This application claims the benefit and priority of Chinese Patent Application No. CN 201710882519.0, filed Sep. 26, 2017. The entire disclosure of the above application is incorporated herein by reference.
The present disclosure relates to the field of laser display technology and particularly to a liquid cooling block, a liquid cooling heat dissipation system and a laser projector.
This section provides background information related to the present disclosure which is not necessarily prior art.
Laser display technology is the fourth generation of display technology, following black and white display technology, color display technology and high-definition digital display technology, and has a significant research value. But strong coherence of a laser as a display light source may cause speckles on a screen, severely affecting definition of an image on the screen. Furthermore, red lasers currently in use, which have long wavelengths, are especially prone to cause speckles.
Speckles refer to granular, dark and bright spots on the screen produced by constructive interference and destructive interference of scattered light when a coherent light source irradiates a rough surface. In order to suppress the speckles so that they cannot be recognized by the human eyes, the coherence of the laser needs to be reduced.
To enable a laser to work stably and efficiently, usually a heat absorber is arranged in the laser. Liquid cooling block is a common heat absorber in a laser. A liquid cooling block can be a metal block made of copper or aluminum and have an inner water channel. Or, the liquid cooling block can include a heat exchanger made of copper or aluminum, the heat exchanger contacts a heat source and absorbs heat produced by the heat source. The heat exchanger generally consists of an upper chamber, a lower chamber, a liquid inlet, a liquid outlet and a seal ring. The contact portion of the upper and lower chambers is sealed by the seal ring to form a seal chamber, and the cavity between the upper and lower chambers contains the cooling liquid.
This section provides a general summary of the disclosure, and is not a comprehensive disclosure of its full scope or all of its features.
In one aspect, some embodiments of the disclosure provide a liquid cooling block. The liquid cooling block includes a housing. A liquid inlet, a liquid outlet and at least two sets of cooling fins are arranged on the housing. At least two liquid storage chambers are formed in the housing. Each of the at least two liquid storage chambers corresponds to one set of the at least two sets of cooling fins. The at least two liquid storage chambers share the liquid inlet and the liquid outlet, so that cooling liquid enters the at least two liquid storage chambers via the liquid inlet and then flows out of the liquid cooling block via the liquid outlet. And one of the at least two liquid storage chambers and corresponding cooling fins thereof have a total heat dissipation efficiency different from a total heat dissipation efficiency of another one of the at least two liquid storage chambers and corresponding cooling fins thereof.
In another aspect, some embodiments of the disclosure further provide a liquid cooling heat dissipation system. The liquid cooling heat dissipation system includes a heat exchanger, a circulation pump, a liquid tank, and a liquid cooling block. The heat exchanger, the circulation pump, the liquid tank, and the liquid cooling block are connected by liquid tubes to form a circulation system. The liquid cooling block includes a housing. A liquid inlet, a liquid outlet and at least two sets of cooling fins are arranged on the housing. At least two liquid storage chambers are formed in the housing. Each of the at least two liquid storage chambers corresponds to one set of the at least two sets of cooling fins. The at least two liquid storage chambers share the liquid inlet and the liquid outlet, so that cooling liquid enters the at least two liquid storage chambers via the liquid inlet and then flows out of the liquid cooling block via the liquid outlet. And one of the at least two liquid storage chambers and corresponding cooling fins thereof have a total heat dissipation efficiency different from a total heat dissipation efficiency of another one of the at least two liquid storage chambers and corresponding cooling fins thereof.
In another aspect, some embodiments of the disclosure further provide a laser projector. The laser projector includes a liquid cooling heat dissipation system. The liquid cooling heat dissipation system includes a heat exchanger, a circulation pump, a liquid tank, and a liquid cooling block. The heat exchanger, the circulation pump, the liquid tank, and the liquid cooling block are connected by liquid tubes to form a circulation system. The liquid cooling block includes a housing. A liquid inlet, a liquid outlet and at least two sets of cooling fins are arranged on the housing. At least two liquid storage chambers are formed in the housing. Each of the at least two liquid storage chambers corresponds to one set of the at least two sets of cooling fins. The at least two liquid storage chambers share the liquid inlet and the liquid outlet, so that cooling liquid enters the at least two liquid storage chambers via the liquid inlet and then flows out of the liquid cooling block via the liquid outlet. And one of the at least two liquid storage chambers and corresponding cooling fins thereof have a total heat dissipation efficiency different from a total heat dissipation efficiency of another one of the at least two liquid storage chambers and corresponding cooling fins thereof.
Further aspects and areas of applicability will become apparent from the description provided herein. It should be understood that various aspects of this disclosure may be implemented individually or in combination with one or more other aspects. It should also be understood that the description and specific examples herein are intended for purposes of illustration only and are not intended to limit the scope of the present disclosure
The drawings described herein are for illustrative purposes only of selected embodiments and not all possible implementations, and are not intended to limit the scope of the present disclosure.
Corresponding reference numerals indicate corresponding parts or features throughout the several views of the drawings.
Example embodiments will now be described more fully with reference to the accompanying drawings.
Technical solutions of embodiments of the disclosure are described below with reference to the drawings. Apparently the embodiments described herein are only a part of the embodiments of the disclosure, not all of the embodiments. Based upon the embodiments described herein, all other embodiments obtained by those skilled in the art without creative work pertain to the protection scope of the disclosure.
As illustrated by
In some embodiments, space inside the housing 11 is divided into at least two liquid storage chambers 14. The cooling liquid enters the at least two liquid storage chambers 14 via the liquid inlet 12, absorbs heat from laser-emitting elements (not shown in the figure) while passing through the at least two liquid storage chambers 14, and then drains out of the liquid cooling block 1 via the liquid outlet 13. Since different liquid storage chambers 14 and corresponding cooling fins have different total heat dissipation efficiencies, efficiency of heat exchange between laser-emitting elements in contact with the housing 11 and the cooling liquid varies according to different liquid storage chambers 14.
In some embodiments, the laser-emitting elements can include at least two laser emitters which emit laser of a same color. The at least two laser emitters can be divided into at least two parts, each of the at least two parts includes at least one laser emitter, and corresponds to a different liquid storage chamber 14. Since a total heat dissipation efficiency of a liquid storage chamber 14 and its corresponding cooling fins is different from a total heat dissipation efficiency of another liquid storage chamber 14 and its corresponding cooling fins, dominant wavelengths of lasers emitted by laser emitters of different parts may have different levels of shift when the dominant wavelengths of the lasers emitted by the at least two laser emitters are similar. Thus the dominant wavelengths of the lasers emitted by the laser-emitting elements are different, and the lasers with different dominant wavelengths can reduce the occurrence of the speckle phenomenon in the light path.
In some embodiments, the laser-emitting elements in contact with the housing 11 can include at least two laser emitters which emit lasers of different colors. Laser emitters emitting lasers of different colors may correspond to different liquid storage chambers 14, respectively, thereby meeting different heat dissipation efficiency requirements of laser light sources emitting lasers of different colors. For example, a laser emitter requiring a high heat dissipation efficiency can be in contact with a liquid storage chamber 14 having a better heat dissipation effect.
As shown in
In order to enable the cooling liquid to flow between adjacent liquid storage chambers 14, as shown in
According to some other embodiments of the disclosure, both through hole(s) in the baffle 15 and first channel(s) 16 on the inner wall of the housing 11 can be used to enable the cooling liquid to flow through at least two liquid storage chambers 14 to simplify the structure of the housing 11. Other structures can also be used to enable the cooling liquid to flow into the liquid inlet 12, then flow from one liquid storage chamber 14 into other liquid storage chambers 14 successively, and then flow out from the liquid outlet 13.
In the embodiments as shown in
In some other embodiments of the disclosure, the at least two liquid storage chambers 14 can be connected with the liquid inlet 12 to share the liquid inlet 12. Or, the at least two liquid storage chambers 14 can be connected with the liquid outlet 13 to share the liquid outlet 13. In these embodiments, in order to simplify the structure of the housing 11, as shown in
As shown in
As shown in
The cross-sectional area of the second channel 17 and its position on the inner wall of the housing 11 can be designed according to practical conditions of the liquid cooling block 1. In the exemplary embodiments as shown in
In order to simplify the structure of the housing 11, other structures can be used that enable the cooling liquid flowing from the liquid inlet 12 to enter into different liquid storage chambers 14 at the same time and then flow out from the liquid outlet 13.
In some other embodiments, structures illustrated by
In some embodiments, for convenient manufacturing, the baffle 15 and the housing 11 can be formed integrally, e,g., can be formed integrally by die casting. There is no need for other manufacturing processes, the precision is higher and the molding is convenient.
In some embodiments, sizes of any two liquid storage chambers 14 formed in the housing 11 can be the same or different. In a case where the sizes of at least two liquid storage chambers 14 are different, heat dissipation effects of the at least two liquid storage chambers 14 are also different due to the different sizes of the liquid storage chambers 14.
In some embodiments, flow velocities of the cooling liquid in different liquid storage chambers 14 can be the same or different. In a case where flow velocities of the cooling liquid in two liquid storage chambers 14 are different, the heat dissipation effects of the two liquid storage chambers 14 are also different due to the different flow velocities of the cooling liquid therein.
In some embodiments, different cooling fins can have differences in at least one of the following aspects so that the different cooling fins have different heat dissipation efficiencies: heat conduction coefficients are different, heat dissipation areas are different, and air cooling environments are different. The different air cooling environments can be caused for example by different fan speeds. A heat dissipation area of a cooling fin can include a contact area of the cooling fin with the air, and/or a contact area of the cooling fin with the cooling liquid.
In the above-mentioned liquid cooling block 1, if heat dissipation efficiencies of different liquid storage chambers 14 are different, temperatures of parts of the laser-emitting elements corresponding to the different liquid storage chambers 14 are different, producing desired temperature differences.
In some embodiments, for two adjacent sets of cooling fins, one set of cooling fins include a plurality of first cooling fins and the other set of cooling fins include a plurality of second cooling fins. One set of cooling fins and a corresponding liquid storage chamber 14 can have a total heat dissipation efficiency different from that of the other set of cooling fins and a corresponding liquid storage chamber 14 in the following modes.
Mode one: heat dissipation areas of the first and second cooling fins are different, and flow velocities of the cooling liquid flowing respectively through the first and second cooling fins are the same.
Mode two: the heat dissipation areas of the first and second cooling fins are the same, and the flow velocities of the cooling liquid flowing respectively through the first and second cooling fins are different.
Mode three: the heat dissipation areas of the first and second cooling fins are different, and the flow velocities of the cooling liquid flowing respectively through the first and second cooling fins are different.
In a case where the flow velocities of the cooling liquid flowing respectively through the first and second cooling fins are the same, the heat dissipation efficiency increases as the heat dissipation area increases. In a case where the flow velocities of the cooling liquid flowing respectively through the first and second cooling fins are different but the heat dissipation areas of the first and second cooling fins are same, a cooling fin through which the flow velocity of the cooling liquid flowing is faster has a higher heat dissipation efficiency.
As shown in
In the liquid cooling heat dissipation system described above, the heat exchanger 2, the liquid tank 3, the circulation pump 4 and the liquid cooling block 1 are connected by the liquid tubes 5 to form the closed circulation system. Cooling liquid outputs from the liquid tank 3 with the help of the circulation pump 4, takes away most heat when flowing through the liquid cooling block 1, then enters the heat exchanger 2, and returns to the liquid tank 3 after being cooled by the heat exchanger 2. The cooling liquid takes heat away from laser-emitting elements when flowing through the liquid cooling block 1. Since temperatures of different parts of the laser-emitting elements corresponding to different liquid storage chambers 14 in the liquid cooling block 1 are different, dominant wavelengths of the lasers emitted by the laser-emitting elements are different, and the lasers with different dominant wavelengths can reduce the occurrence of the speckle phenomenon in the light path.
Moreover, some embodiments of the disclosure further provide a laser projector, which includes the liquid cooling heat dissipation system described above.
Since the liquid cooling heat dissipation system described above can reduce the occurrence of the speckle phenomenon, the laser projector having the liquid cooling heat dissipation system described above can also reduce the occurrence of the speckle phenomenon and improve the display effect.
The foregoing description of the embodiments has been provided for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure. Individual elements or features of a particular embodiment are generally not limited to that particular embodiment, but, where applicable, are interchangeable and can be used in a selected embodiment, even if not specifically shown or described. The same may also be varied in many ways. Such variations are not to be regarded as a departure from the disclosure, and all such modifications are intended to be included within the scope of the disclosure.
Number | Date | Country | Kind |
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201710882519.0 | Sep 2017 | CN | national |