Active radiator with omnidirectional air convection and stage lighting fixture using the same
10962215 ยท 2021-03-30
Assignee
Inventors
Cpc classification
F21V29/763
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/503
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2131/406
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/51
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2131/105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/76
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/503
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/51
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/76
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present application relates to an active radiator with omnidirectional air convection and a stage lighting fixture using the same. The active radiator includes a radiator body provided with heat dissipation channels and a heat transfer assembly which is at least partially transversely arranged inside the radiator body and in form of an integrity therewith. The present application of simple structure and convenient in use can achieve efficient heat dissipation through omnidirectional active heat dissipation of the stage lighting fixture, and can also reduce overall costs and is easy to install.
Claims
1. An active radiator with omnidirectional air convection comprising: a radiator body having a first radiator fin group and a second radiator fin group which are both provided with heat dissipation channels, and an extension direction of the heat dissipation channels of the first radiator fin group being nonparallel to the second heat dissipation channels; and a heat transfer assembly at least partially transversely attached to the radiator body; wherein the first radiator fin group is in form of an inverted T-shaped structure, and the second radiator fin group are of two which are arranged on stepped recess areas on either side of the inverted T-shaped structure, wherein the heat transfer assembly comprises a heat transfer substrate attached to the first radiator fin group and the second radiator fin group, and a plurality of heat transfer pipes, in which one end of each of the heat transfer pipes is fixedly attached to the heat transfer substrate, and other end thereof extends through the first radiator fins or the second radiator fins; wherein a top surface of the second radiator fin group is higher than a top surface of the first radiator fin group, the heat transfer substrate is fixed to the top surface of the first radiator fin group and is partially embedded into the second radiator fin group from lateral side thereof, and two ends on the heat transfer substrate that correspond to the top surface of the first radiator fin group are separately provided with a third radiator fin group, and wherein the third radiator fin group and the second radiator fin group define a recess for installing a heat dissipation object above the top surface of the first radiator fin group.
2. The active radiator with omnidirectional air convection according to claim 1, wherein the first radiator fin group is constituted by a plurality of first radiator fins arranged at intervals, and the second radiator fin group is constituted by a plurality of second radiator fins arranged at intervals, gaps between the first radiator fins defines the heat dissipation channels of the first radiator fin group and gaps between the second radiator fins defines the heat dissipation channels of the second radiator fin group.
3. The active radiator with omnidirectional air convection according to claim 1, wherein the second radiator fin group is perpendicular to the first radiator fin group.
4. The active radiator with omnidirectional air convection according to claim 1, wherein the heat transfer substrate is provided with positioning slots corresponding to the heat transfer pipes and ends of the heat transfer pipes that are attached to the heat transfer substrate are bent into connection parts fixed in the positioning slots.
5. The active radiator with omnidirectional air convection according to claim 1, wherein the heat transfer substrate forms in cross shape and the heat transfer substrate and the heat transfer pipes are both made of copper.
6. A stage lighting fixture applying the radiator according to claim 1 comprising: a light source module, a radiator provided with heat dissipation channels and a recess on the top, in which the light source module is arranged in the recess a plurality of function modules of the lighting fixture arranged in the optical path in front of the light source module, and a housing provided with heat dissipation apertures corresponding to the heat dissipation channels of the radiator, inside which the light source module, the radiator, and the plurality of function modules of the lighting fixture are arranged.
7. The active radiator with omnidirectional air convection according to claim 1, wherein some heat transfer pipes are arranged on the heat transfer substrate and one end thereof extends through the second radiator fins, and Some heat transfer pipes are arranged under the heat transfer substrate and one end thereof extends through the stepped recess areas on either side of the inverted T-shaped structure and a central project of the inverted T-shaped structure.
8. An active radiator with omnidirectional air convection comprising: a radiator body having a first radiator fin group and a second radiator fin group which are both provided with heat dissipation channels, and an extension direction of the heat dissipation channels of the first radiator fin group being nonparallel to the second heat dissipation channels; and a heat transfer assembly at least partially transversely attached to the radiator body; wherein the first radiator fin group is in form of an inverted T-shaped structure, and the second radiator fin group are of two which are arranged on stepped recess areas on either side of the inverted T-shaped structure, wherein the heat transfer assembly comprises a heat transfer substrate attached to the first radiator fin group and the second radiator fin group, and a plurality of heat transfer pipes, in which one end of each of the heat transfer pipes is fixedly attached to the heat transfer substrate, and other end thereof extends through the first radiator fins or the second radiator fins; wherein a top surface of the first radiator fin group is provided with a recess for installing a heat dissipation object, and a top surface of the second radiator fin group is flush with a bottom surface of the recess, wherein the heat transfer substrate is fixed on a surface defined by the top surface of the second radiator fin group and the bottom surface of the recess, and is partially embedded into the first radiator fin group from two lateral sides of the recess, and wherein two ends on the heat transfer substrate that corresponds to the top surface of the second radiator fin group are separately provided with a third radiator fin group.
9. The active radiator with omnidirectional air convection according to claim 8, wherein the first radiator fin group is constituted by a plurality of first radiator fins arranged at intervals, and the second radiator fin group is constituted by a plurality of second radiator fins arranged at intervals, gaps between the first radiator fins defines the heat dissipation channels of the first radiator fin group and gaps between the second radiator fins defines the heat dissipation channels of the second radiator fin group.
10. The active radiator with omnidirectional air convection according to claim 8, wherein the second radiator fin group is perpendicular to the first radiator fin group.
11. The active radiator with omnidirectional air convection according to claim 8, wherein the heat transfer substrate is provided with positioning slots corresponding to the heat transfer pipes and ends of the heat transfer pipes that are attached to the heat transfer substrate are bent into connection parts fixed in the positioning slots.
12. The active radiator with omnidirectional air convection according to claim 8, wherein the heat transfer substrate forms in cross shape and the heat transfer substrate and the heat transfer pipes are both made of copper.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
DESCRIPTION OF EMBODIMENTS
(4) The drawings are for illustration purpose only and are not intended to limit the present application. Some components in the drawings are omitted, enlarged or reduced for better illustrating the embodiments, and sizes of these components do not represent actual sizes of them. For those skilled in the art, it should be understood that some known structures in the drawings and descriptions of these structures are omitted. Positional relationships described in the drawings are for illustration purpose only and are not intended to limit the present application.
Embodiment 1
(5) As shown in
(6) As shown in
(7) As shown in
(8) As shown in
(9) As shown in
(10) In this embodiment, the heat transfer substrate 7 in cross shape and the heat transfer pipes 8 are made of copper. With excellent heat transfer properties of copper material, heat generated by the heat dissipation object will be conducted to the radiator body quickly.
Embodiment 2
(11) This embodiment is similar to Embodiment 1 except the installation of the heat transfer substrate 7 and the radiator body. The top surface of the first radiator fin group 5 is provided with a recess 9 for installing the heat dissipation object, and the top surface of the second radiator fin group 6 is flush with the bottom surface of the recess 9. The heat transfer substrate 7 is fixed on the surface defined by the top surface of the second radiator fin group 6 and the bottom surface of the recess 9 and partially embedded in the first radiator fin group 5 from two lateral sides of the recess 9. Two ends on the heat transfer substrate 7 corresponding to the top surface of the second radiator fin group 6 are separately provided with a third the radiator fin group 10, of which the direction of heat dissipation channels is preferably the same as that of the second radiator fin group 6, or same as that of the first radiator first radiator fin group 5. The heat dissipation object, such as a light source module of a stage lighting fixture, is located in the recess 9 and is fixed to the heat transfer substrate 7 with the first radiator fin group 5 and the third radiator fin group 10 around, so that air flows from the heat dissipation channels will directly exchange heat with the heat dissipation object, thereby achieving higher heat dissipation effects. Other configurations and operation principles of this embodiment are similar to those of Embodiment 1.
Embodiment 3
(12)
(13) Obviously, the above embodiments of the present application are merely examples for clear illustration and are not intended to limit implementations of the present application. For those skilled in the art, modifications or changes can be made on the basis of the above description. There is no need or exhaustion for all implementations. Any modification, equivalent substitution or improvement, and the like within the spirit and principle of the present application should be included in the scope of the claims of the present application.