This application claims the benefit of Taiwan patent application No. 107113851, filed on Apr. 24, 2018, the entire contents of which are incorporated herein by reference.
The present invention relates to a heat sink, and more particularly to a heat sink that is applied to a display unit for heat dissipation.
In a flat-panel display such as a liquid-crystal display, a liquid-crystal panel of a display device provides a backlight source by a backlight module. The backlight source is lighted and generates heat. For keeping a suitable working temperature to the flat-panel display, a conventional heat sink is mounted in a shell of the flat-panel display to assist the flat-panel display with heat dissipation.
The conventional heat sink has a heat-conducting element having multiple cooling fins and at least one cooling fan. The heat-conducting element is connected to a heating source such as the backlight module for increasing a heat dissipation surface area. The at least one cooling fan provides a heat dissipation air flow to the heat-conducting element for heat dissipation.
Although the conventional heat sink uses the combination of the heat-conducting element and the at least one cooling fan for heat dissipation to the flat-panel display, the heat dissipation effect of the conventional heat sink is still insufficient.
To overcome the shortcomings, the present invention provides a heat sink for a display unit to mitigate or obviate the aforementioned problems.
The objective of the invention is to provide a heat sink for a display unit that can solve the problem that the heat dissipation effect of the conventional heat sink is insufficient.
The display unit has an outer shell, an inner shell, a display device, an outer chamber, and an inner chamber. The inner shell is disposed in the outer shell. The display device is disposed on the inner shell. The outer chamber is formed between the inner shell and the outer shell. The inner chamber is formed in the inner shell.
The heat sink is disposed in the outer shell of the display unit, extends from the inner chamber to the outer chamber, and has a heat conductor, at least one first cooling fan, and at least one second cooling fan.
The heat conductor is made of a heat-conducting material and has a heat-conducting member, multiple first cooling fins, and multiple second cooling fins. The heat-conducting member has a base portion, an extending portion, and multiple channels. The base portion is disposed in the inner chamber of the display unit and has an end, a front surface, a heat-conducting surface, and a back surface. The heat-conducting surface is formed on the front surface of the base portion. The extending portion is formed on the end of the base portion and is disposed in the outer chamber of the display unit. The channels are closed-form channels, are formed in the heat-conducting member at spaced intervals, extend from the base portion to the extending portion, and are filled with a working fluid. The first cooling fins are formed on and are protruded out of the back surface of the base portion at spaced intervals. The second cooling fins are formed on and are protruded out of the extending portion.
The at least one first cooling fan is disposed on the back surface of the base portion. The at least one second cooling fan is disposed on the extending portion of the heat-conducting member.
The heat sink is applied to the display unit for heat dissipation. Heat generated by a heating source of the display unit is absorbed by the heat conductor. The heat is conducted to the first cooling fins for increasing a heat dissipation surface area. The at least one first cooling fan may generate a heat dissipation air flow for heat dissipation. The working fluid absorbs the heat, changes from a liquid phase to a gas phase, and then flows toward the extending portion of the heat conductor quickly. The heat is conducted to the second cooling fins on the extending portion for increasing the heat dissipation surface area. The at least one second cooling fan generates a heat dissipation air flow for heat dissipation. The working fluid in the gas phase is cooled, changes from the gas phase to the liquid phase, and then flows downwardly via the channels to re-absorb the heat. The heat conductor may be sectioned for heat dissipation. The working fluid changes phases for heat dissipation quickly. Therefore, the heat dissipation effect of the heat sink is good for the display unit.
Other objectives, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
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In the second embodiment of the heat sink 5, the extending portion 13 is formed on a top end of the base portion 12. The channels 14 in the heat-conducting member 11 extend upwardly from a bottom section of the base portion 12 to the extending portion 13. The first connecting chamber 15 is disposed in a top section of the extending portion 13. The second connecting chamber 16 is disposed in the bottom section of the base portion 12 adjacent to a bottom end of the base portion 12. In addition, the extending portion 13 is formed on a transverse end of the base portion 12 or an inclined end of the base portion 12. The channels 14 may be transverse or inclined. The first connecting chamber 15 and the second connecting chamber 16 are disposed at two transverse ends of the heat conductor 10 or two inclined ends of the heat conductor 10.
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The heat sink 5 is disposed in the display unit. The heat conductor 10 is disposed behind the backlight module 2B in the inner shell 2C. The heat conductor 10 extends upwardly from the inner shell 2C to the outer chamber 1A. The heat-conducting surface 121 of the heat-conducting member 11 is connected to the backlight module 2B. The back surface 122 of the base portion 12 having the first cooling fins 17 is located in the inner chamber 2D of the inner shell 2C. The extending portion 13 located on the top end of the base portion 12 is inserted through a top portion of the inner shell 2C and is inserted into the outer chamber 1A formed between the inner shell 2C and the outer shell 1. The extending portion 13 can be best disposed toward a portion of the outer shell 1 having the vents 1B. The at least one first cooling fan 20 is located in the inner chamber 2D of the inner shell 2C. The at least one first cooling fan 20 is disposed above the back surface 122 of the base portion 12 of the heat-conducting member 11. The at least one first cooling fan 20 provides the heat dissipation air flow to the back surface 122 having the first cooling fins 17. The at least one second cooling fan 30 is located in the outer chamber 1A formed between the inner shell 2C and the outer shell 1. The at least one second cooling fan 30 is located in front of the extending portion 13 having the second cooling fins 18. The at least one second cooling fan 30 provides the heat dissipation air flow to the extending portion 13 having the second cooling fins 18.
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Accordingly, the heat sink 5 is applied to the display unit for heat dissipation. Heat generated by a heating source of the display unit is absorbed by the heat conductor 10. The heat is conducted to the first cooling fins 17. The heat dissipation surface area is increased by the first cooling fins 17. The at least one first cooling fan 20 generates the heat dissipation air flow for heat dissipation. The working fluid in the channels 14 absorbs the heat, changes from the liquid phase to the gas phase, and then flows toward the extending portion 13 of the heat conductor 10 quickly. The heat dissipation surface area is increased by the second cooling fins 18 on the extending portion 13. The at least one second cooling fan 30 generates the heat dissipation air flow for heat dissipation. The working fluid in the gas phase is cooled, changes from the gas phase to the liquid phase, and then reflows via the channels to re-absorb the heat. The heat conductor can be sectioned for heat dissipation and the working fluid can change phases for heat dissipation quickly, thereby providing the good heat dissipation effect of the heat sink 5 for the display unit.
Number | Date | Country | Kind |
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107113851 | Apr 2018 | TW | national |