The present disclosure relates to the field of light technology, and more particularly, to an outdoor LED light.
An outdoor LED light commonly used in the market generally adopts a blade-type heat dissipation structure with poor ventilation effect. In order to meet the heat dissipation demand, it is required that the radiator needs to be designed with large size. In addition, in order to enhance the luminous intensity of the light, more luminous areas need to be arranged, which also increases the size of the light.
In order to overcome the defects of the prior art, the present disclosure provides an outdoor LED light, which ensures good heat dissipation capability and luminous intensity without increasing an overall size of the light.
The technical solution used by the present disclosure to solve the technical problem thereof is that:
an outdoor LED light, comprising:
a power supply compartment, and
a heat dissipation body, which is connected at one side to the power supply compartment and sequentially provided at the other side with a PCB board and a plurality of lenses, the heat dissipation body being:
provided with a shroud on a light emitting side of the outdoor LED light.
As a further improvement to the above solution, a portion of the plurality of needle-shaped heat dissipation columns gradually increase their heights in a radially outward direction from a center of the heat dissipation body, so that an curved surface structure is formed by each end of the portion of the plurality of needle-shaped heat dissipation columns facing away from the heat dissipation body.
As a further improvement to the above solution, the power supply compartment is provided, on one surface of the power supply compartment facing the heat dissipation body, with a convex surface protruding toward the heat dissipation body.
As a further improvement to the above solution, the other portion of the needle-shaped heat dissipation columns at the edge of the heat dissipation body gradually decrease their heights in a radially inward direction.
As a further improvement to the above solution, a diameter of the needle-shaped heat dissipation columns located at an outer periphery of the heat dissipation body is greater than a diameter of the needle-shaped heat dissipation columns located at an inner periphery of the heat dissipation body.
As a further improvement to the above solution, the heat dissipation through-hole is internally provided with a through-hole fastener, and the through-hole fastener is provided with an elastic reversed buckle.
As a further improvement to the above solution, the stud bolt respectively comprises a cylinder including a middle connecting hole along a length direction of the cylinder, a plurality of first reinforcing ribs extending around the cylinder.
As a further improvement to the above solution, the heat dissipation body is provided symmetrically, on the one side of the heat dissipation body facing the power supply compartment, with a pair of handles, which are fixedly arranged on the heat dissipation body through the stud bolt.
As a further improvement to the above solution, the mounting bracket is provided with a first axle hole and an arc-shaped chute arranged around the first axle hole; the heat dissipation body is provided with a mounting wall for connecting the mounting bracket, the mounting wall is provided with a second axle hole coaxial with the first axle hole and a threaded hole with an axis passing through the arc-shaped chute; the first axle hole and the second axle hole are connected through a bolt, a bolt passing through the arc-shaped chute is arranged in the threaded hole.
As a further improvement to the above solution, a plurality of said threaded holes are arranged evenly on a circumference taking the first axle hole as a center of the circle.
As a further improvement to the above solution, the mounting wall is provided, on a back surface of the mounting wall, with a plurality of second reinforcing ribs.
As a further improvement to the above solution, the mounting bracket is provided with a plurality of ventilation holes.
As a further improvement to the above solution, the at least two lens panels respectively have a fan-shaped structure and circumferentially arranged to form a circular structure.
As a further improvement to the above solution, the heat dissipation body is provided with a waterproof concave cavity at a position of the heat dissipation body corresponding to the lens panel, and the lens panel is embedded in the waterproof concave cavity.
As a further improvement to the above solution, the lens panel is provided at an edge with a first waterproof groove, and waterproof sealing is formed between the lens panel and the heat dissipation body through a first waterproof ring embedded in the first waterproof groove.
As a further improvement to the above solution, the power supply compartment comprises:
a top shell provided with a second waterproof groove and a waterproof retaining edge,
a bottom shell, and
a second waterproof ring arranged between the top shell and the bottom shell, the second waterproof ring comprising an extending portion, and a first bonding portion and a second bonding portion located on both sides of the extending portion,
wherein, during mounting, the extending portion is embedded in the second waterproof groove, the first bonding portion and the second bonding portion are attached to an inner wall of the top shell, and the waterproof retaining edge is respectively attached to a side surface of the second bonding portion and the bottom shell.
As a further improvement to the above solution, the power supply compartment is provided, on a side surface and a surface of the power supply compartment facing far away from the heat dissipation body, with a plurality of heat dissipation fins in divergent arrangement.
As a further improvement to the above solution, the heat dissipation body is provided with a ring-shape pressing plate, the heat dissipation body is provided on a side surface with a concave shoulder, the ring-shape pressing plate is provided at one end with an inwardly extended supporting wall, the ring-shape pressing plate is sleeved on the heat dissipation body, and the supporting wall is attached to the concave shoulder and is thermally connected to the heat dissipation body.
The present disclosure has the beneficial effect as follow.
According to the outdoor LED light of the present disclosure, the plurality of needle-shaped heat dissipation columns are arranged on one side of the heat dissipation body facing the power supply compartment, therefore, the needle-shaped heat dissipation column has better heat dissipation capacity and significantly increases the heat dissipation area of the light compared with a traditional blade-type heat dissipation structure. And within a coverage range of the lens panel, at least two LEDs are arranged on the PCB board, so that the luminous intensity of the light is enhanced without increasing the size of the light. The outdoor LED light of the disclosure ensures good heat dissipation effect and luminous intensity without increasing the size of the light.
The present disclosure is further described hereinafter with reference to the drawings and the embodiments.
The concepts, specific structures and technical effects of the disclosure will be clearly and completely described below by embodiments with reference to the accompanying drawings in order to fully understand the objectives, solutions and effects of the disclosure. It is to be noted that, the embodiments in the present application and the features in the embodiments can be combined if not conflicted.
It is to be noted that, unless otherwise specified, when a certain feature is regarded as being “fixed” or “connected” to another feature, this feature may be fixed or connected to the another feature either directly or indirectly. In addition, the expressions such as upper, lower, left and right used in the disclosure are merely provided with respect to the positional relationship between components in the accompanying drawings of the disclosure.
In addition, unless otherwise defined, the technical and scientific terms used herein have meanings the same as the common meanings interpreted by those skilled in the art. The terms used herein are merely for describing the specific embodiments, rather than limiting the disclosure. The term “and/or” used herein includes any combination of one or more of related listed items.
With reference to
The plurality of lenses 400 are mounted, and preferably integrally, on a lens panel 410. In an embodiment of the present disclosure, the lens panel 410 may be of a circle shape to be mounted on the heat dissipation body 200. In an alternative and preferable embodiment of the present disclosure, the lens panel 410 may be of a fan shape, and at least two lens panels 410 are sequentially spliced along a circumferential direction to form a circular structure, so as to be mounted on the heat dissipation body 200.
In order to increase the luminous intensity of the light, at least two LEDs 310 are arranged on the PCB board 300 within an area defined by each lens panel 410.
As shown in
The plurality of needle-shaped heat dissipation columns 220 are distributed on an entire surface of the heat dissipation body 200 facing the power supply body 100. In the embodiment, the distribution is preferably in a form of a plurality of outwardly diffused circles. As shown in
From a circle center of the heat dissipation body 200, the height of the needle-shaped heat dissipation columns 220 gradually increase in a radially outward direction to form an curved surface structure, so as to form a rapid heat dissipation channel between the curved surface structure and a bottom surface of the power supply compartment 100, thereby accelerating the movement of heat from the middle to both sides and improving the heat dissipation efficiency.
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The heat dissipation body 200 is further provided, on an emitting surface, with a shroud 700 which is fixedly arranged on an outer surface of the ring-shape pressing plate 600. A cylindrical surface structure in which an area of the shroud 700 gradually decreases is formed in a light emitting direction.
As shown in
The bottom shell 120 is provided, on the bottom surface, with a convex surface 121 protruding toward the heat dissipation body 200, the convex surface 121 has a certain distance from the curved surface structure formed by the plurality of needle-shaped heat dissipation columns 210. The structure of the convex surface 121 increases the heat dissipation efficiency of the power supply compartment 100, and at the same time, the convex surface 121 enables a stronger structure strength for the power supply compartment 100 than a conventional planar structure.
The power supply 130 is mounted on the bottom shell 120, the top shell 110 is further provided on an inner wall thereof with a plurality of retaining edges 113, the retaining edge 113 plays a role in positioning the power supply 130, and the power supply 130 is arranged in a space enclosed by the plurality of retaining edges 113.
Preferably, the power supply compartment 100 are further provided, on both a top surface and a side surface thereof, with a heat dissipation fin 140 that diverges outwardly to enhance the overall heat dissipation efficiency of the light.
As shown in
Although the preferred embodiments of the disclosure have been specifically described above, the disclosure is not limited thereto. Those skilled in the art can make various equivalent transformations or replacements without departing from the principle of the disclosure, and these equivalent transformations or replacements shall fall into the scope defined by the appended claims of the disclosure.
Number | Date | Country | Kind |
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201811287292.6 | Oct 2018 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2018/120085 | 12/10/2018 | WO | 00 |