Intelligent energy-saving actuating coil component
By using intelligent energy-saving actuation coil components and current control devices and timers to control current output, the problem of conductive coils being unable to automatically regulate current is solved, thus realizing intelligent energy-saving drive of electromechanical devices.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- CHENGKANGTECH CO LTD
- Filing Date
- 2024-11-12
- Publication Date
- 2026-05-12
AI Technical Summary
Existing conductive coils cannot automatically regulate the current, causing electromechanical devices to continuously consume electrical energy during operation.
It adopts intelligent energy-saving actuation coil components, including a current control device and a timer. It controls the current output through timed notification signals, providing working current and auxiliary operating current to achieve magnetic drive and maintain the position of the movable parts of the electromechanical device.
It realizes intelligent drive and energy-saving operation of electromechanical devices, drives the displacement of movable parts through working current, and maintains the position with auxiliary working current, thereby reducing power consumption.
Smart Images

Figure CN122026673A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of conductive coil technology, and in particular to an intelligent energy-saving actuation coil component. Background Technology
[0002] Conductive coils are frequently used circuit components. By allowing current to flow through a conductive coil, the coil generates magnetic force, which drives the electromechanical device installed with it to operate.
[0003] After a starting current is applied to the conductive coil, the electromechanical device is driven by the magnetic force generated by the conductive coil to operate and maintain its current working state. However, the conductive coil in the prior art cannot automatically regulate the current supply, so after the electromechanical device is activated, it continues to maintain the working state with the amount of starting current, resulting in energy consumption. Summary of the Invention
[0004] The purpose of this invention is to provide an intelligent energy-saving actuation coil component that can be used to intelligently and energy-efficiently drive electromechanical devices.
[0005] The present invention addresses the problems of existing technologies by providing an intelligent energy-saving actuation coil component for intelligently and energy-efficiently driving electromechanical devices. The component includes: a current control device with a timer and a current controller connected to the timer, wherein the timer is configured to generate a timing notification signal at a predetermined working time, and the current controller is configured to provide a working current, and outputs an auxiliary operating current with a current lower than the working current based on the timing notification signal from the timer; and a conductive coil electrically connected to the current controller of the current control device to receive the working current and the auxiliary operating current, wherein the conductive coil is configured to generate and apply a working magnetic force and an auxiliary operating magnetic force to a corresponding magnetic field area based on the received working current and auxiliary operating current, wherein the magnetic field area is correspondingly provided to the electromechanical device, so that the movable part of the electromechanical device is displaced from an initial position to an operating position by magnetic traction through the application of the working magnetic force generated by the conductive coil, and the movable part of the electromechanical device is maintained at the operating position through the subsequent application of the auxiliary operating magnetic force generated by the conductive coil.
[0006] In one embodiment of the present invention, an intelligent energy-saving actuation coil component is provided, wherein the predetermined working time of the timer is set according to the displacement stroke of the movable component from the initial position to the actuation position and the displacement speed.
[0007] In one embodiment of the present invention, an intelligent energy-saving actuation coil component is provided, wherein the predetermined operating time of the timer is set according to the resistance-capacitance time constant of the current controller.
[0008] In one embodiment of the present invention, an intelligent energy-saving actuation coil component is provided, wherein the current of the auxiliary operating current is less than or equal to 90% of the current of the operating current.
[0009] In one embodiment of the present invention, an intelligent energy-saving actuation coil component is provided, wherein the amount of the auxiliary operating current is less than or equal to 20% of the amount of the operating current.
[0010] In one embodiment of the present invention, an intelligent energy-saving actuation coil component is provided, wherein the current control device further includes a bridge rectifier circuit electrically connected to the current controller, so that an external power supply is provided to the current controller via the bridge rectifier circuit, so that the current controller can provide the operating current and the auxiliary operating current under operating conditions with flexible current polarity connection.
[0011] In one embodiment of the present invention, an intelligent energy-saving actuation coil component is provided, which also has a base housing, wherein the current control device is mounted in the base housing in a manner encapsulated within the base housing.
[0012] In one embodiment of the present invention, an intelligent energy-saving actuation coil component is provided, which also has a base housing, wherein the current control device is mounted on the base housing in a manner that exposes the base housing.
[0013] In one embodiment of the present invention, an intelligent energy-saving actuation coil component is provided, wherein the magnetic action area of the conductive coil is encapsulated within the base housing in such a manner that it corresponds in position to a receiving hole in the base housing, the receiving hole being configured to accommodate the movable part of the electromechanical device.
[0014] The intelligent energy-saving actuation coil component of this invention achieves the following technical benefits: It is widely applicable to various electromechanical devices, such as solenoid valves, electronic locks, electromagnets, and relays. Furthermore, during the initial operation of the electromechanical device, the working magnetic force generated by the operating current drives the movable parts of the device to move; after a predetermined operating time, an auxiliary operating current with a current lower than the operating current is output, and the auxiliary operating magnetic force generated by the auxiliary operating current keeps the movable parts of the electromechanical device in operation; therefore, this invention enables intelligent and energy-efficient operation of electromechanical devices. Attached Figure Description
[0015] Figure 1 A side view schematic diagram of the intelligent energy-saving actuation coil component according to a first embodiment of the present invention is shown;
[0016] Figure 2 A block diagram showing the current control device and conductive coil of the intelligent energy-saving actuation coil component according to the first embodiment of the present invention;
[0017] Figure 3 A side view schematic diagram showing the operation of the electromechanical device driven by the intelligent energy-saving actuation coil component according to the first embodiment of the present invention;
[0018] Figure 4 A block diagram illustrating the intelligent energy-saving actuation coil component according to a second embodiment of the present invention;
[0019] Figure 5 This is a side view schematic diagram of an intelligent energy-saving actuation coil component according to a third embodiment of the present invention.
[0020] Figure label:
[0021] 100: Intelligent energy-saving actuation coil components
[0022] 100A: Intelligent Energy-Saving Actuation Coil Component
[0023] 100B: Intelligent Energy-Saving Actuation Coil Component
[0024] 1: Current control device
[0025] 11: Timer
[0026] 12: Current controller
[0027] 13: Bridge rectifier circuit
[0028] 2: Conductive coil
[0029] 20: Magnetic Action Zone
[0030] 3: Base shell
[0031] 31: Receiving hole
[0032] M: Electromechanical devices
[0033] S: Movable parts Detailed Implementation
[0034] The following is based on the appendix Figures 1-5 This description illustrates one embodiment of the present invention. This description is not intended to limit the embodiments of the present invention, but rather to illustrate one example of the present invention.
[0035] like Figures 1-3As shown, a smart energy-saving actuation coil component 100 according to a first embodiment of the present invention is used to intelligently and energy-efficiently drive an electromechanical device M. The smart energy-saving actuation coil component 100 includes a current control device 1 and a conductive coil 2. Specifically, the present invention can be widely applied to various electromechanical devices M, such as solenoid valves, electronic locks, electromagnets, and relays. Through the technical means of the present invention, the electromechanical device M can be driven intelligently and energy-efficiently; during the initial operation of the electromechanical device M, the movable parts of the electromechanical device M are displaced by the working magnetic force generated by the working current; after a predetermined working time, an auxiliary operating current with a current lower than the working current is output, and the auxiliary operating magnetic force generated by the auxiliary operating current keeps the movable parts of the electromechanical device in operation; therefore, the present invention achieves intelligent energy saving.
[0036] like Figures 1-3 As shown, the current control device 1 has a timer 11 and a current controller 12 connected to the timer 11, wherein the timer 11 is configured to generate a timing notification signal at a predetermined working time. Furthermore, the current controller 12 is configured to provide a working current, and the current controller 12 outputs an auxiliary operating current with a current amount lower than the working current based on the timing notification signal from the timer 11.
[0037] like Figures 1-3 As shown, the conductive coil 2 is electrically connected to the current controller 12 of the current control device 1 to receive the operating current and the auxiliary operating current. Furthermore, the conductive coil 2 is configured to generate and apply operating magnetic force and auxiliary operating magnetic force to the magnetic force action area 20 corresponding to the conductive coil 2 according to the received operating current and auxiliary operating current.
[0038] Specifically, such as Figures 1-3 As shown, the magnetic field area 20 is correspondingly provided with the electromechanical device M, so that by applying the working magnetic force generated by the conductive coil 2, the movable part S of the electromechanical device M is moved from its initial position to its operating position by magnetic traction. Furthermore, the present invention maintains the movable part S of the electromechanical device M in its operating position by applying the subsequent auxiliary working magnetic force generated by the conductive coil 2.
[0039] For example, the electromechanical device M can be a solenoid valve, and the movable part S is the solenoid valve stem; or, the electromechanical device M can be an electronic lock, and the movable part S is the lock tongue of the electronic lock. Of course, the electromechanical device M that can be used in conjunction with the intelligent energy-saving actuation coil component 100 of the present invention is not limited to the above, and the electromechanical device M can also be a relay...
[0040] In detail, according to an embodiment of the present invention, the intelligent energy-saving actuation coil component 100, wherein the predetermined working time of the timer 11 is set according to the displacement stroke of the movable component S from the initial position to the actuation position and the displacement speed.
[0041] like Figure 2 As shown, an intelligent energy-saving actuation coil component 100 according to an embodiment of the present invention is provided, wherein the predetermined operating time of the timer 11 is set according to the resistance-capacitance time constant of the current controller 12.
[0042] For example, in an embodiment of the present invention, the intelligent energy-saving actuation coil component 100 has an auxiliary operating current that is less than or equal to 90% of the operating current.
[0043] Of course, the definition of the auxiliary operating current being less than the operating current in this invention is not limited to the above. According to an embodiment of the present invention, in the intelligent energy-saving actuation coil component 100, the auxiliary operating current is less than or equal to 20% of the operating current.
[0044] like Figure 4 As shown, the intelligent energy-saving actuation coil component 100A according to the second embodiment of the present invention includes a current control device 1 further comprising a bridge rectifier circuit 13 electrically connected to the current controller 12, so that an external power supply is provided to the current controller 12 via the bridge rectifier circuit 13. Therefore, the present invention enables the current controller 12 to provide the operating current and the auxiliary operating current under operating conditions with flexible current polarity alignment.
[0045] In other words, regardless of whether the positive terminal of the external power supply is connected to the positive terminal of the bridge rectifier circuit 13 and the negative terminal of the external power supply is connected to the negative terminal of the bridge rectifier circuit 13, or the negative terminal of the external power supply is connected to the positive terminal of the bridge rectifier circuit 13 and the positive terminal of the external power supply is connected to the negative terminal of the bridge rectifier circuit 13, the external power supply can be successfully supplied to the current controller 12. Therefore, this invention does not require strict adherence to the current polarity connection condition of "the positive terminal of the external power supply connected to the positive terminal of the bridge rectifier circuit 13 and the negative terminal of the external power supply connected to the negative terminal of the bridge rectifier circuit 13" to enable the current controller 12 to successfully provide the operating current and the auxiliary operating current.
[0046] like Figures 1-3 As shown, the intelligent energy-saving actuation coil component 100 according to an embodiment of the present invention further includes a base housing 3. The current control device 1 is mounted in the base housing 3 in a manner encapsulated within the base housing 3.
[0047] like Figure 5As shown, the intelligent energy-saving actuation coil component 100B according to the third embodiment of the present invention also has a base housing 3, wherein the current control device 1 is installed on the base housing 3 in a manner that exposes the base housing 3.
[0048] Furthermore, such as Figure 1 and Figure 3 As shown, according to an embodiment of the present invention, an intelligent energy-saving actuation coil component 100 is provided, wherein the magnetic action region 20 of the conductive coil 2 is encapsulated within the base housing 3 in such a manner that it corresponds in position to the receiving hole 31 of the base housing 3. The receiving hole 31 is configured to accommodate the movable component S of the electromechanical device M.
[0049] As described above, the intelligent energy-saving actuation coil components 100, 100A, and 100B of the present invention, through the timer 11 and current controller 12 of the current control device 1, provide an auxiliary operating current to the conductive coil 2, with the output current being lower than the operating current. Furthermore, the conductive coil 2 generates and applies a working magnetic force and an auxiliary operating magnetic force to the magnetic force application area 20 based on the received working current and auxiliary operating current. Therefore, the movable part S of the electromechanical device M is magnetically pulled from its initial position to its operating position by the working magnetic force generated by the conductive coil 2; the movable part S is then maintained in the operating position by the subsequent application of the auxiliary operating magnetic force generated by the conductive coil 2. In other words, through the technical means of the present invention, the electromechanical device M can be driven intelligently and energy-efficiently.
[0050] Furthermore, the intelligent energy-saving actuation coil component 100A of the present invention, by placing the bridge rectifier circuit 13 in the current control device 1, enables the current controller 12 to provide the operating current and the auxiliary operating current under operating conditions with flexible current polarity connection. In other words, the present invention does not require strict adherence to the operating condition of current polarity connection where "the positive terminal of the external power supply is connected to the positive terminal of the bridge rectifier circuit 13, and the negative terminal of the external power supply is connected to the negative terminal of the bridge rectifier circuit 13," thus enabling the current controller 12 to smoothly provide the operating current and the auxiliary operating current.
[0051] Secondly, the intelligent energy-saving actuation coil component 100B of the present invention can also be installed on the base housing 3 by exposing the current control device 1 to the base housing 3, so as to flexibly adjust the electrical connection of the wire to the current control device 1 according to the environmental conditions of the working site.
[0052] The above description and illustration are merely illustrative of preferred embodiments of the present invention. Those skilled in the art can make other modifications based on the following defined claims and the above description, but these modifications should still be within the spirit of the invention and the scope of the invention.
Claims
1. A smart energy-saving actuation coil component for intelligently and energy-efficiently driving electromechanical devices, characterized in that, Include: A current control device has a timer and a current controller connected to the timer, wherein the timer is configured to generate a timing notification signal at a predetermined working time, and the current controller is configured to provide a working current, and the current controller outputs an auxiliary working current with a current amount lower than the working current according to the timing notification signal from the timer. as well as A conductive coil is electrically connected to the current controller of the current control device to receive the operating current and the auxiliary operating current. The conductive coil is configured to generate and apply operating magnetic force and auxiliary operating magnetic force to the magnetic force action area corresponding to the conductive coil according to the received operating current and auxiliary operating current. The magnetic force action area is correspondingly provided to the electromechanical device so that the movable part of the electromechanical device is displaced from the initial position to the operating position by magnetic traction through the application of the operating magnetic force generated by the conductive coil, and the movable part of the electromechanical device is maintained in the operating position through the subsequent application of the auxiliary operating magnetic force generated by the conductive coil.
2. The intelligent energy-saving actuation coil component as described in claim 1, characterized in that, The predetermined operating time of the timer is set based on the displacement stroke and displacement speed of the movable part from the initial position to the operating position.
3. The intelligent energy-saving actuation coil component as described in claim 1, characterized in that, The predetermined operating time of the timer is set according to the resistor-capacitor time constant of the current controller.
4. The intelligent energy-saving actuation coil component as described in claim 1, characterized in that, The current of the auxiliary working current is less than or equal to 90% of the current of the working current.
5. The intelligent energy-saving actuation coil component as described in claim 1, characterized in that, The current of the auxiliary working current is less than or equal to 20% of the current of the working current.
6. The intelligent energy-saving actuation coil component as described in claim 1, characterized in that, The current control device also includes a bridge rectifier circuit electrically connected to the current controller, so that an external power supply can be provided to the current controller via the bridge rectifier circuit, so that the current controller can provide the operating current and the auxiliary operating current under operating conditions with flexible current polarity matching.
7. The intelligent energy-saving actuation coil component as described in claim 1, characterized in that, It also has a base housing, in which the current control device is mounted in a manner encapsulated within the base housing.
8. The intelligent energy-saving actuation coil component as described in claim 1, characterized in that, It also has a base housing, wherein the current control device is mounted on the base housing in a manner that exposes it.
9. The intelligent energy-saving actuation coil component as described in claim 7 or 8, characterized in that, The magnetic field of the conductive coil is encapsulated within the base housing in such a manner that it corresponds in position to a receiving hole in the base housing, the receiving hole being configured to accommodate the movable part of the electromechanical device.