time, the first power supply unit 150 is connected between the rectification unit 140 and the sensing unit 120, and when the voltage is not induced due to the power outage of the power line 200, the first power supply unit 150 supplies power to the sensing unit 120 to control the switching unit 130 to the initial operation state.
(53) Meanwhile, when the battery constituting the first power supply unit 150 fails, there occurs the case that the magnetic induction power supply device 100 does not control the switching unit 130 to the initial operation state at the initial operation (or re-operation).
(54) Therefore, it is preferable that the magnetic induction power supply device 100 further includes a second power supply unit 160.
(55) The second power supply unit 160 has one end connected to at least one of the first unit coil 114a and the second unit coil 114b, and has the other end connected between the rectification unit 140 and the sensing unit 120. At this time, the second power supply unit 160 is composed of a rectification circuit composed of a plurality of elements, and converts the AC voltage induced in the current transformer 110 to a DC voltage to apply it to the sensing unit 120. Herein, the second power supply unit 160 supplies power to the sensing unit 120 before the voltage applied from the current transformer 110 is applied to the rectification unit 140 through the switching unit 130. Therefore, the sensing unit 120 controls so that the switching unit 130 maintains the initial operation state.
(56) Therefore, the magnetic induction power supply device 100 can prevent the inrush voltage exceeding the maximum reference voltage upon the return (i.e., the power-recovery) after the power outage of the power line 200 from being applied to the rectification unit 140 and prevent the element of the rectification unit 140 from being damaged.
(57) As described above, although preferred embodiments of the present disclosure have been described, it is to be understood that they can be modified into various forms, and various modifications and changes thereof can be embodied by those skilled in the art without departing from the claims of the present disclosure.