Light-emitting assembly and control framework thereof
By designing a removable magnetically connected light emitting component, the problem of monochromatic light in the existing water pipe emitting ring is solved, and a variety of color light changes and enhanced visual effects are achieved.
Patent Information
- Application Number
- CN202421861233.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-01
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-08-01
AI Technical Summary
The existing water pipe light emitting ring can only be equipped with a light emitting unit that emits a color light. The situational effect changes are limited, and the number of light emitting rings is limited by the design of the controller.
A light emitting component is designed, including a first electrical connection member and a first light emitting ring, which is detachably connected by a magnetic element, supports a plurality of light emitting units, and controls a variety of color light changes through a control chip, so that the expansion is enhanced.
It is realized that the light emitting component can be equipped with multiple light emitting rings at the same time based on the use of one electrical connection, providing multiple color and light changes, and increasing the visual situation effect.
Smart Images

Figure CN223216247U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a light-emitting component and a control structure thereof, and in particular to a light-emitting component and a control structure thereof which can be sleeved on a pipe and can produce situational effects. Background Art
[0002] Existing water pipe light rings are mostly installed on heat pipes, particularly transparent water pipes, to achieve the desired mood effects. However, existing water pipe light rings are designed with only one connection port. This limitation limits the installation of light units emitting only one color at a time, limiting the variety of mood effects. Therefore, there is a need for an improved light-emitting assembly to address the problems of existing technology. Furthermore, current light rings are connected to the controller via a connector, limiting the number of light rings that can be used depending on the controller design. Utility Model Content
[0003] In view of the problems in the prior art, the present invention provides a light-emitting component and a control structure thereof, which can provide multiple color light changes to enhance the user's visual situation effect, thereby solving the above problems.
[0004] Therefore, the technical problem to be solved by the present invention is to provide a light-emitting component, which includes:
[0005] a first electrical connector, the first electrical connector comprising at least two first connecting terminals and at least one first magnetic element; and
[0006] a first luminous ring, the first luminous ring being configured to be sleeved on the tube, the first luminous ring comprising at least one luminous unit, at least two second connecting terminals, and at least one second magnetic element, wherein the first electrical connector detachably attracts the at least one second magnetic element of the first luminous ring via the at least one first magnetic element to electrically connect the at least two first connecting terminals to the at least two second connecting terminals;
[0007] The first electrical connection element receives power provided by a signal source, and the first electrical connection element receives a control signal to control the at least one light-emitting unit on the first light-emitting ring.
[0008] As an optional technical solution, the first electrical connector is annular and sleeved on the tube, or the first electrical connector is an arc piece and is arranged on the radial outside of the first luminous ring.
[0009] The number of the at least two first connection terminals and the at least two second connection terminals are both three, and are used to transmit the power and the control signal.
[0010] As an optional technical solution, one of the at least one first magnetic element and the at least one second magnetic element is a magnet or an electromagnet.
[0011] As an optional technical solution, the first light-emitting ring further includes a diffusion layer, and the diffusion layer covers the at least one light-emitting unit of the first light-emitting ring.
[0012] As an optional technical solution, the light emitting assembly further includes:
[0013] a second luminous ring, the second luminous ring being used to be sleeved on the tube, the second luminous ring comprising at least one luminous unit, at least two fourth connecting terminals, and at least one fourth magnetic element;
[0014] The first electrical connection member is electrically connected to the second light-emitting ring through a connection line.
[0015] As an optional technical solution, the light emitting assembly further includes:
[0016] A second electrical connector is electrically connected to the first luminous ring via a connecting wire, wherein the second electrical connector further includes at least two third connecting terminals and at least one third magnetic element.
[0017] As an optional technical solution, the light emitting assembly further includes:
[0018] a second electrical connector comprising at least two third connection terminals and at least one third magnetic element; and
[0019] a second luminous ring, the second luminous ring being configured to be sleeved on the tube, the second luminous ring comprising at least one luminous unit, at least two fourth connecting terminals, and at least one fourth magnetic element, wherein the second electrical connector is detachably attracted to the at least one fourth magnetic element of the second luminous ring via the at least one third magnetic element so as to electrically connect the at least two third connecting terminals to the at least two fourth connecting terminals;
[0020] The first electrical connector and the second electrical connector receive power provided by the signal source to simultaneously control the at least one light-emitting unit on the first light-emitting ring and the at least one light-emitting unit on the second light-emitting ring.
[0021] As an optional technical solution, the second electrical connector is annular and sleeved on the tube, or the second electrical connector is an arc piece and is arranged on the radially outer side of the second luminous ring.
[0022] The utility model also provides a light-emitting assembly for being sleeved on a pipe, the light-emitting assembly comprising:
[0023] an electrical connector comprising at least two first connecting terminals and at least one first magnetic element;
[0024] a first luminous ring, the first luminous ring being configured to be sleeved on the tube, the first luminous ring having a first side surface and a second side surface opposite to the first side surface, the first luminous ring comprising at least one luminous unit, at least two second connecting terminals, at least two fifth connecting terminals, at least one second magnetic element, and at least one fifth magnetic element; the electrical connector being adjacent to the first side surface of the first luminous ring, the at least two second connecting terminals and the at least one second magnetic element being disposed on the first side surface, and the at least two fifth connecting terminals and the at least one fifth magnetic element being disposed on the second side surface, wherein the electrical connector detachably adsorbs the at least one second magnetic element of the first luminous ring via the at least one first magnetic element so as to electrically connect the at least two first connecting terminals to the at least two second connecting terminals; and
[0025] a second light-emitting ring, the second light-emitting ring being sleeved on the tube and adjacent to the second side surface of the first light-emitting ring, the second light-emitting ring comprising at least one light-emitting unit, at least two fourth connection terminals, and at least one fourth magnetic element, wherein the second light-emitting ring is detachably attached to the at least one fifth magnetic element of the first light-emitting ring via the at least one fourth magnetic element, such that the at least two fifth connection terminals of the first light-emitting ring are electrically connected to the at least two fourth connection terminals of the second light-emitting ring;
[0026] The electrical connection element receives power provided by a signal source to control the light-emitting units on the first light-emitting ring and the second light-emitting ring.
[0027] As an optional technical solution, the number of the at least two first connection terminals, the at least two second connection terminals, the at least two fourth connection terminals, and the at least two fifth connection terminals are all three, and are used to transmit the power and the control signal.
[0028] As an optional technical solution, the electrical connector is annular and sleeved on the pipe.
[0029] As an optional technical solution, the second luminous ring includes a third side and a fourth side relative to the third side, the third side faces the second side of the first luminous ring, the second luminous ring also includes at least one sixth connection terminal and at least one sixth magnetic element, the at least two fourth connection terminals and the at least one fourth magnetic element are arranged on the third side, and the at least one sixth connection terminal and the at least one sixth magnetic element are arranged on the fourth side.
[0030] As an optional technical solution, the at least two first connection terminals or the at least two second connection terminals are spring pin connection terminals.
[0031] The present invention also provides a light emitting component control architecture, which includes:
[0032] A first control chip, the first control chip being disposed on a first electrical connection member, wherein the first electrical connection member comprises at least two first connection terminals and at least one first magnetic element;
[0033] At least one first light-emitting unit, the at least one first light-emitting unit being disposed on a first light-emitting ring and electrically connected to the first control chip, wherein the first light-emitting ring is sleeved on a tube, the first light-emitting ring further comprising at least two second connecting terminals and at least one second magnetic element, wherein the first electrical connector is adjacent to the first light-emitting ring, and the first electrical connector is detachably attracted to the at least one second magnetic element of the first light-emitting ring via the at least one first magnetic element so as to electrically connect the at least two first connecting terminals to the at least two second connecting terminals; and
[0034] An external processing unit is electrically connected to the first control chip, wherein the external processing unit sends a control signal to the first control chip, and the control signal is transmitted to the at least one first light-emitting unit via the first control chip to control the at least one first light-emitting unit to emit light.
[0035] As an optional technical solution, the at least one first light-emitting unit is a three-primary-color light-emitting diode.
[0036] As an optional technical solution, the light emitting component control architecture also includes:
[0037] A second control chip is disposed on the second electrical connection member, wherein the second electrical connection member includes at least two third connection terminals and at least one third magnetic element; and
[0038] at least one second light-emitting unit, disposed on the second light-emitting ring, and electrically connected to the second control chip;
[0039] The second luminous ring is used to be sleeved on the tube, and the second luminous ring also includes at least two fourth connection terminals and at least one fourth magnetic element. The second electrical connector is adjacent to the second luminous ring, and the second electrical connector can detachably absorb the at least one fourth magnetic element of the second luminous ring through the at least one third magnetic element so that the at least two third connection terminals are electrically connected to the at least two fourth connection terminals.
[0040] As an optional technical solution, the external processing unit is electrically connected to the second control chip, and the external processing unit sends another control signal to the second control chip, which is then transmitted to the at least one second light-emitting unit via the second control chip to control its light emission.
[0041] As an optional technical solution, the first electrical connector is electrically connected to the second electrical connector, the external processing unit sends the control signal to the first control chip and then transmits it to the second control chip of the second electrical connector, and then transmits it to the at least one second light-emitting unit via the second control chip to control the at least one second light-emitting unit to emit light.
[0042] As an optional technical solution, the light emitting component control architecture also includes:
[0043] at least one second light-emitting unit, disposed on a second light-emitting ring, wherein the second light-emitting ring is used to be sleeved on the tube, and the second light-emitting ring further includes at least two fourth connecting terminals;
[0044] The first electrical connection member is electrically connected to the second light-emitting ring through a connecting line, the external processing unit sends the control signal to the first control chip, and the first control chip transmits the control signal to the at least one second light-emitting unit to control the at least one second light-emitting unit to emit light.
[0045] As an optional technical solution, the light emitting component control architecture also includes:
[0046] at least one second light-emitting unit, the at least one second light-emitting unit being disposed on a second light-emitting ring, wherein the second light-emitting ring is sleeved on the tube, and the second light-emitting ring further comprises at least two fourth connecting terminals;
[0047] The first light-emitting ring further has at least two fifth connection terminals, and the first light-emitting ring is electrically connected to the at least two fourth connection terminals of the second light-emitting ring through the at least two fifth connection terminals. The external processing unit sends the control signal to the first control chip, which is then transmitted to the at least one second light-emitting unit via the first light-emitting ring to control the at least one second light-emitting unit to emit light.
[0048] As an optional technical solution, the at least one second light-emitting unit is a three-primary-color light-emitting diode.
[0049] Compared to the prior art, in the light-emitting assembly and its control architecture of the present invention, the first electrical connector is removably attached to at least one second magnetic unit of the first light-emitting ring via at least one first magnetic unit, so that the at least two first terminals of the first electrical connector are electrically connected to the at least two second connection terminals of the first light-emitting ring. Because the light-emitting assembly and its control architecture of the present invention improve the electrical connection method between the electrical connector and the light-emitting ring, the light-emitting assembly and its control architecture of the present invention can simultaneously install more than one light-emitting ring to provide multiple color changes while using a single electrical connector. This increases the scalability of the light-emitting assembly and its control architecture, and also enhances the user's visual contextual effects.
[0050] The present invention will be described in detail below with reference to the accompanying drawings and specific embodiments, but they are not intended to limit the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0051] Figure 1A It is a schematic diagram of the three-dimensional structure of the light-emitting assembly according to the first embodiment of the present utility model.
[0052] Figure 1B is based on Figure 1A A schematic top view of a light emitting assembly according to an embodiment.
[0053] Figure 1C is based on Figure 1A Schematic diagram of the light-emitting assembly in use according to the embodiment.
[0054] Figure 1D is based on Figure 1A A schematic structural diagram of a light bar according to an embodiment.
[0055] Figure 1E is based on Figure 1A A schematic structural diagram of the light bar of the embodiment configured on the first light-emitting ring.
[0056] Figure 2A It is a schematic diagram of the three-dimensional structure of the light-emitting assembly according to the second embodiment of the present utility model.
[0057] Figure 2B is based on Figure 2A Schematic diagram of the light-emitting assembly in use according to the embodiment.
[0058] Figure 3 FIG. 1 is a schematic top view of a light emitting assembly according to a third embodiment of the present invention.
[0059] Figure 4 2 is a schematic diagram of a light emitting assembly in use according to the fourth embodiment of the present invention.
[0060] Figure 52 is a schematic diagram of a light emitting assembly in use according to the fifth embodiment of the present invention.
[0061] Figure 6A It is a perspective schematic diagram of a light emitting assembly according to a sixth embodiment of the present invention.
[0062] Figure 6B is based on Figure 6A A schematic top view of a light emitting assembly according to an embodiment.
[0063] Figure 6C is based on Figure 6A A schematic structural diagram of the light bar of the first light-emitting ring of the light-emitting assembly of the embodiment.
[0064] Figure 6D is based on Figure 6A Schematic diagram of the structure in which the light bar of the light emitting assembly of the embodiment is installed to the first light emitting ring.
[0065] Figure 6E is based on Figure 6A A schematic structural diagram of the light bar of the second light-emitting ring of the light-emitting assembly of the embodiment.
[0066] Figure 6F is based on Figure 6A Schematic diagram of the structure in which the light bar of the light emitting assembly of the embodiment is installed to the second light emitting ring.
[0067] Figure 7A FIG. 1 is a block diagram of a light emitting component control architecture according to an embodiment of the present invention.
[0068] Figure 7B FIG. 4 is a block diagram of a light emitting component control architecture according to another embodiment of the present invention.
[0069] Figure 7C FIG. 4 is a block diagram of a light emitting component control architecture according to yet another embodiment of the present invention.
[0070] Figure 7D FIG. 4 is a block diagram of a light emitting component control architecture according to another embodiment of the present invention.
[0071] Figure 7E FIG. 4 is a block diagram of a light emitting component control architecture according to yet another embodiment of the present invention. DETAILED DESCRIPTION
[0072] In order to provide a further understanding of the purpose, structure, features and functions of the present invention, the present invention is described in detail below with reference to the embodiments.
[0073] Please refer to Figure 1A and Figure 1B , Figure 1AIt is a schematic diagram of the three-dimensional structure of the light-emitting assembly according to the first embodiment of the present utility model. Figure 1B is based on Figure 1A A schematic top view of a light-emitting assembly according to an embodiment. The light-emitting assembly 10 can be mounted on a tube 20. The tube 20 can be made of metal or translucent plastic. Liquid, such as water, can flow through the tube 20, but the present invention is not limited thereto. The light-emitting assembly 10 includes a first electrical connector 100 and a first light-emitting ring 110. The first electrical connector 100 includes at least two first connection terminals 102 and at least one first magnetic element 104 ( Figure 1B Two first connection terminals 102 and two first magnetic elements 104 are schematically shown, but not limited thereto), wherein the first electrical connector 100 is, for example, annular and sleeved on the tube 20. However, the present invention is not limited thereto. In other embodiments described below, the first electrical connector 100 may also have other suitable shapes. The first luminous ring 110 is sleeved on the tube 20 and is located on the side facing the first electrical connector 100. Specifically, the first luminous ring 110 is located on the side adjacent to the first connection terminal 102. The first luminous ring 110 includes at least one first luminous unit 112, at least two second connection terminals 114, and at least one second magnetic element 116 ( Figure 1BTwo second connection terminals 114 and two second magnetic elements 116 are schematically depicted, but the present invention is not limited thereto. In this embodiment, the first light-emitting ring 110 has a first side surface 111, a second side surface 113 opposite to the first side surface 111, and a connection surface 115. The connection surface 115 connects the first side surface 111 and the second side surface 113. A groove 118 is provided on the connection surface 115. In this manner, in the axial direction of the first light-emitting ring 110 (i.e., the direction in which the tube 20 passes through the first light-emitting ring 110), the side portions of the connection surface 115 adjacent to the first side surface 111 and the second side surface 113 are relatively convex, while the middle portion of the connection surface 115 is relatively concave, thereby forming the groove 118 (i.e., the outer diameters of the side portions of the connection surface 115 are larger than the outer diameter of the middle portion). However, the present invention is not limited thereto. In one embodiment, the first light-emitting ring 110 may not have the groove 118, so that the connection surface 115 has a substantially uniform outer diameter in the axial direction of the first light-emitting ring 110. The first light-emitting unit 112 is disposed within the groove 118 of the first light-emitting ring 110 to emit light away from the tube 20. However, the present invention is not limited to this. In other embodiments, the tube 20 may be made of a transparent material, and the first light-emitting unit 112 may also be configured to provide light toward the tube 20. Furthermore, the second connection terminal 114 and the second magnetic element 116 are, for example, disposed on the first side 111 and facing the first electrical connector 100. However, the present invention is not limited to this. In other preferred embodiments, the second connection terminal 114 and the second magnetic element 116 may also be disposed on other surfaces of the first light-emitting ring 110, such as the connection surface 115 or the second side 113. Preferably, the first connection terminal 102 may be a pogo pin or other suitable connection terminal, and the second connection terminal 114 may be a corresponding contact (e.g., a metal sheet). When the first connection terminal 102 contacts the second connection terminal 114, an electrical connection is established, but the present invention is not limited to this. In a variation, the second connection terminals 114 may be spring pin connection terminals or other suitable connection terminals, and the first connection terminals 102 may be corresponding contacts.
[0074] Please refer to Figure 1A 、 Figure 1B and Figure 1C , Figure 1C is based on Figure 1ASchematic diagram of a light-emitting assembly in use according to an embodiment. In the light-emitting assembly 10, the first connection terminal 102 and the first magnetic element 104 of the first electrical connector 100 are disposed on a first side 111 facing the first light-emitting ring 110. The first electrical connector 100 is removably attached to the at least one second magnetic element 116 of the first light-emitting ring 110 via the at least one first magnetic element 104, so that the at least two first connection terminals 102 of the first electrical connector 100 are respectively electrically connected to the at least two second connection terminals 114 of the first light-emitting ring 110, where the number of first connection terminals 102 corresponds to the number of second connection terminals 114. In this embodiment, one of the first magnetic element 104 and the second magnetic element 116 is, for example, a magnet, and the other of the first magnetic element 104 and the second magnetic element 116 can be made of a ferromagnetic material. In this manner, the first magnetic element 104 and the second magnetic element 116 can be attracted to each other through magnetic force, thereby maintaining a stable electrical connection between the first connection terminal 102 of the first electrical connector 100 and the second connection terminal 114 of the first light-emitting ring 110. Furthermore, in other variations, the first magnetic element 104 and the second magnetic element 116 may also be magnets, electromagnets, or a mixture of the two with opposite magnetic poles, but the present invention is not limited thereto.
[0075] Please continue to refer to Figure 1A 、 Figure 1B and Figure 1C The first light emitting unit 112 on the first light emitting ring 110 can be a general light emitting diode, such as a cold white light emitting diode, a warm white light emitting diode or other light emitting diodes that can emit a single visible light. In addition, the first electrical connector 100 can receive a signal from a signal source (such as an external processing unit 40, shown in FIG. 1 ) via a cable 30. Figure 7A ) to control the light emission of the first light-emitting units 112 on the first light-emitting ring 110. In this embodiment, when the first light-emitting units 112 are conventional LEDs, the number of first connection terminals 102 and second connection terminals 114 can be two each (one for power supply and one for ground). In this case, only the first light-emitting units 112 can be controlled to be on or off. Furthermore, when the first light-emitting units 112 on the first light-emitting ring 110 use three-primary-color LEDs (also known as ARGB LEDs, i.e., alpha, red, green, and blue), the number of first connection terminals 102 and second connection terminals 114 can be three each (one for power supply, one for control signal transmission, and one for ground). In this case, the first electrical connector 100 can receive control signals from the cable 30 and transmit them to the first control chip 106. The first control chip 106 then generates corresponding light signals to each first light-emitting unit 112, thereby controlling the first light-emitting units 112 to emit multi-color light with contextual effects.
[0076] Please refer to Figures 1A to 1E , Figure 1D is based on Figure 1A A schematic structural diagram of a light bar according to an embodiment. Figure 1E is based on Figure 1A A schematic diagram of the structure of the light bar of the embodiment configured on the first light ring. Figure 1E The tubing 20 and the first electrical connector 100 are schematically omitted. The first light-emitting units 112 and the second connection terminals 114 on the first light ring 110 are disposed on a first light bar 1120. The first light bar 1120 may include a first circuit substrate 1121 for arranging the first light-emitting units 112 and the second connection terminals 114, such that the second connection terminals 114 are electrically connected to the first light-emitting units 112. Specifically, the first circuit substrate 1121 may include a first terminal configuration area 1122, and the second connection terminals 114 are disposed in the first terminal configuration area 1122. Figure 1D In the figure, a plurality of second connection terminals 114 are schematically shown as being arranged on a first terminal arrangement area 1122. However, the present invention is not limited thereto. A plurality of terminal arrangement areas may also be provided on the first circuit substrate 1121, and the second connection terminals 114 may be arranged correspondingly in these terminal arrangement areas. The first side surface 111 of the first light-emitting ring 110 may be provided with a plurality of first positioning holes 1110, for example, wherein the number of the first positioning holes 1110 corresponds to the number of the second connection terminals 114 ( Figure 1A Three first positioning holes 1110 are schematically shown. The first circuit substrate 1121 is, for example, a flexible printed circuit board. When the first light bar 1120 is to be placed on the first light ring 110, the first circuit substrate 1121 can be embedded or glued into the groove 118, and the first terminal configuration area 1122 can be bent so that the second connection terminal 114 corresponds to the first positioning hole 1110 (e.g., Figure 1E As shown). In this way, the second connection terminal 114 can be exposed to the first side surface 111 of the first light-emitting ring 110 through the first positioning hole 1110. When the first magnetic element 104 of the first electrical connector 100 and the second magnetic element 116 of the first light-emitting ring 110 are attracted to each other, the first connection terminal 102 of the first electrical connector 100 can be inserted into the first positioning hole 1110 and electrically connected to the second connection terminal 114 of the first light-emitting ring 110. This design can increase the stability of the electrical connection between the first electrical connector 100 and the first light-emitting ring 110.
[0077] Please refer to Figure 2A and Figure 2B , Figure 2A It is a schematic diagram of the three-dimensional structure of the light-emitting assembly according to the second embodiment of the present utility model. Figure 2B is based on Figure 2ASchematic diagram of the light-emitting assembly in use according to the embodiment. Figure 2A and Figure 2B The light-emitting assembly 10A is similar to the aforementioned light-emitting assembly 10. Like elements are denoted by like reference numerals and are not further described herein. The difference between the light-emitting assembly 10A and the aforementioned light-emitting assembly 10 is that, in the light-emitting assembly 10A, the first light-emitting ring 110 may optionally be provided with a diffusion layer 120. The diffusion layer 120 covers at least one first light-emitting unit 112 of the first light-emitting ring 110. In this embodiment, the diffusion layer 120 is, for example, a transparent or translucent rubber material or resin material. The diffusion layer 120 may be disposed in the groove 118 of the first light-emitting ring 110 to cover the first light-emitting unit 112. In this manner, the diffusion layer 120 diffuses the light emitted by the first light-emitting unit 112, thereby enhancing the optical quality of the first light-emitting ring 110. Furthermore, the diffusion layer 120 may also be optionally disposed on each light-emitting ring in other embodiments of the present invention, and the present invention is not limited thereto. For example, the diffusion layer 120 can be implemented as an annular diffusion layer, which can be sleeved on the periphery of the first light-emitting ring 110 (for example, covering the connecting surface 115), and further covering the first light-emitting unit 112 to achieve the optical effect of diffusing the light emitted by the first light-emitting unit 112.
[0078] Please refer to Figure 3 , Figure 3 FIG. 1 is a schematic top view of a light emitting assembly according to a third embodiment of the present invention. Figure 3The light-emitting assembly 10B is similar to the aforementioned light-emitting assembly 10 and light-emitting assembly 10A. Like elements are denoted by like reference numerals and are not further described herein. The difference between the light-emitting assembly 10B and the aforementioned light-emitting assembly 10 and light-emitting assembly 10A is that the light-emitting assembly 10B further includes a second electrical connector 200 and a second light-emitting ring 210. The second electrical connector 200 includes at least two third connection terminals 202 and at least one third magnetic element 204. The structure of the second light-emitting ring 210 is similar to that of the first light-emitting ring 110. The second light-emitting ring 210 has a third side surface 211, a fourth side surface 213 opposite to the third side surface 211, and a connecting surface 215. The connecting surface 215 connects the third side surface 211 and the fourth side surface 213. The connecting surface 215 may have a groove 218, and the third side surface 211 may have a second positioning hole 2110. The second light-emitting ring 210 is sleeved over the tube 20 and located on one side of the second electrical connector 200. In a specific embodiment, the second electrical connector 200 is adjacent to the third side 211 of the second light-emitting ring 210. The second light-emitting ring 210 includes at least one second light-emitting unit 212, at least two fourth connection terminals 214, and at least one fourth magnetic element 216. The at least one second light-emitting unit 212 is disposed in a recess 218, and the fourth connection terminal 214 is configured to correspond to the second positioning hole 2110 on the third side 211. Preferably, the third connection terminal 202 can be a spring pin terminal or other suitable connection terminal, and the fourth connection terminal 214 can be a corresponding contact (e.g., a metal sheet), or vice versa, but the present invention is not limited thereto. The second electrical connector 200 removably attracts the at least one fourth magnetic element 216 of the second light-emitting ring 210 via the at least one third magnetic element 204, allowing the at least two third connection terminals 202 to be inserted into the second positioning hole 2110 and electrically connected to the at least two fourth connection terminals 214. Furthermore, the first electrical connector 100 is electrically connected to the second electrical connector 200 to control at least one second light-emitting unit 212 on the second light-emitting ring 210. In this embodiment, the second electrical connector 200 may also be ring-shaped and sleeved within the tube 20. However, the present invention is not limited thereto. In other preferred embodiments, the second electrical connector 200 may also have other suitable shapes and need not be sleeved within the tube 20. Furthermore, the first electrical connector 100 and the second electrical connector 200 can simultaneously receive power and / or control signals from a signal source via the cable 30 and the connecting wire 31. This allows the first light-emitting unit 112 on the first light-emitting ring 110 and the second light-emitting unit 212 on the second light-emitting ring 210 to simultaneously control their light emission to achieve the desired contextual effect.
[0079] Please refer to Figure 4 , Figure 4 2 is a schematic diagram of a light emitting assembly in use according to the fourth embodiment of the present invention. Figure 4Light-emitting assembly 10C is similar to the aforementioned light-emitting assembly 10B. Identical components are denoted by the same reference numerals and are not further described here. Light-emitting assembly 10C differs from light-emitting assembly 10B in that the first electrical connector 100 and the second electrical connector 200 are circular, rather than ring-shaped, and are disposed radially outward of the first and second light-emitting rings 110 and 210, respectively. Furthermore, the connection surface 115 of the first light-emitting ring 110 defines a fifth positioning hole 1150. The first connection terminal 102 of the first electrical connector 100 is inserted into the fifth positioning hole 1150 to electrically connect to the second connection terminal 114 of the first light-emitting ring 110. Similarly, the connection surface 215 of the second light-emitting ring 210 also has a sixth positioning hole 2150. The fourth connection terminal 214 is arranged corresponding to the sixth positioning hole 2150. The third connection terminal 202 of the second electrical connector 200 is inserted into the sixth positioning hole 2150 to be electrically connected to the fourth connection terminal 214 of the second light-emitting ring 210. The first electrical connector 100 is also electrically connected to the second electrical connector 200 via the connecting wire 31. In this way, this design can further reduce the volume occupied by the light-emitting assembly 10C.
[0080] Please refer to Figure 5 , Figure 5 2 is a schematic diagram of a light emitting assembly in use according to the fifth embodiment of the present invention. Figure 5 The light-emitting assembly 10D is similar to the aforementioned light-emitting assembly 10B and light-emitting assembly 10C. Like components are denoted by like reference numerals and will not be further described here. The difference between the light-emitting assembly 10D and the aforementioned light-emitting assembly 10B and light-emitting assembly 10C lies in that, in the light-emitting assembly 10D, the first electrical connector 100 is directly electrically connected to the second light-emitting ring 210 via a connecting wire 31. Specifically, the second light-emitting unit 212 of the second light-emitting ring 210 is disposed, for example, on the second circuit substrate 2121 of the second light bar 2120. The connecting wire 31 is directly electrically connected to the second circuit substrate 2121, enabling the second light-emitting ring 210 to receive power and / or control signals from a signal source, thereby controlling the second light-emitting unit 212 to emit light. This design eliminates the need for an electrical connector, thereby reducing the cost of the light-emitting assembly 10D. Furthermore, the second light-emitting ring 210 may optionally be equipped with a fourth connecting terminal 214 and a fourth magnetic element 216 on the connecting surface 215. The fourth connecting terminal 214 is configured to correspond to the sixth positioning hole 2150. In addition, if an additional light ring (not shown) is to be added to the light emitting element 10D, Figure 5 ), another electrical connector (not shown) having a magnetic element and a connecting terminal can be connected via the fourth connecting terminal 214 of the second light-emitting ring 210 and the fourth magnetic element 216. Figure 5 ) and a connecting wire to connect this additional light ring. In a variation, the first light ring 100 can also be selectively connected to another electrical connector via the cable 32, such as Figure 5 The second electrical connector 200 shown can be used to connect additional light rings, thereby increasing the degree of freedom in the arrangement of the light emitting assembly 10D.
[0081] Please refer to Figures 6A to 6B , Figure 6A is a perspective schematic diagram of a light emitting assembly according to a sixth embodiment of the present invention. Figure 6B is based on Figure 6A A schematic top view of a light emitting assembly according to an embodiment. Figures 6A to 6B Light-emitting assembly 10E is similar to light-emitting assembly 10 through light-emitting assembly 10D of the aforementioned embodiments. Identical elements are denoted by the same reference numerals and are not further described herein. Light-emitting assembly 10E differs from light-emitting assembly 10 through light-emitting assembly 10D of the aforementioned embodiments in that first light-emitting ring 110 further includes at least two fifth connection terminals 117 and at least one fifth magnetic element 119. The first electrical connector 100 is adjacent to the first side surface 111 of the first light-emitting ring 110, while the at least two fifth connection terminals 117 and the at least one fifth magnetic element 119 are disposed on the second side surface 113 of the first light-emitting ring 110. In other words, the second connection terminal 114 and the fifth connection terminal 117 are respectively disposed on two opposing side surfaces of the first light-emitting ring 110 (e.g., the first side surface 111 and the second side surface 113). Furthermore, the second light-emitting ring 210 is sleeved on the tube 20 and adjacent to the second side surface 113 of the first light-emitting ring 110. The third side surface 211 of the second light-emitting ring 210, for example, faces the second side surface 113 of the first light-emitting ring 110. The second light-emitting ring 210 is removably attached to the fifth magnetic element 119 of the first light-emitting ring 110 via at least one fourth magnetic element 216, thereby electrically connecting the at least two fifth connection terminals 117 of the first light-emitting ring 110 to the at least two fourth connection terminals 214 of the second light-emitting ring 200. Preferably, the fifth connection terminals 117 may be spring pin terminals or other suitable connection terminals, and the fourth connection terminals 214 may be corresponding contacts (e.g., metal sheets), but the present invention is not limited thereto.
[0082] Please refer to Figure 6C and Figure 6D , Figure 6C is based on Figure 6A A schematic structural diagram of a light bar of a light emitting assembly of an embodiment, Figure 6D is based on Figure 6A A schematic diagram of the structure of the light bar of the light emitting assembly of the embodiment being installed on the first light emitting ring. Figure 6DSome components are omitted for schematic purposes. Specifically, the first light bar 1120 includes a first circuit substrate 1121 and two opposing first and second terminal configuration areas 1122 and 1124. A plurality of second connecting terminals 114 are configured in the first terminal configuration area 1122, and a plurality of fifth connecting terminals 117 are configured in the second terminal configuration area 1124. The second side surface 113 of the first light ring 110 has a plurality of third positioning holes 1130 that communicate with the groove 118. The number of third positioning holes 1130 corresponds to the number of fifth connecting terminals 117, for example. When the first light strip 1120 is to be placed on the first light ring 110, the first circuit substrate 1121 can be embedded or glued into the groove 118, the first terminal configuration area 1122 can be bent so that the second connection terminal 114 corresponds to the first positioning hole 1110 on the first side surface 111, and the second terminal configuration area 1124 can be bent so that the fifth connection terminal 117 corresponds to and is inserted into the third positioning hole 1130 on the second side surface 113. In this way, at least a portion of the fifth connection terminal 117 can be exposed and protrude from the second side surface 113 of the first light ring 110.
[0083] Please refer to Figure 6A 、 Figure 6B 、 Figure 6E as well as Figure 6F , Figure 6E is based on Figure 6A A schematic structural diagram of the light bar of the second light-emitting ring of the light-emitting assembly of the embodiment; Figure 6F is based on Figure 6A A schematic diagram of the structure of the light bar of the light emitting assembly of the embodiment being installed on the second light emitting ring. Figure 6FSome components are schematically omitted. The difference from the previous embodiment is that the second light ring 210 has a groove 218 on its connection surface 215, a plurality of second positioning holes 2110 communicating with the groove 218 on the third side 211, and a plurality of fourth positioning holes 2130 communicating with the groove 218 on the fourth side 213. Furthermore, the second light ring 210 may also include at least one sixth connection terminal 217 and at least one sixth magnetic element 219. Similar to the first light bar 1120, the second light bar 2120 also includes a second circuit substrate 2121 and two opposing third terminal configuration areas 2122 and a fourth terminal configuration area 2124. The plurality of fourth connection terminals 214 are configured in the third terminal configuration area 2122, and the plurality of sixth connection terminals 217 are configured in the fourth terminal configuration area 2124. Preferably, the sixth connection terminal 217 may be a spring pin connection terminal or other suitable connection terminal, but the present invention is not limited thereto. To place the second light strip 2120 within the second light ring 210, the second circuit substrate 2121 can be inserted or glued into the groove 218. The terminal configuration area 2122 is bent so that the fourth connection terminal 214 corresponds to the second positioning hole 2110 on the third side 211. The other terminal configuration area 2124 is bent so that the sixth connection terminal 217 corresponds to and is inserted into the fourth positioning hole 2130 on the fourth side 213. This allows at least a portion of the sixth connection terminal 217 to be exposed and protrude from the fourth side 213 of the second light ring 210. As can be seen from the design of this embodiment, the light-emitting assembly 10E can connect at least two light rings using only one first electrical connector 100. This not only eliminates the need for electrical connectors but also allows multiple light rings to be connected in series to provide enhanced visual effects. In addition, since the second light-emitting ring 210 is provided with at least one sixth connection terminal 217 and at least one sixth magnetic element 219, when the number of light-emitting rings in the light-emitting component 10E is to be increased, a new light-emitting ring can be directly connected through the sixth connection terminal 217 and the sixth magnetic element 219, thereby increasing the possibility of expanding the light-emitting component 10E.
[0084] Please refer to Figure 7A , Figure 7A FIG. 1 is a block diagram of a light emitting component control architecture according to an embodiment of the present invention. Figure 7AThe light-emitting component control architecture can be applied to the aforementioned light-emitting component 10 and light-emitting component 10A. The light-emitting component control architecture includes an external processing unit 40, a first control chip 106, and at least one first light-emitting unit 112. The external processing unit 40 is electrically connected to the first electrical connector 100 of the light-emitting component 10 via a cable 30. The first control chip 106 is disposed on the first electrical connector 100. The at least one first light-emitting unit 112 is disposed on the first light-emitting ring 110. The first light-emitting unit 112 is electrically connected to the at least two first connection terminals 102 of the first electrical connector 100 via at least two second connection terminals 114. For example, when the first light-emitting unit 112 is a conventional light-emitting diode, the external processing unit 40 can provide power to enable the first control chip 106, which can then transmit power and control the first light-emitting unit 112 to emit light. When the first light-emitting unit 112 is a three-primary-color light-emitting diode, the external processing unit 40 can provide power and control signals to the first control chip 106. The control signals may include, for example, color information and a lighting program. The first control chip 106 then transmits the power and control signals to the first light-emitting unit 112 to control the first light-emitting unit 112 to emit light with a mood effect. In this embodiment, the external processing unit 40 and the first control chip 106 can be a single-core or multi-core central processing unit (CPU), or other programmable general-purpose or special-purpose microprocessor, digital signal processor (DSP), programmable controller, application-specific integrated circuit (ASIC), or other similar components, or a combination of such components, but the present invention is not limited thereto.
[0085] Please refer to Figure 7B , Figure 7B FIG. 4 is a block diagram of a light emitting component control architecture according to another embodiment of the present invention. Figure 7B The light emitting device control architecture can be applied to the aforementioned light emitting device 10B. Figure 7B The light emitting component control architecture and Figure 7AThe light-emitting component control architecture is similar to that of the embodiment described above, and like elements are denoted by like reference numerals and will not be further described herein. The difference from the previous embodiment is that the light-emitting component control architecture further includes a second control chip 206 and at least one second light-emitting unit 212. The second control chip 206 is disposed on the second electrical connector 200, and the second light-emitting unit 212 is disposed on the second light-emitting ring 210. The second control chip 206 is electrically connected to the external processing unit 40 via a connecting wire 31 and a cable 30. The second light-emitting unit 212 is electrically connected to the at least two third connecting terminals 202 of the second electrical connector 200 via at least two fourth connecting terminals 214. Furthermore, the first electrical connector 100 is electrically connected to the external processing unit 40 via the connecting wire 31 and the cable 30. The external processing unit 40 can provide power and control signals to the first control chip 106 and the second control chip 206 via the cable 30 and the connection line 31, respectively. The first control chip 106 and the second control chip 206 then transmit power and control signals to control the first light-emitting unit 112 and the second light-emitting unit 212 to emit light with a mood effect. Furthermore, similar to the previous embodiment, the second control chip 206 can be composed of similar components or architecture as the first control chip 106, and further description thereof will not be given here.
[0086] Please refer to Figure 7C , Figure 7C FIG. 4 is a block diagram of a light emitting component control architecture according to yet another embodiment of the present invention. Figure 7C The light emitting device control architecture can be applied to the aforementioned light emitting device 10C. Figure 7C The light emitting component control architecture and Figure 7A 、 Figure 7B The control architecture of the light-emitting components is similar to that of the embodiment, and the same elements are represented by the same reference numerals and will not be repeated here. The difference from the previous embodiment is that the second electrical connector 200 is electrically connected to the first electrical connector 100 via a connecting line 31. The external processing unit 40 can provide power and control signals to the first control chip 106 via the cable 30, and the first control chip 106 then transmits power and control signals to control the first light-emitting unit 112 to emit light with a situational effect. In addition, the first control chip 106 can also transmit corresponding control signals to the second control chip 206, and the second control chip 206 then transmits power and control signals to control the second light-emitting unit 212 to emit light with a situational effect.
[0087] Please refer to Figure 7D , Figure 7D FIG. 4 is a block diagram of a light emitting component control architecture according to another embodiment of the present invention. Figure 7D The light emitting device control architecture can be applied to the aforementioned light emitting device 10D. Figure 7D The light emitting component control architecture and Figure 7A 、 Figure 7B 、 Figure 7C The light-emitting component control architecture is similar to that of the embodiment described above. Like elements are denoted by like reference numerals and will not be further described here. The difference from the previous embodiment lies in that, in this light-emitting component control architecture, at least one second light-emitting unit 212 is disposed on the second light-emitting ring 210. The second light-emitting unit 212 is electrically connected to the first electrical connector 100 via a connecting wire 31. Furthermore, the second light-emitting ring 210 can also be electrically connected to other electrical connectors via a fourth connecting terminal 214. The external processing unit 40 provides power and control signals to the first control chip 106 via a cable 30. The first control chip 106 then transmits the power and control signals to the second light-emitting unit 212, thereby simultaneously controlling the first and second light-emitting units 112, 212 to emit light with a contextual effect. Furthermore, in a variation, the first light-emitting ring 110 can optionally be connected to the second electrical connector 200 via another connecting wire 32. The second electrical connector 200 can then be electrically connected to additional light-emitting rings (e.g., via a third connecting terminal 202). The external processing unit 40 transmits power and control signals to the first control chip 106. The first control chip 106 transmits power and control signals to the second control chip 206 via the first light ring 110. The second control chip 206 then transmits power and control signals to the additional light ring to control the additional light ring to emit light with a situational effect.
[0088] Please refer to Figure 7E , Figure 7E FIG. 4 is a block diagram of a light emitting component control architecture according to yet another embodiment of the present invention. Figure 7E The light emitting device control architecture can be applied to the aforementioned light emitting device 10E. Figure 7E The light emitting component control architecture and Figure 7A 、 Figure 7B 、 Figure 7C 、 Figure 7D The control architecture of the light-emitting components is similar to that of the embodiment described above. Like elements are denoted by like reference numerals and are not further described here. The difference from the previous embodiment is that at least one second light-emitting unit 212 is disposed on the second light-emitting ring 210. The second light-emitting unit 212 is electrically connected to the at least two fifth connection terminals 117 of the first light-emitting ring 110 via at least two fourth connection terminals 214. The external processing unit 40 can provide power and control signals to the first control chip 106. The first control chip 106 then transmits the power and control signals to the first light-emitting unit 112, which is then transmitted to the second light-emitting unit 212 via the first light-emitting ring 110 to control the first and second light-emitting units 112 to emit light with contextual effects.
[0089] In summary, in the light-emitting assembly and control architecture of the present invention, the first electrical connector is removably attached to at least one second magnetic element of the first light-emitting ring via at least one first magnetic element, thereby electrically connecting at least two first terminals of the first electrical connector to at least two second connection terminals of the first light-emitting ring. Because the light-emitting assembly and control architecture of the present invention improve the electrical connection method between the electrical connector and the light-emitting ring, the light-emitting assembly and control architecture of the present invention can simultaneously install more than one light-emitting ring to provide multiple color changes while using a single electrical connector. This increases the scalability of the light-emitting assembly and control architecture, and also enhances the user's visual contextual effects.
[0090] Of course, the present invention may have many other embodiments. Without departing from the spirit and essence of the present invention, technicians familiar with the field may make various corresponding changes and modifications based on the present invention, but these corresponding changes and modifications should all fall within the scope of protection of the claims attached to the present invention.
Claims
1. A light-emitting assembly, which is used to be mounted on a pipe, characterized in that: The light emitting assembly includes: a first electrical connector, the first electrical connector comprising at least two first connecting terminals and at least one first magnetic element; and a first luminous ring, the first luminous ring being configured to be sleeved on the tube, the first luminous ring comprising at least one luminous unit, at least two second connecting terminals, and at least one second magnetic element, wherein the first electrical connector detachably attracts the at least one second magnetic element of the first luminous ring via the at least one first magnetic element to electrically connect the at least two first connecting terminals to the at least two second connecting terminals; The first electrical connection element receives power provided by a signal source, and the first electrical connection element receives a control signal to control the at least one light-emitting unit on the first light-emitting ring.
2. The light emitting assembly according to claim 1, wherein: The first electrical connector is annular and sleeved on the tube, or the first electrical connector is an arc piece and is arranged on the radial outer side of the first luminous ring.
3. The light emitting assembly according to claim 1, wherein: The number of the at least two first connection terminals and the at least two second connection terminals are both three, and are used to transmit the power and the control signal.
4. The light emitting assembly according to claim 1, wherein: One of the at least one first magnetic element and the at least one second magnetic element is a magnet or an electromagnet.
5. The light emitting assembly according to claim 1, wherein: The first light-emitting ring further includes a diffusion layer, and the diffusion layer covers the at least one light-emitting unit of the first light-emitting ring.
6. The light emitting assembly according to claim 1, wherein: The light emitting assembly further comprises: a second luminous ring, the second luminous ring being used to be sleeved on the tube, the second luminous ring comprising at least one luminous unit, at least two fourth connecting terminals, and at least one fourth magnetic element; The first electrical connection member is electrically connected to the second light-emitting ring through a connection line.
7. The light emitting assembly according to claim 6, wherein: The light emitting assembly further comprises: A second electrical connector is electrically connected to the first luminous ring via a connecting wire, wherein the second electrical connector further includes at least two third connecting terminals and at least one third magnetic element.
8. The light emitting assembly according to claim 1, wherein: The light emitting assembly further comprises: a second electrical connector comprising at least two third connection terminals and at least one third magnetic element; and a second luminous ring, the second luminous ring being configured to be sleeved on the tube, the second luminous ring comprising at least one luminous unit, at least two fourth connecting terminals, and at least one fourth magnetic element, wherein the second electrical connector is detachably attracted to the at least one fourth magnetic element of the second luminous ring via the at least one third magnetic element so as to electrically connect the at least two third connecting terminals to the at least two fourth connecting terminals; The first electrical connector and the second electrical connector receive power provided by the signal source to simultaneously control the at least one light-emitting unit on the first light-emitting ring and the at least one light-emitting unit on the second light-emitting ring.
9. The light emitting assembly according to claim 8, wherein: The second electrical connector is annular and sleeved on the tube, or the second electrical connector is an arc piece and is arranged on the radial outer side of the second luminous ring.
10. A light-emitting assembly for sleeve installation on a pipe, characterized in that: The light emitting assembly includes: an electrical connector comprising at least two first connecting terminals and at least one first magnetic element; a first luminous ring, the first luminous ring being configured to be sleeved on the tube, the first luminous ring having a first side surface and a second side surface opposite to the first side surface, the first luminous ring comprising at least one luminous unit, at least two second connecting terminals, at least two fifth connecting terminals, at least one second magnetic element, and at least one fifth magnetic element; the electrical connector being adjacent to the first side surface of the first luminous ring, the at least two second connecting terminals and the at least one second magnetic element being disposed on the first side surface, and the at least two fifth connecting terminals and the at least one fifth magnetic element being disposed on the second side surface, wherein the electrical connector detachably adsorbs the at least one second magnetic element of the first luminous ring via the at least one first magnetic element so as to electrically connect the at least two first connecting terminals to the at least two second connecting terminals; and a second light-emitting ring, the second light-emitting ring being sleeved on the tube and adjacent to the second side surface of the first light-emitting ring, the second light-emitting ring comprising at least one light-emitting unit, at least two fourth connection terminals, and at least one fourth magnetic element, wherein the second light-emitting ring is detachably attached to the at least one fifth magnetic element of the first light-emitting ring via the at least one fourth magnetic element, such that the at least two fifth connection terminals of the first light-emitting ring are electrically connected to the at least two fourth connection terminals of the second light-emitting ring; The electrical connection element receives power provided by a signal source to control the light-emitting units on the first light-emitting ring and the second light-emitting ring.
11. The light emitting assembly according to claim 10, wherein: The number of the at least two first connection terminals, the at least two second connection terminals, the at least two fourth connection terminals, and the at least two fifth connection terminals are all three, and are used to transmit the power and the control signal.
12. The light emitting assembly according to claim 10, wherein: The electrical connector is annular and sleeved on the pipe.
13. The light emitting assembly according to claim 10, wherein: The second light-emitting ring includes a third side and a fourth side relative to the third side, the third side faces the second side of the first light-emitting ring, the second light-emitting ring also includes at least one sixth connection terminal and at least one sixth magnetic element, the at least two fourth connection terminals and the at least one fourth magnetic element are arranged on the third side, and the at least one sixth connection terminal and the at least one sixth magnetic element are arranged on the fourth side.
14. The light-emitting assembly according to claim 1 or 10, wherein: The at least two first connection terminals or the at least two second connection terminals are spring pin connection terminals.
15. A light emitting component control architecture, characterized in that: The light-emitting component control architecture includes: A first control chip is disposed on a first electrical connection member, wherein the first electrical connection member includes at least two first connection terminals and at least one first magnetic element; At least one first light-emitting unit, the at least one first light-emitting unit being disposed on a first light-emitting ring and electrically connected to the first control chip, wherein the first light-emitting ring is sleeved on a tube, the first light-emitting ring further comprising at least two second connecting terminals and at least one second magnetic element, wherein the first electrical connector is adjacent to the first light-emitting ring, and the first electrical connector is detachably attracted to the at least one second magnetic element of the first light-emitting ring via the at least one first magnetic element so as to electrically connect the at least two first connecting terminals to the at least two second connecting terminals; and An external processing unit is electrically connected to the first control chip, wherein the external processing unit sends a control signal to the first control chip, and the control signal is transmitted to the at least one first light-emitting unit via the first control chip to control the at least one first light-emitting unit to emit light.
16. The light emitting component control architecture according to claim 15, wherein: The at least one first light emitting unit is a three-primary-color light emitting diode.
17. The light emitting component control architecture according to claim 15, wherein: The light emitting component control architecture also includes: A second control chip is disposed on the second electrical connection member, wherein the second electrical connection member includes at least two third connection terminals and at least one third magnetic element; and at least one second light-emitting unit, disposed on the second light-emitting ring, and electrically connected to the second control chip; The second luminous ring is used to be sleeved on the tube, and the second luminous ring also includes at least two fourth connection terminals and at least one fourth magnetic element. The second electrical connector is adjacent to the second luminous ring, and the second electrical connector can detachably absorb the at least one fourth magnetic element of the second luminous ring through the at least one third magnetic element so that the at least two third connection terminals are electrically connected to the at least two fourth connection terminals.
18. The light emitting component control architecture according to claim 17, wherein: The external processing unit is electrically connected to the second control chip. The external processing unit sends another control signal to the second control chip, and the control signal is transmitted to the at least one second light emitting unit via the second control chip to control the light emission of the at least one second light emitting unit.
19. The light emitting component control architecture according to claim 17, wherein: The first electrical connector is electrically connected to the second electrical connector. The external processing unit sends the control signal to the first control chip, which is then transmitted to the second control chip of the second electrical connector. The control signal is then transmitted to the at least one second light-emitting unit via the second control chip to control the at least one second light-emitting unit to emit light.
20. The light emitting component control architecture according to claim 15, wherein: The light emitting component control architecture also includes: at least one second light-emitting unit, disposed on a second light-emitting ring, wherein the second light-emitting ring is used to be sleeved on the tube, and the second light-emitting ring further includes at least two fourth connecting terminals; The first electrical connection member is electrically connected to the second light-emitting ring through a connecting line, the external processing unit sends the control signal to the first control chip, and the first control chip transmits the control signal to the at least one second light-emitting unit to control the at least one second light-emitting unit to emit light.
21. The light emitting component control architecture according to claim 15, wherein: The light emitting component control architecture also includes: at least one second light-emitting unit, the at least one second light-emitting unit being disposed on a second light-emitting ring, wherein the second light-emitting ring is sleeved on the tube, and the second light-emitting ring further comprises at least two fourth connecting terminals; The first light-emitting ring further has at least two fifth connection terminals, and the first light-emitting ring is electrically connected to the at least two fourth connection terminals of the second light-emitting ring through the at least two fifth connection terminals. The external processing unit sends the control signal to the first control chip, which is then transmitted to the at least one second light-emitting unit via the first light-emitting ring to control the at least one second light-emitting unit to emit light.
22. The light emitting component control architecture according to any one of claims 17, 20-21, wherein: The at least one second light emitting unit is a three-primary-color light emitting diode.